WO2018137221A1 - 发送及检测控制信息的方法、终端设备和网络设备 - Google Patents

发送及检测控制信息的方法、终端设备和网络设备 Download PDF

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Publication number
WO2018137221A1
WO2018137221A1 PCT/CN2017/072707 CN2017072707W WO2018137221A1 WO 2018137221 A1 WO2018137221 A1 WO 2018137221A1 CN 2017072707 W CN2017072707 W CN 2017072707W WO 2018137221 A1 WO2018137221 A1 WO 2018137221A1
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WIPO (PCT)
Prior art keywords
control channel
uplink control
time length
network device
terminal device
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PCT/CN2017/072707
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English (en)
French (fr)
Inventor
邵家枫
李超君
Original Assignee
华为技术有限公司
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Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to CN201780084254.8A priority Critical patent/CN110235399A/zh
Priority to PCT/CN2017/072707 priority patent/WO2018137221A1/zh
Priority to EP17894249.6A priority patent/EP3567772B1/en
Priority to JP2019540438A priority patent/JP2020507273A/ja
Publication of WO2018137221A1 publication Critical patent/WO2018137221A1/zh
Priority to US16/520,613 priority patent/US20190349923A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1829Arrangements specially adapted for the receiver end
    • H04L1/1861Physical mapping arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/21Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/1607Details of the supervisory signal
    • H04L1/1671Details of the supervisory signal the supervisory signal being transmitted together with control information
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1867Arrangements specially adapted for the transmitter end
    • H04L1/1887Scheduling and prioritising arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • H04L1/1867Arrangements specially adapted for the transmitter end
    • H04L1/1896ARQ related signaling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • H04L5/0055Physical resource allocation for ACK/NACK
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames

Definitions

  • the embodiments of the present invention relate to the field of communications, and in particular, to a method for transmitting and detecting control information, a terminal device, and a network device.
  • a physical uplink control channel (PUCCH) and a physical uplink shared channel (PUSCH) have a transmission time interval (referred to as a transmission time interval).
  • TTI transmission time interval
  • the PUCCH is used to carry uplink control information (UCI).
  • the UCI may include at least one of a channel state information (CSI), a hybrid automatic repeat request-acknowledgement (HARQ-ACK) message, and a scheduling request (SR).
  • CSI channel state information
  • HARQ-ACK hybrid automatic repeat request-acknowledgement
  • SR scheduling request
  • the HARQ-ACK message indicates the receiving status of the downlink data.
  • the format of the PUCCH includes multiple types such as PUCCH format 1/1a/1b/3/4/5.
  • multiple terminal devices in the same cell may send respective PUCCHs on the same resource block (RB).
  • Multiple PUCCHs on the same RB may be implemented by orthogonal code division multiplexing (CDM): using cyclic shift in the frequency domain, or using orthogonal in the time domain.
  • CDM orthogonal code division multiplexing
  • An orthogonal sequence, or both use a cyclic shift in the frequency domain and an orthogonal sequence in the time domain, wherein the cyclic shift is also referred to as phase rotation.
  • Different PUCCH formats may use different CDM technologies as shown in Table 1.
  • PUCCH format 1/1a/1b For PUCCH format 1/1a/1b, as shown in FIG. 1, the middle 3 symbols of each slot are used to transmit a PUCCH demodulation reference signal (PUCCH DMRS), and the remaining 4 symbols are used. The symbol is used to transmit uplink control information (UCI).
  • UCI uplink control information
  • each time slot is used to transmit 4 symbols of UCI multiplied by a 4-length orthogonal sequence, and each time slot is used to transmit 3 symbols of PUCCH DMRS. Multiply by a 3-long orthogonal sequence.
  • each time slot is used to transmit 5 symbols of UCI multiplied by a 5 long orthogonal sequence.
  • SRS sounding reference signal
  • the second time slot has only three symbols for transmitting UCI multiplied by a three-length orthogonal sequence; for PUCCH format 3.
  • the second time slot has only four symbols for transmitting UCI multiplied by a four-length orthogonal sequence.
  • the resources of the SR are configured in advance through high-level signaling.
  • the UE When the SR and the HARQ-ACK message (bearing in the PUCCH format 1a or 1b) are transmitted in the same subframe, the UE sends a HARQ-ACK message on the resource where the SR is located, and the network device knows that the terminal device is available after receiving the network.
  • the SR and HARQ-ACK messages are sent at the same time; when only the SR is sent, the terminal device sends a NACK (representing the scheduling request SR) on the resources of the SR; when only the HARQ-ACK message is sent, then the terminal device is The HARQ-ACK message is sent on the resource of the HARQ-ACK message according to whether the data is demodulated correctly or not.
  • the SR and HARQ-ACK messages (bearing in PUCCH format 3 or 4 or 5) are transmitted in the same subframe, then the UE transmits the SR on the resources of the HARQ-ACK message.
  • Latency is one of the important factors affecting the user experience in wireless communication systems.
  • the transmission mechanism based on the 1ms transmission time interval has been unable to meet the needs of low-latency services.
  • the PUSCH that shortens the TTI length may be referred to as a short PUSCH (short PUSCH, sPUSCH for short), and the PUCCH that shortens the TTI length may be referred to as a short PUCCH (short PUCCH, sPUCCH for short).
  • the length of the uplink TTI can be dynamically changed.
  • a combination of one or more of PUCCH, PUSCH, sPUCCH, and sPUSCH occurs, how to send the SR.
  • HARQ-ACK messages are an urgent problem to be solved.
  • the embodiment of the present invention provides a method for transmitting and detecting control information, a terminal device, and a network device, which are used to improve the transmission efficiency of the SR and the HARQ-ACK message when the uplink TTI length is variable, to avoid damaging the uplink single carrier characteristic, thereby reducing
  • the cost of the terminal equipment ensures the correct transmission of important information.
  • an embodiment of the present invention provides a method for transmitting control information.
  • the terminal device determines, according to the relationship between the first time length and the second time length, the uplink control channel that carries the control information, where the uplink control channel of the bearer control information is the first uplink control channel or the second uplink control channel,
  • the first time length is a time length corresponding to the first uplink control channel
  • the second time length is a time length corresponding to the second uplink control channel
  • the first uplink control channel is used to carry a HARQ-ACK message.
  • the second uplink control channel is configured to carry the SR; the terminal device sends at least the HARQ-ACK message on the uplink control channel of the bearer control information.
  • the technical solutions provided by the present application can not only maintain the uplink single carrier characteristics, but also ensure that the HARQ-ACK message is preferentially transmitted, and the terminal device determines the first time length corresponding to the first uplink control channel.
  • the relationship between the second time length corresponding to the second uplink control channel determines the uplink control channel for transmitting the bearer control information, and when the first time length and the second time length are the same, the terminal device selects the The resource corresponding to the uplink control channel sends the HARQ-ACK message and the SR.
  • the terminal device selects the resource corresponding to the first uplink control channel to send the HARQ-ACK message, thereby avoiding the terminal device. Simultaneously, two channels with different TTI lengths are transmitted to avoid damaging the uplink single carrier characteristics, thereby ensuring the correct transmission of important information while reducing the cost of the terminal equipment.
  • the terminal device determines that the uplink control channel of the bearer control information is the second uplink control channel.
  • the terminal device selects the resource corresponding to the second uplink control channel to send the HARQ-ACK message and the SR, and uses the second uplink control channel to correspond to the implicit notification network device terminal.
  • the device sends the SR. Since the two time lengths are the same, the terminal device simultaneously transmits the HARQ-ACK message and the SR in the same channel, and ensures the HARQ-ACK message and the SR without destroying the uplink single carrier characteristic. Timely transmission.
  • the terminal device sends the HARQ-ACK message and the SR on an uplink control channel of the bearer control information, where an uplink control channel of the bearer control information is the Two uplink control channels.
  • the terminal device determines that the uplink control channel of the bearer control information is the second uplink control channel according to the first time length and the second time length.
  • the terminal device determines that the uplink control channel of the bearer control information is the second uplink control channel, according to the first time length being less than or equal to the second time length.
  • the terminal device selects the resource corresponding to the second uplink control channel to send the HARQ-ACK message and the SR, and the second uplink control channel is equivalent to implicitly notifying the network device terminal device to send the SR, because the two time lengths are the same or
  • the first time length is less than or equal to the second time length, so the terminal device simultaneously transmits the HARQ-ACK message and the SR in the same channel, and ensures the timely manner of the HARQ-ACK message and the SR without destroying the characteristics of the uplink single carrier.
  • the two time lengths are the same as the optimal solution. If the first time length is less than or equal to the second time length, then sending the HARQ-ACK message on the second uplink control channel increases the HARQ-ACK message. Transmission delay.
  • the terminal device determines that the uplink control channel of the bearer control information is the first uplink control channel.
  • the terminal device selects the resource corresponding to the first uplink control channel to send the HARQ-ACK message, instead of using the resource corresponding to the second uplink control channel, thereby avoiding
  • the disadvantage of increasing the transmission delay of the HARQ-ACK message ensures timely transmission of the HARQ-ACK message without destroying the characteristics of the uplink single carrier.
  • the terminal device sends the HARQ-ACK message on an uplink control channel of the bearer control information, where an uplink control channel of the bearer control information is the first uplink control channel.
  • the terminal device determines that the uplink control channel of the bearer control information is the first uplink control channel, according to the first time length and the second time length.
  • the terminal device determines that the uplink control channel of the bearer control information is the first uplink control channel, according to the first time length being less than or greater than the second time length.
  • the terminal device selects the resource corresponding to the first uplink control channel to send the HARQ-ACK message, instead of using the resource corresponding to the second uplink control channel, thereby avoiding increasing the HARQ when the first time length is less than the second time length.
  • the shortcoming of the transmission delay of the ACK message thereby avoiding the disadvantage that the accuracy of the HARQ-ACK message is reduced on the second uplink control channel when the first time length is greater than the second time length, without destroying the characteristics of the uplink single carrier. To ensure timely and accurate transmission of HARQ-ACK messages.
  • the terminal device discards the SR, and the uplink control channel of the bearer control information is the first uplink control channel; or the terminal device discards the SR, where the Length of time and place The second time lengths are not equal.
  • the terminal device selects to discard the SR, and the terminal device selects the resource corresponding to the first uplink control channel to send the HARQ-ACK message, and does not apply the resource corresponding to the second uplink control channel, avoiding the situation 1: simultaneously transmitting two uplink channels.
  • the service priority of the HARQ-ACK message is higher than or equal to the service priority of the SR, or the delay of the downlink data service corresponding to the HARQ-ACK message is high.
  • the time delay requirement of the uplink data service corresponding to the SR is equal to or equal to.
  • the terminal device determines the uplink control channel carrying the control information according to the relationship between the first time length and the second time length, and the terminal sends at least the SR on the uplink control channel of the bearer control information.
  • the terminal device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the terminal device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the terminal device can determine the priority relationship between the HARQ-ACK message and the SR, and the first time length and the second time length are not equal, thereby ensuring that the uplink single carrier characteristics are not damaged. Send more important information.
  • the method before the determining, by the terminal device, the uplink control channel that carries the control information, the method further includes: determining, by the terminal device, a format of the first uplink control channel; and/or determining, by the terminal device, The format of the second uplink control channel.
  • the terminal device determines that the format of the first uplink control channel is 1a or 1b or 2, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1a is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 2 is sPUCCH format 2
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines, according to the relationship between the first time length and the second time length, the uplink control channel that carries the control information;
  • the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5
  • the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1a is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device determines that the format of the second uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1 is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines that the format of the second uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1 is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device can determine the format of the first uplink control channel.
  • the HARQ-ACK message can be corresponding to the SR.
  • the terminal device performs the uplink control channel of the bearer control information according to the relationship between the first time length and the second time length, and the terminal device directly determines the bearer control information.
  • the uplink control channel is the first uplink control channel, and does not need to be based on the relationship between the first time length and the second time length. In this manner, the HARQ-ACK message can be carried on the uplink control channel corresponding to the SR in a specific format combination.
  • the HARQ-ACK message and the SR are simultaneously transmitted, thereby improving information transmission efficiency.
  • the format of the first uplink control channel is 1a or 1b or 2, or the format of the first uplink control channel is 1a or 1b; and/or the second uplink control The format of the channel is 1 or 1a or 1b or 2, or the format of the second uplink control channel is 1 or 1a or 1b.
  • the terminal device can determine the format of the first uplink control channel.
  • the first uplink control channel and the second uplink control channel are both channels for uplink channel selection, the HARQ-ACK message can be corresponding to the SR.
  • the terminal device performs the uplink control channel of the bearer control information according to the relationship between the first time length and the second time length, and the terminal device directly determines the bearer control information.
  • the uplink control channel is the first uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the HARQ-ACK message can be carried on the uplink control channel corresponding to the SR in a specific format combination.
  • the HARQ-ACK message and the SR are simultaneously transmitted, thereby improving information transmission efficiency.
  • the terminal device determines the first time length according to a time length corresponding to the high layer signaling or the downlink transmission; and/or, the terminal device determines the second time according to the high layer signaling. length.
  • the first time length is preset, and/or the second time length is preset.
  • the terminal device can learn the first time length and the second time length.
  • the first uplink control channel and the second uplink control channel overlap in time.
  • the terminal device when the first uplink control channel and the second uplink control channel overlap in time, performs the determining, by the terminal device, the bearer control information according to the relationship between the first time length and the second time length.
  • the uplink control channel otherwise, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel or the second uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the difference between the transmission time differences of the first uplink control channel and the second uplink control channel is less than or equal to a us, a is a predefined value, and a is a non-negative integer.
  • the terminal device performs the determining, by the terminal device, according to the relationship between the first time length and the second time length.
  • the uplink control channel carrying the control information, otherwise the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel or the second uplink control channel, and does not need to be according to the first The relationship between the length of time and the length of the second time.
  • the overlap time of the first uplink control channel and the second uplink control channel is greater than or equal to b us, b is a predefined value, and b is a non-negative integer.
  • the terminal device performs the determining, by the terminal device, the bearer according to the relationship between the first time length and the second time length. Controlling the uplink control channel of the information, otherwise performing the uplink control channel in which the terminal device directly determines the bearer control information is the first uplink control channel or the second uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the uplink control channel is selected by the first uplink control channel and the second uplink control channel in time, and the terminal device selects the uplink control channel with the most overlap with the current time unit as the uplink control of the bearer control information. channel.
  • the first uplink control channel and the second uplink control channel are uplink control channels on the same carrier, or the first uplink control channel and the second uplink control channel are in the same carrier.
  • the uplink control channel of the group is configured to control the first uplink control channel and the second uplink control channel.
  • the terminal device determines that the first uplink control channel and the second uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the first uplink control channel and the second uplink control channel are uplink control channels that are not on the same carrier, or the first uplink control channel and the second uplink control channel are different For the uplink control channel of one carrier group, the terminal device can simultaneously send the first uplink control channel and the second uplink control channel, and does not perform the first step, because the uplink carrier characteristics are not destroyed at this time.
  • an embodiment of the present invention provides a method for transmitting control information.
  • the terminal device determines an uplink control channel carrying control information, where the uplink control channel of the bearer control information is a third uplink control channel or a fourth uplink control channel, where the third uplink control channel and the fourth uplink control channel are used.
  • the time length of the third uplink control channel is a third time length
  • the time length corresponding to the fourth uplink control channel is a fourth time length
  • the third time length is greater than the fourth time length.
  • the terminal device sends the SR on the uplink control channel carrying the control information.
  • the technical solutions provided by the present application can not only maintain the uplink single carrier characteristic, but also ensure the selection of the channel of the SR that is properly carried, thereby improving the probability of the SR being correctly transmitted.
  • the terminal device determines an uplink control channel of the bearer control information according to a length of time corresponding to the uplink control channel of the bearer control information.
  • the terminal device determines an uplink control channel with a shorter time length as an uplink control channel carrying control information.
  • the terminal device determines an uplink control channel with a longer duration as an uplink control channel carrying control information.
  • the terminal device determines an uplink control channel of the bearer control information according to a time length corresponding to the uplink control channel of the bearer control information according to the high layer signaling or a predefined rule.
  • the terminal device can select a channel of an appropriately-capable SR according to its own needs or high-level signaling notification of the network device, thereby improving the probability of correct transmission of the SR.
  • the method before the determining, by the terminal device, the uplink control channel that carries the control information, the method further includes: determining, by the terminal device, the uplink control of the bearer control information according to the length of time corresponding to the last downlink transmission. The length of time corresponding to the channel; or the terminal device according to the uplink control of the bearer HARQ-ACK message The length of time corresponding to the channel determines the length of time corresponding to the uplink control channel of the bearer control information.
  • the terminal device can clarify the channel of the currently suitable SR according to the latest downlink transmission or the uplink control channel of the HARQ-ACK message, thereby improving the probability of the SR transmitting correctly.
  • the terminal device determines that the uplink control channel of the bearer control information is the fourth uplink control channel, and the fourth uplink control channel is other than the third uplink control channel.
  • the uplink channel does not overlap in time; or the terminal device determines that the uplink control channel of the bearer control information is the fourth uplink control channel, and the X time units before the time unit where the third uplink control channel is located There is no downlink transmission or no downlink transmission in the Y time units before the time unit in which the fourth uplink control channel is located.
  • the terminal device determines that no other uplink control channel is sent at the same time, or does not have downlink transmission for a long time, and the terminal device determines that the uplink control channel with a shorter time is the uplink control channel carrying the control information.
  • the terminal device determines that the uplink control channel of the bearer control information is the fourth uplink control channel, and at least a part or all of the fourth uplink control channel and the third uplink The control channels overlap in time. With this scheme, the third uplink control channel and the fourth uplink control channel overlap in time to perform uplink control channel selection. Otherwise, the terminal device selects the uplink control channel with the most overlap with the current time unit as the uplink control of the bearer control information. channel.
  • the third uplink control channel and the fourth uplink control channel are uplink control channels on the same carrier, or the third uplink control channel and the fourth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the third uplink control channel and the fourth uplink control channel are in the same carrier.
  • the terminal device determines that the third uplink control channel and the fourth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the third uplink control channel and the fourth uplink control channel are uplink control channels that are not in the same carrier, or the third uplink control channel and the fourth uplink control channel are different For the uplink control channel of one carrier group, the terminal device can simultaneously send the third uplink control channel and the fourth uplink control channel, and does not perform the second step, because the uplink carrier characteristics are not destroyed at this time.
  • an embodiment of the present invention provides a method for detecting control information.
  • the network device determines, according to the relationship between the first time length and the second time length, an uplink control channel of the bearer control information detected by the network device, where the uplink control channel of the bearer control information is the first uplink control channel and the At least one of the two uplink control channels, the first time length is a time length corresponding to the first uplink control channel, and the second time length is a time length corresponding to the second uplink control channel, where the An uplink control channel is used to carry a HARQ-ACK message, the second uplink control channel is used to carry an SR, and the network device detects an uplink control channel of the bearer control information, where the control information includes at least the HARQ-ACK Message.
  • the network device determines, by using the technical solutions provided by the application, a relationship between a first time length corresponding to the first uplink control channel and a second time length corresponding to the second uplink control channel, for example, Whether the same or the same, the uplink control channel that determines the bearer control information detected by the network device, when the first time length and the second time length are the same, then the network device determines that the uplink control channel of the bearer control information detected by the network device is The first uplink control channel and the second uplink control channel, the network device needs to blindly detect two uplink control channels to ensure timely transmission of the HARQ-ACK message and the SR.
  • the uplink control channel that determines the bearer control information detected by the network device is the first uplink control channel, so as to prevent the network device from simultaneously detecting two channels with different TTI lengths. Thereby reducing the cost of network equipment.
  • the network The device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel and the second uplink control channel.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel and the second uplink control channel, and the network device needs The two uplink control channels are blindly detected to ensure timely transmission of HARQ-ACK messages and SRs.
  • the method further includes: the network device receiving the HARQ-ACK on an uplink control channel of the bearer control information
  • the message and the SR, the uplink control channel carrying the control information is the second uplink control channel.
  • the network device determines, according to the first time length and the second time length, that the uplink control channel that is detected by the network device is the first uplink control channel and the second uplink control channel.
  • the network device determines, according to the first time length that is less than or equal to the second time length, that the uplink control channel that is detected by the network device is the first uplink control channel and the second uplink control channel. .
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel and the second uplink control channel, and the network device needs to blindly detect two uplink control channels to ensure the HARQ-ACK.
  • the two time lengths are the same as the optimal solution. If the first time length is less than or equal to the second time length, receiving the HARQ-ACK message on the second uplink control channel increases. The transmission delay of the HARQ-ACK message.
  • the first time length and the second time length are not equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the An uplink control channel.
  • the network device determines, according to the first time length and the second time length, that the uplink control channel that is detected by the network device is the first uplink control channel.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel, according to the first time length being less than or greater than the second time length.
  • the uplink control channel of the bearer control information detected by the network device is determined to be the first uplink control channel, and the second uplink control channel is not detected to avoid
  • the network device simultaneously detects two channels with different TTI lengths, thereby reducing network equipment costs and ensuring timely transmission of HARQ-ACK messages.
  • the method further includes: the network device receiving the HARQ-ACK on an uplink control channel of the bearer control information The message that the uplink control channel carrying the control information is the first uplink control channel.
  • the network device selects the resource corresponding to the first uplink control channel to receive the HARQ-ACK message, and does not use the resource corresponding to the second uplink control channel, thereby avoiding increasing the HARQ when the first time length is less than the second time length.
  • the shortcoming of the transmission delay of the ACK message thereby avoiding the disadvantage that the accuracy of the HARQ-ACK message is reduced on the second uplink control channel when the first time length is greater than the second time length, without destroying the characteristics of the uplink single carrier. To ensure timely and accurate transmission of HARQ-ACK messages.
  • the network device does not detect the second uplink control channel, and the first time length and the second time length are not equal. Then determining the bearer control information detected by the network device
  • the row control channel is the first uplink control channel, and the second uplink control channel is not detected to prevent the network device from simultaneously detecting two channels with different TTI lengths, thereby reducing network equipment cost and ensuring timely transmission of the HARQ-ACK message.
  • the service priority of the HARQ-ACK message is higher than or equal to the service priority of the SR, or the delay of the downlink data service corresponding to the HARQ-ACK message is high.
  • the time delay requirement of the uplink data service corresponding to the SR is equal to or equal to.
  • the network device determines the uplink control channel of the bearer control information detected by the network device according to the relationship between the first time length and the second time length, and the network device is at least on the uplink control channel of the bearer control information.
  • the network device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the network device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the network device can determine the uplink control channel of the bearer control information detected by the network device when the first time length and the second time length are not equal by determining the priority relationship between the HARQ-ACK message and the SR. In order to avoid the destruction of the uplink single carrier characteristics, it is guaranteed to receive more important information.
  • the method before the determining, by the network device, the uplink control channel of the bearer control information that is detected by the network device, the method further includes: determining, by the network device, a format of the first uplink control channel; and Or the network device determines a format of the second uplink control channel.
  • the network device determines that the format of the first uplink control channel is 1a or 1b or 2, performing, by the network device, determining, according to the relationship between the first time length and the second time length, the bearer detected by the network device Controlling an uplink control channel of the information; when the network device determines that the format of the first uplink control channel is 3 or 4 or 5, performing, by the network device, the uplink control channel that directly determines the bearer control information detected by the network device is the first Uplink control channel.
  • 1a is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 2 is sPUCCH format 2
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the network device determines that the format of the first uplink control channel is 1a or 1b, performing, by the network device, determining bearer control information detected by the network device according to the relationship between the first time length and the second time length.
  • Uplink control channel when the network device determines that the format of the first uplink control channel is 3 or 4 or 5, performing, by the network device, directly determining an uplink control channel of the bearer control information detected by the network device as the first uplink control channel.
  • 1a is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the network device determines that the format of the first uplink control channel is 1 or 1a or 1b, performing, by the network device, determining, according to the relationship between the first time length and the second time length, the bearer detected by the network device Controlling an uplink control channel of the information; when the network device determines that the format of the first uplink control channel is 3 or 4 or 5, performing, by the network device, the uplink control channel that directly determines the bearer control information detected by the network device is the first Uplink control channel.
  • 1 is sPUCCH format 1
  • 1b is sPUCCH format 1b
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the network device determines that the format of the first uplink control channel is 1 or 1a or 1b, performing, by the network device, determining, according to the relationship between the first time length and the second time length, the bearer detected by the network device Control information Uplink control channel; when the network device determines that the format of the first uplink control channel is 3 or 4 or 5, performing, by the network device, directly determining an uplink control channel of the bearer control information detected by the network device as the first uplink control channel.
  • 1 is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the network device can determine the format of the first uplink control channel.
  • the HARQ-ACK message can be corresponding to the SR.
  • the network device performs the uplink control channel of the bearer control information detected by the network device according to the relationship between the first time length and the second time length, otherwise the network device is executed.
  • the uplink control channel that directly determines the bearer control information detected by the network device is the first uplink control channel, and does not need to be based on the relationship between the first time length and the second time length. In this manner, the HARQ-ACK message is combined in a specific format.
  • the bearer is carried on the uplink control channel corresponding to the SR, the first uplink control channel and the second uplink control channel are detected, thereby improving information transmission efficiency.
  • the format of the first uplink control channel is 1a or 1b or 2, or the format of the first uplink control channel is 1a or 1b; and/or the second uplink control The format of the channel is 1 or 1a or 1b or 2, or the format of the second uplink control channel is 1 or 1a or 1b.
  • the network device can determine the format of the first uplink control channel.
  • the HARQ-ACK message can be corresponding to the SR.
  • the network device When the uplink control channel is carried, the network device performs the uplink control channel of the bearer control information detected by the network device according to the relationship between the first time length and the second time length, otherwise the network device is executed.
  • the uplink control channel that directly determines the bearer control information detected by the network device is the first uplink control channel, and does not need to be based on the relationship between the first time length and the second time length. In this manner, the HARQ-ACK message is combined in a specific format.
  • the first uplink control channel and the second uplink control channel may be detected when being carried on the uplink control channel corresponding to the SR, and only the first uplink control channel is detected in other formats, thereby improving detection efficiency.
  • the network device determines the first time length according to a time length corresponding to the high layer signaling or the downlink transmission; and/or, the network device determines the second time according to the high layer signaling. length.
  • the first time length is preset, and/or the second time length is preset.
  • the network device can learn the first time length and the second time length.
  • the first uplink control channel and the second uplink control channel overlap in time.
  • the network device when the first uplink control channel and the second uplink control channel overlap in time, performs the network device to determine, according to the relationship between the first time length and the second time length, that the network device detects The uplink control channel carrying the control information, otherwise the network device directly determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel or the second uplink control channel, and does not need to be based on the first time length and the first The relationship between two time lengths.
  • the difference between the transmission time differences of the first uplink control channel and the second uplink control channel is less than or equal to a us, a is a predefined value, and a is a non-negative integer.
  • the network device performs the determining, by the network device, according to the relationship between the first time length and the second time length.
  • An uplink control channel that carries the control information that is detected by the network device, and the uplink control channel that directly determines the bearer control information that is detected by the network device is the first uplink control channel.
  • the track or the second uplink control channel does not need to be based on the relationship between the first time length and the second time length.
  • the overlap time of the first uplink control channel and the second uplink control channel is greater than or equal to b us, b is a predefined value, and b is a non-negative integer.
  • the network device performs, according to the relationship between the first time length and the second time length, determining, by the network device, The uplink control channel of the bearer control information detected by the network device, otherwise the uplink control channel that directly determines the bearer control information detected by the network device is the first uplink control channel or the second uplink control channel, and does not need to be based on the first time.
  • the relationship between length and length of time is the relationship between length and length of time.
  • the uplink control channel may be selected by the first uplink control channel and the second uplink control channel, and the network device selects the uplink control channel that overlaps with the current time unit as the bearer detected by the network device.
  • the uplink control channel of the control information may be selected by the first uplink control channel and the second uplink control channel, and the network device selects the uplink control channel that overlaps with the current time unit as the bearer detected by the network device.
  • the first uplink control channel and the second uplink control channel are uplink control channels on the same carrier, or the first uplink control channel and the second uplink control channel are in the same carrier.
  • the uplink control channel of the group is configured to control the first uplink control channel and the second uplink control channel.
  • the network device determines that the first uplink control channel and the second uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the first uplink control channel and the second uplink control channel are uplink control channels that are not on the same carrier, or the first uplink control channel and the second uplink control channel are different An uplink control channel of a carrier group, wherein the network device directly determines that the uplink control channel of the bearer control information detected by the network device is a first uplink control channel and a second uplink control channel.
  • an embodiment of the present invention provides a method for detecting control information.
  • the network device determines an uplink control channel of the bearer control information detected by the network device, where the uplink control channel of the bearer control information is at least one of a third uplink control channel and a fourth uplink control channel, and the third uplink control
  • the channel and the fourth uplink control channel are used to carry the SR, the time length corresponding to the third uplink control channel is a third time length, and the time length corresponding to the fourth uplink control channel is a fourth time length, The third time length is greater than the fourth time length; the network device detects the uplink control channel of the bearer control information, and the control information includes the SR.
  • the technical solutions provided by the present application can not only maintain the uplink single carrier characteristic, but also ensure that the channel of the SR that is properly detected by the network device is selected, thereby improving the probability of the SR being correctly transmitted.
  • the network device determines, according to the length of time corresponding to the uplink control channel of the bearer control information, the uplink control channel of the bearer control information detected by the network device.
  • the network device determines an uplink control channel of a shorter time length as an uplink control channel of the bearer control information detected by the network device.
  • the network device determines an uplink control channel of a longer time length as an uplink control channel of the bearer control information detected by the network device.
  • the network device determines an uplink control channel of the bearer control information detected by the network device according to a time length corresponding to the uplink control channel of the bearer control information according to the high layer signaling or a predefined rule.
  • the network device can determine the uplink control channel of the bearer control information detected by the network device according to a pre-defined or network device high-level signaling notification, so that the network device detection times can be reduced.
  • the network device determines bearer control information detected by the network device Before the uplink control channel, the method further includes: determining, by the network device, a length of time corresponding to the uplink control channel of the bearer control information detected by the network device according to a length of time corresponding to the last downlink transmission; or The network device determines, according to the length of time corresponding to the uplink control channel that carries the HARQ-ACK message, the length of time corresponding to the uplink control channel of the bearer control information detected by the network device.
  • the network device can clarify the channel of the SR that is currently detected by the network device according to the latest downlink transmission or the uplink control channel of the HARQ-ACK message, thereby improving the probability of the SR transmitting correctly.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fourth uplink control channel, and the fourth uplink control channel and the The uplink channel other than the third uplink control channel does not overlap in time; or the network device determines that the uplink control channel of the bearer control information detected by the network device is the fourth uplink control channel, where the There is no downlink transmission in the X time units before the time unit in which the three uplink control channels are located, or there is no downlink transmission in the Y time units before the time unit in which the fourth uplink control channel is located.
  • the network device determines that no other uplink control channel is sent at the same time, or does not have downlink transmission for a long time, and the network device determines that the uplink control channel with a short time is the uplink of the bearer control information detected by the network device.
  • the control channel can reduce the number of network device detections.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fourth uplink control channel, at least a part of the fourth uplink control channel or All overlap with the third uplink control channel in time.
  • the third uplink control channel and the fourth uplink control channel overlap in time to perform the selection of the uplink control channel, otherwise the network device selects the uplink control channel that overlaps with the current time unit to be detected by the network device.
  • the uplink control channel carrying the control information.
  • the third uplink control channel and the fourth uplink control channel are uplink control channels on the same carrier, or the third uplink control channel and the fourth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the third uplink control channel and the fourth uplink control channel are in the same carrier.
  • the network device determines that the third uplink control channel and the fourth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the third uplink control channel and the fourth uplink control channel are uplink control channels that are not in the same carrier, or the third uplink control channel and the fourth uplink control channel are different An uplink control channel of a carrier group, wherein the network device directly determines that the uplink control channel of the bearer control information detected by the network device is a third uplink control channel and a fourth uplink control channel.
  • an embodiment of the present invention provides a method for transmitting control information.
  • the terminal device determines, according to the relationship between the fifth time length and the sixth time length, the uplink control channel that carries the control information, where the uplink control channel of the bearer control information is the fifth uplink control channel or the sixth uplink control channel,
  • the fifth time length is a time length corresponding to the fifth uplink control channel
  • the sixth time length is a time length corresponding to the sixth uplink control channel
  • the fifth uplink control channel is used to carry a HARQ-ACK message.
  • the sixth uplink control channel is used to carry the SR; the terminal device sends the SR at least on the uplink control channel of the bearer control information.
  • the technical solutions provided by the present application can not only maintain the uplink single carrier characteristic, but also ensure the SR priority transmission, and let the terminal device determine the fifth time length and the sixth corresponding to the fifth uplink control channel.
  • the relationship between the sixth time length corresponding to the uplink control channel determines an uplink control channel for transmitting bearer control information, and when the fifth time length and the sixth time length are the same, the terminal device selects the fifth uplink control.
  • the resource corresponding to the channel sends the HARQ-ACK message and the SR, and the fifth time length and the sixth time length are not in phase.
  • the terminal device selects the resource corresponding to the sixth uplink control channel to send the SR, so as to prevent the terminal device from simultaneously transmitting two channels with different TTI lengths, thereby avoiding destroying the characteristics of the uplink single carrier, thereby ensuring important information while reducing the cost of the terminal device. Transfer correctly.
  • the fifth time length and the sixth time length are equal, and the terminal device determines that the uplink control channel that carries the control information is the sixth uplink control channel.
  • the terminal device selects the resource corresponding to the sixth uplink control channel to send the HARQ-ACK message and the SR, and uses the sixth uplink control channel to correspond to the implicit notification network device terminal.
  • the device sends the SR. Since the two time lengths are the same, the terminal device simultaneously transmits the HARQ-ACK message and the SR in the same channel, and ensures the HARQ-ACK message and the SR without destroying the uplink single carrier characteristic. Timely transmission.
  • the terminal device sends the HARQ-ACK message and the SR on an uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is a sixth uplink. Control channel.
  • the terminal device determines that the uplink control channel of the bearer control information is the sixth uplink control channel according to the fifth time length and the sixth time length.
  • the terminal device determines that the uplink control channel of the bearer control information is the sixth uplink control channel, according to the fifth time length being less than or equal to the sixth time length.
  • the terminal device selects the resource corresponding to the sixth uplink control channel to send the HARQ-ACK message and the SR, and the sixth uplink control channel is equivalent to implicitly notifying the network device terminal device to send the SR, because the two time lengths are the same or
  • the fifth time length is less than or equal to the sixth time length, so the terminal device simultaneously transmits the HARQ-ACK message and the SR in the same channel, and ensures the timely manner of the HARQ-ACK message and the SR without destroying the characteristics of the uplink single carrier.
  • the two time lengths are the same as the optimal solution. If the fifth time length is less than or equal to the sixth time length, then sending the HARQ-ACK message on the sixth uplink control channel increases the HARQ-ACK message. Transmission delay.
  • the fifth time length and the sixth time length are not equal, and the uplink control channel carrying the control information is a sixth uplink control channel.
  • the terminal device selects the resource corresponding to the sixth uplink control channel to send the SR, instead of using the resource corresponding to the fifth uplink control channel, thereby avoiding the increase of the SR.
  • the shortcoming of the transmission delay ensures the timely transmission of the SR without destroying the characteristics of the uplink single carrier.
  • the terminal device sends the SR on an uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is a sixth uplink control channel.
  • the terminal device determines, according to the fifth time length and the sixth time length, that the uplink control channel of the bearer control information is the sixth uplink control channel.
  • the terminal device determines that the uplink control channel of the bearer control information is the sixth uplink control channel, according to the fifth time length being less than or greater than the sixth time length.
  • the terminal device selects the resource corresponding to the sixth uplink control channel to send the SR, and does not use the resource corresponding to the fifth uplink control channel, thereby avoiding increasing the transmission delay of the SR when the sixth time length is less than the fifth time length.
  • the disadvantages of the SR are reduced on the fifth uplink control channel when the length of the sixth time is greater than the fifth time length, and the timely and accurate transmission of the SR is ensured without destroying the characteristics of the uplink single carrier.
  • the terminal device discards the HARQ-ACK message, the bearer control signal
  • the uplink control channel of the information is the sixth uplink control channel; or the terminal device discards the HARQ-ACK message, and the fifth time length and the sixth time length are not equal.
  • the terminal device selects to discard the HARQ-ACK message, and the terminal device selects the resource corresponding to the sixth uplink control channel to send the SR without using the resource corresponding to the fifth uplink control channel, avoiding the situation 1: transmitting two uplink channels simultaneously It can avoid the situation of destroying the uplink single carrier feature, and avoid the situation 2: the disadvantage of increasing the transmission delay of the SR when the sixth time length is less than the fifth time length, avoiding the situation 3: the fifth time length is greater than the fifth time length in the fifth The disadvantage of SR accuracy is reduced on the uplink control channel, thus ensuring timely and accurate transmission of the SR.
  • the service priority of the HARQ-ACK message is lower than the service priority of the SR, or the delay requirement of the downlink data service corresponding to the HARQ-ACK message is lower than The delay requirement of the uplink data service corresponding to the SR.
  • the terminal device determines the uplink control channel carrying the control information according to the relationship between the fifth time length and the sixth time length, and the terminal sends at least the SR on the uplink control channel of the bearer control information.
  • the terminal device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the terminal device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the terminal device can determine the priority relationship between the HARQ-ACK message and the SR, and the length of the fifth time and the sixth time are not equal, thereby ensuring that the characteristics of the uplink single carrier are not damaged. Send more important information.
  • the method before the determining, by the terminal device, the uplink control channel that carries the control information, the method further includes: determining, by the terminal device, a service priority corresponding to the HARQ-ACK message; and/or, the terminal The device determines the service priority corresponding to the SR.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time.
  • the terminal device when the fifth uplink control channel and the sixth uplink control channel overlap in time, performs the determining, by the terminal device, the bearer control information according to the relationship between the fifth time length and the sixth time length.
  • the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the relationship between the fifth time length and the sixth time length.
  • the difference between the transmission time differences of the fifth uplink control channel and the sixth uplink control channel is less than or equal to c us, c is a predefined value, and c is a non-negative integer.
  • the terminal device performs, according to the relationship between the fifth time length and the sixth time length, the terminal device determines The uplink control channel carrying the control information, otherwise the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the relationship between the fifth time length and the sixth time length.
  • the overlapping time of the fifth uplink control channel and the sixth uplink control channel is greater than or equal to d us, d is a predefined value, and d is a non-negative integer.
  • the terminal device executes the terminal device according to the fifth time length and the sixth time length. The relationship between the degrees is determined, and the uplink control channel carrying the control information is determined. Otherwise, the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the fifth time length and the sixth time. The relationship between the length of time.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time to perform uplink control channel selection. Otherwise, the terminal device selects the uplink control channel with the most overlap with the current time unit as the uplink control of the bearer control information. channel.
  • the fifth uplink control channel and the sixth uplink control channel are uplink control channels on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the fifth uplink control channel and the sixth uplink control channel.
  • the terminal device determines that the fifth uplink control channel and the sixth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the fifth uplink control channel and the sixth uplink control channel are uplink control channels that are not on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are different For the uplink control channel of one carrier group, the terminal device can simultaneously send the fifth uplink control channel and the sixth uplink control channel, and does not perform the fifth aspect step, because the uplink carrier characteristics are not destroyed at this time.
  • an embodiment of the present invention provides a method for detecting control information.
  • the network device determines, according to the relationship between the fifth time length and the sixth time length, an uplink control channel of the bearer control information detected by the network device, where the uplink control channel of the bearer control information is a fifth uplink control channel and At least one of the six uplink control channels, the fifth time length is a time length corresponding to the fifth uplink control channel, and the sixth time length is a time length corresponding to the sixth uplink control channel, where the The fifth uplink control channel is used to carry the HARQ-ACK message, the sixth uplink control channel is used to carry the SR, and the network device detects the uplink control channel of the bearer control information, where the control information includes at least the SR.
  • the network device determines, by using the technical solutions provided by the application, the relationship between the fifth time length corresponding to the fifth uplink control channel and the sixth time length corresponding to the sixth uplink control channel, for example, Whether the same or the same, determining the uplink control channel of the bearer control information detected by the network device, when the fifth time length and the sixth time length are the same, the network device determines that the uplink control channel of the bearer control information detected by the network device is The first uplink control channel and the second uplink control channel, the network device needs to blindly detect two uplink control channels to ensure timely transmission of the HARQ-ACK message and the SR.
  • the uplink control channel that determines the bearer control information detected by the network device is the sixth uplink control channel, so as to prevent the network device from simultaneously detecting two channels with different TTI lengths. Thereby reducing the cost of network equipment.
  • the fifth time length and the sixth time length are equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the fifth An uplink control channel and the sixth uplink control channel.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fifth uplink control channel and the sixth uplink control channel, and the network device needs Blindly detecting two uplink control channels, thereby ensuring timely transmission of HARQ-ACK messages and SRs.
  • the method further includes: the network device receiving the HARQ-ACK on an uplink control channel of the bearer control information
  • the message and the SR, the uplink control channel carrying the control information is the sixth uplink control channel.
  • the network device determines that the network device is checked according to the fifth time length and the sixth time length.
  • the uplink control channel of the measured bearer control information is the fifth uplink control channel and the sixth uplink control channel.
  • the network device determines, according to the fifth time length that is less than or equal to the sixth time length, that the uplink control channel that is detected by the network device is the fifth uplink control channel and the sixth uplink control channel. .
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fifth uplink control channel and the sixth uplink control channel, and the network device needs to blindly detect two uplink control channels to ensure the HARQ-ACK.
  • the timely transmission of the message and the SR it can be understood that the two time lengths are the same as the optimal solution. If the fifth time length is less than or equal to the sixth time length, receiving the HARQ-ACK message on the sixth uplink control channel increases. The transmission delay of the HARQ-ACK message.
  • the fifth time length and the sixth time length are not equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the sixth uplink control channel. .
  • the network device determines, according to the fifth time length and the sixth time length, that the uplink control channel that is detected by the network device is the sixth uplink control channel.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the sixth uplink control channel, according to the fifth time length being less than or greater than the sixth time length.
  • the uplink control channel of the bearer control information detected by the network device is determined to be the sixth uplink control channel, and the fifth uplink control channel is not detected, thereby avoiding
  • the network device simultaneously detects two channels with different TTI lengths, thereby reducing network equipment costs and ensuring timely transmission of the SR.
  • the method further includes: the network device receiving the SR on an uplink control channel of the bearer control information, where The uplink control channel carrying the control information is a sixth uplink control channel.
  • the network device selects the resource corresponding to the sixth uplink control channel to receive the SR, and does not use the resource corresponding to the fifth uplink control channel, thereby avoiding increasing the transmission delay of the SR when the sixth time length is less than the fifth time length.
  • the disadvantages of the SR are reduced on the fifth uplink control channel when the length of the sixth time is greater than the fifth time length, and the timely and accurate transmission of the SR is ensured without destroying the characteristics of the uplink single carrier.
  • the network device does not detect the fifth uplink control channel, and the fifth time length and the sixth time length are not equal. Then determining that the uplink control channel of the bearer control information detected by the network device is the sixth uplink control channel, and not detecting the fifth uplink control channel, thereby preventing the network device from simultaneously detecting two channels with different TTI lengths, thereby reducing network equipment cost. To ensure the timely transmission of SR.
  • the service priority of the HARQ-ACK message is lower than the service priority of the SR, or the delay requirement of the downlink data service corresponding to the HARQ-ACK message is lower than The delay requirement of the uplink data service corresponding to the SR.
  • the network device determines the uplink control channel carrying the control information according to the relationship between the fifth time length and the sixth time length, and the terminal sends at least the SR on the uplink control channel of the bearer control information.
  • the network device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the network device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the network device can determine the priority relationship between the HARQ-ACK message and the SR, and the length of the fifth time and the sixth time are not equal, thereby ensuring that the uplink single carrier characteristics are not damaged. Send more important information.
  • the method before the network device determines the uplink control channel of the bearer control information that is detected by the network device, the method further includes: determining, by the network device, a service priority corresponding to the HARQ-ACK message; Or, the network device determines a service priority corresponding to the SR.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time.
  • the network device when the fifth uplink control channel and the sixth uplink control channel overlap in time, performs the network device to determine, according to the relationship between the fifth time length and the sixth time length, that the network device detects The uplink control channel carrying the control information, otherwise the network device directly determines that the uplink control channel of the bearer control information detected by the network device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the fifth time length and the first The relationship of six time lengths.
  • the difference between the transmission time differences of the fifth uplink control channel and the sixth uplink control channel is less than or equal to c us, c is a predefined value, and c is a non-negative integer.
  • the network device performs the determining, by the network device, according to the relationship between the fifth time length and the sixth time length. An uplink control channel that is detected by the network device and carries the control information. Otherwise, the network device directly determines that the uplink control channel of the bearer control information detected by the network device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be according to the fifth. The relationship between the length of time and the length of the sixth time.
  • the overlapping time of the fifth uplink control channel and the sixth uplink control channel is greater than or equal to d us, d is a predefined value, and d is a non-negative integer.
  • the network device performs, according to the relationship between the fifth time length and the sixth time length, determining, by the network device, The uplink control channel of the bearer control information detected by the network device, otherwise the uplink control channel that directly determines the bearer control information detected by the network device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be according to the fifth time.
  • the relationship between the length and the length of the sixth time is the relationship between the length and the length of the sixth time.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time to perform uplink control channel selection. Otherwise, the network device selects the uplink control channel with the most overlap with the current time unit as the uplink control of the bearer control information. channel.
  • the fifth uplink control channel and the sixth uplink control channel are uplink control channels on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the fifth uplink control channel and the sixth uplink control channel.
  • the network device determines that the fifth uplink control channel and the sixth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the fifth uplink control channel and the sixth uplink control channel are uplink control channels that are not on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are different An uplink control channel of a carrier group, wherein the network device directly determines that the uplink control channel of the bearer control information detected by the network device is a fifth uplink control channel and a sixth uplink control channel.
  • an embodiment of the present invention provides a terminal device, where the terminal device can implement the foregoing method example.
  • the function performed by the terminal device, the function may be implemented by hardware, or may be implemented by hardware corresponding software.
  • the hardware or software includes one or more modules corresponding to the above functions.
  • the structure of the terminal device includes a processor and a communication interface, and the processor is configured to support the terminal device to perform a corresponding function in the above method.
  • the communication interface is used to support communication between the terminal device and a network device or other network element.
  • the terminal device can also include a memory for coupling with the processor that retains the program instructions and data necessary for the terminal device.
  • the embodiment of the present invention provides a network device, where the network device can implement the functions performed by the network device in the foregoing method, where the function can be implemented by using hardware or by executing corresponding software through hardware.
  • the hardware or software includes one or more modules corresponding to the above functions.
  • the network device includes a processor and a communication interface configured to support the network device to perform corresponding functions in the above methods.
  • the communication interface is used to support communication between the network device and the terminal device or other network elements.
  • the network device can also include a memory for coupling with the processor that holds the necessary program instructions and data for the network device.
  • an embodiment of the present invention provides a communication system, where the system includes the terminal device and the network device described in the foregoing aspect.
  • an embodiment of the present invention provides a computer storage medium for storing computer software instructions for use in the terminal device, including a program designed to perform the above aspects.
  • an embodiment of the present invention provides a computer storage medium for storing computer software instructions for use in the network device, including a program designed to perform the above aspects.
  • FIG. 1 is a schematic diagram of a PUCCH format 1/1a/1b format
  • FIG. 2 is a schematic diagram of a format of a PUCCH format 3;
  • FIG. 3 is a schematic diagram of an application scenario of a solution according to an embodiment of the present disclosure.
  • FIG. 4 is a schematic communication diagram of a method for transmitting and detecting control information according to an embodiment of the present invention
  • FIG. 5 is a schematic diagram of another method for transmitting and detecting control information according to an embodiment of the present invention.
  • FIG. 6 is a schematic diagram of another method for transmitting and detecting control information according to an embodiment of the present invention.
  • FIG. 7 is a schematic structural diagram of a terminal device according to an embodiment of the present disclosure.
  • FIG. 8 is a schematic structural diagram of another terminal device according to an embodiment of the present disclosure.
  • FIG. 9 is a schematic structural diagram of a network device according to an embodiment of the present disclosure.
  • FIG. 10 is a schematic structural diagram of another network device according to an embodiment of the present invention.
  • Embodiments of the present invention provide a method for transmitting control information and a method for detecting control information, and the method can be applied to a wireless communication system, for example, a global system of mobile communication (GSM) system, code division multiple access ( A code division multiple access (CDMA) system, a wideband code division multiple access wireless (WCDMA) system, a general packet radio service (GPRS) system, and a universal mobile telecommunications system (universal mobile telecommunications system) UMTS), especially for LTE systems and their evolution systems, 5G wireless communication systems.
  • GSM global system of mobile communication
  • CDMA code division multiple access
  • WCDMA wideband code division multiple access wireless
  • GPRS general packet radio service
  • UMTS universal mobile telecommunications system
  • FIG. 3 shows an application scenario in which the solution proposed by the embodiment of the present invention can be applied.
  • the scenario includes a network device 301, a terminal device 302 and a terminal device 303 that are within the coverage of the network device 301 and communicate with the network device 301.
  • the network device 301 is a base station of the LTE system
  • the terminal devices 302 and 303 are terminal devices of the corresponding LTE system
  • the network device 301 and the terminal device 302 are both devices supporting short TTI transmission
  • the terminal device 303 does not support short TTI.
  • the network device 301 can communicate with the terminal device 302 using a short TTI or a normal 1 ms TTI, respectively.
  • the network device 301 can communicate with the terminal device 303 using a normal 1 ms TTI.
  • FIG. 3 is only an example of the application scenario of the embodiment of the present invention, and is not limited to the application scenario of the embodiment of the present invention.
  • two types of network elements are mainly involved, one is a network device, and the other is a terminal device.
  • the above network device may be, but is not limited to, a base station. These two types of network elements can work in licensed or unlicensed bands.
  • one or more carriers may be included in either the licensed band or the unlicensed band.
  • the carrier aggregation of the licensed band and the unlicensed band may include carrier aggregation of one or more carriers included in the licensed band and one or more carriers included in the unlicensed band.
  • the cell mentioned may be a cell corresponding to the base station, and the cell may belong to the macro base station, or may belong to the base station corresponding to the small cell, where the small cell may include: a metro cell, Micro cells, pico cells, femto cells, etc. These small cells have the characteristics of small coverage and low transmission power, and are suitable for providing high-speed data transmission services.
  • a carrier in an LTE system multiple cells can work at the same frequency at the same time.
  • the concept of a carrier and a cell in an LTE system can be considered to be equivalent.
  • CA carrier aggregation
  • the concept of the carrier and the cell can be considered to be equivalent, for example, the UE accessing one carrier and accessing one cell are equivalent.
  • the terminal device mentioned in the embodiment of the present invention includes a user equipment (UE), a mobile station (MS), a mobile terminal, and the like, and the terminal device can pass through a radio access network (radio access network).
  • RAN radio access network
  • the terminal device may be a mobile phone (or "cellular" phone), a computer with a mobile terminal, etc., and the terminal device may also be a portable, portable, handheld, computer built-in or in-vehicle mobile device and a future 5G network. Terminal devices in which they exchange voice or data with a wireless access network.
  • the terminal device may further include a relay, and the terminal device may further include a terminal device in a NR (new generation) next-generation wireless communication system, and the device that the base station can perform data communication can be regarded as a terminal device, which is an embodiment of the present invention.
  • NR new generation
  • the network device mentioned in the embodiment of the present invention includes an evolved base station in a Long Term Evolution (LTE) system or an Authorized Auxiliary Access Long-term Evolution (LAA-LTE) system ( Evolutional Node B, referred to as eNB or e-NodeB), macro base station, micro base station (also referred to as "small base station"), pico base station, access point (AP), or transmission point (TP) , or gNodeB (new generation Node B) in the NR system, and the like.
  • LTE Long Term Evolution
  • LAA-LTE Authorized Auxiliary Access Long-term Evolution
  • the resources used by the network device and the terminal device to transmit the uplink control channel may be divided into multiple time units in the time domain.
  • the plurality of time units may be continuous, or a preset interval may be provided between some adjacent time units, which is not specifically limited in the embodiment of the present invention.
  • the length of a time unit can be arbitrarily set, which is not specifically limited in the embodiment of the present invention.
  • one time unit may include one or more subframes.
  • one time unit may include one or more time slots.
  • one time unit may include one or more mini time slots.
  • one time unit may include one or more symbols.
  • one time unit may include one or more Transmission Time Intervals ("TTIs").
  • TTIs Transmission Time Intervals
  • one time unit may include one or more short transmission time intervals ("sTTI").
  • sTTI short transmission time intervals
  • one time unit may correspond to one time mode, for example, the first time mode is a transmission time interval of 2 symbols or 3 symbols, and the second mode is a transmission time interval of 7 symbols.
  • the mini-slot includes one or more symbols, and the mini-slot is less than or equal to the slot.
  • the time slot here may be a mini-slot in a system with a 60 kHz sub-carrier spacing, or may be a mini-system in a 15 kHz sub-carrier spacing system.
  • the time slot is not limited in the embodiment of the present invention.
  • the time slot includes one or more symbols, where the time slot may be a time slot in a system with a 60 kHz subcarrier spacing, or a time slot in a system with a 15 kHz subcarrier spacing, which is not limited in the embodiment of the present invention.
  • TTI is a commonly used parameter in current communication systems (for example, LTE systems), and refers to a scheduling unit that schedules data transmission in a wireless link.
  • 1 TTI 1 ms is generally considered. That is, one TTI is a subframe or the size of two slots, which is the basic unit of time governed by radio resource management (scheduling, etc.).
  • the scheduling interval of the physical layer that has the most obvious impact on delay is getting smaller and smaller.
  • the scheduling interval is 10ms
  • high-speed packet access (HSPA) The mid-scheduling interval is shortened to 2ms
  • the time interval (ie, TTI) in Long Term Evolution (LTE) is shortened to 1ms.
  • the hourly service requirement causes the physical layer to introduce a shorter TTI frame structure to further shorten the scheduling interval and improve the user experience.
  • the TTI length in an LTE system can be shortened from 1 ms to 1 symbol (symbol) to 1 slot (including 7 symbols).
  • the above mentioned symbols may be orthogonal frequency division multiplexing in an LTE system (Orthogonal The Frequency Division Multiplexing ("OFDM”) symbol or the Single Carrier-Frequency Division Multiple Access (“SC-FDMA”) symbol may also be a symbol in other communication systems.
  • OFDM Orthogonal The Frequency Division Multiplexing
  • SC-FDMA Single Carrier-Frequency Division Multiple Access
  • the length of the transmission unit in the 5G communication system is also less than or equal to 1 ms.
  • the round-trip time (“RTT") of the data transmission is generally 8 ms. It is assumed that the processing time is proportionally reduced compared to the scheduling of an existing TTI of 1 ms in length, that is, the existing RTT delay is still followed. Then, in the data transmission based on the sTTI of 0.5 ms in length, the RTT of the data transmission is 4 ms, and the delay can be shortened by half relative to the data transmission based on the TTI of 1 ms in length, thereby improving the user experience.
  • a TTI having a length of less than 1 ms may be referred to as an sTTI.
  • the length of the sTTI may be any one of 1 to 7 symbols, or the sTTI length may be a combination of at least 2 different lengths of 1 to 7 symbols, for example, 6 sTTIs in 1 ms.
  • Each sTTI length may be 3 symbols, 2 symbols, 2 symbols, 2 symbols, 2 symbols, 3 symbols, or 4 sTTIs in 1 ms, and each sTTI length may be 3 symbols, respectively. 4 symbols, 3 symbols, 4 symbols, each sTTI length can also be a combination of other different lengths.
  • the uplink sTTI length may be the same as the downlink sTTI length.
  • the uplink sTTI length and the downlink sTTI length are both symbols.
  • the uplink sTTI length may be longer than the downlink sTTI length.
  • the uplink sTTI length is 7 symbols, and the downlink sTTI length is 2 symbols.
  • the uplink sTTI length may be shorter than the downlink sTTI length.
  • the uplink sTTI length is 4 symbols, and the downlink sTTI length is 1 subframe.
  • a packet whose TTI length is less than 1 subframe or 1 ms is called a short TTI packet.
  • Short TTI data transmission is in the frequency domain and can be continuously distributed or non-continuously distributed. It should be noted that, considering backward compatibility, there may be cases in which data transmission based on TTI with a length of 1 ms and data transmission based on sTTI may exist at the same time.
  • the TTI and the sTTI specified by the prior art (for example, the LTE system) (for example, the length is 1 ms or the length is greater than 1 ms) are collectively referred to as TTI, and, in the embodiment of the present invention, the length of the TTI. It can be changed according to actual needs.
  • time unit enumerated above is only an exemplary description, and the embodiment of the present invention is not particularly limited, and the structure of the time unit may be arbitrarily changed according to actual needs, for example, for not supporting sTTI (2 symbols, or For an LTE system of three symbols, or seven symbols, or one slot, one time unit may be one subframe.
  • 1 time unit may include 1 sTTI, or 1 time unit.
  • One slot may be included, and one time unit may include one or more (for example, a positive integer of less than 7 or a positive integer of less than 6) symbols; one time unit may also be 1 subframe.
  • the length of the time unit for information transmission may be 1 ms or less than 1 ms.
  • the time The length of the downlink information transmission in the unit may be 1 ms or less than 1 ms.
  • the length of the uplink information transmission in the time unit may be 1 ms or less than 1 ms.
  • one time unit includes one sTTI and one sTTI includes two symbols is taken as an example, and the transmission process of the reference signal in the embodiment of the present invention is described in detail. Bright.
  • the resources used by the network device and the terminal device to transmit information may be divided into multiple time segments in the time domain, and each time segment includes one or more time units.
  • a time period may be 1 ms or 10 ms. In an embodiment of the invention, a time period may include, for example, 6 time units or 2 time units.
  • the resources used by the network device and the terminal device to transmit the uplink control channel may be divided into multiple frequency domain units in the frequency domain.
  • the multiple frequency domain units may be continuous, or may be preset intervals between some adjacent frequency domain units, which are not specifically limited in the embodiment of the present invention.
  • the preset interval is 1, or 3, or 5, or 1+2y, and y is an integer.
  • the size of a frequency domain unit may be arbitrarily set, which is not specifically limited in the embodiment of the present invention.
  • one frequency domain unit may include one or more subcarriers.
  • One subcarrier is 15 kHz in the frequency domain, or an integer multiple of 15 kHz.
  • the resources used by the network device and the terminal device to transmit the uplink control channel may be divided into multiple cyclic shift sequences and/or orthogonal sequences in the code domain.
  • the number of cyclic shift sequences is 0 to 11 on one frequency domain unit and time unit.
  • different cyclic shift sequences and/or orthogonal sequences may correspond to different uplink control channels on the same frequency domain unit and time unit.
  • the format of the sPUCCH is at least one of 1, 1a, 1b, 2, 3, 4, 5.
  • the format of the sPUCCH is at least one of 1, 1a, 1b, 2
  • the format of the sPUCCH is demodulated based on the demodulation reference signal DMRS, and the modulation symbol product is in a cyclic shift sequence
  • the sPUCCH of the format is The time unit is 2 symbols or 3 symbols or 1 time slot. It can be understood that when the format of the sPUCCH is based on reference signal demodulation and the modulation symbol product is in a cyclic shift sequence, then this sPUCCH can be referred to as format 1 of sPUCCH, or format 1a of sPUCCH, or format 1b of sPUCCH. , or sPUCCH format 2.
  • the format of the sPUCCH is at least one of 3, 4, and 5
  • the format of the sPUCCH is demodulated based on the demodulation reference signal DMRS, and the modulation symbol product is on one or more resource elements RE instead of the product.
  • the time unit of the sPUCCH of this format is 2 symbols or 3 symbols or 1 time slot.
  • the sPUCCH can be called Format 3 of sPUCCH, or format 4 of sPUCCH, or format 5 of sPUCCH.
  • the format of the PUCCH is at least one of 1, 1a, 1b, 3, 4, and 5, which is consistent with the defined PUCCH format of the LTE-A system, and has been introduced in the background art, and details are not described herein again.
  • the HARQ-ACK message includes at least one of an Acknowledge (ACK), a Negative Acknowledge (NACK), and a Discontinuous Transmission (DTX).
  • ACK Acknowledge
  • NACK Negative Acknowledge
  • DTX Discontinuous Transmission
  • the uplink control channel may also be referred to as a resource carrying an uplink control channel, or a bearer control
  • FIG. 4 is a schematic diagram of a method for transmitting and detecting control information according to an embodiment of the present invention.
  • the method may be based on the application scenario shown in FIG. 3, and the method may be determined based on the premise that the uplink control channel that the terminal device can use to carry the SR on the current time unit only corresponds to one time length, and/or is used to carry the HARQ.
  • the uplink control channel of the -ACK message overlaps with the uplink control channel for carrying the SR, and/or the format of the uplink control channel for carrying the HARQ-ACK message is format 1 of the sPUCCH, or the format 1a of the sPUCCH , or format 1b of sPUCCH, or format 2 of sPUCCH, format 1 of PUCCH, or format 1a of PUCCH, or format 1b of PUCCH, and/or, the service priority corresponding to the HARQ-ACK message is higher than or equal to the SR
  • the time delay requirement of the downlink data service corresponding to the service priority or the HARQ-ACK message is higher than or equal to the delay requirement of the uplink data service corresponding to the SR.
  • the terminal device may be the terminal device 302 in the application scenario shown in FIG. 3.
  • the terminal device 302 supports both 1 ms TTI (1 subframe) and sTTI (2 symbols, or 3 symbols, or 7 symbols, or 1). Time slot).
  • the method includes:
  • Step 401 The terminal device determines, according to a relationship between the first time length and the second time length, an uplink control channel that carries control information.
  • the uplink control channel of the bearer control information is a first uplink control channel or a second uplink control channel
  • the first time length is a length of time corresponding to the first uplink control channel
  • the The second time control length is the time length corresponding to the second uplink control channel
  • the first uplink control channel is used to carry a HARQ-ACK message
  • the second uplink control channel is used to carry an SR.
  • the two uplink control channels and the second uplink control channel may be distinguished by one or more of a time domain, a frequency domain, and a code domain.
  • the first uplink control channel is a PUCCH
  • the second uplink control channel is an sPUCCH or an sPUSCH.
  • the first time length is a time length corresponding to the PUCCH, for example, the first time length is 1 ms, or 1 subframe
  • the second time length is a time length corresponding to the sPUCCH or the sPUSCH, for example, the second time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot.
  • the first uplink control channel is sPUCCH or sPUSCH
  • the second uplink control channel is PUCCH.
  • the first time length is the length of time corresponding to the sPUCCH or the sPUSCH, for example, the first time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; the second time length is the time corresponding to the PUCCH.
  • the length, for example, the second time length is 1 ms, or 1 subframe.
  • the first uplink control channel is a PUCCH
  • the second uplink control channel is a PUCCH.
  • the first time length is a time length corresponding to the PUCCH
  • the second time length is a time length corresponding to the PUCCH, for example, the first time length and the second time length are 1 ms, or 1 subframe.
  • the first uplink control channel is sPUCCH or sPUSCH
  • the second uplink control channel is sPUCCH or sPUSCH.
  • the first time length is a time length corresponding to the sPUCCH or the sPUSCH
  • the second time length is a time length corresponding to the sPUCCH or the sPUSCH, for example, the first time length and the second time length are 2 symbols, or 3 symbols, or 7 Symbols, or 1 time slot.
  • the terminal device determines that the first uplink control channel is used to carry a HARQ-ACK message.
  • the terminal device determines a format of the first uplink control channel according to the number of bits of the HARQ-ACK message to be transmitted.
  • the first uplink control channel is a PUCCH
  • the first uplink control channel is PUCCH 1a or PUCCH 1b
  • the first uplink control channel is PUCCH 3
  • the number of bits of the HARQ-ACK message to be transmitted is equal to 4.
  • the first uplink control channel is PUCCH 4 or PUCCH 5.
  • the first uplink control channel when the first uplink control channel is sPUCCH, if the number of bits of the HARQ-ACK message to be transmitted is less than or equal to 2, the first uplink control channel is sPUCCH 1 or sPUCCH 1a or sPUCCH 1b or sPUCCH 2, if to be transmitted The number of bits of the HARQ-ACK message is greater than 2, then the first uplink control channel is either sPUCCH 3 or sPUCCH 4 or sPUCCH 5.
  • the first uplink control channel is used to carry a HARQ-ACK message.
  • the terminal device determines the format of the first uplink control channel according to the number of bits of the HARQ-ACK message to be transmitted.
  • the terminal device determines that the second uplink control channel is used to carry the SR.
  • the terminal device determines, according to the second time length, a format of the second uplink control channel. For example, when the second uplink control channel is a PUCCH, then the first uplink control channel is PUCCH 1. For another example, when the second uplink control channel is sPUCCH, then the second uplink control channel is sPUCCH 1 or sPUCCH 1a or sPUCCH 1b or sPUCCH 2 .
  • the first time length is a length of time of the time domain resource where the first uplink control channel is located.
  • the second length of time is a length of time of the time domain resource where the second uplink control channel is located.
  • the terminal device determines that the uplink control channel of the bearer control information is the second uplink control channel.
  • the first uplink control channel and the second uplink control channel are both PUCCHs, and the first time length and the second time length are equal, both being 1 ms or 1 subframe; or the first uplink control channel and the second The uplink control channels are all sPUCCH, and the first time length and the second time length are equal, for example, the first time length and the second time length are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; or the first uplink control channel is sPUSCH and the second uplink control channel is sPUCCH, and the first time length and the second time length are equal, for example, the first time length and the second time length are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; or the first uplink control channel is sPUCCH and the second uplink control channel is sPUSCH, and the first time length and the second time length are equal, for example, the first time length and the second time
  • the terminal device determines that the uplink control channel of the bearer control information is the second uplink control channel, according to the first time length being less than or equal to the second time length.
  • the first time length and the second time length are not equal, and the terminal device determines that the uplink control channel of the bearer control information is the first uplink control channel.
  • the first uplink control channel is a PUCCH and the second uplink control channel is sPUSCH or sPUCCH, and the first time length is 1 ms, and the second time length is 2 symbols, or 3 symbols, or 7 symbols.
  • the terminal device determines that the uplink control channel of the bearer control information is the PUCCH; or, the first uplink control channel is The sPUSCH or sPUCCH and the second uplink control channel are PUCCH, and the first time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot, and the second time length is 1 ms.
  • the first time length and the second time length are not equal, and the terminal device determines that the uplink control channel of the bearer control information is the sPUSCH or sPUCCH.
  • the terminal device determines that the uplink control channel of the bearer control information is the first uplink control channel, according to the first time length being less than or greater than the second time length.
  • Step 402 The terminal device sends at least a HARQ-ACK message on the uplink control channel carrying the control information.
  • the terminal device sends the HARQ-ACK message and the SR on the uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is the second uplink control channel.
  • the first uplink control channel and the second uplink control channel are all PUCCHs, and the first time length and the second time length are equal.
  • the terminal device when both are 1 ms or 1 subframe, the terminal device according to the PUCCH Format 1a or 1b, generating a second uplink control channel for carrying the HARQ-ACK message and the SR, and transmitting the second uplink control channel by using resources of the second uplink control channel; or, the first uplink control channel and the second
  • the uplink control channel is sPUCCH
  • the first time length and the second time length are equal, for example, both are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot
  • the terminal The device generates a second uplink control channel for carrying the HARQ-ACK message and the SR according to the sPUCCH format 1 or 1a or 1b, and sends the second uplink control channel by using the resource of the second uplink control channel; or, the first uplink The control channel is sPUSCH, and the second uplink control
  • the terminal device when the first uplink control channel is sPUSCH and the second uplink control channel is sPUCCH, and the first time length and the second time length are not equal, for example, one time length is 2 symbols, and the other is a third symbol, the terminal device generates a second uplink control channel for carrying the HARQ-ACK message and the SR according to the sPUCCH format 1 or 1a or 1b, and sends the second uplink control channel by using the resource of the second uplink control channel.
  • the first uplink control channel is sPUCCH and the second uplink control channel is sPUSCH
  • the first time length and the second time length are not equal, for example, one time length is 2 symbols, and the other is 3 symbols, carrying the HARQ-ACK message and the SR through the sPUSCH.
  • the terminal device sends the HARQ-ACK message on the uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is the first uplink control channel.
  • the uplink control channel of the bearer control information is the first uplink control channel.
  • the first uplink control channel is a PUCCH and the second uplink control channel is an sPUSCH or an sPUCCH
  • the first time length and the second time length are not equal, for example, the first time length is 1 ms or 1 subframe.
  • the second time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot, and the terminal device determines that the uplink control channel of the bearer control information is the PUCCH; or, When the uplink control channel is sPUSCH or sPUCCH, and the second uplink control channel is PUCCH, when the first time length and the second time length are not equal, for example, the first time length is 2 symbols, or 3 symbols , or 7 symbols, or 1 time slot, the second time length is 1 ms or 1 subframe, the terminal device determines that the uplink control channel of the bearer control information is the sPUSCH or sPUCCH; or, the first The uplink control channel is sPUSCH, and the second uplink control channel is sPUCCH.
  • the terminal device determines that the uplink control channel of the bearer control information is the sPUSCH; or the first uplink control channel is an sPUCCH, and the second uplink control channel is an sPUSCH, the first time
  • the length and the second time length are not equal, for example, the first time length is 2 symbols, or 3 symbols
  • the second time length is 7 symbols, or 1 time slot
  • the terminal device determines Uplink control letter carrying bearer control information
  • the track is the sPUCCH.
  • the terminal device discards the SR, and the uplink control channel of the bearer control information is the first uplink control channel; or the terminal device discards the SR, the first time length And the second length of time is not equal.
  • the control information to be sent includes a HARQ-ACK message and an SR
  • the uplink control channel of the bearer control information is the first uplink control channel
  • the terminal device discards the SR and carries the first uplink control channel.
  • the HARQ-ACK message or, if the control information to be sent includes the HARQ-ACK message and the SR, the first time length and the second time length are not equal, the terminal device discards the SR, and only sends the HARQ- ACK message.
  • step 402 it may be further determined whether the service priority corresponding to the HARQ-ACK message is higher than or equal to the service priority corresponding to the SR, or the HARQ-ACK message is corresponding to the HARQ-ACK message.
  • the delay requirement of the downlink data service is higher than or equal to the delay requirement of the uplink data service corresponding to the SR, or the transmission error rate corresponding to the HARQ-ACK message is lower than or equal to the transmission error rate corresponding to the SR.
  • step 402 is performed.
  • step 402 it is determined whether the service priority corresponding to the HARQ-ACK message is higher than or equal to the service priority of the SR. If the determination result is yes, step 402 is performed; If not, the terminal device transmits at least the SR on the uplink control channel carrying the control information.
  • step 402 determining whether the delay requirement of the downlink data service corresponding to the HARQ-ACK message is higher than or equal to a delay requirement of the uplink data service corresponding to the SR; if the determination result is yes, Step 402 is performed; if the judgment result is no, the terminal device sends at least the SR on the uplink control channel carrying the control information.
  • step 402 it is determined whether the transmission error rate corresponding to the HARQ-ACK message is lower than or equal to a transmission error rate corresponding to the SR; if the determination result is yes, step 402 is performed; If not, the terminal device transmits at least the SR on the uplink control channel carrying the control information.
  • the service priority of the ultra-reliable and low latency communications is higher than the enhanced mobile broadband (eMBB) corresponding service priority.
  • the HARQ-ACK message corresponds to the URLLC service
  • the SR corresponds to the eMBB service
  • the service priority corresponding to the HARQ-ACK message is higher than the service priority corresponding to the SR.
  • the delay requirement of the downlink data service may be a time value corresponding to the downlink data service and a time delay value of the preset time range, for example, when the transmission is completed within 1 ms.
  • the delay requirement is higher than the delay requirement for transmission completion within 2 ms, and for example, the 10 ms delay requirement is a delay requirement of less than 2 ms.
  • the transmission error rate may also be a transmission error rate corresponding to the information, for example, an error rate with an error rate of 10e-5 being lower than an error rate of 10e-3.
  • the terminal device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the terminal device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the method further includes: determining, by the terminal device, a format of the first uplink control channel; and/or, determining, by the terminal device, a format of the second uplink control channel.
  • the format of the first uplink control channel is 1a or 1b or 2, or the format of the first uplink control channel is 1a or 1b; and/or the format of the second uplink control channel is 1 or 1a or 1b or 2, or The format of the second uplink control channel is 1 or 1a or 1b.
  • the format of the second uplink control channel is set to 1, and the HARQ-ACK message and the SR are simultaneously transmitted, and then the second uplink of the format 1a or 1b or 2 is generated on the resource corresponding to the second uplink control channel. Control channel.
  • the terminal device determines that the format of the first uplink control channel is 1a or 1b or 2, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1a is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 2 is sPUCCH format 2
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines, according to the relationship between the first time length and the second time length, the uplink control channel that carries the control information;
  • the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5
  • the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1a is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device determines that the format of the second uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1 is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines that the format of the second uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the first time length and the second time length. a channel; when the terminal device determines that the format of the first uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel.
  • 1 is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device determines the first time length according to a time length corresponding to the high layer signaling or the downlink transmission sent by the network device; and/or the high layer sent by the terminal device according to the network device. Signaling determines the second length of time.
  • the first time length is equal to the time length corresponding to the downlink transmission.
  • the time length corresponding to the downlink transmission is 2 symbols
  • the first time length is 2 symbols.
  • the first time length is preset, and/or the second time length is preset.
  • the first uplink control channel and the second uplink control channel overlap in time.
  • the terminal device when the first uplink control channel and the second uplink control channel overlap in time, performs the determining, by the terminal device, the bearer control information according to the relationship between the first time length and the second time length.
  • the uplink control channel otherwise, the uplink control channel that directly determines the bearer control information by the terminal device is the first uplink control channel or the second uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the difference between the transmission time differences of the first uplink control channel and the second uplink control channel is less than or equal to a us, a is a predefined value, and a is a non-negative integer.
  • the transmitting of the first uplink control channel and the second uplink control channel When the time difference is less than or equal to a us, the terminal device performs the determining, by the terminal device, the uplink control channel that carries the control information according to the relationship between the first time length and the second time length, otherwise the terminal device directly determines the bearer.
  • the uplink control channel of the control information is the first uplink control channel or the second uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the overlap time of the first uplink control channel and the second uplink control channel is greater than or equal to b us, b is a predefined value, and b is a non-negative integer.
  • the terminal device performs the determining, by the terminal device, the bearer according to the relationship between the first time length and the second time length. Controlling the uplink control channel of the information, otherwise performing the uplink control channel in which the terminal device directly determines the bearer control information is the first uplink control channel or the second uplink control channel, and does not need to be based on the relationship between the first time length and the second time length.
  • the terminal device sends the HARQ-ACK message and the SR on the first uplink control channel.
  • the first uplink control channel and the second uplink control channel are uplink control channels on the same carrier, or the first uplink control channel and the second uplink control channel are in the same carrier.
  • the uplink control channel of the group is configured to control the first uplink control channel and the second uplink control channel.
  • the terminal device determines that the first uplink control channel and the second uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the first uplink control channel and the second uplink control channel are uplink control channels that are not on the same carrier, or the first uplink control channel and the second uplink control channel are different For the uplink control channel of one carrier group, the terminal device can simultaneously send the first uplink control channel and the second uplink control channel, and steps 401 and 402 are not performed because the uplink carrier characteristics are not destroyed at this time.
  • the first uplink control channel is used to carry a HARQ-ACK message
  • the second uplink control channel is used to carry an SR. It can be understood that the first uplink control channel is an uplink control channel corresponding to the HARQ-ACK message, and the second uplink control channel is an uplink control channel corresponding to the SR. If there is no HARQ-ACK message and the SR needs to be sent in the same time period, the terminal device sends the HARQ on the first uplink control channel or the SR on the second uplink control channel.
  • the second uplink control channel simultaneously carries the SR and the HARQ-ACK message, by using the HARQ-
  • the ACK message is sent in the second uplink control channel and the transmission of the second uplink channel itself implicitly indicates that the terminal device is transmitting the SR at this time.
  • the first uplink control channel simultaneously carries the SR and the HARQ-ACK message when an optional solution in the embodiment of the present invention is satisfied. Therefore, the first uplink control channel may transmit only the HARQ-ACK message or simultaneously transmit the HARQ-ACK information and the SR.
  • the second uplink control channel may transmit only the SR, or simultaneously transmit the HARQ-ACK information and the SR.
  • the first uplink control channel may be determined according to the downlink control information DCI, or may be determined according to the resource that carries the downlink control information, or may be determined according to the high layer signaling.
  • the second uplink control channel is predefined, or is reported by a high layer signaling, or is indicated by a Downlink Control Indicator (DCI).
  • DCI Downlink Control Indicator
  • the uplink single carrier characteristic can be maintained, and the HARQ-ACK message can be preferentially transmitted, and the terminal device can determine the first time length corresponding to the first uplink control channel and the second corresponding to the second uplink control channel.
  • the relationship between the lengths of time determines the uplink control for transmitting bearer control information.
  • the terminal device selects the resource corresponding to the second uplink control channel to send the HARQ-ACK message and the SR, where the first time length and the second time length are different, then the terminal device Selecting a resource corresponding to the first uplink control channel to send a HARQ-ACK message, so as to prevent the terminal device from simultaneously transmitting two channels with different TTI lengths, thereby avoiding destroying the characteristics of the uplink single carrier, thereby ensuring the correct transmission of important information while reducing the cost of the terminal device. .
  • Step 403 The network device determines, according to the relationship between the first time length and the second time length, an uplink control channel of the bearer control information detected by the network device.
  • the uplink control channel carrying the control information is at least one of the first uplink control channel and the second uplink control channel, where the first time length is a length of time corresponding to the first uplink control channel, and the second time The length is the length of time corresponding to the second uplink control channel, the first uplink control channel is used to carry a HARQ-ACK message, and the second uplink control channel is used to carry an SR.
  • the first time length and the second time length are equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel and the The second uplink control channel is described.
  • the first time length and the second time length are equal.
  • the pending information includes only the HARQ-ACK message and does not include the SR, and the terminal device carries the HARQ-ACK message through the first uplink control channel.
  • the HARQ-ACK message and the SR are included, and the terminal device carries the HARQ-ACK message and the SR through the second uplink control channel.
  • the first time length and the second time length are equal, and the network device detects both the first uplink control channel and the second uplink control channel.
  • the first time length and the second time length are not equal, for example, one time length is 2 symbols, and another time length is 3 symbols, and the network device determines that the network device detects the network device.
  • the uplink control channel carrying the control information is the first uplink control channel and the second uplink control channel.
  • the first time length and the second time length are equal.
  • the pending information includes only the HARQ-ACK message and does not include the SR, and the terminal device carries the HARQ-ACK message through the first uplink control channel.
  • the HARQ-ACK message and the SR are included, and the terminal device carries the HARQ-ACK message and the SR through the second uplink control channel.
  • the first time length and the second time length are equal, and the network device detects both the first uplink control channel and the second uplink control channel.
  • the network device determines, according to the first time length that is less than or equal to the second time length, that the uplink control channel that is detected by the network device is the first uplink control channel and the second uplink control channel. .
  • the first time length and the second time length are not equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control. channel.
  • the first time length and the second time length are not equal, and the terminal device carries the HARQ-ACK message by using the first uplink control channel, so the network device only needs to detect the first uplink control channel, and does not need to detect the second Uplink control channel.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the first uplink control channel, according to the first time length being less than or greater than the second time length.
  • the uplink control channel of the bearer control information detected by the network device is the first uplink control channel, and not detecting the second uplink control channel, thereby preventing the network device from simultaneously detecting two channels with different TTI lengths, thereby reducing network equipment cost.
  • Step 404 The network device detects an uplink control channel carrying control information, where the control information includes at least a HARQ-ACK message.
  • the network device receives the HARQ-ACK message and the SR on an uplink control channel of the bearer control information, where an uplink control channel of the bearer control information is The second uplink control channel.
  • the network device receives the HARQ-ACK message on the uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is the first uplink control channel.
  • the network device does not detect the second uplink control channel, and the first time length and the second time length are not equal.
  • the service priority of the HARQ-ACK message is higher than or equal to the service priority of the SR, or the delay requirement of the downlink data service corresponding to the HARQ-ACK message is higher than or equal to the The delay requirement of the uplink data service corresponding to the SR.
  • the network device determines a format of the first uplink control channel; and/or the network device determines a format of the second uplink control channel.
  • the format of the first uplink control channel is 1a or 1b or 2, or the format of the first uplink control channel is 1a or 1b; and/or the format of the second uplink control channel is 1 Or 1a or 1b or 2, or the format of the second uplink control channel is 1 or 1a or 1b.
  • the network device determines the first time length according to a time length corresponding to the high layer signaling or the downlink transmission; and/or, the network device determines the second time length according to the high layer signaling.
  • the network device may also indicate the first time length and/or the second time length by the physical layer DCI.
  • the first uplink control channel and the second uplink control channel overlap in time. If the first uplink control channel and the second uplink control channel do not overlap in time, the problem of channel selection is not involved, and the situation is not related to the solution, and details are not described herein.
  • the first uplink control channel and the second uplink control channel are uplink control channels on the same carrier, or the first uplink control channel and the second uplink control channel are in the same carrier.
  • the uplink control channel of the group is configured to control the first uplink control channel and the second uplink control channel.
  • the network device determines that the first uplink control channel and the second uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the first uplink control channel and the second uplink control channel are uplink control channels that are not on the same carrier, or the first uplink control channel and the second uplink control channel are different An uplink control channel of a carrier group, wherein the network device directly determines that the uplink control channel of the bearer control information detected by the network device is a first uplink control channel and a second uplink control channel.
  • the length of time of 2 symbols and the length of time of 3 symbols can be considered as equal length of time.
  • the execution body of step 401 and step 402 is a terminal device, and the execution timing of the two steps is controlled by the terminal device;
  • the execution body of step 403 and step 404 is a network device, and the execution timing of the two steps is controlled by the network device. Therefore, the step 401, the step 402, the step 403, and the step 404 are performed in an order, which is not limited in the embodiment of the present invention.
  • the terminal device may perform step 401 and step 402 first, and then perform step 403 and step 404 after the network device, or may be a network.
  • the device performs step 403 and step 404, and the terminal device performs steps 401 and 402.
  • the network device performs step 403 and step 404, and the terminal device performs step 401 and step 402.
  • the network device determines, by using the technical solutions provided by the application, a relationship between a first time length corresponding to the first uplink control channel and a second time length corresponding to the second uplink control channel, for example, Whether the same or the same, the uplink control channel that determines the bearer control information detected by the network device, when the first time length and the second time length are the same, then the network device determines that the uplink control channel of the bearer control information detected by the network device is The first uplink control channel and the second uplink control channel, the network device needs to blindly detect two uplink control channels to ensure timely transmission of the HARQ-ACK message and the SR.
  • the uplink control channel that determines the bearer control information detected by the network device is the first uplink control channel, so as to prevent the network device from simultaneously detecting two channels with different TTI lengths. Thereby reducing the cost of network equipment.
  • FIG. 5 is a schematic diagram of another method for transmitting and detecting control information according to an embodiment of the present invention.
  • the method may be based on the application scenario shown in FIG. 3, and the method may be based on the premise that the uplink control channel used by the terminal device to send the SR has at least two different time lengths or two uplink control channel resources with different time lengths.
  • there are two uplink control channels for transmitting the SR respectively, PUCCH and sPUCCH, which are respectively TTI, for example, 1 ms or 1 subframe, and sTTI, for example, 2 symbols, or 3 symbols, Or 7 symbols, or 1 time slot.
  • the terminal device may be the terminal device 302 in the application scenario shown in FIG. 3.
  • the terminal device 302 supports both 1 ms TTI (1 subframe) and sTTI (2 symbols, or 3 symbols, or 7 symbols, or 1). Time slot).
  • the method includes:
  • Step 501 The terminal device determines an uplink control channel that carries control information.
  • the uplink control channel carrying the control information is a third uplink control channel or a fourth uplink control channel, and the third uplink control channel and the fourth uplink control channel are used to carry an SR, and the third uplink control
  • the time length corresponding to the channel is a third time length
  • the time length corresponding to the fourth uplink control channel is a fourth time length
  • the third time length is greater than the fourth time length.
  • the third uplink control channel is the PUCCH
  • the fourth uplink control channel is the sPUCCH
  • the third uplink control channel is the PUCCH
  • the fourth uplink control channel is the PUCCH
  • the fourth uplink control channel is the PUCCH
  • the fourth uplink control channel is the PUCCH
  • the fourth uplink control channel is the PUCCH
  • the fourth uplink control channel is the PUCCH
  • the fourth uplink control channel is the sPUCCH
  • the channel is sPUCCH.
  • the length of time corresponding to the PUCCH is 1 ms or 1 subframe (denoted as TTI), and the length of time corresponding to the sPUCCH is 2 symbols, or 3 symbols, or 7 symbols, or 1 slot (denoted as sTTI).
  • the terminal device determines an uplink control channel of the bearer control information according to a length of time corresponding to the uplink control channel of the bearer control information. For example, the terminal device first determines that the time length corresponding to the uplink control channel carrying the control information is 1 ms or one subframe, and then determines that the uplink control channel carrying the control information is the PUCCH.
  • the terminal device determines an uplink control channel with a shorter time length as an uplink control channel carrying control information. For example, if the third time length is greater than the fourth time length, the terminal device determines that the fourth uplink control channel is an uplink control channel that carries control information.
  • the terminal device determines an uplink control channel with a longer duration as an uplink control channel carrying control information. For example, if the third time length is less than the fourth time length, the terminal device determines that the fourth uplink control channel is an uplink control channel carrying control information.
  • the terminal device determines an uplink control channel of the bearer control information according to a time length corresponding to the uplink control channel of the bearer control information according to the high layer signaling or a predefined rule.
  • the method further includes: determining, by the terminal device, a length of time corresponding to the uplink control channel of the bearer control information according to a length of time corresponding to the last downlink transmission; for example, the last time The time length corresponding to the downlink transmission is TTI, and the time length corresponding to the uplink control channel of the bearer control information is determined to be a TTI; or the terminal device determines, according to the length of time corresponding to the uplink control channel carrying the HARQ-ACK message, The time length corresponding to the uplink control channel carrying the control information is sTTI. For example, the terminal device determines that the time length corresponding to the uplink control channel of the bearer control information is sTTI according to the length of time corresponding to the uplink control channel that carries the HARQ-ACK message.
  • the terminal device determines the length of time corresponding to the uplink control channel of the bearer control information.
  • the time length corresponding to the uplink control channel carrying the control information may be the length of time corresponding to the last downlink transmission, or the length of time corresponding to the uplink control channel carrying the HARQ-ACK message; or may be the last downlink transmission.
  • the lengths of the corresponding time lengths are not equal, or the length of time corresponding to the uplink control channel carrying the HARQ-ACK message is not equal.
  • the time length corresponding to the uplink control channel carrying the HARQ-ACK message is 2 symbols, and the bearer control information is used.
  • the uplink control channel corresponds to a length of 3 symbols.
  • the time length corresponding to the last downlink transmission is 2 symbols, and the length of time corresponding to the uplink control channel carrying the control information is 3 symbols. vice versa.
  • the length of time of 2 symbols and the length of time of 3 symbols can be considered as equal length of time.
  • the terminal device determines that the uplink control channel of the bearer control information is the fourth uplink control channel, and the fourth uplink control channel and the uplink channel other than the third uplink control channel are in time. There is no overlap, that is, the channel for carrying the SR does not overlap with the channel for carrying the HARQ-ACK message; or the terminal device determines that the uplink control channel of the bearer control information is the fourth
  • the uplink control channel has no downlink transmission in the X time units before the time unit in which the third uplink control channel is located, or no downlink transmission in the Y time units before the time unit in which the fourth uplink control channel is located.
  • the above time unit can be TTI or sTTI.
  • the terminal device determines that the uplink control channel of the bearer control information is the fourth uplink control channel, and at least a part or all of the fourth uplink control channel and the third uplink control channel are in time. Overlap. Those skilled in the art can understand that if the fourth uplink control channel and the third uplink control channel do not overlap at all in time, the problem of selecting one channel from the two channels is not involved.
  • Step 502 The terminal device sends the SR on the uplink control channel carrying the control information.
  • Step 503 The network device determines an uplink control channel of the bearer control information detected by the network device.
  • the uplink control channel carrying the control information is at least one of a third uplink control channel and a fourth uplink control channel, where the third uplink control channel and the fourth uplink control channel are used to carry an SR,
  • the time length corresponding to the third uplink control channel is a third time length
  • the time length corresponding to the fourth uplink control channel is a fourth time length
  • the third time length is greater than the fourth time length.
  • the third uplink control channel is a PUCCH
  • the third time length is TTI
  • the fourth uplink control channel is sPUCCH
  • the fourth time length is sTTI.
  • the network device determines, according to the length of time corresponding to the uplink control channel of the bearer control information, the uplink control channel of the bearer control information detected by the network device. For example, the network device first determines that the time length corresponding to the uplink control channel carrying the control information is TTI, and then determines the bearer detected by the network device.
  • the uplink control channel PUCCH of the control information is TTI, and then determines the bearer detected by the network device.
  • the network device determines an uplink control channel with a shorter time length as an uplink control channel carrying control information. For example, if the third time length is greater than the fourth time length, the network device determines that the fourth uplink control channel is an uplink control channel that carries control information.
  • the network device determines an uplink control channel with a longer duration as an uplink control channel carrying control information. For example, if the third time length is greater than the fourth time length, the network device determines that the third uplink control channel is an uplink control channel that carries control information.
  • the network device determines the uplink control channel of the bearer control information according to a time length corresponding to the uplink control channel of the bearer control information according to the high layer signaling or a predefined rule.
  • the method further includes: determining, by the network device, a length of time corresponding to the uplink control channel of the bearer control information detected by the network device according to a length of time corresponding to the last downlink transmission,
  • the time length corresponding to the uplink control channel for carrying the SR is consistent with the length of time corresponding to the last downlink transmission. For example, if the time length corresponding to the last downlink transmission is TTI, the bearer control information detected by the network device is determined.
  • the time length corresponding to the uplink control channel is TTI; or the network device determines, according to the length of time corresponding to the uplink control channel carrying the HARQ-ACK message, the uplink control channel corresponding to the bearer control information detected by the network device The length of time, so that the time length corresponding to the uplink control channel for carrying the SR is consistent with the length of time corresponding to the uplink control channel carrying the HARQ-ACK message, so that the terminal device can carry the HARQ-ACK through the uplink control channel carrying the SR.
  • the corresponding uplink control channel is correctly detected. For example, if the time length corresponding to the uplink control channel carrying the HARQ-ACK message is sTTI, it is determined that the time length corresponding to the uplink control channel carrying the SR is sTTI.
  • the network device determines the uplink control channel corresponding to the bearer control information detected by the network device. Length of time.
  • the time length corresponding to the uplink control channel carrying the control information may be the length of time corresponding to the last downlink transmission, or the length of time corresponding to the uplink control channel carrying the HARQ-ACK message; or may be the last downlink transmission.
  • the lengths of the corresponding time lengths are not equal, or the length of time corresponding to the uplink control channel carrying the HARQ-ACK message is not equal.
  • the time length corresponding to the uplink control channel carrying the HARQ-ACK message is 2 symbols, and the bearer control information is used.
  • the uplink control channel corresponds to a length of 3 symbols.
  • the time length corresponding to the last downlink transmission is 2 symbols, and the length of time corresponding to the uplink control channel carrying the control information is 3 symbols. vice versa.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fourth uplink control channel, and the fourth uplink control channel and the third uplink control
  • the uplink channels other than the channel do not overlap in time, that is, only the selection of the two control channels of the third uplink control channel and the fourth uplink control channel; or the network device determines that the network device detects
  • the uplink control channel carrying the control information is the fourth uplink control channel, and there is no downlink transmission or time unit of the fourth uplink control channel in the X time units before the time unit in which the third uplink control channel is located. There is no downlink transmission in the previous Y time units, that is, when the time length corresponding to the channel without downlink transmission is used as a reference, the uplink control channel with a shorter time length is selected for carrying the SR.
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the fourth uplink control channel, and at least a part or all of the fourth uplink control channel is First
  • the three uplink control channels overlap in time. Those skilled in the art can understand that if the fourth uplink control channel and the third uplink control channel do not overlap at all in time, there is no problem of selecting a channel.
  • Step 504 The network device detects an uplink control channel carrying control information, where the control information includes an SR.
  • not only the uplink single carrier characteristic but also the channel of the SR that is detected by the network device can be selected, thereby improving the probability of the SR being correctly transmitted.
  • FIG. 6 is a schematic diagram of another method for transmitting and detecting control information according to an embodiment of the present invention.
  • the method may be based on the premise that the SR is the more important information, and/or the uplink control channel that the terminal device can use to carry the SR in the current time unit only corresponds to one time length, and/or is used to carry the HARQ-
  • the uplink control channel of the ACK message overlaps with the uplink control channel for carrying the SR, and the service priority corresponding to the HARQ-ACK message is lower than the service priority corresponding to the SR or the downlink corresponding to the HARQ-ACK message.
  • the delay requirement of the data service is higher than the delay requirement of the uplink data service corresponding to the SR.
  • the terminal device may be the terminal device 302 in the application scenario shown in FIG. 3.
  • the terminal device 302 supports both 1 ms TTI (1 subframe) and sTTI (2 symbols, or 3 symbols, or 7 symbols, or 1). Time slot).
  • the method includes:
  • Step 601 The terminal device determines, according to a relationship between the fifth time length and the sixth time length, an uplink control channel that carries control information.
  • the uplink control channel carrying the control information is a fifth uplink control channel or a sixth uplink control channel, where the fifth time length is a time length corresponding to the fifth uplink control channel, and the sixth time length is The time length corresponding to the sixth uplink control channel, where the fifth uplink control channel is used to carry a HARQ-ACK message, and the sixth uplink control channel is used to carry an SR.
  • the two uplink control channels and the sixth uplink control channel may be distinguished by one or more of a time domain, a frequency domain, and a code domain.
  • the fifth uplink control channel is a PUCCH
  • the sixth uplink control channel is an sPUCCH or an sPUSCH.
  • the fifth time length is a time length corresponding to the PUCCH, for example, the fifth time length is 1 ms, or 1 subframe
  • the sixth time length is a time length corresponding to the sPUCCH or the sPUSCH, for example, the sixth time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot.
  • the fifth uplink control channel is sPUCCH or sPUSCH
  • the sixth uplink control channel is PUCCH.
  • the fifth time length is a time length corresponding to the sPUCCH or the sPUSCH, for example, the fifth time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; the sixth time length is the time corresponding to the PUCCH.
  • the length, for example, the sixth time length is 1 ms, or 1 subframe.
  • the fifth uplink control channel is a PUCCH
  • the sixth uplink control channel is a PUCCH.
  • the fifth time length is a time length corresponding to the PUCCH
  • the sixth time length is a time length corresponding to the PUCCH, for example, the fifth time length and the sixth time length are 1 ms, or 1 subframe.
  • the fifth uplink control channel is sPUCCH or sPUSCH
  • the sixth uplink control channel is sPUCCH or sPUSCH.
  • the fifth time length is a time length corresponding to the sPUCCH or the sPUSCH
  • the sixth time length is a time length corresponding to the sPUCCH or the sPUSCH, for example, the fifth time length and the sixth time length are 2 symbols, or 3 symbols, or 7 Symbols, or 1 time slot.
  • the terminal device determines that the fifth uplink control channel is used to carry a HARQ-ACK message.
  • the terminal device determines a format of the fifth uplink control channel according to the number of bits of the HARQ-ACK message to be transmitted.
  • the fifth uplink control channel is PUCCH 1a or PUCCH 1b, and if the number of bits of the HARQ-ACK message to be transmitted is greater than 2 and less than If the number of bits of the HARQ-ACK message to be transmitted is greater than 4 and less than or equal to 22, the fifth uplink control channel is PUCCH 3, and the number of bits of the HARQ-ACK message to be transmitted is equal to 4.
  • the fifth uplink control channel is PUCCH 4 or PUCCH 5.
  • the fifth uplink control channel when the fifth uplink control channel is sPUCCH, if the number of bits of the HARQ-ACK message to be transmitted is less than or equal to 2, the fifth uplink control channel is sPUCCH 1 or sPUCCH 1a or sPUCCH 1b or sPUCCH 2, if to be transmitted The number of bits of the HARQ-ACK message is greater than 2, and then the fifth uplink control channel is either sPUCCH 3 or sPUCCH 4 or sPUCCH 5.
  • the fifth uplink control channel is configured to carry a HARQ-ACK message.
  • the terminal device determines the format of the fifth uplink control channel according to the number of bits of the HARQ-ACK message to be transmitted.
  • the terminal device determines that the sixth uplink control channel is used to carry the SR.
  • the terminal device determines a format of the sixth uplink control channel according to the sixth time length. For example, when the sixth uplink control channel is a PUCCH, then the sixth uplink control channel is PUCCH 1. For another example, when the sixth uplink control channel is sPUCCH, then the sixth uplink control channel is sPUCCH 1 or sPUCCH 1a or sPUCCH 1b or sPUCCH 2 .
  • the fifth time length is a time length of a time domain resource where the fifth uplink control channel is located.
  • the sixth time length is a time length of a time domain resource where the sixth uplink control channel is located.
  • the fifth time length and the sixth time length are equal, and the terminal device determines that the uplink control channel carrying the control information is the sixth uplink control channel.
  • the fifth uplink control channel and the sixth uplink control channel are both PUCCHs, and the fifth time length and the sixth time length are equal, both being 1 ms or 1 subframe; or the fifth uplink control channel and the sixth The uplink control channels are all sPUCCH, and the fifth time length and the sixth time length are equal, for example, the fifth time length and the sixth time length are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; or the fifth uplink control channel is sPUSCH and the sixth uplink control channel is sPUCCH, and the fifth time length and the sixth time length are equal, for example, the fifth time length and the sixth time length are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot; or the fifth uplink control channel is sPUCCH and the sixth uplink control channel is sPUSCH, and the fifth time length and the sixth time length are equal,
  • the terminal device determines that the uplink control channel of the bearer control information is the sixth uplink control channel, according to the fifth time length being less than or equal to the sixth time length.
  • the fifth time length and the sixth time length are not equal, and the terminal device determines that the uplink control channel carrying the control information is the sixth uplink control channel.
  • the fifth uplink control channel is the PUCCH and the sixth uplink control channel is sPUSCH or sPUCCH, and the fifth time length is 1 ms, and the sixth time length is 2 symbols, or 3 symbols, or 7 symbols.
  • the terminal device determines that the uplink control channel of the bearer control information is the sPUSCH or sPUCCH; or, the fifth uplink control The channel is sPUSCH or sPUCCH and the sixth uplink control channel is PUCCH, and the fifth time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot, and the sixth time length is 1 ms.
  • the fifth time length and the sixth time length are not equal, and the terminal device determines that the uplink control channel of the bearer control information is the PUCCH.
  • the terminal device determines that the uplink control channel of the bearer control information is the sixth uplink control channel, according to the fifth time length being less than or greater than the sixth time length.
  • Step 602 The terminal device sends at least the SR on the uplink control channel carrying the control information.
  • the terminal device sends the HARQ-ACK message and the SR on the uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is a sixth uplink control channel.
  • the fifth uplink control channel and the sixth uplink control channel are both PUCCHs, and the fifth time length and the sixth time length are equal.
  • the terminal device when both are 1 ms or 1 subframe, the terminal device according to the PUCCH Format 1a or 1b, generating a sixth uplink control channel for carrying the HARQ-ACK message and the SR, and transmitting the sixth uplink control channel by using resources of the sixth uplink control channel; or, the fifth uplink control channel and the sixth
  • the uplink control channel is sPUCCH
  • the fifth time length and the sixth time length are equal, for example, both are 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot
  • the terminal The device generates a sixth uplink control channel for carrying the HARQ-ACK message and the SR according to the sPUCCH format 1 or 1a or 1b, and sends the sixth uplink control channel by using the resource of the sixth uplink control channel; or, the fifth uplink The control channel is sPUSCH, the sixth uplink control channel
  • the terminal device when the fifth uplink control channel is sPUSCH and the sixth uplink control channel is sPUCCH, and the fifth time length and the sixth time length are not equal, for example, one time length is 2 symbols, and the other is a third symbol, the terminal device generates a sixth uplink control channel for carrying the HARQ-ACK message and the SR according to the sPUCCH format 1 or 1a or 1b, and sends the sixth uplink control channel by using the resource of the sixth uplink control channel.
  • the sixth uplink control channel is sPUSCH
  • the fifth time length and the sixth time length are not equal, for example, one time length is 2 symbols, and the other is 3 symbols, carrying the HARQ-ACK message and the SR through the sPUSCH.
  • the terminal device sends the SR on the uplink control channel of the bearer control information, and the uplink control channel of the bearer control information is a sixth uplink control channel.
  • the fifth uplink control channel is the PUCCH and the sixth uplink control channel is the sPUSCH or the sPUCCH, and the fifth time length and the sixth time length are not equal, for example, the fifth time length is 1 ms or 1 subframe.
  • the sixth time length is 2 symbols, or 3 symbols, or 7 symbols, or 1 time slot, and the terminal device determines that the uplink control channel of the bearer control information is the sPUSCH or sPUCCH; or The fifth uplink control channel is sPUSCH or sPUCCH, and the sixth uplink control channel is PUCCH.
  • the fifth time length and the sixth time length are not equal, for example, the fifth time length is 2 symbols, or 3 a symbol, or 7 symbols, or 1 time slot, the sixth time length is 1 ms or 1 subframe, the terminal device determines that the uplink control channel of the bearer control information is the PUCCH; or, the fifth The uplink control channel is sPUSCH, and the sixth uplink control channel is sPUCCH.
  • the terminal device determines that the uplink control channel of the bearer control information is the sPUCCH; or the fifth uplink control channel is an sPUCCH, and the sixth uplink control channel is an sPUSCH, the fifth time
  • the length and the sixth time length are not equal, for example, the fifth time length is 2 symbols, or 3 symbols
  • the sixth time length is 7 symbols, or 1 time slot
  • the terminal device determines the location The uplink control channel carrying the control information is the sPUSCH.
  • the terminal device discards the HARQ-ACK message, and the uplink control channel of the bearer control information is a sixth uplink control channel; or the terminal device discards the HARQ-ACK message, where the The five time lengths and the sixth time lengths are not equal.
  • the control information to be sent includes a HARQ-ACK message and an SR
  • the uplink control channel of the bearer control information is the sixth uplink control channel
  • the terminal device discards the HARQ-ACK message and passes the sixth uplink.
  • the control channel carries the SR; or, if the control information to be sent includes the HARQ-ACK message and the SR, the fifth time length and the sixth time length are not equal, the terminal device discards the HARQ-ACK message, only Send SR.
  • the fifth uplink control channel is used to carry a HARQ-ACK message
  • the sixth uplink control channel is used to carry an SR. It can be understood that the fifth uplink control channel is an uplink control channel corresponding to the HARQ-ACK message
  • the sixth uplink control channel is an uplink control channel corresponding to the SR. If there is no HARQ-ACK message and the SR needs to be sent in the same time period, the terminal device sends the HARQ on the fifth uplink control channel or the SR on the sixth uplink control channel.
  • the sixth uplink control channel carries the SR and HARQ-ACK messages simultaneously, and the HARQ- The ACK message is transmitted in the sixth uplink control channel and the transmission of the sixth uplink channel itself implicitly indicates that the terminal device transmits the SR at this time. If an HARQ-ACK message is sent and the SR is sent in the same time period, the fifth uplink control channel simultaneously carries the SR and the HARQ-ACK message when an optional solution in the embodiment of the present invention is satisfied. Therefore, the fifth uplink control channel may transmit only the HARQ-ACK message or simultaneously transmit the HARQ-ACK information and the SR. The sixth uplink control channel may transmit only the SR, or simultaneously transmit the HARQ-ACK information and the SR.
  • the fifth uplink control channel may be determined according to the downlink control information DCI, or may be determined according to the resource that carries the downlink control information, or may be determined according to the high layer signaling.
  • the sixth uplink control channel is predefined, or is reported by a high layer signaling, or is indicated by a Downlink Control Indicator (DCI).
  • DCI Downlink Control Indicator
  • the following condition may be further determined: the service priority corresponding to the HARQ-ACK message is lower than the service priority corresponding to the SR, or the downlink data corresponding to the HARQ-ACK message.
  • the delay requirement of the service is lower than the delay requirement of the uplink data service corresponding to the SR.
  • step 602 it is determined whether the service priority corresponding to the SR is higher than or equal to the service priority corresponding to the HARQ-ACK message. If the determination result is yes, step 402 is performed; If no, go to step 602.
  • step 602 it is determined whether the delay requirement of the downlink data service corresponding to the HARQ-ACK message is higher than or equal to the delay requirement of the uplink data service corresponding to the SR; if the determination result is yes, Then, step 402 is performed; if the result of the determination is no, step 602 is performed.
  • the method further includes: determining, by the terminal device, a service priority corresponding to the HARQ-ACK message; and/or, determining, by the terminal device, a service priority corresponding to the SR.
  • the service priority of the ultra-reliable and low latency communications is higher than the enhanced mobile broadband (eMBB) corresponding service priority.
  • the SR corresponds to the URLLC service
  • the HARQ-ACK message corresponds to the eMBB service
  • the service priority corresponding to the SR is higher than the service priority corresponding to the HARQ-ACK message.
  • the delay requirement of the downlink data service may be a preset time corresponding to the downlink data service.
  • the time value of the intra-transmission success for example, the requirement that the transmission is completed within 2 ms is lower than the requirement that the transmission is completed within 1 ms, or the transmission accuracy corresponding to the downlink data service, for example, the error rate is 10e-3. Requirements below the error rate of 10e-5 are required.
  • the terminal device determines a service priority corresponding to the HARQ-ACK message, or a delay requirement of the downlink data service corresponding to the HARQ-ACK message.
  • the terminal device determines a service priority corresponding to the SR, or a delay requirement of the downlink data service corresponding to the SR.
  • the method further includes: determining, by the terminal device, a format of the first uplink control channel; and/or, determining, by the terminal device, a format of the second uplink control channel.
  • the format of the fifth uplink control channel is 1a or 1b or 2, or the format of the fifth uplink control channel is 1a or 1b; and/or the format of the sixth uplink control channel is 1 or 1a or 1b or 2, or the format of the sixth uplink control channel is 1 or 1a or 1b.
  • the format of the sixth uplink control channel is set to 1, and finally, when the HARQ-ACK message and the SR are simultaneously transmitted, the sixth uplink of the format 1a or 1b or 2 is generated on the resource corresponding to the sixth uplink control channel. Control channel.
  • the terminal device determines that the format of the fifth uplink control channel is 1a or 1b or 2, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the fifth time length and the sixth time length. a channel; when the terminal device determines that the format of the fifth uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel.
  • 1a is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 2 is sPUCCH format 2
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines, according to the relationship between the fifth time length and the sixth time length, the uplink control channel that carries the control information;
  • the terminal device determines that the format of the fifth uplink control channel is 3 or 4 or 5
  • the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel.
  • 1a is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device determines that the format of the fifth uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the fifth time length and the sixth time length. a channel; when the terminal device determines that the format of the fifth uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel.
  • 1 is sPUCCH format 1a
  • 1b is sPUCCH format 1b
  • 3 is sPUCCH format 3
  • 4 is sPUCCH format 4
  • 5 is sPUCCH format 5.
  • the terminal device determines that the format of the fifth uplink control channel is 1 or 1a or 1b, performing, by the terminal device, determining uplink control of the bearer control information according to the relationship between the fifth time length and the sixth time length. a channel; when the terminal device determines that the format of the fifth uplink control channel is 3 or 4 or 5, the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel.
  • 1 is PUCCH format 1a
  • 1b is PUCCH format 1b
  • 3 is PUCCH format 3
  • 4 is PUCCH format 4
  • 5 is PUCCH format 5.
  • the terminal device determines the fifth time length according to the time length corresponding to the high layer signaling or the downlink transmission sent by the network device; and/or the high level sent by the terminal device according to the network device. Signaling determines the sixth length of time.
  • the fifth time length is equal to the time length corresponding to the downlink transmission.
  • the time length corresponding to the downlink transmission is 2 symbols
  • the fifth time length is 2 symbols.
  • the fifth time length is preset, and/or the sixth time length is preset.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time.
  • the terminal device when the fifth uplink control channel and the sixth uplink control channel overlap in time, performs the determining, by the terminal device, the bearer control information according to the relationship between the fifth time length and the sixth time length.
  • the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the relationship between the fifth time length and the sixth time length.
  • the difference between the transmission time differences of the fifth uplink control channel and the sixth uplink control channel is less than or equal to c us, c is a predefined value, and c is a non-negative integer.
  • the terminal device performs, according to the relationship between the fifth time length and the sixth time length, the terminal device determines The uplink control channel carrying the control information, otherwise the uplink control channel that directly determines the bearer control information by the terminal device is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the relationship between the fifth time length and the sixth time length.
  • the overlapping time of the fifth uplink control channel and the sixth uplink control channel is greater than or equal to d us, d is a predefined value, and d is a non-negative integer.
  • the terminal device performs, by the terminal device, determining the bearer according to the relationship between the fifth time length and the sixth time length. Controlling the uplink control channel of the information, otherwise performing the uplink control channel in which the terminal device directly determines the bearer control information is the fifth uplink control channel or the sixth uplink control channel, and does not need to be based on the relationship between the fifth time length and the sixth time length.
  • the terminal device sends the HARQ-ACK message and the SR on the fifth uplink control channel.
  • the fifth uplink control channel and the sixth uplink control channel are uplink control channels on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the fifth uplink control channel and the sixth uplink control channel.
  • the terminal device determines that the fifth uplink control channel and the sixth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the fifth uplink control channel and the sixth uplink control channel are uplink control channels that are not on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are different For the uplink control channel of one carrier group, the terminal device can simultaneously send the fifth uplink control channel and the sixth uplink control channel, and steps 601 and 602 are not performed because the uplink carrier characteristics are not destroyed at this time.
  • the terminal device can determine the fifth time length corresponding to the fifth uplink control channel and the sixth time length corresponding to the sixth uplink control channel. If the relationship between the fifth uplink time and the sixth time length is the same, the terminal device selects the resource corresponding to the fifth uplink control channel to send the HARQ-ACK message and If the length of the fifth time and the length of the sixth time are different, the terminal device selects the resource corresponding to the sixth uplink control channel to send the SR, so as to prevent the terminal device from simultaneously transmitting two channels with different TTI lengths, and avoiding destroying the characteristics of the uplink single carrier. Therefore, the correct transmission of important information is ensured while reducing the cost of the terminal device.
  • Step 603 The network device determines, according to a relationship between the fifth time length and the sixth time length, an uplink control channel of the bearer control information detected by the network device.
  • the uplink control channel carrying the control information is at least one of the fifth uplink control channel and the sixth uplink control channel, and the fifth time length is a length of time corresponding to the fifth uplink control channel, where the The sixth time length is the time length corresponding to the sixth uplink control channel, the fifth uplink control channel is used to carry the HARQ-ACK message, and the sixth uplink control channel is used to carry the SR.
  • the fifth time length and the sixth time length are equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is the fifth uplink control channel and the The sixth uplink control channel is described.
  • the fifth time length and the sixth time length are equal, and the to-be-transmitted information includes only the HARQ-ACK message and does not include the SR, and the terminal device carries the HARQ-ACK message through the fifth uplink control channel;
  • the HARQ-ACK message and the SR are included, and the terminal device carries the HARQ-ACK message and the SR through the sixth uplink control channel.
  • the fifth time length and the sixth time length are equal, and the network device detects both the fifth uplink control channel and the sixth uplink control channel.
  • the fifth time length and the sixth time length are not equal, for example, one time length is 2 symbols, and another time length is 3 symbols, and the network device determines that the network device detects the network device.
  • the uplink control channel carrying the control information is the fifth uplink control channel and the sixth uplink control channel.
  • the fifth time length and the sixth time length are equal, and the to-be-transmitted information includes only the HARQ-ACK message and does not include the SR, and the terminal device carries the HARQ-ACK message through the fifth uplink control channel;
  • the HARQ-ACK message and the SR are included, and the terminal device carries the HARQ-ACK message and the SR through the sixth uplink control channel.
  • the fifth time length and the sixth time length are equal, and the network device detects both the fifth uplink control channel and the sixth uplink control channel.
  • the network device determines, according to the fifth time length that is less than or equal to the sixth time length, that the uplink control channel that is detected by the network device is the fifth uplink control channel and the sixth uplink control channel. .
  • the fifth time length and the sixth time length are not equal, and the network device determines that the uplink control channel of the bearer control information detected by the network device is a sixth uplink control channel.
  • the fifth time length and the sixth time length are not equal, and the terminal device carries the SR through the sixth uplink control channel, so the network device only needs to detect the sixth uplink control channel, and does not need to detect the fifth uplink control channel. .
  • the network device determines that the uplink control channel of the bearer control information detected by the network device is the sixth uplink control channel, according to the fifth time length being less than or greater than the sixth time length.
  • the uplink control channel of the bearer control information detected by the network device is the sixth uplink control channel, and not detecting the fifth uplink control channel, thereby preventing the network device from simultaneously detecting two channels with different TTI lengths, thereby reducing network equipment cost.
  • Step 604 The network device detects an uplink control channel carrying control information, where the control information includes at least an SR.
  • the network device receives the HARQ-ACK message and the SR on an uplink control channel of the bearer control information, where an uplink control channel of the bearer control information is The sixth uplink control channel.
  • the network device receives the SR on an uplink control channel of the bearer control information, where the uplink control channel of the bearer control information is a sixth uplink control channel.
  • the network device does not detect the fifth control channel, and the fifth time length and the sixth time length are not equal.
  • the service priority corresponding to the HARQ-ACK message is lower than the service priority corresponding to the SR, or the delay requirement of the downlink data service corresponding to the HARQ-ACK message is lower than the uplink corresponding to the SR Time delay requirements for data services.
  • the network device includes: determining, by the network device, a service priority corresponding to the HARQ-ACK message; and/or determining, by the network device, a service priority corresponding to the SR.
  • the network device includes: determining, by the network device, a format of the fifth uplink control channel; and/or, the network device determining a format of the sixth uplink control channel.
  • the format of the fifth uplink control channel is 1a or 1b or 2, or the format of the fifth uplink control channel is 1a or 1b; and/or, the format of the sixth uplink control channel is 1 Or 1a or 1b or 2, or the format of the sixth uplink control channel is 1 or 1a or 1b.
  • the network device determines the fifth time length according to a time length corresponding to the high layer signaling or the downlink transmission; and/or, the network device determines the sixth time length according to the high layer signaling.
  • the network device may also indicate the fifth time length and/or the sixth time length described above by the physical layer DCI.
  • the fifth uplink control channel and the sixth uplink control channel overlap in time. If the fifth uplink control channel and the sixth uplink control channel do not overlap in time, the problem of channel selection is not involved, and the situation is not related to the solution, and details are not described herein.
  • the fifth uplink control channel and the sixth uplink control channel are uplink control channels on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are in the same carrier.
  • the uplink control channel of the group is the fifth uplink control channel and the sixth uplink control channel.
  • the network device determines that the fifth uplink control channel and the sixth uplink control channel are uplink control channels in the same carrier or carrier group. It should be noted that, if the fifth uplink control channel and the sixth uplink control channel are uplink control channels that are not on the same carrier, or the fifth uplink control channel and the sixth uplink control channel are different An uplink control channel of a carrier group, wherein the network device directly determines that the uplink control channel of the bearer control information detected by the network device is a fifth uplink control channel and a sixth uplink control channel.
  • the length of time of 2 symbols and the length of time of 3 symbols can be considered as equal length of time.
  • the execution body of step 601 and step 602 is a terminal device, and the execution timing of the two steps is controlled by the terminal device;
  • the execution body of step 603 and step 604 is a network device, and the execution timing of the two steps is controlled by the network device. Therefore, the step 601, the step 602, the step 603, and the step 604 are performed in an order, which is not specifically limited in the embodiment of the present invention.
  • the terminal device may perform step 601 and step 602 first, and then perform step 603 and step 604 after the network device, or may be a network.
  • the device performs steps 603 and 604, and the terminal device performs steps 601 and 602.
  • the network device performs steps 603 and 604, and the terminal device performs steps 601 and 602.
  • the network device determines, by using the technical solutions provided by the application, the relationship between the fifth time length corresponding to the fifth uplink control channel and the sixth time length corresponding to the sixth uplink control channel, for example, Whether the same or the same, determining the uplink control channel of the bearer control information detected by the network device, when the fifth time length and the sixth time length are the same, the network device determines that the uplink control channel of the bearer control information detected by the network device is The first uplink control channel and the second uplink control channel, the network device needs to blindly detect two uplink control channels to ensure timely transmission of the HARQ-ACK message and the SR.
  • the uplink control channel of the bearer control information that is detected by the network device is the sixth uplink control channel, thereby preventing the network device from simultaneously detecting two channels with different TTI lengths, thereby reducing the network device cost.
  • the uplink single carrier characteristic but also the appropriate SR channel of the bearer detected by the network device can be ensured, thereby improving the probability of the SR being correctly transmitted.
  • the method for transmitting and detecting control information provided by the embodiment of the present invention is described below based on two specific application scenarios.
  • the uplink control channel used by the terminal device to send the SR has two different lengths of time.
  • a scheduling request (referred to as sPUCCH-SR) corresponding to the short uplink time interval physical uplink control channel or a scheduling request corresponding to the physical uplink control channel in one time period (remember) a PUCCH-SR)
  • the PUCCH format corresponding to the HARQ-ACK message is 1a or 1b
  • the sPUCCH format is 1 or 1a or 1b
  • the length of the uplink control channel corresponding to the HARQ-ACK message is
  • the time length of the uplink control channel corresponding to the SR is equal, the SR and the HARQ are transmitted by using the resources of the uplink control channel corresponding to the SR.
  • the HARQ-ACK message is a HARQ-ACK message (referred to as sPUCCH-ACK) corresponding to a short transmission time interval physical uplink control channel
  • the SR is sPUCCH-SR
  • the resource of the corresponding uplink control channel sends the sPUCCH-ACK.
  • the method further includes: when the length of the uplink control channel corresponding to the HARQ-ACK message is not equal to the length of the uplink control channel corresponding to the SR, the SR is not sent, The HARQ-ACK message is sent on a resource of an uplink control channel corresponding to the HARQ-ACK message.
  • the HARQ-ACK message is a HARQ-ACK message (referred to as PUCCH-ACK) corresponding to a physical uplink control channel of a transmission time interval
  • the SR is an sPUCCH-SR
  • the SR is not sent, and the The PUCCH-ACK corresponding to the PUCCH-ACK resource is sent by the PUCCH-ACK; or when the HARQ is sPUCCH-ACK and the SR is a PUCCH-SR, the SR is not sent, and the sPUCCH-
  • the sPUCCH-ACK is transmitted by the resource of the uplink control channel corresponding to the ACK.
  • the method further includes: if the corresponding PUCCH format of the HARQ is 3 or 4 or 5, if the corresponding PUCCH format of the HARQ is 3 or 4 or 5, the resource corresponding to the uplink control channel is used by the HARQ. Send the SR.
  • the method further includes: selecting the SR resource according to a length of time corresponding to the latest downlink scheduling.
  • the method further includes: if there is no downlink scheduling within a time period, sending the SR using the resource of the sPUCCH-SR.
  • each network element such as a terminal device, a network device, etc.
  • each network element includes hardware structures and/or software modules corresponding to each function.
  • the present invention can be implemented in a combination of hardware or hardware and computer software in combination with the elements and algorithm steps of the various examples described in the embodiments disclosed herein. Whether a function is implemented in hardware or computer software to drive hardware depends on the specific application and design constraints of the solution. A person skilled in the art can use different methods for implementing the described functions for each particular application, but such implementation should not be considered to be beyond the scope of the present invention.
  • the embodiments of the present invention may divide the function modules of the terminal device, the network device, and the like according to the foregoing method.
  • each function module may be divided according to each function, or two or more functions may be integrated into one processing module.
  • the above integrated modules can be implemented in the form of hardware or in the form of software functional modules. Implementation. It should be noted that the division of the module in the embodiment of the present invention is schematic, and is only a logical function division, and the actual implementation may have another division manner.
  • FIG. 7 shows a possible structural diagram of the terminal device involved in the above embodiment.
  • the terminal device 700 includes a processing module 702 and a communication module 703.
  • the processing module 702 is configured to perform control management on the actions of the terminal device.
  • the processing module 702 is configured to support the terminal device to perform processes 401 and 402 in FIG. 4, processes 501 and 502 in FIG. 5, and process 601 in FIG. 602, and/or other processes for the techniques described herein.
  • the communication module 703 is configured to support communication between the terminal device and other network entities, such as communication with the network device.
  • the terminal device may further include a storage module 701 for storing program codes and data of the terminal device.
  • the processing module 702 can be a processor or a controller, for example, a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), and an application-specific integrated circuit (Application-Specific). Integrated Circuit (ASIC), Field Programmable Gate Array (FPGA) or other programmable logic device, transistor logic device, hardware component, or any combination thereof. It is possible to implement or carry out the various illustrative logical blocks, modules and circuits described in connection with the present disclosure.
  • the processor may also be a combination of computing functions, for example, including one or more microprocessor combinations, a combination of a DSP and a microprocessor, and the like.
  • the communication module 703 can be a communication interface, a transceiver, a transceiver circuit, etc., wherein the communication interface is a collective name and can include one or more interfaces.
  • the storage module 701 can be a memory.
  • the terminal device When the processing module 702 is a processor, the communication module 703 is a communication interface, and the storage module 701 is a memory, the terminal device according to the embodiment of the present invention may be the terminal device shown in FIG.
  • the terminal device 800 includes a processor 802, a communication interface 803, and a memory 801.
  • the communication interface 803, the processor 802, and the memory 801 can be connected to each other through a communication connection.
  • FIG. 9 shows a possible structural diagram of the network device involved in the above embodiment.
  • the network device 900 includes a processing module 902 and a communication module 903.
  • the processing module 902 is configured to control and manage the actions of the network device.
  • the processing module 902 is configured to support the network device to perform the processes 403 and 404 in FIG. 4, the processes 503 and 504 in FIG. 5, the process 603 in FIG. 604, and/or other processes for the techniques described herein.
  • the communication module 903 is used to support communication between the network device and other network entities, such as communication with the terminal device.
  • the network device may further include a storage module 901 for storing program codes and data of the network device.
  • the processing module 902 can be a processor or a controller, and can be, for example, a central processing unit (CPU), a general-purpose processor, a digital signal processor (DSP), and an application-specific integrated circuit (Application-Specific). Integrated Circuit (ASIC), Field Programmable Gate Array (FPGA) or other programmable logic device, transistor logic device, hardware component, or any combination thereof. It is possible to implement or carry out the various illustrative logical blocks, modules and circuits described in connection with the present disclosure.
  • the processor may also be a combination of computing functions, for example, including one or more microprocessor combinations, a combination of a DSP and a microprocessor, and the like.
  • the communication module 903 can be a communication interface, a transceiver, a transceiver circuit, etc., wherein the communication interface is a collective name and can include one or more interfaces.
  • the storage module 901 can be a memory.
  • the processing module 902 is a processor
  • the communication module 903 is a communication interface
  • the storage module 901 is a memory
  • the network device involved in the embodiment of the present invention may be the network device shown in FIG.
  • the network device 1000 includes a processor 1002, a communication interface 1003, and a memory 1001.
  • the communication interface 1003, the processor 1002, and the memory 1001 may be connected to each other through a communication connection.
  • the steps of a method or algorithm described in connection with the present disclosure may be implemented in a hardware, or may be implemented by a processor executing software instructions.
  • the software instructions may be composed of corresponding software modules, which may be stored in a random access memory (RAM), a flash memory, a read only memory (ROM), an erasable programmable read only memory ( Erasable Programmable ROM (EPROM), electrically erasable programmable read only memory (EEPROM), registers, hard disk, removable hard disk, compact disk read only (CD-ROM) or any other form of storage medium known in the art.
  • An exemplary storage medium is coupled to the processor to enable the processor to read information from, and write information to, the storage medium.
  • the storage medium can also be an integral part of the processor.
  • the processor and the storage medium can be located in an ASIC. Additionally, the ASIC can be located in a core network interface device.
  • the processor and the storage medium may also exist as discrete components in the core network interface device.
  • the functions described herein can be implemented in hardware, software, firmware, or any combination thereof.
  • the functions may be stored in a computer readable medium or transmitted as one or more instructions or code on a computer readable medium.
  • Computer readable media includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one location to another.
  • a storage medium may be any available media that can be accessed by a general purpose or special purpose computer.

Abstract

本发明实施例涉及发送及检测控制信息的方法、终端设备和网络设备,该方法包括:终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,第一时间长度为第一上行控制信道对应的时间长度,第二时间长度为第二上行控制信道对应的时间长度,第一上行控制信道用于承载混合自动重传请求确认HARQ-ACK消息,第二上行控制信道用于承载调度请求SR;终端设备在承载控制信息的上行控制信道上,至少发送HARQ-ACK消息。本发明实施例中,用以在上行TTI长度可变时提高SR和HARQ-ACK消息的发送效率,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。

Description

发送及检测控制信息的方法、终端设备和网络设备 技术领域
本发明实施例涉及通信领域,尤其涉及发送及检测控制信息的方法、终端设备和网络设备。
背景技术
在长期演进(long termevolution,简称LTE)系统中,物理上行控制信道(physical uplink control channel,简称PUCCH)和物理上行共享信道(physical uplink shared channel,简称PUSCH)的传输时间间隔(transmission time interval,简称TTI)都是1ms。其中,PUCCH用于承载上行控制信息(uplink control information,简称UCI)。UCI则可以包括信道状态信息(channel state information,简称CSI),混合自动重传请求确认(hybrid automatic repeat request-acknowledgement,简称HARQ-ACK)消息和调度请求(scheduling request,简称SR)中的至少一种信息。其中,HARQ-ACK消息指示的是下行数据的接收状态。其中,PUCCH的格式(format)包括PUCCH format1/1a/1b/3/4/5等多种。对于PUCCH format 1/1a/1b/3,为了有效地利用资源,同一小区的多个终端设备可以在同一个资源块(resource block,简称RB)上发送各自的PUCCH。同一个RB上的多个PUCCH可以通过正交码分复用(orthogonal code division multiplexing,简称CDM)来实现:在频域上使用循环移位(cyclic shift),或者,在时域上使用正交序列(orthogonal sequence),或者,同时在频域上使用循环移位并在时域上使用正交序列,其中,循环移位又被称作相位旋转(phase rotation)。不同的PUCCH format可能使用不同的CDM技术可以如表1所示。
PUCCH format CDM
1/1a/1b 频域CDM+时域CDM
3/5 时域CDM
4 无CDM,一个用户占用多个RB
表1
对于PUCCH format 1/1a/1b,如图1所示,每个时隙的中间3个符号用于传输PUCCH解调参考信号(demodulation reference signal for PUCCH,简称PUCCH DMRS),而剩下的4个符号用于传输上行控制信息(uplink control information,简称UCI)。为了获得时域正交性,即为了获得时域CDM,每个时隙用于传输UCI的4个符号乘以一个4长的正交序列,每个时隙用于传输PUCCH DMRS的3个符号乘以一个3长的正交序列。
对于PUCCH format 3,如图2所示,每个时隙的第二个符号和第六个符号用于传输PUCCH DMRS,而剩下的5个符号用于传输UCI。为了获得时域正交性,每个时隙用于传输UCI的5个符号乘以一个5长的正交序列。需要说明的是,当第一子帧的最后一个符号用 于传输探测参考信号(sounding reference signal,简称SRS)时,对于PUCCH format1/1a/1b,第二个时隙只有3个用于传输UCI的符号乘以一个3长的正交序列;对于PUCCH format 3,第二个时隙只有4个用于传输UCI的符号乘以一个4长的正交序列。
长期演进(long term evolution,简称LTE)系统中,SR的资源是预先通过高层信令配置好的。
当SR和HARQ-ACK消息(承载在PUCCH格式1a或1b)在相同子帧中发送的时候,那么UE在SR所在的资源上发送HARQ-ACK消息,网络设备接收到之后就知道此时终端设备是在同时发送SR和HARQ-ACK消息;当只有SR发送的时候,那么终端设备就在SR的资源上发送NACK(代表调度请求SR);当只有HARQ-ACK消息发送的时候,那么终端设备在HARQ-ACK消息的资源上根据数据解调的正确与否发送HARQ-ACK消息。当SR和HARQ-ACK消息(承载在PUCCH格式3或4或5)在相同子帧中发送的时候,那么UE在HARQ-ACK消息的资源上发送SR。
由于无线通信系统中,时延(latency)是影响用户体验的重要因素之一。基于1ms传输时间间隔的传输机制已无法满足低时延业务的需求。为了降低时延,需要将PUSCH和PUCCH的TTI长度需要从1个子帧的时长缩减到1个时隙的时长甚至1个符号的时长。缩短TTI长度的PUSCH可以被称为短PUSCH(short PUSCH,简称sPUSCH),缩短TTI长度的PUCCH则可以被称为短PUCCH(short PUCCH,简称sPUCCH)。
由上可见,在TTI缩短的传输过程中,上行TTI的长度是可以动态变化的,当TTI长度缩短后就会出现PUCCH、PUSCH、sPUCCH和sPUSCH中的一个或多个的组合,那么如何发送SR和HARQ-ACK消息是一个亟待解决的问题。
发明内容
本发明实施例提供了发送及检测控制信息的方法、终端设备和网络设备,用以在上行TTI长度可变时提高SR和HARQ-ACK消息的发送效率,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。
第一方面,本发明实施例提供了一种发送控制信息的方法。终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载HARQ-ACK消息,所述第二上行控制信道用于承载SR;所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述HARQ-ACK消息。
本发明实施例中,采用本申请所提供的各技术方案,不但可以保持上行单载波特性,而且可以保证HARQ-ACK消息优先传输,让终端设备通过判断第一上行控制信道对应的第一时间长度与第二上行控制信道对应的第二时间长度之间的关系,例如是否相等或相同,决定发送承载控制信息的上行控制信道,第一时间长度和第二时间长度相同时,那么终端设备选择第二上行控制信道对应的资源发送HARQ-ACK消息和SR,第一时间长度和第二时间长度不相同时,那么终端设备选择第一上行控制信道对应的资源发送HARQ-ACK消息,从而避免终端设备同时发送TTI长度不同的两个信道,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。
在一种可能的实施方式中,所述第一时间长度和所述第二时间长度相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第二上行控制信道。应用此方案,第一时间长度和第二时间长度相同时,那么终端设备选择第二上行控制信道对应的资源发送HARQ-ACK消息和SR,使用第二上行控制信道相当于隐式通知网络设备终端设备发送SR,由于此时两个时间长度相同,所以终端设备在同一个信道中同时发送HARQ-ACK消息和SR,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息和SR的及时传输。
在一种可能的实施方式中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
可选的,所述终端设备根据第一时间长度和第二时间长度相同,确定所述承载控制信息的上行控制信道为所述第二上行控制信道。
可选的,所述终端设备根据第一时间长度小于或等于第二时间长度,确定所述承载控制信息的上行控制信道为所述第二上行控制信道。
应用此方案,终端设备选择第二上行控制信道对应的资源发送HARQ-ACK消息和SR,使用第二上行控制信道相当于隐式通知网络设备终端设备发送SR,由于此时两个时间长度相同或第一时间长度小于或等于第二时间长度,所以终端设备在同一个信道中同时发送HARQ-ACK消息和SR,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息和SR的及时传输,可以理解的是两个时间长度相同为最优方案,如果第一时间长度小于或等于第二时间长度,那么在第二上行控制信道上发送HARQ-ACK消息,会增加HARQ-ACK消息的传输时延。
在一种可能的实施方式中,所述第一时间长度和所述第二时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第一上行控制信道。应用此方案,第一时间长度和第二时间长度不相同时,那么终端设备选择第一上行控制信道对应的资源发送HARQ-ACK消息,而不使用第二上行控制信道对应的资源,从而避免了增加HARQ-ACK消息的传输时延的缺点,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息的及时传输。
在一种可能的实施方式中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
可选的,所述终端设备根据第一时间长度和第二时间长度不相同,确定所述承载控制信息的上行控制信道为所述第一上行控制信道。
可选的,所述终端设备根据第一时间长度小于或大于第二时间长度,确定所述承载控制信息的上行控制信道为所述第一上行控制信道。
应用此方案,那么终端设备选择第一上行控制信道对应的资源发送HARQ-ACK消息,而不使用第二上行控制信道对应的资源,从而避免了第一时间长度小于第二时间长度时增加HARQ-ACK消息的传输时延的缺点,从而避免了第一时间长度大于第二时间长度时在第二上行控制信道上会降低HARQ-ACK消息准确率的缺点,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息的及时准确传输。
在一种可能的实施方式中,所述终端设备丢弃所述SR,所述承载控制信息的上行控制信道为所述第一上行控制信道;或,所述终端设备丢弃所述SR,所述第一时间长度和所 述第二时间长度不相等。应用此方案,那么终端设备选择丢弃SR,终端设备选择第一上行控制信道对应的资源发送HARQ-ACK消息,而不适用第二上行控制信道对应的资源,避免情况1:同时发送两个上行信道可以避免破坏上行单载波特性的情况,避免情况2:第一时间长度小于第二时间长度时增加HARQ-ACK消息的传输时延的缺点,避免情况3:第一时间长度大于第二时间长度时在第二上行控制信道上会降低HARQ-ACK消息准确率的缺点,从而保证了HARQ-ACK消息的及时准确传输。
在一种可能的实施方式中,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
可选的,若HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求,则终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,终端在所述承载控制信息的上行控制信道上至少发送SR。
可选的,终端设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,终端设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
应用此方案,那么终端设备可以通过判断HARQ-ACK消息和SR之间的优先级关系,在第一时间长度和第二时间长度不相等时,从而在避免破坏上行单载波特性的情况下,保证发送更重要的信息。
在一种可能的实施方式中,所述终端设备确定承载控制信息的上行控制信道之前,还包括:所述终端设备确定所述第一上行控制信道的格式;和/或,所述终端设备确定所述第二上行控制信道的格式。
可选的,当所述终端设备确定第一上行控制信道的格式为1a或1b或2,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为sPUCCH格式1a,1b为sPUCCH格式1b,2为sPUCCH格式2,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述终端设备确定第一上行控制信道的格式为1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,当所述终端设备确定第二上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为sPUCCH格式1,1a为sPUCCH格式1a,1b为sPUCCH格式1b,3为sPUCCH格式3,4为sPUCCH格式4, 5为sPUCCH格式5。
可选的,当所述终端设备确定第二上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为PUCCH格式1,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
应用此方案,那么终端设备可以通过判断第一上行控制信道的格式,当第一上行控制信道和第二上行控制信道均为可进行上行信道选择的信道时,即HARQ-ACK消息可以在SR对应的上行控制信道上承载时,那么终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道,无需根据第一时间长度和第二时间长度的关系,通过此种方式,在特定的格式组合下HARQ-ACK消息可以在SR对应的上行控制信道上承载时,同时发送HARQ-ACK消息和SR,从而提高信息传输效率。
在一种可能的实施方式中,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。应用此方案,那么终端设备可以通过判断第一上行控制信道的格式,当第一上行控制信道和第二上行控制信道均为可进行上行信道选择的信道时,即HARQ-ACK消息可以在SR对应的上行控制信道上承载时,那么终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道,无需根据第一时间长度和第二时间长度的关系,通过此种方式,在特定的格式组合下HARQ-ACK消息可以在SR对应的上行控制信道上承载时,同时发送HARQ-ACK消息和SR,从而提高信息传输效率。
在一种可能的实施方式中,所述终端设备根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述终端设备根据高层信令确定所述第二时间长度。
可选的,第一时间长度是预先设定的,和/或,第二时间长度是预先设定的。
应用此方案,终端设备可以获知第一时间长度和第二时间长度。
在一种可能的实施方式中,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
可选的,第一上行控制信道和第二上行控制信道在时间上存在重叠时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的发射时间差相差小于或等于a us,a为预定义的值,a为非负整数。可选的,第一上行控制信道和第二上行控制信道的发射时间差相差小于或等于a us时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一 时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us,b为预定义的值,b为非负整数。可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
应用此方案,第一上行控制信道与第二上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则终端设备选择与当前时间单元重叠最多的上行控制信道为承载控制信息的上行控制信道。
可选的,所述第一上行控制信道和所述第二上行控制信道为在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为在同一个载波组的上行控制信道。
可选的,终端设备确定所述第一上行控制信道和所述第二上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第一上行控制信道和所述第二上行控制信道为不在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为不在同一个载波组的上行控制信道,那么终端设备可以同时发送第一上行控制信道和第二上行控制信道,不执行第一方面步骤,因为此时不破坏上行载波特性。
第二方面,本发明实施例提供了一种发送控制信息的方法。终端设备确定承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第三上行控制信道或第四上行控制信道,所述第三上行控制信道和所述第四上行控制信道用于承载SR,所述第三上行控制信道对应的时间长度为第三时间长度,所述第四上行控制信道对应的时间长度为第四时间长度,所述第三时间长度大于所述第四时间长度;所述终端设备在所述承载控制信息的上行控制信道上,发送所述SR。
本发明实施例中,采用本申请所提供的各技术方案,不但可以保持上行单载波特性,而且可以保证选择合适承载的SR的信道,从而在提高SR正确传输的概率。
在一种可能的实施方式中,所述终端设备根据所述承载控制信息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道。
可选的,所述终端设备确定较短的时间长度的上行控制信道,作为承载控制信息的上行控制信道。
可选的,所述终端设备确定较长的时间长度的上行控制信道,作为承载控制信息的上行控制信道。
可选的,所述终端设备根据高层信令或预先定义的规则,所述承载控制信息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道。
应用此方案,终端设备可以根据自身需要或网络设备高层信令通知,选择一个合适承载的SR的信道,从而在提高SR正确传输的概率。
在一种可能的实施方式中,所述终端设备确定承载控制信息的上行控制信道之前,还包括:所述终端设备根据最近一次的下行传输对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度;或,所述终端设备根据承载HARQ-ACK消息的上行控制 信道对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度。应用此方案,终端设备可以根据最新一次的下行传输或HARQ-ACK消息的上行控制信道,明确当前合适承载的SR的信道,从而在提高SR正确传输的概率。
在一种可能的实施方式中,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道与除所述第三上行控制信道以外的上行信道在时间上没有重叠;或,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第三上行控制信道所在的时间单元之前的X个时间单元内没有下行传输或所述第四上行控制信道所在的时间单元之前的Y个时间单元内没有下行传输。应用此方案,终端设备判断此时没有其他上行控制信道同时发送,或很长时间没有下行传输,所述终端设备确定时间较短的上行控制信道为承载控制信息的上行控制信道。
在一种可能的实施方式中,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道的至少一部分或全部与所述第三上行控制信道在时间上重叠。应用此方案,第三上行控制信道与第四上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则终端设备选择与当前时间单元重叠最多的上行控制信道为承载控制信息的上行控制信道。
可选的,所述第三上行控制信道和所述第四上行控制信道为在同一个载波的上行控制信道,或所述第三上行控制信道和所述第四上行控制信道为在同一个载波组的上行控制信道。
可选的,终端设备确定所述第三上行控制信道和所述第四上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第三上行控制信道和所述第四上行控制信道为不在同一个载波的上行控制信道,或所述第三上行控制信道和所述第四上行控制信道为不在同一个载波组的上行控制信道,那么终端设备可以同时发送第三上行控制信道和第四上行控制信道,不执行第二方面步骤,因为此时不破坏上行载波特性。
第三方面,本发明实施例提供了一种检测控制信息的方法。网络设备根据第一时间长度和第二时间长度之间的关系,确定被所述网络设备检测的承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道中的至少一个,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载HARQ-ACK消息,所述第二上行控制信道用于承载SR;所述网络设备检测所述承载控制信息的上行控制信道,所述控制信息至少包括所述HARQ-ACK消息。
本发明实施例中,采用本申请所提供的各技术方案,让网络设备通过判断第一上行控制信道对应的第一时间长度与第二上行控制信道对应的第二时间长度之间的关系,例如是否相等或相同,决定被网络设备检测的承载控制信息的上行控制信道,第一时间长度和第二时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输。第一时间长度和第二时间长度不相同时,那么确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本。
在一种可能的实施方式中,所述第一时间长度和所述第二时间长度相等,所述网络 设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。应用此方案,第一时间长度和第二时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输。
在一种可能的实施方式中,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
可选的,所述网络设备根据第一时间长度和第二时间长度相同,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。
可选的,所述网络设备根据第一时间长度小于或等于第二时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。
应用此方案,网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输,可以理解的是两个时间长度相同为最优方案,如果第一时间长度小于或等于第二时间长度,那么在第二上行控制信道上接收HARQ-ACK消息,会增加HARQ-ACK消息的传输时延。
在一种可能的实施方式中,所述第一时间长度和所述第二时间长度不相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道。
可选的,所述网络设备根据第一时间长度和第二时间长度不相同,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道。
可选的,所述网络设备根据第一时间长度小于或大于第二时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道。
应用此方案,第一时间长度和第二时间长度不相同时,那么确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,而不检测第二上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了HARQ-ACK消息的及时传输。
在一种可能的实施方式中,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
应用此方案,那么网络设备选择第一上行控制信道对应的资源接收HARQ-ACK消息,而不使用第二上行控制信道对应的资源,从而避免了第一时间长度小于第二时间长度时增加HARQ-ACK消息的传输时延的缺点,从而避免了第一时间长度大于第二时间长度时在第二上行控制信道上会降低HARQ-ACK消息准确率的缺点,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息的及时准确传输。
在一种可能的实施方式中,所述网络设备不检测所述第二上行控制信道,所述第一时间长度和所述第二时间长度不相等。那么确定被所述网络设备检测的承载控制信息的上 行控制信道为第一上行控制信道,而不检测第二上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了HARQ-ACK消息的及时传输。
在一种可能的实施方式中,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
可选的,若HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求,则网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,网络设备在所述承载控制信息的上行控制信道上至少接收SR。
可选的,网络设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,网络设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
应用此方案,那么网络设备可以通过判断HARQ-ACK消息和SR之间的优先级关系,在第一时间长度和第二时间长度不相等时,确定被网络设备检测的承载控制信息的上行控制信道,从而在避免破坏上行单载波特性的情况下,保证接收更重要的信息。
在一种可能的实施方式中,所述网络设备确定被所述网络设备检测的承载控制信息的上行控制信道之前,还包括:所述网络设备确定所述第一上行控制信道的格式;和/或,所述网络设备确定所述第二上行控制信道的格式。
可选的,当所述网络设备确定第一上行控制信道的格式为1a或1b或2,则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道;当所述网络设备确定第一上行控制信道的格式为3或4或5,则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为sPUCCH格式1a,1b为sPUCCH格式1b,2为sPUCCH格式2,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述网络设备确定第一上行控制信道的格式为1a或1b,则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道;当所述网络设备确定第一上行控制信道的格式为3或4或5,则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,当所述网络设备确定第一上行控制信道的格式为1或1a或1b,则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道;当所述网络设备确定第一上行控制信道的格式为3或4或5,则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为sPUCCH格式1,1a为sPUCCH格式1a,1b为sPUCCH格式1b,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述网络设备确定第一上行控制信道的格式为1或1a或1b,则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息 的上行控制信道;当所述网络设备确定第一上行控制信道的格式为3或4或5,则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为PUCCH格式1,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
应用此方案,那么网络设备可以通过判断第一上行控制信道的格式,当第一上行控制信道和第二上行控制信道均为可进行上行信道选择的信道时,即HARQ-ACK消息可以在SR对应的上行控制信道上承载时,那么网络设备则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,无需根据第一时间长度和第二时间长度的关系,通过此种方式,在特定的格式组合下HARQ-ACK消息可以在SR对应的上行控制信道上承载时,检测第一上行控制信道和第二上行控制信道,从而提高信息传输效率。
在一种可能的实施方式中,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。应用此方案,那么网络设备可以通过判断第一上行控制信道的格式,当第一上行控制信道和第二上行控制信道均为可进行上行信道选择的信道时,即HARQ-ACK消息可以在SR对应的上行控制信道上承载时,那么网络设备则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,无需根据第一时间长度和第二时间长度的关系,通过此种方式,在特定的格式组合下HARQ-ACK消息可以在SR对应的上行控制信道上承载时,检测第一上行控制信道和第二上行控制信道,其他格式下只检测第一上行控制信道,从而提高检测效率。
在一种可能的实施方式中,所述网络设备根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述网络设备根据高层信令确定所述第二时间长度。
可选的,第一时间长度是预先设定的,和/或,第二时间长度是预先设定的。
应用此方案,网络设备可以获知第一时间长度和第二时间长度。
在一种可能的实施方式中,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
可选的,第一上行控制信道和第二上行控制信道在时间上存在重叠时,所述网络设备则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的发射时间差相差小于或等于a us,a为预定义的值,a为非负整数。可选的,第一上行控制信道和第二上行控制信道的发射时间差相差小于或等于a us时,所述网络设备则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信 道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us,b为预定义的值,b为非负整数。可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us时,所述网络设备则执行所述网络设备根据第一时间长度和第二时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
应用此方案,第一上行控制信道与第二上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则网络设备选择与当前时间单元重叠最多的上行控制信道为被网络设备检测的承载控制信息的上行控制信道。
可选的,所述第一上行控制信道和所述第二上行控制信道为在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为在同一个载波组的上行控制信道。
可选的,网络设备确定所述第一上行控制信道和所述第二上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第一上行控制信道和所述第二上行控制信道为不在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为不在同一个载波组的上行控制信道,那么网络设备直接确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道。
第四方面,本发明实施例提供了一种检测控制信息的方法。网络设备确定被所述网络设备检测的承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第三上行控制信道和第四上行控制信道中的至少一个,所述第三上行控制信道和所述第四上行控制信道用于承载SR,所述第三上行控制信道对应的时间长度为第三时间长度,所述第四上行控制信道对应的时间长度为第四时间长度,所述第三时间长度大于所述第四时间长度;所述网络设备检测所述承载控制信息的上行控制信道,所述控制信息包括所述SR。
本发明实施例中,采用本申请所提供的各技术方案,不但可以保持上行单载波特性,而且可以保证选择合适被网络设备检测的承载的SR的信道,从而在提高SR正确传输的概率。
在一种可能的实施方式中,所述网络设备根据所述承载控制信息的上行控制信道对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道。
可选的,所述网络设备确定较短的时间长度的上行控制信道,作为被所述网络设备检测的承载控制信息的上行控制信道。
可选的,所述网络设备确定较长的时间长度的上行控制信道,作为被所述网络设备检测的承载控制信息的上行控制信道。
可选的,所述网络设备根据高层信令或预先定义的规则,所述承载控制信息的上行控制信道对应的时间长度,确定被所述网络设备检测的所述承载控制信息的上行控制信道。
应用此方案,网络设备可以根据预先定义或网络设备高层信令通知,确定所述被所述网络设备检测的承载控制信息的上行控制信道,从而可以减少网络设备检测次数。
在一种可能的实施方式中,所述网络设备确定被所述网络设备检测的承载控制信息 的上行控制信道之前,还包括:所述网络设备根据最近一次的下行传输对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道对应的时间长度;或,所述网络设备根据承载HARQ-ACK消息的上行控制信道对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道对应的时间长度。应用此方案,网络设备可以根据最新一次的下行传输或HARQ-ACK消息的上行控制信道,明确当前合适被所述网络设备检测的承载的SR的信道,从而在提高SR正确传输的概率。
在一种可能的实施方式中,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道与除所述第三上行控制信道以外的上行信道在时间上没有重叠;或,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第三上行控制信道所在的时间单元之前的X个时间单元内没有下行传输或所述第四上行控制信道所在的时间单元之前的Y个时间单元内没有下行传输。应用此方案,网络设备判断此时没有其他上行控制信道同时发送,或很长时间没有下行传输,所述网络设备确定时间较短的上行控制信道为被所述网络设备检测的承载控制信息的上行控制信道,从而可以减少网络设备检测次数。
在一种可能的实施方式中,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道的至少一部分或全部与所述第三上行控制信道在时间上重叠。应用此方案,第三上行控制信道与第四上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则网络设备选择与当前时间单元重叠最多的上行控制信道为被所述网络设备检测的承载控制信息的上行控制信道。
可选的,所述第三上行控制信道和所述第四上行控制信道为在同一个载波的上行控制信道,或所述第三上行控制信道和所述第四上行控制信道为在同一个载波组的上行控制信道。
可选的,网络设备确定所述第三上行控制信道和所述第四上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第三上行控制信道和所述第四上行控制信道为不在同一个载波的上行控制信道,或所述第三上行控制信道和所述第四上行控制信道为不在同一个载波组的上行控制信道,那么网络设备直接确定被所述网络设备检测的承载控制信息的上行控制信道为第三上行控制信道和第四上行控制信道。
第五方面,本发明实施例提供了一种发送控制信息的方法。终端设备根据第五时间长度和第六时间长度之间的关系,确定承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,所述第五时间长度为所述第五上行控制信道对应的时间长度,所述第六时间长度为所述第六上行控制信道对应的时间长度,所述第五上行控制信道用于承载HARQ-ACK消息,所述第六上行控制信道用于承载SR;所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述SR。
本发明实施例中,采用本申请所提供的各技术方案,不但可以保持上行单载波特性,而且可以保证SR优先传输,让终端设备通过判断第五上行控制信道对应的第五时间长度与第六上行控制信道对应的第六时间长度之间的关系,例如是否相等或相同,决定发送承载控制信息的上行控制信道,第五时间长度和第六时间长度相同时,那么终端设备选择第五上行控制信道对应的资源发送HARQ-ACK消息和SR,第五时间长度和第六时间长度不相 同时,那么终端设备选择第六上行控制信道对应的资源发送SR,从而避免终端设备同时发送TTI长度不同的两个信道,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。
在一种可能的实施方式中,所述第五时间长度和所述第六时间长度相等,所述终端设备确定承载控制信息的上行控制信道为所述第六上行控制信道。应用此方案,第五时间长度和第六时间长度相同时,那么终端设备选择第六上行控制信道对应的资源发送HARQ-ACK消息和SR,使用第六上行控制信道相当于隐式通知网络设备终端设备发送SR,由于此时两个时间长度相同,所以终端设备在同一个信道中同时发送HARQ-ACK消息和SR,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息和SR的及时传输。
在一种可能的实施方式中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。
可选的,所述终端设备根据第五时间长度和第六时间长度相同,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
可选的,所述终端设备根据第五时间长度小于或等于第六时间长度,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
应用此方案,终端设备选择第六上行控制信道对应的资源发送HARQ-ACK消息和SR,使用第六上行控制信道相当于隐式通知网络设备终端设备发送SR,由于此时两个时间长度相同或第五时间长度小于或等于第六时间长度,所以终端设备在同一个信道中同时发送HARQ-ACK消息和SR,在不破坏上行单载波特性的情况下,保证了HARQ-ACK消息和SR的及时传输,可以理解的是两个时间长度相同为最优方案,如果第五时间长度小于或等于第六时间长度,那么在第六上行控制信道上发送HARQ-ACK消息,会增加HARQ-ACK消息的传输时延。
在一种可能的实施方式中,所述第五时间长度和所述第六时间长度不相等,承载控制信息的上行控制信道为第六上行控制信道。应用此方案,第五时间长度和第六时间长度不相同时,那么终端设备选择第六上行控制信道对应的资源发送SR,而不使用第五上行控制信道对应的资源,从而避免了增加SR的传输时延的缺点,在不破坏上行单载波特性的情况下,保证了SR的及时传输。
在一种可能的实施方式中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。
可选的,所述终端设备根据第五时间长度和第六时间长度不相同,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
可选的,所述终端设备根据第五时间长度小于或大于第六时间长度,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
应用此方案,那么终端设备选择第六上行控制信道对应的资源发送SR,而不使用第五上行控制信道对应的资源,从而避免了第六时间长度小于第五时间长度时增加SR的传输时延的缺点,从而避免了第六时间长度大于第五时间长度时在第五上行控制信道上会降低SR准确率的缺点,在不破坏上行单载波特性的情况下,保证了SR的及时准确传输。
在一种可能的实施方式中,所述终端设备丢弃所述HARQ-ACK消息,所述承载控制信 息的上行控制信道为第六上行控制信道;或,所述终端设备丢弃所述HARQ-ACK消息,所述第五时间长度和所述第六时间长度不相等。应用此方案,那么终端设备选择丢弃HARQ-ACK消息,终端设备选择第六上行控制信道对应的资源发送SR,而不使用第五上行控制信道对应的资源,避免情况1:同时发送两个上行信道可以避免破坏上行单载波特性的情况,避免情况2:第六时间长度小于第五时间长度时增加SR的传输时延的缺点,避免情况3:第六时间长度大于第五时间长度时在第五上行控制信道上会降低SR准确率的缺点,从而保证了SR的及时准确传输。
在一种可能的实施方式中,所述HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求。
可选的,若HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求,则终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,终端在所述承载控制信息的上行控制信道上至少发送SR。
可选的,终端设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,终端设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
应用此方案,那么终端设备可以通过判断HARQ-ACK消息和SR之间的优先级关系,在第五时间长度和第六时间长度不相等时,从而在避免破坏上行单载波特性的情况下,保证发送更重要的信息。
在一种可能的实施方式中,所述终端设备确定承载控制信息的上行控制信道之前,还包括:所述终端设备确定所述HARQ-ACK消息对应的业务优先级;和/或,所述终端设备确定所述SR对应的业务优先级。
在一种可能的实施方式中,所述第五上行控制信道与所述第六上行控制信道在时间上存在重叠。
可选的,第五上行控制信道和第六上行控制信道在时间上存在重叠时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us,c为预定义的值,c为非负整数。可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us,d为预定义的值,d为非负整数。可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长 度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
应用此方案,第五上行控制信道与第六上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则终端设备选择与当前时间单元重叠最多的上行控制信道为承载控制信息的上行控制信道。
可选的,所述第五上行控制信道和所述第六上行控制信道为在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为在同一个载波组的上行控制信道。
可选的,终端设备确定所述第五上行控制信道和所述第六上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第五上行控制信道和所述第六上行控制信道为不在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为不在同一个载波组的上行控制信道,那么终端设备可以同时发送第五上行控制信道和第六上行控制信道,不执行第五方面步骤,因为此时不破坏上行载波特性。
第六方面,本发明实施例提供了一种检测控制信息的方法。网络设备根据第五时间长度和第六时间长度之间的关系,确定被所述网络设备检测的承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道中的至少一个,所述第五时间长度为所述第五上行控制信道对应的时间长度,所述第六时间长度为所述第六上行控制信道对应的时间长度,所述第五上行控制信道用于承载HARQ-ACK消息,所述第六上行控制信道用于承载SR;所述网络设备检测所述承载控制信息的上行控制信道,所述控制信息至少包括所述SR。
本发明实施例中,采用本申请所提供的各技术方案,让网络设备通过判断第五上行控制信道对应的第五时间长度与第六上行控制信道对应的第六时间长度之间的关系,例如是否相等或相同,决定被网络设备检测的承载控制信息的上行控制信道,第五时间长度和第六时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输。第五时间长度和第六时间长度不相同时,那么确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道,从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本。
在一种可能的实施方式中,所述第五时间长度和所述第六时间长度相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。应用此方案,第五时间长度和第六时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道,网络设备要盲检测两个上行控制信道,从而保证了HARQ-ACK消息和SR的及时传输。
在一种可能的实施方式中,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第六上行控制信道。
可选的,所述网络设备根据第五时间长度和第六时间长度相同,确定被网络设备检 测的承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。
可选的,所述网络设备根据第五时间长度小于或等于第六时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。
应用此方案,网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输,可以理解的是两个时间长度相同为最优方案,如果第五时间长度小于或等于第六时间长度,那么在第六上行控制信道上接收HARQ-ACK消息,会增加HARQ-ACK消息的传输时延。
在一种可能的实施方式中,所述第五时间长度和所述第六时间长度不相等,所述网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道。
可选的,所述网络设备根据第五时间长度和第六时间长度不相同,确定被网络设备检测的承载控制信息的上行控制信道为所述第六上行控制信道。
可选的,所述网络设备根据第五时间长度小于或大于第六时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第六上行控制信道。
应用此方案,第五时间长度和第六时间长度不相同时,那么确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道,而不检测第五上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了SR的及时传输。
在一种可能的实施方式中,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。
应用此方案,那么网络设备选择第六上行控制信道对应的资源接收SR,而不使用第五上行控制信道对应的资源,从而避免了第六时间长度小于第五时间长度时增加SR的传输时延的缺点,从而避免了第六时间长度大于第五时间长度时在第五上行控制信道上会降低SR准确率的缺点,在不破坏上行单载波特性的情况下,保证了SR的及时准确传输。
在一种可能的实施方式中,所述网络设备不检测所述第五上行控制信道,所述第五时间长度和所述第六时间长度不相等。那么确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道,而不检测第五上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了SR的及时传输。
在一种可能的实施方式中,所述HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求。
可选的,若HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求,则网络设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,终端在所述承载控制信息的上行控制信道上至少发送SR。
可选的,网络设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,网络设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
应用此方案,那么网络设备可以通过判断HARQ-ACK消息和SR之间的优先级关系,在第五时间长度和第六时间长度不相等时,从而在避免破坏上行单载波特性的情况下,保证发送更重要的信息。
在一种可能的实施方式中,所网络设备确定被所述网络设备检测的承载控制信息的上行控制信道之前,还包括:所述网络设备确定所述HARQ-ACK消息对应的业务优先级;和/或,所述网络设备确定所述SR对应的业务优先级。
在一种可能的实施方式中,所述第五上行控制信道与所述第六上行控制信道在时间上存在重叠。
可选的,第五上行控制信道和第六上行控制信道在时间上存在重叠时,所述网络设备则执行所述网络设备根据第五时间长度和第六时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us,c为预定义的值,c为非负整数。可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us时,所述网络设备则执行所述网络设备根据第五时间长度和第六时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us,d为预定义的值,d为非负整数。可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us时,所述网络设备则执行所述网络设备根据第五时间长度和第六时间长度的关系,确定被网络设备检测的承载控制信息的上行控制信道,否则执行所述网络设备直接确定被网络设备检测的承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
应用此方案,第五上行控制信道与第六上行控制信道在时间上存在重叠才可以执行上行控制信道的选择,否则网络设备选择与当前时间单元重叠最多的上行控制信道为承载控制信息的上行控制信道。
可选的,所述第五上行控制信道和所述第六上行控制信道为在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为在同一个载波组的上行控制信道。
可选的,网络设备确定所述第五上行控制信道和所述第六上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第五上行控制信道和所述第六上行控制信道为不在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为不在同一个载波组的上行控制信道,那么网络设备直接确定被所述网络设备检测的承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道。
又一方面,本发明实施例提供了一种终端设备,该终端设备可以实现上述方法示例 中终端设备所执行的功能,所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个上述功能相应的模块。
在一种可能的设计中,该终端设备的结构中包括处理器和通信接口,该处理器被配置为支持该终端设备执行上述方法中相应的功能。该通信接口用于支持该终端设备与网络设备或其他网元之间的通信。该终端设备还可以包括存储器,该存储器用于与处理器耦合,其保存该终端设备必要的程序指令和数据。
又一方面,本发明实施例提供了一种网络设备,该网络设备可以实现上述方法实施例中网络设备所执行的功能,所述功能可以通过硬件实现,也可以通过硬件执行相应的软件实现。所述硬件或软件包括一个或多个上述功能相应的模块。
在一种可能的设计中,该网络设备的结构中包括处理器和通信接口,该处理器被配置为支持该网络设备执行上述方法中相应的功能。该通信接口用于支持该网络设备与终端设备或其他网元之间的通信。该网络设备还可以包括存储器,该存储器用于与处理器耦合,其保存该网络设备必要的程序指令和数据。
又一方面,本发明实施例提供了一种通信系统,该系统包括上述方面所述的终端设备和网络设备。
再一方面,本发明实施例提供了一种计算机存储介质,用于储存为上述终端设备所用的计算机软件指令,其包含用于执行上述各方面所设计的程序。
再一方面,本发明实施例提供了一种计算机存储介质,用于储存为上述网络设备所用的计算机软件指令,其包含用于执行上述各方面所设计的程序。
附图说明
图1为PUCCH format 1/1a/1b格式示意图;
图2为PUCCH format 3格式示意图;
图3为本发明实施例提出的方案的一种应用场景示意图;
图4为本发明实施例提供的一种发送及检测控制信息的方法通信示意图;
图5为本发明实施例提供的另一种发送及检测控制信息的方法通信示意图;
图6为本发明实施例提供的又一种发送及检测控制信息的方法通信示意图;
图7为本发明实施例提供的一种终端设备结构示意图;
图8为本发明实施例提供的另一种终端设备结构示意图;
图9为本发明实施例提供的一种网络设备结构示意图;
图10为本发明实施例提供的另一种网络设备结构示意图。
具体实施方式
为使本发明实施例的目的、技术方案和优点更加清楚,下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行描述。
本发明实施例提供了一种发送控制信息的方法及检测控制信息的方法,该方法可以应用于无线通信系统,例如:全球移动通信(global system of mobile communication,GSM)系统,码分多址(code division multiple access,CDMA)系统,宽带码分多址(wideband code division multiple access wireless,WCDMA)系统,通用分组无线业务(general packet radio service,GPRS)系统,通用移动通信系统(universal mobile telecommunications system,UMTS),尤其用于LTE系统及其演进系统,5G无线通信系统。
图3示出了可以应用本发明实施例提出的方案的一种应用场景,场景中包括网络设备301,处在网络设备301覆盖范围内并与网络设备301进行通信的终端设备302和终端设备303;其中,网络设备301是LTE系统的基站,终端设备302和303是对应的LTE系统的终端设备,网络设备301和终端设备302均为支持短TTI传输的设备,终端设备303为不支持短TTI传输的设备。网络设备301可以分别使用短TTI或正常的1ms TTI和终端设备302进行通信。网络设备301可以使用正常的1ms TTI和终端设备303进行通信。
本领域技术人员可以了解,图3所示的应用场景仅为对本发明实施例应用场景的举例说明,而不为对本发明实施例应用场景的限定。
本发明实施例中,主要涉及两类网元,一类为网络设备,一类为终端设备。上述网络设备可以但不限于为基站。这两类网元可以工作在许可频段或免许可频段。
在介绍具体实施例之前,先对本发明实施例中涉及到的网络设备、小区、载波、终端设备等概念进行一些简单说明。
在本发明实施例中,无论是许可频段,还是免许可频段,都可以包括一个或多个载波。许可频段和非许可频段进行载波聚合,可以包括许可频段包括的一个或多个载波与非许可频段包括的一个或多个载波进行载波聚合。
本发明实施例中,提到的小区可以是基站对应的小区,小区可以属于宏基站,也可以属于小小区(small cell)对应的基站,这里的小小区可以包括:城市小区(Metro cell)、微小区(Micro cell)、微微小区(Pico cell)、毫微微小区(Femto cell)等,这些小小区具有覆盖范围小、发射功率低的特点,适用于提供高速率的数据传输服务。
LTE系统中的载波上可以同时有多个小区同频工作,在某些特殊场景下,也可以认为LTE系统中的载波与小区的概念等同。例如在载波聚合(Carrier Aggregation,CA)场景下,当为UE配置辅载波时,会同时携带辅载波的载波索引和工作在该辅载波的辅小区的小区标识(Cell Indentify,Cell ID),在这种情况下,可以认为载波与小区的概念等同,比如UE接入一个载波和接入一个小区是等同的。
本发明实施例中提到的终端设备包括终端设备(user equipment,UE)、移动台(mobile station,MS)、移动终端(mobile terminal)等,该终端设备可以经无线接入网(radio access network,RAN)与一个或多个核心网进行通信。例如,终端设备可以是移动电话(或称为“蜂窝”电话)、具有移动终端的计算机等,终端设备还可以是便携式、袖珍式、手持式、计算机内置的或者车载的移动装置以及未来5G网络中的终端设备,它们与无线接入网交换语音或数据。终端设备还可以包括中继(Relay),终端设备还可以包括NR(new generation)新一代无线通信系统中的终端设备,和基站可以进行数据通信的设备都可以看为终端设备,本发明实施例中将以一般意义上的UE来介绍。
另外,本发明实施例中提到的网络设备包括长期演进(Long Term Evolution,LTE)系统或者授权辅助接入长期演进(Authorized auxiliary access long-term evolution,LAA-LTE)系统中的演进型基站(Evolutional Node B,简称可以为eNB或e-NodeB)、宏基站、微基站(也称为“小基站”)、微微基站、接入站点(Access Point,AP)或传输站点(Transmission Point,TP),或NR系统中的gNodeB(new generation Node B,新一代基站)等。
1.时域
在本发明实施例中,网络设备和终端设备用于传输上行控制信道的资源在时域上可以划分为多个时间单元。
并且,在本发明实施例中,该多个时间单元可以是连续的,也可以是某些相邻的时间单元之间设有预设的间隔,本发明实施例并未特别限定。
在本发明实施例中,一个时间单元的长度可以任意设定,本发明实施例并未特别限定。
例如,1个时间单元可以包括一个或多个子帧。
或者,1个时间单元可以包括一个或多个时隙。
或者,1个时间单元可以包括一个或多个迷你时隙。
或者,1个时间单元可以包括一个或多个符号。
或者,1个时间单元可以包括一个或多个传输时间间隔(Transmission Time Interval,“TTI”)。
或者,1个时间单元可以包括一个或多个短传输时间间隔(short Transmission Time Interval,“sTTI”)。
或者,1个时间单元可以对应一个时间模式,如第一时间模式为2个符号或3个符号的传输时间间隔,第二模式为7符号的传输时间间隔。
其中,迷你时隙包括一个或多个符号,迷你时隙小于等于时隙,这里的时隙可以是60kHz子载波间隔的系统中的迷你时隙,也可以是15kHz子载波间隔的系统中的迷你时隙,本发明实施例不做限制。
其中,时隙包括一个或多个符号,这里的时隙可以是60kHz子载波间隔的系统中的时隙,也可以是15kHz子载波间隔的系统中的时隙,本发明实施例不做限制。
其中,TTI是目前通信系统(例如,LTE系统)中的普遍使用的参数,是指在无线链路中调度数据传输的调度单位。在现有技术中,通常认为1TTI=1ms。即,一个TTI为一个子帧(subframe)或者说,两个时隙(slot)的大小,它是无线资源管理(调度等)所管辖时间的基本单位。
在通信网络中,时延是一个关键的绩效指标,同时也影响着用户的使用体验。随着通讯协议的发展,对时延影响最明显的物理层的调度间隔也越来越小,在最初的WCDMA中,调度间隔是10ms,高速分组接入(High-Speed Packet Access,“HSPA”)中调度间隔缩短到2ms,长期演进(Long Term Evolution,LTE)中时间间隔(即,TTI)缩短到1ms。
小时延的业务需求导致物理层需要引入更短的TTI帧结构,以进一步缩短调度间隔,提高用户体验。例如,LTE系统中TTI长度可以从1ms缩短为1符号(symbol)到1时隙(包括7个符号)之间。上述提及的符号可以是LTE系统中的正交频分复用(Orthogonal  Frequency Division Multiplexing,“OFDM”)符号或单载波频分多址(Single Carrier-Frequency Division Multiple Access,“SC-FDMA”)符号,还可以是其他通信系统中的符号。又例如,5G通信系统中传输单元长度也小于或等于1ms。
LTE系统在基于长度为1ms的TTI的数据传输中,一般情况下数据传输的来回时间(Round-Trip Time,“RTT”)为8ms。假设,和现有长度为1ms的TTI的调度相比,处理时间是等比例缩减的,即仍然遵循现有的RTT时延。那么,当基于长度为0.5ms的sTTI的数据传输中,数据传输的RTT为4ms,相对于基于长度为1ms的TTI的数据传输,时延能够缩短一半,从而提高用户体验。
长度小于1ms的TTI可以称为sTTI。例如,LTE系统中,sTTI的长度可以为1~7个符号中任意一种长度,或者,sTTI长度也可以是1~7个符号中至少2种不同长度的组合,例如1ms内包含6个sTTI,各sTTI长度可以分别是3个符号、2个符号、2个符号、2个符号、2个符号、3个符号,或者,1ms内包含4个sTTI,各sTTI长度可以分别是3个符号、4个符号、3个符号、4个符号,各sTTI长度还可以是其他不同长度的组合。
并且,上行的sTTI长度可以和下行的sTTI长度相同,例如上行的sTTI长度和下行的sTTI长度均为2个符号。
或者,上行的sTTI长度可以长于下行的sTTI长度,例如上行的sTTI长度为7个符号,下行的sTTI长度为2个符号。
再或者,上行的sTTI长度可以短于下行的sTTI长度,例如上行的sTTI长度为4个符号,下行的sTTI长度为1个子帧。
TTI长度小于1个子帧或1ms的数据包称为短TTI数据包。短TTI数据传输在频域上,可连续分布,也可非连续分布。需要说明的是,考虑到后向兼容性,系统中可能同时存在基于长度为1ms的TTI的数据传输和基于sTTI的数据传输的情况。
在本发明实施例中,可以将现有技术(例如LTE系统)规定的(例如,长度为1ms或长度大于1ms的)TTI和sTTI统称为TTI,并且,在本发明实施例中,TTI的长度可以根据实际需要进行变更。
应理解,以上列举的时间单元的结构仅为示例性说明,本发明实施例并未特别限定,可以根据实际需要对时间单元的结构进行任意变更,例如,对于不支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)的LTE系统而言,1个时间单元可以为1个子帧(Subframe)。再例如,对于支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)的LTE系统而言,1个时间单元可以包括1个sTTI,或者说,1个时间单元可以包括1个时隙(Slot),1个时间单元可以包括一个或多个(例如,小于7的正整数个或小于6的正整数个)符号;1个时间单元也可以为1个子帧。
需要说明的是,在本发明实施例中,时间单元用于信息传输的长度(或者说,信息传输时长)可以是1ms,也可以小于1ms。或者说,结合上述描述,即使对于不支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)的LTE系统而言,当时间单元用子帧表示时,该时间单元内用于下行信息传输的长度可以是1ms,也可以小于1ms,同样地,该时间单元内用于上行信息传输的长度可以是1ms,也可以小于1ms。
为了便于理解和说明,作为示例而非限定,以下,以一个时间单元包括一个sTTI,一个sTTI包括两个符号的情况为例,对本发明实施例的参考信号的传输过程进行详细说 明。
并且,在本发明实施例中,网络设备和终端设备用于传输信息的资源在时域上可以划分为多个时间段,每个时间段包括一个或多个时间单元。
作为示例而非限定,在本发明实施例中,一个时间段可以是1ms或10ms。在本发明实施例中,一个时间段可以包括例如6个时间单元或2个时间单元。
2.频域
在本发明实施例中,网络设备和终端设备用于传输上行控制信道的资源在频域上可以划分为多个频域单元。
并且,在本发明实施例中,该多个频域单元可以是连续的,也可以是某些相邻的频域单元之间设有预设的间隔,本发明实施例并未特别限定。例如预设的间隔为1,或3,或5,或1+2y,y为整数。
在本发明实施例中,一个频域单元的大小可以任意设定,本发明实施例并未特别限定,例如,一个频域单元可以包括一个或多个子载波。一个子载波在频域上为15k赫兹,或者15k赫兹的整数倍。
3.码域
在本发明实施例中,网络设备和终端设备用于传输上行控制信道的资源在码域上可以划分为多个循环移位序列和/或正交序列。
其中,在一个频域单元和时间单元上,循环移位序列的数量取值是0~11。
在本发明实施例中,在同一个频域单元和时间单元上,不同的循环移位序列和/或正交序列可对应不同的上行控制信道。
4.sPUCCH格式
在本发明实施例中,sPUCCH的格式为1,1a,1b,2,3,4,5中的至少一个。
本发明实施例中,sPUCCH的格式为1,1a,1b,2中的至少一个时,sPUCCH的格式是基于解调参考信号DMRS解调,调制符号乘积在一个循环移位序列,这个格式的sPUCCH所在的时间单元为2个符号或3个符号或1个时隙。可以理解的是,当sPUCCH的格式是基于参考信号解调,调制符号乘积在一个循环移位序列时,那么可以将这个sPUCCH称为sPUCCH的格式1,或sPUCCH的格式1a,或sPUCCH的格式1b,或sPUCCH的格式2。
本发明实施例中,sPUCCH的格式为3,4,5中的至少一个时,sPUCCH的格式是基于解调参考信号DMRS解调,调制符号乘积在一个或多个资源元素RE上,而不是乘积在循环移位序列上,这个格式的sPUCCH所在的时间单元为2个符号或3个符号或1个时隙。可以理解的是,当sPUCCH的格式是基于解调参考信号DMRS解调,调制符号乘积在一个或多个资源元素RE上,而不是乘积在循环移位序列上时,那么可以将这个sPUCCH称为sPUCCH的格式3,或sPUCCH的格式4,或sPUCCH的格式5。
5.PUCCH格式
在本发明实施例中,PUCCH的格式为1,1a,1b,3,4,5中的至少一个,和LTE-A系统的定义PUCCH格式一致,和背景技术中已经介绍,这里不再赘述。
6.HARQ-ACK消息,包括肯定应答消息(Acknowledge,ACK),否定应答消息(Negative Acknowledge,NACK),非连续发送(Discontinuous Transmission,DTX)中的至少一种。
本发明实施例中,上行控制信道还可以称为承载上行控制信道的资源,或,承载控 制信息的上行数据信道的资源,PUCCH的资源,或sPUCCH的资源,或sPUSCH的资源,其中,资源可以是时域,频域,码域中的至少一个,该资源可以用于承载上行控制信道,或用于承载PUCCH,或用于承载sPUCCH。
图4为本发明实施例提供的一种发送及检测控制信息的方法通信示意图。该方法可以基于图3所示的应用场景,该方法基于的前提可以确定为终端设备在当前时间单元上可以用于承载SR的上行控制信道仅对应一个时间长度,和/或,用于承载HARQ-ACK消息的上行控制信道与用于承载SR的上行控制信道在时间上存在重叠,和/或,用于承载HARQ-ACK消息的上行控制信道的格式为sPUCCH的格式1,或sPUCCH的格式1a,或sPUCCH的格式1b,或sPUCCH的格式2,PUCCH的格式1,或PUCCH的格式1a,或PUCCH的格式1b,和/或,HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。该终端设备可以为图3所示应用场景中的终端设备302,终端设备302既支持1msTTI(1个子帧),也支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)。参照图4,该方法包括:
步骤401,终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道。
本发明实施例中,所述承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载HARQ-ACK消息,所述第二上行控制信道用于承载SR。
其中,上述第一上行控制信道和上述第二上行控制信道两个信道的区分可以是时域,频域,码域中的一个或多个。
可选的,第一上行控制信道为PUCCH,第二上行控制信道为sPUCCH或sPUSCH。其中,第一时间长度为PUCCH对应的时间长度,例如第一时间长度为1ms,或1子帧;第二时间长度为sPUCCH或sPUSCH对应的时间长度,例如第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,第一上行控制信道为sPUCCH或sPUSCH,第二上行控制信道为PUCCH。其中,第一时间长度为sPUCCH或sPUSCH对应的时间长度,例如第一时间长度为2个符号,或3个符号,或7个符号,或1个时隙;第二时间长度为PUCCH对应的时间长度,例如第二时间长度为1ms,或1个子帧。
可选的,第一上行控制信道为PUCCH,第二上行控制信道为PUCCH。其中,第一时间长度为PUCCH对应的时间长度,第二时间长度为PUCCH对应的时间长度,例如第一时间长度和第二时间长度为1ms,或1个子帧。
可选的,第一上行控制信道为sPUCCH或sPUSCH,第二上行控制信道为sPUCCH或sPUSCH。其中,第一时间长度为sPUCCH或sPUSCH对应的时间长度,第二时间长度为sPUCCH或sPUSCH对应的时间长度,例如第一时间长度和第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,终端设备确定所述第一上行控制信道用于承载HARQ-ACK消息。可选的,终端设备根据待传输HARQ-ACK消息的比特数,确定第一上行控制信道的格式。例如,当第 一上行控制信道为PUCCH时,若待传输HARQ-ACK消息的比特数小于或等于2,那么第一上行控制信道为PUCCH 1a或PUCCH 1b,若待传输HARQ-ACK消息的比特数大于2且小于等于4,那么第一上行控制信道为PUCCH 1b,若待传输HARQ-ACK消息的比特数大于4且小于等于22,那么第一上行控制信道为PUCCH 3,当待传输HARQ-ACK消息的比特数大于22bit时,那么第一上行控制信道为PUCCH 4或PUCCH 5。又例如,当第一上行控制信道为sPUCCH时,若待传输HARQ-ACK消息的比特数小于或等于2,那么第一上行控制信道为sPUCCH 1或sPUCCH 1a或sPUCCH 1b或sPUCCH 2,若待传输HARQ-ACK消息的比特数大于2,那么第一上行控制信道为或sPUCCH 3或sPUCCH 4或sPUCCH 5。
所述第一上行控制信道用于承载HARQ-ACK消息。终端设备根据待传输HARQ-ACK消息的比特数,确定第一上行控制信道的格式。
可选的,终端设备确定所述第二上行控制信道用于承载SR。可选的,终端设备根据第二时间长度,确定第二上行控制信道的格式。例如,当第二上行控制信道为PUCCH时,那么第一上行控制信道为PUCCH 1。又例如,当第二上行控制信道为sPUCCH时,那么第二上行控制信道为sPUCCH 1或sPUCCH 1a或sPUCCH 1b或sPUCCH 2。
所述第一时间长度为第一上行控制信道所在的时域资源的时间长度。所述第二时间长度为第二上行控制信道所在的时域资源的时间长度。
在一个示例中,所述第一时间长度和所述第二时间长度相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第二上行控制信道。例如,第一上行控制信道和第二上行控制信道均为PUCCH,并且所述第一时间长度和所述第二时间长度相等,均为1ms或1个子帧;或第一上行控制信道和第二上行控制信道均为sPUCCH,并且所述第一时间长度和所述第二时间长度相等,例如,第一时间长度和第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙;或第一上行控制信道为sPUSCH和第二上行控制信道为sPUCCH,并且所述第一时间长度和所述第二时间长度相等,例如,第一时间长度和第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙;或第一上行控制信道为sPUCCH和第二上行控制信道为sPUSCH,并且所述第一时间长度和所述第二时间长度相等,例如,第一时间长度和第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,所述终端设备根据第一时间长度小于或等于第二时间长度,确定所述承载控制信息的上行控制信道为所述第二上行控制信道。
在另一个示例中,所述第一时间长度和所述第二时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第一上行控制信道。例如,第一上行控制信道为PUCCH和第二上行控制信道为sPUSCH或sPUCCH,并且所述第一时间长度为1ms,所述第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述第一时间长度和所述第二时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述PUCCH;或,第一上行控制信道为sPUSCH或sPUCCH和第二上行控制信道为PUCCH,并且所述第一时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述第二时间长度为1ms,所述第一时间长度和所述第二时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH或sPUCCH。
可选的,所述终端设备根据第一时间长度小于或大于第二时间长度,确定所述承载控制信息的上行控制信道为所述第一上行控制信道。
步骤402,终端设备在承载控制信息的上行控制信道上,至少发送HARQ-ACK消息。
在一个示例中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
例如,第一上行控制信道和第二上行控制信道均为PUCCH,此时所述第一时间长度和所述第二时间长度相等,例如,均为1ms或1个子帧时,则终端设备根据PUCCH格式1a或1b,生成用来承载HARQ-ACK消息和SR的第二上行控制信道,并通过第二上行控制信道的资源上发送该第二上行控制信道;或,第一上行控制信道和第二上行控制信道均为sPUCCH,并且所述第一时间长度和所述第二时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第二上行控制信道,并通过第二上行控制信道的资源上发送该第二上行控制信道;或,第一上行控制信道为sPUSCH、第二上行控制信道为sPUCCH,并且所述第一时间长度和所述第二时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第二上行控制信道,并通过第二上行控制信道的资源上发送该第二上行控制信道;或,第一上行控制信道为sPUCCH、第二上行控制信道为sPUSCH,并且所述第一时间长度和所述第二时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,终端设备生成sPUSCH,通过sPUSCH承载HARQ-ACK消息和SR。
又例如,第一上行控制信道为sPUSCH、第二上行控制信道为sPUCCH,并且所述第一时间长度和所述第二时间长度不相等时,例如,一个时间长度为2个符号,另一个为3个符号,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第二上行控制信道,并通过第二上行控制信道的资源上发送该第二上行控制信道;或,第一上行控制信道为sPUCCH、第二上行控制信道为sPUSCH,并且所述第一时间长度和所述第二时间长度不相等时,例如,一个时间长度为2个符号,另一个为3个符号,通过sPUSCH承载HARQ-ACK消息和SR。
在另一个示例中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。例如,第一上行控制信道为PUCCH、第二上行控制信道为sPUSCH或sPUCCH,所述第一时间长度和所述第二时间长度不相等时,例如所述第一时间长度为1ms或1个子帧、所述第二时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信道为所述PUCCH;或,第一上行控制信道为sPUSCH或sPUCCH、第二上行控制信道为PUCCH,所述第一时间长度和所述第二时间长度不相等时,例如所述第一时间长度为2个符号,或3个符号,或7个符号,或1个时隙、所述第二时间长度为1ms或1个子帧,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH或sPUCCH;或,第一上行控制信道为sPUSCH、第二上行控制信道为sPUCCH,所述第一时间长度和所述第二时间长度不相等时,例如第一时间长度为2个符号,或3个符号,所述第二时间长度为7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH;或,第一上行控制信道为sPUCCH、第二上行控制信道为sPUSCH,所述第一时间长度和所述第二时间长度不相等时,例如第一时间长度为2个符号,或3个符号,所述第二时间长度为7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信 道为所述sPUCCH。
在另一个示例中,所述终端设备丢弃所述SR,所述承载控制信息的上行控制信道为所述第一上行控制信道;或,所述终端设备丢弃所述SR,所述第一时间长度和所述第二时间长度不相等。例如,若待发送的控制信息包括HARQ-ACK消息和SR,所述承载控制信息的上行控制信道为所述第一上行控制信道,所述终端设备丢弃所述SR,通过第一上行控制信道承载HARQ-ACK消息;或,若待发送的控制信息包括HARQ-ACK消息和SR,所述第一时间长度和所述第二时间长度不相等,所述终端设备丢弃所述SR,仅发送HARQ-ACK消息。
可选地,在步骤402之前,还可以判断是否满足如下条件:所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求,或所述HARQ-ACK消息对应的传输错误率低于或等于所述SR对应的传输错误率。当满足该条件时,执行步骤402。
可选的,在步骤402之前,先判断所述HARQ-ACK消息对应的业务优先级是否高于或等于所述SR对应的业务优先级,如果判断结果为是,则执行步骤402;如果判断结果为否,终端设备在承载控制信息的上行控制信道上,至少发送SR。
可选的,在步骤402之前,先判断所述HARQ-ACK消息对应的下行数据业务的时延要求是否高于或等于所述SR对应的上行数据业务的时延要求;如果判断结果为是,则执行步骤402;如果判断结果为否,终端设备在承载控制信息的上行控制信道上,至少发送SR。
可选的,在步骤402之前,先判断所述HARQ-ACK消息对应的传输错误率是否低于或等于所述SR对应的传输错误率;如果判断结果为是,则执行步骤402;如果判断结果为否,终端设备在承载控制信息的上行控制信道上,至少发送SR。
可选的,超可靠低延迟通信(Ultra-reliable and low latency communications,URLLC)的业务优先级高于增强的移动宽带(enhanced Mobile Broadband,eMBB)对应业务优先级。例如,HARQ-ACK消息对应的为URLLC业务,SR对应的为eMBB业务,那么HARQ-ACK消息对应的业务优先级高于SR对应的业务优先级。
需要说明的,所述下行数据业务的时延要求可以是下行数据业务对应的在预设时间内传输成功的时间值或预设时间范围的时延值,例如在1ms的时间内传输完成的时延要求是高于在2ms的时间内传输完成的时延要求,又例如,10ms的时延要求是低于2ms的时延要求。
需要说明的,所述传输错误率也可以是信息对应的传输错误率,例如错误率在10e-5的错误率低于10e-3的错误率。
可选的,终端设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,终端设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
可选地,在步骤401之前,还包括:所述终端设备确定所述第一上行控制信道的格式;和/或,所述终端设备确定所述第二上行控制信道的格式。
在一个示例中,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,所述第二上行控制信道的格式为1或1a或1b或2,或所 述第二上行控制信道的格式为1或1a或1b。其中,可以先配置第二上行控制信道的格式为1,最终同时发送HARQ-ACK消息和SR时,再在第二上行控制信道对应的资源上,生成格式为1a或1b或2的第二上行控制信道。
可选的,当所述终端设备确定第一上行控制信道的格式为1a或1b或2,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为sPUCCH格式1a,1b为sPUCCH格式1b,2为sPUCCH格式2,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述终端设备确定第一上行控制信道的格式为1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,当所述终端设备确定第二上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为sPUCCH格式1,1a为sPUCCH格式1a,1b为sPUCCH格式1b,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述终端设备确定第二上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第一上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道。例如,其中,1为PUCCH格式1,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,在步骤401之前,所述终端设备根据网络设备发送的高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述终端设备根据网络设备发送的高层信令确定所述第二时间长度。
可选的,所述第一时间长度与所述下行传输对应的时间长度相等,例如,下行传输对应的时间长度为2个符号,那么第一时间长度为2个符号。
可选的,第一时间长度是预先设定的,和/或,第二时间长度是预先设定的。
在一个示例中,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
可选的,第一上行控制信道和第二上行控制信道在时间上存在重叠时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的发射时间差相差小于或等于a us,a为预定义的值,a为非负整数。可选的,第一上行控制信道和第二上行控制信道的发射 时间差相差小于或等于a us时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us,b为预定义的值,b为非负整数。可选的,第一上行控制信道和第二上行控制信道的重叠时间大于或等于b us时,所述终端设备则执行所述终端设备根据第一时间长度和第二时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,无需根据第一时间长度和第二时间长度的关系。
在一个示例中,若第一上行控制信道的格式为1a或1b或2,则执行本发明实施例的方案;若第一上行控制信道的格式为3或4或5,则不执行本发明实施例的方案,所述终端设备在所述第一上行控制信道上,发送所述HARQ-ACK消息和所述SR。
可选的,所述第一上行控制信道和所述第二上行控制信道为在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为在同一个载波组的上行控制信道。
可选的,终端设备确定所述第一上行控制信道和所述第二上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第一上行控制信道和所述第二上行控制信道为不在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为不在同一个载波组的上行控制信道,那么终端设备可以同时发送第一上行控制信道和第二上行控制信道,不执行步骤401和402,因为此时不破坏上行载波特性。
需要说明的是,所述第一上行控制信道用于承载HARQ-ACK消息,所述第二上行控制信道用于承载SR。可理解为,所述第一上行控制信道是HARQ-ACK消息对应的上行控制信道,第二上行控制信道是SR对应的上行控制信道。若没有HARQ-ACK消息和SR需要在同一个时间段内发送时,那么终端设备就在第一上行控制信道上发送HARQ,或在第二上行控制信道上发送SR。若有HARQ-ACK消息和SR在同一个时间段内发送,满足在本发明实施例中的一个可选方案时,第二上行控制信道同时承载SR和HARQ-ACK消息,是通过所述HARQ-ACK消息在第二上行控制信道中发送并且第二上行信道的发送本身隐含表明终端设备此时发送SR。若有HARQ-ACK消息和SR在同一个时间段内发送,满足在本发明实施例中的一个可选方案时,第一上行控制信道同时承载SR和HARQ-ACK消息。因此,第一上行控制信道可以只传输HARQ-ACK消息,或同时传输HARQ-ACK信息和SR。第二上行控制信道可以只传输SR,或同时传输HARQ-ACK信息和SR。
可选的,第一上行控制信道可以是根据下行控制信息DCI指示的,也可以是根据承载下行控制信息的资源确定的,也可以是根据高层信令确定的。第二上行控制信道是预先定义,或高层信令通知的,或根据下行控制信息(Downlink Control Indicator,DCI)指示的。
本发明实施例中,不但可以保持上行单载波特性,而且可以保证HARQ-ACK消息优先传输,让终端设备通过判断第一上行控制信道对应的第一时间长度与第二上行控制信道对应的第二时间长度之间的关系,例如是否相等或相同,决定发送承载控制信息的上行控制 信道,第一时间长度和第二时间长度相同时,那么终端设备选择第二上行控制信道对应的资源发送HARQ-ACK消息和SR,第一时间长度和第二时间长度不相同时,那么终端设备选择第一上行控制信道对应的资源发送HARQ-ACK消息,从而避免终端设备同时发送TTI长度不同的两个信道,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。
步骤403,网络设备根据第一时间长度和第二时间长度之间的关系,确定被该网络设备检测的承载控制信息的上行控制信道。
所述承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道中的至少一个,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载HARQ-ACK消息,所述第二上行控制信道用于承载SR。
可选的,所述第一时间长度和所述第二时间长度相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。其中,所述第一时间长度和所述第二时间长度相等,待传信息中仅包括HARQ-ACK消息而不包括SR,则终端设备通过第一上行控制信道承载HARQ-ACK消息;待传信息中包括HARQ-ACK消息和SR,则终端设备通过第二上行控制信道承载HARQ-ACK消息和SR。为了覆盖上述两种情况,所述第一时间长度和所述第二时间长度相等,网络设备既要检测第一上行控制信道,也要检测第二上行控制信道。
可选的,所述第一时间长度和所述第二时间长度不相等,例如一个时间长度是2个符号,另一个时间长度是3个符号,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。其中,所述第一时间长度和所述第二时间长度相等,待传信息中仅包括HARQ-ACK消息而不包括SR,则终端设备通过第一上行控制信道承载HARQ-ACK消息;待传信息中包括HARQ-ACK消息和SR,则终端设备通过第二上行控制信道承载HARQ-ACK消息和SR。为了覆盖上述两种情况,所述第一时间长度和所述第二时间长度相等,网络设备既要检测第一上行控制信道,也要检测第二上行控制信道。
可选的,所述网络设备根据第一时间长度小于或等于第二时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。
在另一个示例中,所述第一时间长度和所述第二时间长度不相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道。其中,所述第一时间长度和所述第二时间长度不相等,终端设备通过第一上行控制信道承载HARQ-ACK消息,因此网络设备仅需检测第一上行控制信道,而不需要检测第二上行控制信道。
可选的,所述网络设备根据第一时间长度小于或大于第二时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第一上行控制信道。
那么确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,而不检测第二上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了HARQ-ACK消息的及时传输。
步骤404,网络设备检测承载控制信息的上行控制信道,控制信息至少包括HARQ-ACK消息。
可选的,步骤404之后,包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
可选的,步骤404之后,包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
可选的,所述网络设备不检测所述第二上行控制信道,所述第一时间长度和所述第二时间长度不相等。
可选的,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
可选的,步骤403之前,包括:所述网络设备确定所述第一上行控制信道的格式;和/或,所述网络设备确定所述第二上行控制信道的格式。
可选的,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。
可选的,所述网络设备根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述网络设备根据高层信令确定所述第二时间长度。网络设备还可以通过物理层DCI指示上述第一时间长度和/或第二时间长度。
可选的,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。若所述第一上行控制信道与所述第二上行控制信道在时间上不存在重叠,则不涉及信道选择的问题,这种情形与本方案无关,在此不做赘述。
可选的,所述第一上行控制信道和所述第二上行控制信道为在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为在同一个载波组的上行控制信道。
可选的,网络设备确定所述第一上行控制信道和所述第二上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第一上行控制信道和所述第二上行控制信道为不在同一个载波的上行控制信道,或所述第一上行控制信道和所述第二上行控制信道为不在同一个载波组的上行控制信道,那么网络设备直接确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道。
可选的,2个符号的时间长度与3个符号的时间长度可以认为是时间长度相等。
此外,步骤401和步骤402的执行主体为终端设备,这两个步骤的执行时机由终端设备控制;步骤403和步骤404的执行主体为网络设备,这两个步骤的执行时机由网络设备控制。因此步骤401、步骤402、步骤403和步骤404执行顺序,本发明实施例不做具体限定,可以是终端设备先执行步骤401、步骤402,网络设备后执行步骤403、步骤404,还可以是网络设备先执行步骤403、步骤404,终端设备后执行步骤401、步骤402,也可以是网络设备执行步骤403、步骤404的同时,终端设备执行步骤401、步骤402。
本发明实施例中,采用本申请所提供的各技术方案,让网络设备通过判断第一上行控制信道对应的第一时间长度与第二上行控制信道对应的第二时间长度之间的关系,例如是否相等或相同,决定被网络设备检测的承载控制信息的上行控制信道,第一时间长度和第二时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输。第一时间长度和第二时间长度不相同时,那么确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道,从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本。
图5为本发明实施例提供的另一种发送及检测控制信息的方法通信示意图。该方法可以基于图3所示的应用场景,该方法基于的前提可以为终端设备用于发送SR的上行控制信道至少具有两个不同的时间长度或有两个具有不同时间长度的上行控制信道资源,例如,用于发送SR的上行控制信道有两个,分别为PUCCH和sPUCCH,这两个时间长度分别为TTI,例如1ms或1个子帧,和sTTI,例如2个符号,或3个符号,或7个符号,或1个时隙。该终端设备可以为图3所示应用场景中的终端设备302,终端设备302既支持1msTTI(1个子帧),也支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)。参照图5,该方法包括:
步骤501,终端设备确定承载控制信息的上行控制信道。
其中,所述承载控制信息的上行控制信道为第三上行控制信道或第四上行控制信道,所述第三上行控制信道和所述第四上行控制信道用于承载SR,所述第三上行控制信道对应的时间长度为第三时间长度,所述第四上行控制信道对应的时间长度为第四时间长度,所述第三时间长度大于所述第四时间长度。例如,第三上行控制信道为PUCCH,第四上行控制信道为sPUCCH;或,第三上行控制信道为PUCCH,第四上行控制信道为PUCCH;或,第三上行控制信道为sPUCCH,第四上行控制信道为sPUCCH。PUCCH对应的时间长度为1ms或1个子帧(记为TTI),sPUCCH对应的时间长度为2个符号,或3个符号,或7个符号,或1个时隙(记为sTTI)。
在一个示例中,所述终端设备根据所述承载控制信息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道。例如,终端设备先确定承载控制信息的上行控制信道对应的时间长度为1ms或一个子帧,然后确定承载控制信息的上行控制信道为PUCCH。
可选的,所述终端设备确定较短的时间长度的上行控制信道,作为承载控制信息的上行控制信道。例如第三时间长度大于第四时间长度,那么所述终端设备确定第四上行控制信道为承载控制信息的上行控制信道。
可选的,所述终端设备确定较长的时间长度的上行控制信道,作为承载控制信息的上行控制信道。例如第三时间长度小于第四时间长度,那么所述终端设备确定第四上行控制信道为承载控制信息的上行控制信道。
可选的,所述终端设备根据高层信令或预先定义的规则,所述承载控制信息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道。
在一个示例中,步骤501之前,还包括:所述终端设备根据最近一次的下行传输对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度;例如,最近一次 的下行传输对应的时间长度为TTI,确定所述承载控制信息的上行控制信道对应的时间长度为TTI;或,所述终端设备根据承载HARQ-ACK消息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度为sTTI。例如,所述终端设备根据最近一次承载HARQ-ACK消息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度为sTTI。
需要说明的是,终端设备根据最近一次的下行传输对应的时间长度,或根据承载HARQ-ACK消息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道对应的时间长度。所述承载控制信息的上行控制信道对应的时间长度可以是最近一次的下行传输对应的时间长度,或者是承载HARQ-ACK消息的上行控制信道对应的时间长度;也可以是与最近一次的下行传输对应的时间长度不相等,或与承载HARQ-ACK消息的上行控制信道对应的时间长度不相等,例如,承载HARQ-ACK消息的上行控制信道对应的时间长度为2个符号,所述承载控制信息的上行控制信道对应的时间长度为3个符号。最近一次的下行传输对应的时间长度为2个符号,所述承载控制信息的上行控制信道对应的时间长度为3个符号。反之亦然。
可选的,2个符号的时间长度与3个符号的时间长度可以认为是时间长度相等。
在一个示例中,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道与除所述第三上行控制信道以外的上行信道在时间上没有重叠,也就是说用于承载SR的信道与用于承载HARQ-ACK消息的信道在时间上没有重叠;或,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第三上行控制信道所在的时间单元之前的X个时间单元内没有下行传输或所述第四上行控制信道所在的时间单元之前的Y个时间单元内没有下行传输。上述时间单元可以为TTI或sTTI。
在一个示例中,所述终端设备确定所述承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道的至少一部分或全部与所述第三上行控制信道在时间上重叠。本领域技术人员可以了解,如果第四上行控制信道与第三上行控制信道在时间上完全不重叠,则不涉及从这两个信道中选择一个信道的问题。
步骤502,终端设备在承载控制信息的上行控制信道上,发送SR。
本发明实施例中,可以假定当前不存在待发送的HARQ-ACK消息。
本发明实施例中,不但可以保持上行单载波特性,而且可以保证选择合适承载的SR的信道,从而在提高SR正确传输的概率。
步骤503,网络设备确定被该网络设备检测的承载控制信息的上行控制信道。
其中,所述承载控制信息的上行控制信道为第三上行控制信道和第四上行控制信道中的至少一个,所述第三上行控制信道和所述第四上行控制信道用于承载SR,所述第三上行控制信道对应的时间长度为第三时间长度,所述第四上行控制信道对应的时间长度为第四时间长度,所述第三时间长度大于所述第四时间长度。例如,第三上行控制信道为PUCCH,第三时间长度为TTI;第四上行控制信道为sPUCCH,第四时间长度为sTTI。
在一个示例中,所述网络设备根据所述承载控制信息的上行控制信道对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道。例如,网络设备先确定承载控制信息的上行控制信道对应的时间长度为TTI,然后确定被网络设备检测的承载 控制信息的上行控制信道PUCCH。
可选的,所述网络设备确定较短的时间长度的上行控制信道,作为承载控制信息的上行控制信道。例如第三时间长度大于第四时间长度,那么所述网络设备确定第四上行控制信道为承载控制信息的上行控制信道。
可选的,所述网络设备确定较长的时间长度的上行控制信道,作为承载控制信息的上行控制信道。例如第三时间长度大于第四时间长度,那么所述网络设备确定第三上行控制信道为承载控制信息的上行控制信道。
可选的,所述网络设备根据高层信令或预先定义的规则,所述承载控制信息的上行控制信道对应的时间长度,确定所述承载控制信息的上行控制信道。
在一个示例中,在步骤503之前,还包括:所述网络设备根据最近一次的下行传输对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道对应的时间长度,以便用于承载SR的上行控制信道对应的时间长度与最近一次的下行传输对应的时间长度相一致,例如,最近一次的下行传输对应的时间长度为TTI,则确定被网络设备检测的承载控制信息的上行控制信道对应的时间长度为TTI;或,所述网络设备根据承载HARQ-ACK消息的上行控制信道对应的时间长度,确定所述被所述网络设备检测的承载控制信息的上行控制信道对应的时间长度,以便用于承载SR的上行控制信道对应的时间长度与承载HARQ-ACK消息的上行控制信道对应的时间长度相一致,从而能够在终端设备通过承载SR的上行控制信道承载HARQ-ACK消息时,正确检测相应的上行控制信道。例如,若承载HARQ-ACK消息的上行控制信道对应的时间长度为sTTI,则确定承载SR的上行控制信道对应的时间长度为sTTI。
需要说明的是,网络设备根据最近一次的下行传输对应的时间长度,或根据承载HARQ-ACK消息的上行控制信道对应的时间长度,确定被网络设备检测的所述承载控制信息的上行控制信道对应的时间长度。所述承载控制信息的上行控制信道对应的时间长度可以是最近一次的下行传输对应的时间长度,或者是承载HARQ-ACK消息的上行控制信道对应的时间长度;也可以是与最近一次的下行传输对应的时间长度不相等,或与承载HARQ-ACK消息的上行控制信道对应的时间长度不相等,例如,承载HARQ-ACK消息的上行控制信道对应的时间长度为2个符号,所述承载控制信息的上行控制信道对应的时间长度为3个符号。最近一次的下行传输对应的时间长度为2个符号,所述承载控制信息的上行控制信道对应的时间长度为3个符号。反之亦然。
在一个示例中,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道与除所述第三上行控制信道以外的上行信道在时间上没有重叠,也就是说仅涉及第三上行控制信道和第四上行控制信道这两个控制信道的选择;或,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第三上行控制信道所在的时间单元之前的X个时间单元内没有下行传输或所述第四上行控制信道所在的时间单元之前的Y个时间单元内没有下行传输,也就是说,在没有下行传输的信道对应的时间长度作为参考时,选择时间长度较短的上行控制信道用于承载SR。
在一个示例中,所述网络设备确定所述被所述网络设备检测的承载控制信息的上行控制信道为所述第四上行控制信道,所述第四上行控制信道的至少一部分或全部与所述第 三上行控制信道在时间上重叠。本领域技术人员可以了解,若第四上行控制信道与所述第三上行控制信道在时间上完全不重叠,则不存在选择信道的问题。
步骤504,网络设备检测承载控制信息的上行控制信道,控制信息包括SR。
本发明实施例中,可以假定当前不存在待接收的HARQ-ACK消息。
本发明实施例中,不但可以保持上行单载波特性,而且可以保证选择合适被网络设备检测的承载的SR的信道,从而提高SR正确传输的概率。
图6为本发明实施例提供的又一种发送及检测控制信息的方法通信示意图。该方法基于的前提可以确定为SR为较重要的信息,和/或,终端设备在当前时间单元上可以用于承载SR的上行控制信道仅对应一个时间长度,和/或,用于承载HARQ-ACK消息的上行控制信道与用于承载SR的上行控制信道在时间上存在重叠,HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级或所述HARQ-ACK消息对应的下行数据业务的时延要求高于所述SR对应的上行数据业务的时延要求。该终端设备可以为图3所示应用场景中的终端设备302,终端设备302既支持1msTTI(1个子帧),也支持sTTI(2个符号,或3个符号,或7个符号,或1个时隙)。参照图6,该方法包括:
步骤601,终端设备根据第五时间长度和第六时间长度之间的关系,确定承载控制信息的上行控制信道。
其中,所述承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,所述第五时间长度为所述第五上行控制信道对应的时间长度,所述第六时间长度为所述第六上行控制信道对应的时间长度,所述第五上行控制信道用于承载HARQ-ACK消息,所述第六上行控制信道用于承载SR。
其中,上述第五上行控制信道和上述第六上行控制信道两个信道的区分可以是时域,频域,码域中的一个或多个。
可选的,第五上行控制信道为PUCCH,第六上行控制信道为sPUCCH或sPUSCH。其中,第五时间长度为PUCCH对应的时间长度,例如第五时间长度为1ms,或1子帧;第六时间长度为sPUCCH或sPUSCH对应的时间长度,例如第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,第五上行控制信道为sPUCCH或sPUSCH,第六上行控制信道为PUCCH。其中,第五时间长度为sPUCCH或sPUSCH对应的时间长度,例如第五时间长度为2个符号,或3个符号,或7个符号,或1个时隙;第六时间长度为PUCCH对应的时间长度,例如第六时间长度为1ms,或1个子帧。
可选的,第五上行控制信道为PUCCH,第六上行控制信道为PUCCH。其中,第五时间长度为PUCCH对应的时间长度,第六时间长度为PUCCH对应的时间长度,例如第五时间长度和第六时间长度为1ms,或1个子帧。
可选的,第五上行控制信道为sPUCCH或sPUSCH,第六上行控制信道为sPUCCH或sPUSCH。其中,第五时间长度为sPUCCH或sPUSCH对应的时间长度,第六时间长度为sPUCCH或sPUSCH对应的时间长度,例如第五时间长度和第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,终端设备确定所述第五上行控制信道用于承载HARQ-ACK消息。可选的,终端设备根据待传输HARQ-ACK消息的比特数,确定第五上行控制信道的格式。例如,当第 五上行控制信道为PUCCH时,若待传输HARQ-ACK消息的比特数小于或等于2,那么第五上行控制信道为PUCCH 1a或PUCCH 1b,若待传输HARQ-ACK消息的比特数大于2且小于等于4,那么第五上行控制信道为PUCCH 1b,若待传输HARQ-ACK消息的比特数大于4且小于等于22,那么第五上行控制信道为PUCCH 3,当待传输HARQ-ACK消息的比特数大于22bit时,那么第五上行控制信道为PUCCH 4或PUCCH 5。又例如,当第五上行控制信道为sPUCCH时,若待传输HARQ-ACK消息的比特数小于或等于2,那么第五上行控制信道为sPUCCH 1或sPUCCH 1a或sPUCCH 1b或sPUCCH 2,若待传输HARQ-ACK消息的比特数大于2,那么第五上行控制信道为或sPUCCH 3或sPUCCH 4或sPUCCH 5。
所述第五上行控制信道用于承载HARQ-ACK消息。终端设备根据待传输HARQ-ACK消息的比特数,确定第五上行控制信道的格式。
可选的,终端设备确定所述第六上行控制信道用于承载SR。可选的,终端设备根据第六时间长度,确定第六上行控制信道的格式。例如,当第六上行控制信道为PUCCH时,那么第六上行控制信道为PUCCH 1。又例如,当第六上行控制信道为sPUCCH时,那么第六上行控制信道为sPUCCH 1或sPUCCH 1a或sPUCCH 1b或sPUCCH 2。
所述第五时间长度为第五上行控制信道所在的时域资源的时间长度。所述第六时间长度为第六上行控制信道所在的时域资源的时间长度。
在一个示例中,所述第五时间长度和所述第六时间长度相等,所述终端设备确定承载控制信息的上行控制信道为所述第六上行控制信道。例如,第五上行控制信道和第六上行控制信道均为PUCCH,并且所述第五时间长度和所述第六时间长度相等,均为1ms或1个子帧;或第五上行控制信道和第六上行控制信道均为sPUCCH,并且所述第五时间长度和所述第六时间长度相等,例如,第五时间长度和第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙;或第五上行控制信道为sPUSCH和第六上行控制信道为sPUCCH,并且所述第五时间长度和所述第六时间长度相等,例如,第五时间长度和第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙;或第五上行控制信道为sPUCCH和第六上行控制信道为sPUSCH,并且所述第五时间长度和所述第六时间长度相等,例如,第五时间长度和第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙。
可选的,所述终端设备根据第五时间长度小于或等于第六时间长度,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
在另一个示例中,所述第五时间长度和所述第六时间长度不相等,终端设备确定承载控制信息的上行控制信道为第六上行控制信道。例如,第五上行控制信道为PUCCH和第六上行控制信道为sPUSCH或sPUCCH,并且所述第五时间长度为1ms,所述第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述第五时间长度和所述第六时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH或sPUCCH;或,第五上行控制信道为sPUSCH或sPUCCH和第六上行控制信道为PUCCH,并且所述第五时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述第六时间长度为1ms,所述第五时间长度和所述第六时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述PUCCH。
可选的,所述终端设备根据第五时间长度小于或大于第六时间长度,确定所述承载控制信息的上行控制信道为所述第六上行控制信道。
步骤602,终端设备在承载控制信息的上行控制信道上,至少发送SR。
在一个示例中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。
例如,第五上行控制信道和第六上行控制信道均为PUCCH,此时所述第五时间长度和所述第六时间长度相等,例如,均为1ms或1个子帧时,则终端设备根据PUCCH格式1a或1b,生成用来承载HARQ-ACK消息和SR的第六上行控制信道,并通过第六上行控制信道的资源上发送该第六上行控制信道;或,第五上行控制信道和第六上行控制信道均为sPUCCH,并且所述第五时间长度和所述第六时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第六上行控制信道,并通过第六上行控制信道的资源上发送该第六上行控制信道;或,第五上行控制信道为sPUSCH、第六上行控制信道为sPUCCH,并且所述第五时间长度和所述第六时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第六上行控制信道,并通过第六上行控制信道的资源上发送该第六上行控制信道;或,第五上行控制信道为sPUCCH、第六上行控制信道为sPUSCH,并且所述第五时间长度和所述第六时间长度相等时,例如,均为2个符号,或3个符号,或7个符号,或1个时隙,终端设备生成sPUSCH,通过sPUSCH承载HARQ-ACK消息和SR。
又例如,第五上行控制信道为sPUSCH、第六上行控制信道为sPUCCH,并且所述第五时间长度和所述第六时间长度不相等时,例如,一个时间长度为2个符号,另一个为3个符号,则终端设备根据sPUCCH格式1或1a或1b,生成用来承载HARQ-ACK消息和SR的第六上行控制信道,并通过第六上行控制信道的资源上发送该第六上行控制信道;或,第五上行控制信道为sPUCCH、第六上行控制信道为sPUSCH,并且所述第五时间长度和所述第六时间长度不相等时,例如,一个时间长度为2个符号,另一个为3个符号,通过sPUSCH承载HARQ-ACK消息和SR。
在一个示例中,所述终端设备在所述承载控制信息的上行控制信道上,发送所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。例如,第五上行控制信道为PUCCH、第六上行控制信道为sPUSCH或sPUCCH,所述第五时间长度和所述第六时间长度不相等时,例如所述第五时间长度为1ms或1个子帧、所述第六时间长度为2个符号,或3个符号,或7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH或sPUCCH;或,第五上行控制信道为sPUSCH或sPUCCH、第六上行控制信道为PUCCH,所述第五时间长度和所述第六时间长度不相等时,例如所述第五时间长度为2个符号,或3个符号,或7个符号,或1个时隙、所述第六时间长度为1ms或1个子帧,所述终端设备确定所述承载控制信息的上行控制信道为所述PUCCH;或,第五上行控制信道为sPUSCH、第六上行控制信道为sPUCCH,所述第五时间长度和所述第六时间长度不相等时,例如第五时间长度为2个符号,或3个符号,所述第六时间长度为7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUCCH;或,第五上行控制信道为sPUCCH、第六上行控制信道为sPUSCH,所述第五时间长度和所述第六时间长度不相等时,例如第五时间长度为2个符号,或3个符号,所述第六时间长度为7个符号,或1个时隙,所述终端设备确定所述承载控制信息的上行控制信道为所述sPUSCH。
在一个示例中,所述终端设备丢弃所述HARQ-ACK消息,所述承载控制信息的上行控制信道为第六上行控制信道;或,所述终端设备丢弃所述HARQ-ACK消息,所述第五时间长度和所述第六时间长度不相等。例如,若待发送的控制信息包括HARQ-ACK消息和SR,所述承载控制信息的上行控制信道为所述第六上行控制信道,所述终端设备丢弃所述HARQ-ACK消息,通过第六上行控制信道承载SR;或,若待发送的控制信息包括HARQ-ACK消息和SR,所述第五时间长度和所述第六时间长度不相等,所述终端设备丢弃所述HARQ-ACK消息,仅发送SR。
需要说明的是,所述第五上行控制信道用于承载HARQ-ACK消息,所述第六上行控制信道用于承载SR。可理解为,所述第五上行控制信道是HARQ-ACK消息对应的上行控制信道,第六上行控制信道是SR对应的上行控制信道。若没有HARQ-ACK消息和SR需要在同一个时间段内发送时,那么终端设备就在第五上行控制信道上发送HARQ,或在第六上行控制信道上发送SR。若有HARQ-ACK消息和SR在同一个时间段内发送,满足在本发明实施例中的一个可选方案时,第六上行控制信道同时承载SR和HARQ-ACK消息,是通过所述HARQ-ACK消息在第六上行控制信道中发送并且第六上行信道的发送本身隐含表明终端设备此时发送SR。若有HARQ-ACK消息和SR在同一个时间段内发送,满足在本发明实施例中的一个可选方案时,第五上行控制信道同时承载SR和HARQ-ACK消息。因此,第五上行控制信道可以只传输HARQ-ACK消息,或同时传输HARQ-ACK信息和SR。第六上行控制信道可以只传输SR,或同时传输HARQ-ACK信息和SR。
可选的,第五上行控制信道可以是根据下行控制信息DCI指示的,也可以是根据承载下行控制信息的资源确定的,也可以是根据高层信令确定的。第六上行控制信道是预先定义,或高层信令通知的,或根据下行控制信息(Downlink Control Indicator,DCI)指示的。
可选地,在步骤602之前,还可以判断是否满足如下条件:所述HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求。当满足该条件时,再执行步骤602。
可选的,在步骤602之前,先判断所述SR对应的业务优先级是否高于或等于所述HARQ-ACK消息对应的业务优先级,如果判断结果为是,则执行步骤402;如果判断结果为否,执行步骤602。
可选的,在步骤602之前,先判断所述HARQ-ACK消息对应的下行数据业务的时延要求是否高于或等于所述SR对应的上行数据业务的时延要求;如果判断结果为是,则执行步骤402;如果判断结果为否,执行步骤602。
可选地,在步骤602之前,还包括:所述终端设备确定所述HARQ-ACK消息对应的业务优先级;和/或,所述终端设备确定所述SR对应的业务优先级。
可选的,超可靠低延迟通信(Ultra-reliable and low latency communications,URLLC)的业务优先级高于增强的移动宽带(enhanced Mobile Broadband,eMBB)对应业务优先级。例如,SR对应的为URLLC业务,HARQ-ACK消息对应的为eMBB业务,那么SR对应的业务优先级高于HARQ-ACK消息对应的业务优先级。
需要说明的,所述下行数据业务的时延要求可以是下行数据业务对应的在预设时间 内传输成功的时间值,例如在2ms的时间内传输完成的要求是低于在1ms的时间内传输完成的要求,也可以是下行数据业务对应的传输准确率,例如错误率在10e-3的要求低于错误率在10e-5的要求。
可选的,终端设备确定所述HARQ-ACK消息对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求。
可选的,终端设备确定所述SR对应的业务优先级,或所述SR对应的下行数据业务的时延要求。
可选地,在步骤601之前,还包括:所述终端设备确定所述第一上行控制信道的格式;和/或,所述终端设备确定所述第二上行控制信道的格式。
在一个示例中,所述第五上行控制信道的格式为1a或1b或2,或所述第五上行控制信道的格式为1a或1b;和/或,所述第六上行控制信道的格式为1或1a或1b或2,或所述第六上行控制信道的格式为1或1a或1b。其中,可以先配置第六上行控制信道的格式为1,最终同时发送HARQ-ACK消息和SR时,再在第六上行控制信道对应的资源上,生成格式为1a或1b或2的第六上行控制信道。
可选的,当所述终端设备确定第五上行控制信道的格式为1a或1b或2,则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第五上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道。例如,其中,1a为sPUCCH格式1a,1b为sPUCCH格式1b,2为sPUCCH格式2,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述终端设备确定第五上行控制信道的格式为1a或1b,则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第五上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道。例如,其中,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,当所述终端设备确定第五上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第五上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道。例如,其中,1为sPUCCH格式1,1a为sPUCCH格式1a,1b为sPUCCH格式1b,3为sPUCCH格式3,4为sPUCCH格式4,5为sPUCCH格式5。
可选的,当所述终端设备确定第五上行控制信道的格式为1或1a或1b,则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道;当所述终端设备确定第五上行控制信道的格式为3或4或5,则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道。例如,其中,1为PUCCH格式1,1a为PUCCH格式1a,1b为PUCCH格式1b,3为PUCCH格式3,4为PUCCH格式4,5为PUCCH格式5。
可选的,在步骤601之前,所述终端设备根据网络设备发送的高层信令或下行传输对应的时间长度确定所述第五时间长度;和/或,所述终端设备根据网络设备发送的高层 信令确定所述第六时间长度。
可选的,所述第五时间长度与所述下行传输对应的时间长度相等,例如,下行传输对应的时间长度为2个符号,那么第五时间长度为2个符号。
可选的,第五时间长度是预先设定的,和/或,第六时间长度是预先设定的。
在一个示例中,所述第五上行控制信道与所述第六上行控制信道在时间上存在重叠。
可选的,第五上行控制信道和第六上行控制信道在时间上存在重叠时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us,c为预定义的值,c为非负整数。可选的,第五上行控制信道和第六上行控制信道的发射时间差相差小于或等于c us时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us,d为预定义的值,d为非负整数。可选的,第五上行控制信道和第六上行控制信道的重叠时间大于或等于d us时,所述终端设备则执行所述终端设备根据第五时间长度和第六时间长度的关系,确定承载控制信息的上行控制信道,否则执行所述终端设备直接确定承载控制信息的上行控制信道为第五上行控制信道或第六上行控制信道,无需根据第五时间长度和第六时间长度的关系。
在一个示例中,若第五上行控制信道的格式为1a或1b或2,则执行本发明实施例的方案;若第五上行控制信道的格式为3或4或5,则不执行本发明实施例的方案,所述终端设备在所述第五上行控制信道上,发送所述HARQ-ACK消息和所述SR。
可选的,所述第五上行控制信道和所述第六上行控制信道为在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为在同一个载波组的上行控制信道。
可选的,终端设备确定所述第五上行控制信道和所述第六上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第五上行控制信道和所述第六上行控制信道为不在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为不在同一个载波组的上行控制信道,那么终端设备可以同时发送第五上行控制信道和第六上行控制信道,不执行步骤601和602,因为此时不破坏上行载波特性。
本发明实施例中,不但可以保持上行单载波特性,而且可以保证SR优先传输,让终端设备通过判断第五上行控制信道对应的第五时间长度与第六上行控制信道对应的第六时间长度之间的关系,例如是否相等或相同,决定发送承载控制信息的上行控制信道,第五时间长度和第六时间长度相同时,那么终端设备选择第五上行控制信道对应的资源发送HARQ-ACK消息和SR,第五时间长度和第六时间长度不相同时,那么终端设备选择第六上行控制信道对应的资源发送SR,从而避免终端设备同时发送TTI长度不同的两个信道,避免破坏上行单载波特性,从而在降低终端设备成本的同时保证重要信息的正确传输。
步骤603,网络设备根据第五时间长度和第六时间长度之间的关系,确定被该网络设备检测的承载控制信息的上行控制信道。
其中,所述承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道中的至少一个,所述第五时间长度为所述第五上行控制信道对应的时间长度,所述第六时间长度为所述第六上行控制信道对应的时间长度,所述第五上行控制信道用于承载HARQ-ACK消息,所述第六上行控制信道用于承载SR。
可选地,所述第五时间长度和所述第六时间长度相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。其中,所述第五时间长度和所述第六时间长度相等,待传信息中仅包括HARQ-ACK消息而不包括SR,则终端设备通过第五上行控制信道承载HARQ-ACK消息;待传信息中包括HARQ-ACK消息和SR,则终端设备通过第六上行控制信道承载HARQ-ACK消息和SR。为了覆盖上述两种情况,所述第五时间长度和所述第六时间长度相等,网络设备既要检测第五上行控制信道,也要检测第六上行控制信道。
可选的,所述第五时间长度和所述第六时间长度不相等,例如一个时间长度是2个符号,另一个时间长度是3个符号,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。其中,所述第五时间长度和所述第六时间长度相等,待传信息中仅包括HARQ-ACK消息而不包括SR,则终端设备通过第五上行控制信道承载HARQ-ACK消息;待传信息中包括HARQ-ACK消息和SR,则终端设备通过第六上行控制信道承载HARQ-ACK消息和SR。为了覆盖上述两种情况,所述第五时间长度和所述第六时间长度相等,网络设备既要检测第五上行控制信道,也要检测第六上行控制信道。
可选的,所述网络设备根据第五时间长度小于或等于第六时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第五上行控制信道和所述第六上行控制信道。
在一个示例中,所述第五时间长度和所述第六时间长度不相等,所述网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道。其中,所述第五时间长度和所述第六时间长度不相等,终端设备通过第六上行控制信道承载SR,因此网络设备仅需检测第六上行控制信道,而不需要检测第五上行控制信道。
可选的,所述网络设备根据第五时间长度小于或大于第六时间长度,确定被网络设备检测的承载控制信息的上行控制信道为所述第六上行控制信道。
那么确定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道,而不检测第五上行控制信道从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本,保证了SR的及时传输。
步骤604,网络设备检测承载控制信息的上行控制信道,控制信息至少包括SR。
可选地,步骤604之后,包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第六上行控制信道。
可选地,步骤604之后,包括:所述网络设备在所述承载控制信息的上行控制信道上,接收所述SR,所述承载控制信息的上行控制信道为第六上行控制信道。
可选地,所述网络设备不检测所述第五控制信道,所述第五时间长度和所述第六时间长度不相等。
可选地,所述HARQ-ACK消息对应的业务优先级低于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求低于所述SR对应的上行数据业务的时延要求。
可选地,步骤603之前,包括:所述网络设备确定所述HARQ-ACK消息对应的业务优先级;和/或,所述网络设备确定所述SR对应的业务优先级。
可选的,步骤603之前,包括:所述网络设备确定所述第五上行控制信道的格式;和/或,所述网络设备确定所述第六上行控制信道的格式。
可选的,所述第五上行控制信道的格式为1a或1b或2,或所述第五上行控制信道的格式为1a或1b;和/或,所述第六上行控制信道的格式为1或1a或1b或2,或所述第六上行控制信道的格式为1或1a或1b。
可选的,所述网络设备根据高层信令或下行传输对应的时间长度确定所述第五时间长度;和/或,所述网络设备根据高层信令确定所述第六时间长度。网络设备还可以通过物理层DCI指示上述第五时间长度和/或第六时间长度。
可选地,所述第五上行控制信道与所述第六上行控制信道在时间上存在重叠。若所述第五上行控制信道与所述第六上行控制信道在时间上不存在重叠,则不涉及信道选择的问题,这种情形与本方案无关,在此不做赘述。
可选的,所述第五上行控制信道和所述第六上行控制信道为在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为在同一个载波组的上行控制信道。
可选的,网络设备确定所述第五上行控制信道和所述第六上行控制信道为在同一个载波或载波组的上行控制信道。需要说明的是,若所述第五上行控制信道和所述第六上行控制信道为不在同一个载波的上行控制信道,或所述第五上行控制信道和所述第六上行控制信道为不在同一个载波组的上行控制信道,那么网络设备直接确定被所述网络设备检测的承载控制信息的上行控制信道为第五上行控制信道和第六上行控制信道。
可选的,2个符号的时间长度与3个符号的时间长度可以认为是时间长度相等。
此外,步骤601和步骤602的执行主体为终端设备,这两个步骤的执行时机由终端设备控制;步骤603和步骤604的执行主体为网络设备,这两个步骤的执行时机由网络设备控制。因此步骤601、步骤602、步骤603和步骤604执行顺序,本发明实施例不做具体限定,可以是终端设备先执行步骤601、步骤602,网络设备后执行步骤603、步骤604,还可以是网络设备先执行步骤603、步骤604,终端设备后执行步骤601、步骤602,也可以是网络设备执行步骤603、步骤604的同时,终端设备执行步骤601、步骤602。
本发明实施例中,采用本申请所提供的各技术方案,让网络设备通过判断第五上行控制信道对应的第五时间长度与第六上行控制信道对应的第六时间长度之间的关系,例如是否相等或相同,决定被网络设备检测的承载控制信息的上行控制信道,第五时间长度和第六时间长度相同时,那么网络设备确定被所述网络设备检测的承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道,网络设备要盲检测两个上行控制信道从而保证了HARQ-ACK消息和SR的及时传输。第五时间长度和第六时间长度不相同时,那么确 定被所述网络设备检测的承载控制信息的上行控制信道为第六上行控制信道,从而避免网络设备同时检测TTI长度不同的两个信道,从而降低网络设备成本。
本发明实施例中,不但可以保持上行单载波特性,而且可以保证选择合适的被网络设备检测的承载的SR的信道,从而提高SR正确传输的概率。
下面基于两个具体的应用场景,对本发明实施例提供的发送及检测控制信息的方法进行说明。
第一种应用场景,终端设备用于发送SR的上行控制信道具有两个不同的时间长度。基于该应用场景,在一种可能的实施方式中,若一个时间段内存在对应短传输时间间隔物理上行控制信道的调度请求(记为sPUCCH-SR)或对应物理上行控制信道的调度请求(记为PUCCH-SR),当所述HARQ-ACK消息对应的PUCCH格式为1a或1b,或者sPUCCH格式为1或1a或1b,当所述HARQ-ACK消息对应的上行控制信道的时间长度和所述SR对应的上行控制信道的时间长度等长时,用SR对应的上行控制信道的资源传输所述SR和所述HARQ。
在一个示例中,当所述HARQ-ACK消息为对应短传输时间间隔物理上行控制信道的HARQ-ACK消息(记为sPUCCH-ACK)且所述SR为sPUCCH-SR时,通过所述sPUCCH-SR对应的上行控制信道的资源发送所述sPUCCH-ACK。
在一个示例中,该方法还包括:当所述HARQ-ACK消息对应的上行控制信道的时间长度和所述SR对应的上行控制信道的时间长度不等长时,不发送所述SR,通过所述HARQ-ACK消息对应的上行控制信道的资源上发送所述HARQ-ACK消息。
在一个示例中,当所述HARQ-ACK消息为对应传输时间间隔物理上行控制信道的HARQ-ACK消息(记为PUCCH-ACK)且所述SR为sPUCCH-SR时,不发送所述SR,通过所述PUCCH-ACK对应的上行控制信道的资源发送所述PUCCH-ACK;或者,当所述HARQ为sPUCCH-ACK且所述SR为PUCCH-SR时,不发送所述SR,通过所述sPUCCH-ACK对应的上行控制信道的资源发送所述sPUCCH-ACK。
在一个示例中,该方法还包括:若一个时间段内存在对应sPUCCH-SR或PUCCH-SR时,若HARQ的对应PUCCH格式为3或4或5,则通过所述HARQ对应上行控制信道的资源发送所述SR。
在一个示例中,该方法还包括:根据最近下行调度对应的时间长度选择SR资源。
在一个示例中,该方法还包括:当一个时间段内若没有下行调度,使用sPUCCH-SR的资源发送SR。
上述主要从各个网元之间交互的角度对本发明实施例的方案进行了介绍。可以理解的是,各个网元,例如终端设备,网络设备等为了实现上述功能,其包含了执行各个功能相应的硬件结构和/或软件模块。本领域技术人员应该很容易意识到,结合本文中所公开的实施例描述的各示例的单元及算法步骤,本发明能够以硬件或硬件和计算机软件的结合形式来实现。某个功能究竟以硬件还是计算机软件驱动硬件的方式来执行,取决于技术方案的特定应用和设计约束条件。专业技术人员可以对每个特定的应用来使用不同方法来实现所描述的功能,但是这种实现不应认为超出本发明的范围。
本发明实施例可以根据上述方法示例对终端设备、网络设备等进行功能模块的划分,例如,可以对应各个功能划分各个功能模块,也可以将两个或两个以上的功能集成在一个处理模块中。上述集成的模块既可以采用硬件的形式实现,也可以采用软件功能模块的形 式实现。需要说明的是,本发明实施例中对模块的划分是示意性的,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式。
在采用集成的模块的情况下,图7示出了上述实施例中所涉及的终端设备的一种可能的结构示意图。终端设备700包括:处理模块702和通信模块703。处理模块702用于对终端设备的动作进行控制管理,例如,处理模块702用于支持终端设备执行图4中的过程401和402,图5中的过程501和502,图6中的过程601和602,和/或用于本文所描述的技术的其它过程。通信模块703用于支持终端设备与其他网络实体的通信,例如与网络设备之间的通信。终端设备还可以包括存储模块701,用于存储终端设备的程序代码和数据。
其中,处理模块702可以是处理器或控制器,例如可以是中央处理器(Central Processing Unit,CPU),通用处理器,数字信号处理器(Digital Signal Processor,DSP),专用集成电路(Application-Specific Integrated Circuit,ASIC),现场可编程门阵列(Field Programmable Gate Array,FPGA)或者其他可编程逻辑器件、晶体管逻辑器件、硬件部件或者其任意组合。其可以实现或执行结合本发明公开内容所描述的各种示例性的逻辑方框,模块和电路。所述处理器也可以是实现计算功能的组合,例如包含一个或多个微处理器组合,DSP和微处理器的组合等等。通信模块703可以是通信接口、收发器、收发电路等,其中,通信接口是统称,可以包括一个或多个接口。存储模块701可以是存储器。
当处理模块702为处理器,通信模块703为通信接口,存储模块701为存储器时,本发明实施例所涉及的终端设备可以为图8所示的终端设备。
参阅图8所示,该终端设备800包括:处理器802、通信接口803、存储器801。其中,通信接口803、处理器802以及存储器801可以通过通信连接相互连接。
在采用集成的模块的情况下,图9示出了上述实施例中所涉及的网络设备的一种可能的结构示意图。网络设备900包括:处理模块902和通信模块903。处理模块902用于对网络设备的动作进行控制管理,例如,处理模块902用于支持网络设备执行图4中的过程403和404,图5中的过程503和504,图6中的过程603和604,和/或用于本文所描述的技术的其它过程。通信模块903用于支持网络设备与其他网络实体的通信,例如与终端设备之间的通信。网络设备还可以包括存储模块901,用于存储网络设备的程序代码和数据。
其中,处理模块902可以是处理器或控制器,例如可以是中央处理器(Central Processing Unit,CPU),通用处理器,数字信号处理器(Digital Signal Processor,DSP),专用集成电路(Application-Specific Integrated Circuit,ASIC),现场可编程门阵列(Field Programmable Gate Array,FPGA)或者其他可编程逻辑器件、晶体管逻辑器件、硬件部件或者其任意组合。其可以实现或执行结合本发明公开内容所描述的各种示例性的逻辑方框,模块和电路。所述处理器也可以是实现计算功能的组合,例如包含一个或多个微处理器组合,DSP和微处理器的组合等等。通信模块903可以是通信接口、收发器、收发电路等,其中,通信接口是统称,可以包括一个或多个接口。存储模块901可以是存储器。
当处理模块902为处理器,通信模块903为通信接口,存储模块901为存储器时, 本发明实施例所涉及的网络设备可以为图10所示的网络设备。
参阅图10所示,该网络设备1000包括:处理器1002、通信接口1003、存储器1001。其中,通信接口1003、处理器1002以及存储器1001可以通过通信连接相互连接。
结合本发明公开内容所描述的方法或者算法的步骤可以硬件的方式来实现,也可以是由处理器执行软件指令的方式来实现。软件指令可以由相应的软件模块组成,软件模块可以被存放于随机存取存储器(Random Access Memory,RAM)、闪存、只读存储器(Read Only Memory,ROM)、可擦除可编程只读存储器(Erasable Programmable ROM,EPROM)、电可擦可编程只读存储器(Electrically EPROM,EEPROM)、寄存器、硬盘、移动硬盘、只读光盘(CD-ROM)或者本领域熟知的任何其它形式的存储介质中。一种示例性的存储介质耦合至处理器,从而使处理器能够从该存储介质读取信息,且可向该存储介质写入信息。当然,存储介质也可以是处理器的组成部分。处理器和存储介质可以位于ASIC中。另外,该ASIC可以位于核心网接口设备中。当然,处理器和存储介质也可以作为分立组件存在于核心网接口设备中。
本领域技术人员应该可以意识到,在上述一个或多个示例中,本发明所描述的功能可以用硬件、软件、固件或它们的任意组合来实现。当使用软件实现时,可以将这些功能存储在计算机可读介质中或者作为计算机可读介质上的一个或多个指令或代码进行传输。计算机可读介质包括计算机存储介质和通信介质,其中通信介质包括便于从一个地方向另一个地方传送计算机程序的任何介质。存储介质可以是通用或专用计算机能够存取的任何可用介质。
以上所述的具体实施方式,对本发明的目的、技术方案和有益效果进行了进一步详细说明,所应理解的是,以上所述仅为本发明的具体实施方式而已,并不用于限定本发明的保护范围,凡在本发明的技术方案的基础之上,所做的任何修改、等同替换、改进等,均应包括在本发明的保护范围之内。

Claims (46)

  1. 一种发送控制信息的方法,其特征在于,所述方法包括:
    终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载混合自动重传请求确认HARQ-ACK消息,所述第二上行控制信道用于承载调度请求SR;
    所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述HARQ-ACK消息。
  2. 如权利要求1所述的方法,其特征在于,所述终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,包括:
    所述第一时间长度和所述第二时间长度相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第二上行控制信道。
  3. 如权利要求1或2所述的方法,其特征在于,所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述HARQ-ACK消息,包括:
    所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
  4. 如权利要求1所述的方法,其特征在于,所述终端设备根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,包括:
    所述第一时间长度和所述第二时间长度不相等,所述终端设备确定所述承载控制信息的上行控制信道为所述第一上行控制信道。
  5. 如权利要求1或4所述的方法,其特征在于,所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述HARQ-ACK消息,包括:
    所述终端设备在所述承载控制信息的上行控制信道上,发送所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
  6. 如权利要求1、4或5任一所述的方法,其特征在于,所述终端设备在所述承载控制信息的上行控制信道上,至少发送所述HARQ-ACK消息,包括:
    所述终端设备丢弃所述SR,所述承载控制信息的上行控制信道为所述第一上行控制信道;或,
    所述终端设备丢弃所述SR,所述第一时间长度和所述第二时间长度不相等。
  7. 如权利要求1、4-6任一所述的方法,其特征在于,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
  8. 如权利要求1-7任一所述的方法,其特征在于,所述终端设备确定承载控制信息的上行控制信道之前,还包括:
    所述终端设备确定所述第一上行控制信道的格式;和/或,
    所述终端设备确定所述第二上行控制信道的格式。
  9. 如权利要求1-8任一所述的方法,其特征在于,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,
    所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。
  10. 如权利要求1-9任一所述的方法,其特征在于,所述终端设备根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述终端设备根据高层信令确定所述第二时间长度。
  11. 如权利要求1-10任一所述的方法,其特征在于,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
  12. 一种检测控制信息的方法,其特征在于,所述方法包括:
    网络设备根据第一时间长度和第二时间长度之间的关系,确定被所述网络设备检测的承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道中的至少一个,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载混合自动重传请求确认HARQ-ACK消息,所述第二上行控制信道用于承载调度请求SR;
    所述网络设备检测所述承载控制信息的上行控制信道,所述控制信息至少包括所述HARQ-ACK消息。
  13. 如权利要求12所述的方法,其特征在于,所述网络设备根据第一时间长度和第二时间长度之间的关系,确定被所述网络设备检测的承载控制信息的上行控制信道,包括:
    所述第一时间长度和所述第二时间长度相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。
  14. 如权利要求12或13所述的方法,其特征在于,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:
    所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
  15. 如权利要求12所述的方法,其特征在于,所述网络设备根据第一时间长度和第二时间长度之间的关系,确定被所述网络设备检测的承载控制信息的上行控制信道,包括:
    所述第一时间长度和所述第二时间长度不相等,所述网络设备确定被所述网络设备检测的所述承载控制信息的上行控制信道为所述第一上行控制信道。
  16. 如权利要求12或15所述的方法,其特征在于,所述网络设备检测所述承载控制信息的上行控制信道之后,还包括:
    所述网络设备在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
  17. 如权利要求12、15或16任一所述的方法,其特征在于,所述网络设备检测所述承载控制信息的上行控制信道,包括:
    所述网络设备不检测所述第二上行控制信道,所述第一时间长度和所述第二时间长度不相等。
  18. 如权利要求12、15-17任一所述的方法,其特征在于,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下 行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
  19. 如权利要求12-18任一所述的方法,其特征在于,所述网络设备确定被所述网络设备检测的承载控制信息的上行控制信道之前,还包括:
    所述网络设备确定所述第一上行控制信道的格式;和/或,
    所述网络设备确定所述第二上行控制信道的格式。
  20. 如权利要求12-19任一所述的方法,其特征在于,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,
    所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。
  21. 如权利要求12-20任一所述的方法,其特征在于,所述网络设备根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述网络设备根据高层信令确定所述第二时间长度。
  22. 如权利要求12-21任一所述的方法,其特征在于,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
  23. 一种终端设备,其特征在于,所述终端设备包括:处理模块和通信模块;
    所述处理模块,用于根据第一时间长度和第二时间长度之间的关系,确定承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道或第二上行控制信道,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载混合自动重传请求确认HARQ-ACK消息,所述第二上行控制信道用于承载调度请求SR;
    所述处理模块,还用于在所述承载控制信息的上行控制信道上,通过所述通信模块至少发送所述HARQ-ACK消息。
  24. 如权利要求23所述的终端设备,其特征在于,所述处理模块,具体用于所述第一时间长度和所述第二时间长度相等,确定所述承载控制信息的上行控制信道为所述第二上行控制信道。
  25. 如权利要求23或24所述的终端设备,其特征在于,所述处理模块,具体用于在所述承载控制信息的上行控制信道上,通过所述通信模块发送所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
  26. 如权利要求23所述的终端设备,其特征在于,所述处理模块,具体用于所述第一时间长度和所述第二时间长度不相等,确定所述承载控制信息的上行控制信道为所述第一上行控制信道。
  27. 如权利要求23或26所述的终端设备,其特征在于,所述处理模块,具体用于在所述承载控制信息的上行控制信道上,通过所述通信模块发送所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
  28. 如权利要求23、26或27任一所述的终端设备,其特征在于,所述处理模块,具体用于丢弃所述SR,所述承载控制信息的上行控制信道为所述第一上行控制信道;或,丢弃所述SR,所述第一时间长度和所述第二时间长度不相等。
  29. 如权利要求23、26-28任一所述的终端设备,其特征在于,所述HARQ-ACK消息 对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
  30. 如权利要求23-29任一所述的终端设备,其特征在于,所述处理模块确定承载控制信息的上行控制信道之前,还用于确定所述第一上行控制信道的格式;和/或,确定所述第二上行控制信道的格式。
  31. 如权利要求23-30任一所述的终端设备,其特征在于,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,
    所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。
  32. 如权利要求23-31任一所述的终端设备,其特征在于,所述处理模块用于根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述处理模块用于根据高层信令确定所述第二时间长度。
  33. 如权利要求23-32任一所述的终端设备,其特征在于,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
  34. 一种网络设备,其特征在于,所述网络设备包括:处理模块和通信模块;
    所述处理模块,用于根据第一时间长度和第二时间长度之间的关系,确定被所述处理模块检测的承载控制信息的上行控制信道,所述承载控制信息的上行控制信道为第一上行控制信道和第二上行控制信道中的至少一个,所述第一时间长度为所述第一上行控制信道对应的时间长度,所述第二时间长度为所述第二上行控制信道对应的时间长度,所述第一上行控制信道用于承载混合自动重传请求确认HARQ-ACK消息,所述第二上行控制信道用于承载调度请求SR;
    所述处理模块,还用于通过所述通信模块检测所述承载控制信息的上行控制信道,所述控制信息至少包括所述HARQ-ACK消息。
  35. 如权利要求34所述的网络设备,其特征在于,所述处理模块,具体用于所述第一时间长度和所述第二时间长度相等,确定被所述处理模块检测的所述承载控制信息的上行控制信道为所述第一上行控制信道和所述第二上行控制信道。
  36. 如权利要求34或35所述的网络设备,其特征在于,所述处理模块检测所述承载控制信息的上行控制信道之后,还用于在所述承载控制信息的上行控制信道上,通过所述通信模块接收所述HARQ-ACK消息和所述SR,所述承载控制信息的上行控制信道为所述第二上行控制信道。
  37. 如权利要求34所述的网络设备,其特征在于,所述处理模块,具体用于所述第一时间长度和所述第二时间长度不相等,确定被所述处理模块检测的所述承载控制信息的上行控制信道为所述第一上行控制信道。
  38. 如权利要求34或37所述的网络设备,其特征在于,所述处理模块检测所述承载控制信息的上行控制信道之后,还用于在所述承载控制信息的上行控制信道上,接收所述HARQ-ACK消息,所述承载控制信息的上行控制信道为所述第一上行控制信道。
  39. 如权利要求34、37或38任一所述的网络设备,其特征在于,所述处理模块,具体用于不检测所述第二上行控制信道,所述第一时间长度和所述第二时间长度不相等。
  40. 如权利要求34、37-39任一所述的网络设备,其特征在于,所述HARQ-ACK消息对应的业务优先级高于或等于所述SR对应的业务优先级,或所述HARQ-ACK消息对应的下行数据业务的时延要求高于或等于所述SR对应的上行数据业务的时延要求。
  41. 如权利要求34-40任一所述的网络设备,其特征在于,所述处理模块确定被所述处理模块检测的承载控制信息的上行控制信道之前,还用于确定所述第一上行控制信道的格式;和/或,确定所述第二上行控制信道的格式。
  42. 如权利要求34-41任一所述的网络设备,其特征在于,所述第一上行控制信道的格式为1a或1b或2,或所述第一上行控制信道的格式为1a或1b;和/或,
    所述第二上行控制信道的格式为1或1a或1b或2,或所述第二上行控制信道的格式为1或1a或1b。
  43. 如权利要求34-42任一所述的网络设备,其特征在于,所述处理模块用于根据高层信令或下行传输对应的时间长度确定所述第一时间长度;和/或,所述处理模块用于根据高层信令确定所述第二时间长度。
  44. 如权利要求34-43任一所述的网络设备,其特征在于,所述第一上行控制信道与所述第二上行控制信道在时间上存在重叠。
  45. 一种存储程序的计算机可读存储介质,其特征在于,所述程序包括指令,所述指令当被终端设备执行时,使所述终端设备执行根据权利要求1-11任一项所述的方法。
  46. 一种存储程序的计算机可读存储介质,其特征在于,所述程序包括指令,所述指令当被网络设备执行时,使所述网络设备执行根据权利要求12-22任一项所述的方法。
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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111935846A (zh) * 2018-08-17 2020-11-13 Oppo广东移动通信有限公司 传输信号的方法、终端设备和网络设备
WO2021015275A1 (en) * 2019-07-24 2021-01-28 Sharp Kabushiki Kaisha Priority differentiation of sr transmissions with harq-ack codebooks of different service types
WO2021015276A1 (en) * 2019-07-24 2021-01-28 Sharp Kabushiki Kaisha Priority differentiation of sr transmissions with periodic/semi-persistent csi report

Families Citing this family (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP6821044B2 (ja) * 2017-02-02 2021-01-27 エルジー エレクトロニクス インコーポレイティド 無線通信システムにおいて、複数の送信時間間隔、複数のサブキャリア間隔、又は複数のプロセシング時間を支援するための方法及びそのための装置
CN110192422B (zh) * 2017-02-05 2023-07-18 Lg电子株式会社 在无线通信系统中发送/接收与免许可资源关联的信号的方法和装置
US11291036B2 (en) * 2017-03-24 2022-03-29 Qualcomm Incorporated Scheduling requests and buffer status reports for low latency wireless communications
US11039433B2 (en) * 2017-05-05 2021-06-15 Qualcomm Incorporated Channel formats with flexible duration in wireless communications
MA47561B1 (fr) * 2017-06-16 2021-03-31 Ericsson Telefon Ab L M Système et procédés de configuration d'équipements utilisateurs avec des ressources pucch chevauchantes pour transmettre des demandes de planification
CN111083782B (zh) * 2018-10-19 2023-09-08 荣耀终端有限公司 一种被用于无线通信的用户设备、基站中的方法和装置

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102119493A (zh) * 2008-08-11 2011-07-06 Lg电子株式会社 在无线通信系统中发送信息的方法和装置
CN104539396A (zh) * 2009-01-30 2015-04-22 三星电子株式会社 在数据信道或控制信道上发送上行链路控制信息
CN105721118A (zh) * 2010-09-19 2016-06-29 Lg电子株式会社 发送控制信息的方法和装置
WO2016144243A1 (en) * 2015-03-09 2016-09-15 Telefonaktiebolaget Lm Ericsson (Publ) Short pucch in uplink spucch

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR101880460B1 (ko) * 2011-01-10 2018-07-20 엘지전자 주식회사 무선통신 시스템에서의 제어정보의 전송 방법 및 장치
WO2015122734A1 (ko) * 2014-02-14 2015-08-20 엘지전자 주식회사 무선 통신 시스템에서 harq-ack 전송 방법 및 장치
EP3840264A1 (en) * 2014-09-08 2021-06-23 Interdigital Patent Holdings, Inc. Controlling the operation of dci based reception
US9894681B2 (en) * 2015-06-12 2018-02-13 Ofinno Technologies, Llc Uplink scheduling in a wireless device and wireless network
US20170013618A1 (en) * 2015-07-10 2017-01-12 Electronics And Telecommunications Research Institute Low latency transmission method and apparatus
US10277367B2 (en) * 2016-04-01 2019-04-30 Motorola Mobility Llc Method and apparatus for scheduling uplink transmissions with reduced latency

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102119493A (zh) * 2008-08-11 2011-07-06 Lg电子株式会社 在无线通信系统中发送信息的方法和装置
CN104539396A (zh) * 2009-01-30 2015-04-22 三星电子株式会社 在数据信道或控制信道上发送上行链路控制信息
CN105721118A (zh) * 2010-09-19 2016-06-29 Lg电子株式会社 发送控制信息的方法和装置
WO2016144243A1 (en) * 2015-03-09 2016-09-15 Telefonaktiebolaget Lm Ericsson (Publ) Short pucch in uplink spucch

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP3567772A4 *

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111935846A (zh) * 2018-08-17 2020-11-13 Oppo广东移动通信有限公司 传输信号的方法、终端设备和网络设备
CN111935846B (zh) * 2018-08-17 2022-04-15 Oppo广东移动通信有限公司 传输信号的方法、终端设备和网络设备
US11432342B2 (en) 2018-08-17 2022-08-30 Guangdong Oppo Mobile Telecommunications Corp., Ltd. Signal transmission method, terminal device and network device
US11723078B2 (en) 2018-08-17 2023-08-08 Guangdong Oppo Mobile Telecommunications Corp., Ltd. Signal transmission method, terminal device and network device
WO2021015275A1 (en) * 2019-07-24 2021-01-28 Sharp Kabushiki Kaisha Priority differentiation of sr transmissions with harq-ack codebooks of different service types
WO2021015276A1 (en) * 2019-07-24 2021-01-28 Sharp Kabushiki Kaisha Priority differentiation of sr transmissions with periodic/semi-persistent csi report

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