WO2012103811A1 - 上/下行调度信息发送方法和接收方法及装置 - Google Patents
上/下行调度信息发送方法和接收方法及装置 Download PDFInfo
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- WO2012103811A1 WO2012103811A1 PCT/CN2012/070828 CN2012070828W WO2012103811A1 WO 2012103811 A1 WO2012103811 A1 WO 2012103811A1 CN 2012070828 W CN2012070828 W CN 2012070828W WO 2012103811 A1 WO2012103811 A1 WO 2012103811A1
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- subframe
- carrier
- downlink
- uplink
- scheduling information
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/12—Wireless traffic scheduling
- H04W72/1263—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
- H04W72/1268—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of uplink data flows
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/12—Wireless traffic scheduling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0037—Inter-user or inter-terminal allocation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0058—Allocation criteria
- H04L5/0073—Allocation arrangements that take into account other cell interferences
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/12—Wireless traffic scheduling
- H04W72/1263—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
- H04W72/1273—Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of downlink data flows
Definitions
- the present invention claims to be filed on February 1, 2011, the application number is 201110034427. X, and the invention name is "up/down scheduling information transmission method and receiving method and device"
- the Chinese application, and the application number of 201110320442. 0, filed on October 20, 2011, is the priority of the Chinese application for the "up/down scheduling information transmission method and receiving method and apparatus", the entire contents of which are incorporated by reference. Combined in this application.
- the present invention relates to a communication technology, and in particular, to a downlink scheduling information sending method, a downlink scheduling information receiving method, an uplink scheduling information sending method, an uplink scheduling information receiving method, and a device.
- the base station and the terminal communicate and transmit data on one carrier.
- the terminal scheduled by the base station may include its own physical downlink control channel (Physical Downlink Control Channel, PDCCH for short) in each subframe.
- the information carried in the PDCCH may be a Downlink-grant (DL-grant) or a Downlink-Assignment (DL-Assignment), and the DL grant or the DL-Assignment carries a physical downlink shared channel (Physical).
- Downlink Shared Channel (PDSCH) is the scheduling information such as time-frequency resource allocation.
- the PDCCH may also be an uplink grant grant (UL grant) or an uplink grant assignment (UL_Allocation), and the UL grant or UL- Assignment carries a physical uplink shared channel (Physical Uplink Shared Channel). , referred to as PUSCH) scheduling information such as time-frequency resource allocation.
- PUSCH Physical Uplink Shared Channel
- the terminal After receiving and decoding the PDCCH in the corresponding PDCCH search space, the terminal receives the downlink data PDSCH or the uplink data PUSCH, and then the terminal feeds back uplink ACK/NACK to the downlink data, or the base station feeds back downlink ACK/NACK to the uplink data.
- the downlink ACK/NACK is also called a Physical HARQ Indicator Channel (PHICH).
- the transceivers are all in the same
- the LTE system can support 7 different uplink and downlink subframe configurations, and specifically, which uplink and downlink subframe configuration is used, and the terminal can be notified by a broadcast message.
- the PDCCH corresponding to one carrier is transmitted on another carrier, if the uplink and downlink configurations of the two carriers are different, it is possible that the subframe on one carrier is different from the subframe at the same time on another carrier, one The downlink scheduling information or the uplink scheduling information on the carrier cannot be transmitted in the corresponding subframe on the other carrier, so that the uplink and downlink scheduling of the carrier that does not carry the PDCCH cannot be performed by another carrier that carries the PDCCH.
- the embodiments of the present invention provide a downlink scheduling information sending method, a downlink scheduling information receiving method, an uplink scheduling information sending method, an uplink scheduling information receiving method, and a device, which are used to solve the carrier aggregation in the prior art where the uplink and downlink configurations are different.
- the defect that the uplink and downlink scheduling of the second carrier that does not carry the PDCCH is performed by the first carrier that carries the PDCCH cannot be performed.
- a method for transmitting downlink scheduling information including: determining a first downlink subframe in a downlink subframe on a second carrier, where a time corresponding to the first downlink subframe is first The subframe on the carrier is an uplink subframe;
- a downlink scheduling information sending apparatus including: a downlink scheduling receiving module, configured to receive a base station on a first downlink in a fifth downlink subframe before a first downlink subframe
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent, the subframe corresponding to the first downlink subframe on the second carrier is the uplink subframe.
- the downlink data receiving module is configured to receive downlink data corresponding to the downlink scheduling information on the first downlink subframe on the second carrier according to the received downlink scheduling information.
- a downlink scheduling receiving method including: receiving, on a first carrier, a second carrier that is sent by a base station across a subframe, in a downlink subframe before a first downlink subframe
- the downlink scheduling information corresponding to the first downlink subframe and the base station send the same subframe Downlink scheduling information corresponding to the second downlink subframe on the second carrier that is sent;
- the same subframe on the first carrier in the first downlink subframe is the uplink subframe, and the second carrier on the second carrier
- the downlink subframe is the downlink subframe in the same subframe of the first carrier;
- Determining the cross-carrier downlink scheduling type of the downlink subframe on the first carrier is the downlink data scheduled by the downlink scheduling information on the second carrier when the cross-subframe downlink scheduling is performed on the second carrier.
- a downlink scheduling information receiving apparatus including:
- the downlink scheduling receiving module is configured to receive, on the first carrier, the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station across the subframe, in the downlink subframe before the first downlink subframe
- the downlink scheduling information corresponding to the second downlink subframe on the second carrier that is sent by the base station and the subframe the same subframe on the first carrier in the first downlink subframe is the uplink subframe, and the second subframe
- the second downlink subframe on the carrier is a downlink subframe in the same subframe of the first carrier;
- a first downlink data receiving module configured to determine, when the cross-carrier downlink scheduling type of the downlink subframe on the first carrier is the downlink scheduling of the same subframe, and receive the downlink data scheduled by the downlink scheduling information in the same subframe on the second carrier;
- the second downlink data receiving module is configured to determine, when the cross-carrier downlink scheduling type of the downlink subframe on the first carrier is the cross-subframe downlink scheduling, and receive the downlink data scheduled by the downlink scheduling information on the second carrier.
- a downlink scheduling information sending method, a receiving method, and a device are provided.
- a first carrier carries a PDCCH on a second carrier
- the PDSCH on the second carrier can be scheduled across carriers on the first carrier.
- the base station sends, on the fifth downlink subframe of the first carrier, the same subframe on the second carrier that is the first downlink subframe corresponding to the first downlink subframe of the uplink subframe. Therefore, during cross-carrier PDCCH scheduling, the base station may send downlink scheduling information for scheduling the PDSCH on the second carrier on the first carrier.
- a method for transmitting uplink scheduling information including: determining a first uplink subframe in an uplink subframe on a second carrier, and scheduling the non-cross carrier scheduling on the second carrier The subframe corresponding to the third downlink subframe of the first uplink subframe on the first carrier is an uplink subframe; And transmitting, to the terminal, uplink scheduling information corresponding to the first uplink subframe on the second carrier, where the time corresponding to the sixth downlink subframe is in the first Before an uplink subframe.
- an apparatus for transmitting uplink scheduling information including: an uplink subframe determining module, configured to determine, in an uplink subframe on a second carrier, a first uplink subframe, where the second carrier is The subframe corresponding to the third downlink subframe in the first uplink subframe is not the cross-carrier scheduling, and the subframe on the first carrier is the uplink subframe.
- An uplink scheduling sending module configured to send, to the terminal, uplink scheduling information corresponding to the first uplink subframe on the second carrier, in the sixth downlink subframe on the first carrier; the sixth downlink subframe The corresponding moment is before the first uplink subframe.
- a method for receiving an uplink scheduling information including: receiving, on a first carrier, a sixth downlink subframe before a first uplink subframe, and receiving a second carrier on a second carrier An uplink scheduling information corresponding to an uplink subframe; a subframe in which the third downlink subframe corresponding to the first uplink subframe is scheduled to be on the first carrier when the second carrier is not in cross-carrier scheduling is Uplink subframe;
- an uplink scheduling information receiving apparatus including: an uplink scheduling receiving module, configured to send, by a receiving base station, a sixth downlink subframe before a first uplink subframe on a first carrier The uplink scheduling information corresponding to the first uplink subframe on the second carrier; the time corresponding to the third downlink subframe in the first uplink subframe when the second carrier is not cross-carrier scheduling is in the A subframe on a carrier is an uplink subframe;
- an uplink data sending module configured to send, according to the received uplink scheduling information, uplink data corresponding to the uplink scheduling information, in a first uplink subframe on the second carrier.
- a method, a method, and a device for transmitting an uplink scheduling information when a physical downlink control channel on a second carrier is carried on a first carrier, the base station performs a third downlink on the second carrier
- the uplink scheduling information corresponding to the frame is adjusted to be transmitted on the first carrier on the sixth downlink subframe before the first uplink subframe.
- the PUSCH on the second carrier can be scheduled on the first carrier.
- a method for transmitting downlink scheduling information including: Determining a downlink subframe A in a downlink subframe on the second carrier;
- a downlink scheduling information sending apparatus including: a downlink sub-frame determining module, Determining a downlink subframe A in a downlink subframe on the second carrier;
- the downlink scheduling sending module on the downlink subframe B of the first carrier, sends downlink scheduling information of the downlink subframe A on the second carrier to the terminal; if the downlink carrier on the first carrier and the second carrier The subframe in which the frame A is the same is the uplink subframe, and the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A; if the downlink subframe is on the first carrier and the second carrier The subframes in which the A time is the same are the downlink subframes, the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the time corresponding to the downlink subframe B and the downlink subframe A. The corresponding time is the same time.
- a downlink scheduling information receiving method including: on a downlink subframe B of a first carrier, the terminal receives downlink scheduling information of a downlink subframe A on a second carrier that is sent by the base station;
- the subframe on the first carrier that is the same as the downlink subframe A on the second carrier is the uplink subframe
- the subframe on the first carrier that is the same as the downlink subframe A on the second carrier is the downlink subframe
- the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the downlink subframe of the terminal on the second carrier according to the received downlink scheduling information
- A receives the downlink scheduling signal and corresponding downlink data.
- a downlink scheduling information receiving apparatus including: a downlink scheduling receiving module, configured to receive, in a downlink subframe B on a first carrier, a downlink subframe on a second carrier that is sent by a base station Downlink scheduling information of A; if on the first carrier and the second carrier The subframe in which the downlink subframe A at the same time is the same as the uplink subframe, and the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A; if the second carrier is on the first carrier The subframe in which the downlink subframe A is the same as the downlink subframe, the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the time corresponding to the downlink subframe B The time corresponding to the downlink subframe A is the same time;
- the downlink data receiving module is configured to receive downlink data corresponding to the downlink scheduling information on the downlink subframe A on the second carrier according to the received downlink scheduling information.
- the downlink scheduling information sending method, the receiving method, and the device in the embodiment of the present invention when the first carrier carries the PDCCH on the second carrier, the downlink subframe A on the second carrier corresponds to the uplink on the first carrier.
- the base station sends the downlink scheduling information corresponding to the downlink subframe A on the second carrier to the terminal on the downlink subframe B before the time corresponding to the downlink subframe A on the first carrier, so that the first carrier cross-carrier
- the base station may send downlink scheduling information for scheduling the PDSCH on the second carrier to the terminal on the first carrier.
- the subframe on the first carrier is the downlink subframe
- the base station can time to the terminal on the downlink subframe B before the time corresponding to the downlink subframe A on the first carrier.
- the downlink scheduling information corresponding to the downlink subframe A on the second carrier is sent, and the downlink scheduling information corresponding to the downlink subframe A on the second carrier is also sent to the terminal in the downlink subframe A of the first carrier.
- a method for transmitting uplink scheduling information including: determining an uplink subframe C in an uplink subframe on a second carrier;
- the interval between the time corresponding to the subframe E on the first carrier and the time corresponding to the uplink subframe C is a scheduling interval of N subframes. If the subframe E is a downlink subframe, the downlink subframe D and The subframe E is the same subframe, or the time corresponding to the downlink subframe D is before the time corresponding to the subframe E;
- the time corresponding to the downlink subframe D is before the time corresponding to the subframe E;
- the scheduling interval N is a number of subframes at least between the time when the terminal receives the uplink scheduling information and the time when the terminal sends the uplink data corresponding to the uplink scheduling information.
- an apparatus for transmitting uplink scheduling information including: an uplink subframe determining module, configured to determine an uplink subframe C in an uplink subframe on a second carrier; and an uplink scheduling sending module, configured to: And transmitting, to the terminal, the uplink scheduling information of the uplink subframe C on the second carrier, and the time corresponding to the subframe E on the first carrier, and the uplink, on the downlink subframe D on the first carrier.
- the time interval corresponding to the subframe C is a scheduling interval of N subframes, if the subframe E is a downlink subframe, the downlink subframe D is the same subframe as the subframe E, or the downlink subframe D Before the subframe E; if the subframe E is an uplink subframe, the downlink subframe D is before the subframe E; the N is that the terminal receives uplink scheduling information and sends the uplink information to the terminal.
- the number of subframes at least between the uplink data corresponding to the uplink scheduling information.
- a method for receiving uplink scheduling information including: receiving, by using a downlink subframe D of a first carrier, uplink scheduling information of an uplink subframe C on a second carrier that is sent by a base station;
- the interval between the time corresponding to the subframe E on the first carrier and the time corresponding to the uplink subframe C is a scheduling interval of N subframes. If the subframe E is a downlink subframe, the downlink subframe D and The subframe E is the same subframe, or the downlink subframe D is before the subframe E;
- the number of subframes at least between the uplink data;
- an uplink scheduling information receiving apparatus including: an uplink scheduling receiving module, configured to receive, in a downlink subframe D on a first carrier, an uplink subframe on a second carrier that is sent by a base station
- the uplink scheduling information of C is a scheduling interval of N subframes, and if the subframe E is a downlink subframe, The downlink subframe D is the same subframe as the subframe E, or the downlink subframe D is before the subframe E; if the subframe E is an uplink subframe, the downlink subframe D is in the Before the sub-frame E is described;
- the N is the number of subframes at least the interval between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal;
- An uplink data sending module configured to: according to the received uplink scheduling information, in the The uplink data corresponding to the uplink scheduling information is sent to the base station in the uplink subframe c on the second carrier.
- the uplink scheduling information sending method, the receiving method, and the device when the PDCCH on the second carrier is carried on the first carrier, the base station sends the uplink on the second carrier to the terminal in the downlink subframe D on the first carrier.
- the downlink subframe D may be the downlink subframe E that satisfies the minimum scheduling interval N subframes with the uplink subframe C, or may be before the downlink subframe E; if it satisfies with the uplink subframe C
- the subframe of the minimum scheduling interval N subframes is an uplink subframe, and the downlink subframe D is preceded by a subframe that satisfies the minimum scheduling interval N subframes with the uplink subframe C.
- the base station can send the uplink scheduling information of the PUSCH on the second carrier to the terminal on the first carrier, and solve the problem that the time corresponding to the downlink subframe of the uplink subframe C is scheduled to be in the first carrier when the non-cross-carrier scheduling is performed on the second carrier.
- the base station schedules the uplink subframe C on the second carrier on the first carrier.
- FIG. 1 is a flowchart of Embodiment 1 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 1B is a schematic diagram of an application scenario of a method for sending downlink scheduling information according to Embodiment 1 of the present invention
- FIG. 2B is a flowchart of a second embodiment of a method for transmitting downlink scheduling information according to the present invention
- FIG. 3B is a flowchart of Embodiment 3 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 4A is a flowchart of Embodiment 4 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 4B is a flowchart of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 4C is a flowchart of Embodiment 5 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 4D is an application scenario diagram of Embodiment 5 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 5B is a flowchart of an application scenario of an uplink scheduling information sending method according to Embodiment 1 of the present invention
- FIG. 6B is a flowchart of Embodiment 2 of an uplink scheduling information sending method provided by the present invention
- FIG. 7 is a flowchart of Embodiment 3 of an uplink scheduling information sending method provided by the present invention
- FIG. 7B is an application scenario diagram of Embodiment 3 of an uplink scheduling information sending method provided by the present invention
- FIG. 9 is a schematic structural diagram of Embodiment 1 of a downlink scheduling information sending apparatus according to the present invention
- FIG. 10 is a schematic structural diagram of Embodiment 1 of an uplink scheduling information sending apparatus provided by the present invention
- FIG. 11 is a flowchart of Embodiment 1 of a method for receiving downlink scheduling information provided by the present invention
- FIG. 12A is a schematic structural diagram of Embodiment 1 of a downlink scheduling information receiving apparatus according to the present invention
- FIG. 12B is a schematic structural diagram of Embodiment 2 of a downlink scheduling information receiving apparatus according to the present invention
- FIG. 13 is a schematic diagram of an uplink scheduling information receiving method according to the present invention; a flow chart;
- FIG. 14A is a schematic structural diagram of Embodiment 1 of an uplink scheduling information receiving apparatus according to the present invention
- FIG. 14B is a schematic structural diagram of Embodiment 2 of an apparatus for receiving uplink scheduling information according to the present invention
- FIG. 15 is a schematic diagram of a method for transmitting a PDCCH by an interfering cell according to the present invention
- FIG. 16 is a flowchart of Embodiment 6 of a method for transmitting downlink scheduling information according to the present invention
- FIG. 16B is a schematic diagram of an application scenario of Embodiment 6 of a method for sending downlink scheduling information according to the present invention
- 16C is an application scenario diagram of Embodiment 6 of a method for sending downlink scheduling information according to the present invention.
- 16D is an application scenario diagram of Embodiment 6 of a method for sending downlink scheduling information according to the present invention.
- FIG. 17A is a flowchart of Embodiment 7 of a method for transmitting downlink scheduling information provided by the present invention
- FIG. 17B is a schematic application diagram of Embodiment 7 of a method for transmitting downlink scheduling information according to the present invention
- 17C is another application scenario diagram of a flowchart of Embodiment 7 of a method for transmitting downlink scheduling information according to the present invention.
- FIG. 18 is a flowchart of Embodiment 2 of a method for receiving downlink scheduling information provided by the present invention.
- 19A is a flowchart of Embodiment 5 of an uplink scheduling information sending method according to the present invention
- 19B is an application scenario diagram of a flowchart of Embodiment 5 of an uplink scheduling information sending method according to the present invention
- FIG. 20 is a flowchart of Embodiment 2 of an uplink scheduling information receiving method according to the present invention.
- FIG. 21 is a schematic structural diagram of Embodiment 2 of a downlink scheduling information sending apparatus according to the present invention
- FIG. 22 is a schematic structural diagram of Embodiment 3 of a downlink scheduling information receiving apparatus according to the present invention
- FIG. FIG. 24 is a schematic structural diagram of Embodiment 3 of an apparatus for receiving uplink scheduling information according to the present invention.
- FIG. 1A is a flowchart of Embodiment 1 of a method for transmitting downlink scheduling information provided by the present invention. As shown in FIG. 1A, this embodiment includes:
- Step 11 The base station determines the first downlink subframe in the downlink subframe on the second carrier, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Cross-carrier PDCCH scheduling is to transmit a PDCCH corresponding to one carrier on another carrier.
- the information carried in the PDCCH may be a DL-grant or a UL-grant, and each carries scheduling information such as a time-frequency resource allocation indicating a PDSCH or a PUSCH.
- the downlink subframe on the carrier is used to carry downlink scheduling information and uplink scheduling information on the carrier.
- a carrier carrying another carrier corresponding to a PDCCH is referred to as a first carrier, and another carrier is referred to as a second carrier.
- the two subframes at the same time on the first carrier and the second carrier are called the same subframe, and the two subframes at different times are called cross-subframes.
- the downlink subframe on the second carrier is used to carry the downlink scheduling information and the PDSCH on the carrier.
- the corresponding subframe is an uplink subframe.
- the downlink scheduling information corresponding to the downlink subframe on the second carrier that is, the PDSCH for scheduling the downlink subframe bearer on the second carrier
- the downlink scheduling information cannot be transmitted on the same subframe corresponding to the first carrier, so that downlink scheduling on the second carrier cannot be implemented on the first carrier.
- the base station In order to enable the downlink scheduling information corresponding to the downlink subframe on the second carrier to be sent on the first carrier, the base station needs to determine whether the corresponding subframe in the downlink carrier of each downlink subframe on the second carrier is an uplink subframe. frame.
- the same subframe on the first carrier of the second carrier is an uplink subframe
- the second downlink subframe on the second carrier is downlink in the same subframe of the first carrier. Subframe.
- the following combines the PDCCH&PDSCH and uplink of the first carrier in the LTE TDD system.
- the timing relationship between the ACK/NACK and the timing of the PDCCH&PDSCH and the uplink ACK/NACK of the second carrier indicates that the downlink scheduling information on the second carrier cannot be transmitted on the same subframe corresponding to the first carrier.
- the DL_grant is in the same subframe as the PDSCH to which the PDSCH is scheduled, and the PDSCH is not in the same subframe as the corresponding uplink ACK/NACK, and the subframe in which the number is located is an uplink subframe.
- the other subframes are all downlink subframes.
- the number in the uplink subframe indicates that the current uplink subframe needs to be fed back.
- the number in the frame 2 indicates the uplink ACK/NACK corresponding to the PDSCH on the downlink subframe 6 of the previous radio frame that needs to be fed back on the uplink subframe 2.
- the downlink subframe 6 carries the PDSCH corresponding to the ACK/NACK on the uplink subframe 2 of the next radio frame and the DL_grant that schedules the PDSCH.
- the uplink ACK/NACK is ACK/NACK information fed back corresponding to the scheduled downlink subframe.
- the downlink subframes 3, 4, 8, and 9 on the second carrier are the uplink subframes at the same time of the first carrier, that is, the uplink and downlink configurations of the first carrier and the second carrier are different. . Therefore, during cross-carrier scheduling, the downlink scheduling information corresponding to the downlink subframes 3, 4, 8, and 9 of the second carrier cannot be transmitted on the first carrier.
- the same sub-frames on the first carrier are all uplink sub-frames, which is referred to as the first downlink sub-frame of the second carrier in the embodiment of the present invention.
- the same sub-frames on the first carrier are all downlink sub-frames, which is referred to as the second downlink sub-frame of the second carrier in the embodiment of the present invention.
- Step 12 On the fifth downlink subframe on the first carrier, the base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal; the time corresponding to the fifth downlink subframe is in the first downlink. The time corresponding to the subframe is before.
- the second subframe on the second carrier is the downlink subframe, and the second subframe on the second carrier is directly transmitted on the corresponding subframe on the first carrier.
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier needs to be adjusted to be carried on the downlink subframe on the first carrier. Therefore, when the base station determines that the first downlink subframe exists on the second carrier, the downlink subframe that is determined before the first downlink subframe is determined on the first carrier, and the first downlink subframe corresponding to the second carrier is corresponding.
- the downlink scheduling information is adjusted to be carried on the first carrier at any time in any one of the downlink subframes before the first downlink subframe.
- the downlink subframe used for carrying the downlink scheduling information corresponding to the first downlink subframe on the second carrier on the first carrier is referred to as the fifth downlink subframe on the first carrier.
- Adjusting the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the bearer in the fifth downlink subframe on the first carrier, and the base station may notify the terminal to adjust the timing relationship between the subframes by using signaling
- the timing relationship between the subframes may also be configured for the terminal, so that the terminal receives the downlink scheduling information according to the timing relationship between the subframes, and returns the corresponding ACK/NACK.
- the base station may further include a subframe indication field in the downlink scheduling information of the first carrier, and is used to indicate the downlink subframe on the second carrier that is scheduled to be cross-carrier scheduled by the downlink scheduling information, that is, the downlink scheduling information is instructed to cross-carrier scheduling. Which downlink subframe on the second carrier is downlink data.
- the specific indication method is described in the corresponding embodiment of FIG. 17A.
- the DL-Grant cross-subframe corresponding to the downlink subframes 3 and 4 of the second carrier may be adjusted to the downlink subframe 0 or 1 bearer on the first carrier; the downlink sub-carrier of the second carrier may be used.
- the DL-Grant corresponding to frames 8 and 9 is adjusted across the subframe to the downlink subframe 5 or 6 on the first carrier.
- the downlink scheduling information corresponding to the second downlink subframe on the second carrier is sent to the same subframe in the fifth downlink subframe of the first carrier of the base station, and the uplink and downlink subframes corresponding to the first carrier are sent in the same subframe. Downstream scheduling information.
- a maximum of two PDCCHs are sent on each downlink subframe of the first carrier, and downlink scheduling information carried by the first downlink subframe on the second carrier is adjusted to a downlink on the first carrier.
- one downlink subframe After a subframe, it is possible for one downlink subframe to transmit more than three PDCCHs.
- the PDCCHs When three or more PDCCHs are transmitted on one downlink subframe on the first carrier, the PDCCHs are classified into three types, one for scheduling the PDSCH of the downlink subframe on the first carrier, and the other for scheduling the second carrier.
- the PDSCH corresponding to the same subframe; and one type for scheduling the PDSCH corresponding to the cross-subframe on the second carrier.
- the PDCCH load of each subframe is not considered, it is possible that more than one PDSCH on the second carrier is adjusted across the subframe to the downlink subframe scheduling on the first carrier.
- the base station sends the terminal to the terminal on the first carrier in the downlink subframe before the first downlink subframe.
- the independent scheduling mode may be used, or the joint scheduling mode may be adopted.
- the downlink scheduling information for scheduling the corresponding PDSCH is sent to the terminal through multiple independent PDCCHs.
- the downlink scheduling information carried by the first downlink subframe on the second carrier is transmitted to the terminal across the subframe by one PDCCH, and the subframe is transmitted to the same subframe by using another PDCCH.
- the downlink scheduling information carried by the second downlink subframe on the second carrier, and the downlink scheduling information on the first carrier is sent to the terminal through another PDCCH. If a downlink subframe of the first carrier downlinks one or more PDSCHs on the second carrier, the PDSCH is scheduled to be downlinked across the subframes by using one or more independent PDCCHs.
- the PDCCH is used to transmit the downlink scheduling information of the PDSCH on the second carrier, that is, the PDSCH of the downlink scheduling of the downlink and the downlink scheduling of the same subframe.
- the PDSCH shares one PDCCH.
- the scheduling of the two subframes shares the control information in the PDCCH.
- another independent PDCCH is used to carry the downlink scheduling information of the PDSCH.
- the PDSCH on the second carrier may be scheduled across the carrier on the first carrier, and the base station is in the fifth downlink on the first carrier.
- the same subframe on the first carrier that is transmitted on the second carrier in the subframe is the downlink scheduling information corresponding to the first downlink subframe of the uplink subframe. Therefore, during cross-carrier PDCCH scheduling, the base station may send downlink scheduling information for scheduling the PDSCH on the second carrier on the first carrier.
- Embodiment 2A is a flowchart of Embodiment 2 of a method for sending downlink scheduling information provided by the present invention.
- the present embodiment includes:
- Step 21 The base station determines the first downlink subframe in the downlink subframe on the second carrier, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Step 22 The base station sends the downlink scheduling corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe with the smallest delay of the time corresponding to the first downlink subframe on the first carrier.
- Information The time corresponding to the fifth downlink subframe is before the time corresponding to the first downlink subframe.
- the time delay corresponding to the time corresponding to the first downlink subframe on the first carrier is the smallest and the time corresponding to the fifth downlink subframe is before the time corresponding to the first downlink subframe.
- the base station transmits a time delay corresponding to the first downlink subframe on the second carrier on the first carrier
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier is sent to the terminal across the subframe.
- the base station further sends downlink scheduling information corresponding to the second downlink subframe on the second carrier and downlink scheduling information corresponding to the downlink subframe on the first carrier.
- the DL-Grant corresponding to the downlink subframe 3 on the second carrier is adjusted to be transmitted on the downlink subframe 1 of the first carrier, according to the transmission method provided in step 22, as shown in FIG. 2B.
- the base station sends a DL-Grant on the downlink subframe 1 of the first carrier to schedule the PDSCH carried by the downlink subframe 3 on the second carrier, and the terminal receives the downlink carrier of the first carrier on the downlink subframe 3 of the second carrier.
- the PDSCH scheduled on the frame 1 has the smallest delay of the downlink subframe 1 and the downlink subframe 3, so that the delay of the base station transmitting the DL-Grant to the terminal receiving the scheduled PDSCH is the smallest.
- the DL-Grant corresponding to the downlink subframe 4 on the second carrier is adjusted to the downlink subframe 1 transmission of the first carrier.
- the DL-Grant corresponding to the downlink subframes 8 and 9 on the second carrier is adjusted to be transmitted to the downlink subframe 6 of the first carrier.
- the base station sends the PDCCH to the terminal to receive the delay of the PDSCH, and the base station adjusts the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the first downlink on the first carrier from the second carrier.
- the subframe corresponds to the downlink subframe with the smallest transmission time delay.
- FIG. 3A is a flowchart of Embodiment 3 of a method for transmitting downlink scheduling information provided by the present invention. Considering that the PDCCH load imbalance on the downlink subframe on the first carrier may be unbalanced after the scheduling delay is minimized, in order to minimize the compromise between the scheduling delay and the PDCCH load balancing, as shown in FIG. 3A, This embodiment includes:
- Step 31 The base station determines the first downlink subframe in the downlink subframe on the second carrier, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Step 32 The base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe on the first carrier; the time corresponding to the fifth downlink subframe is in the first downlink.
- the downlink scheduling information corresponding to the at least one first downlink subframe of the second carrier is carried by the fifth downlink subframe before the time corresponding to the subframe.
- Step 32 is specifically: the base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in the seventh downlink subframe on the first carrier. And, the base station also sends to the terminal Sending downlink scheduling information corresponding to the second downlink subframe on the second carrier and transmitting downlink scheduling information corresponding to the downlink subframe on the first carrier.
- One downlink subframe on the first carrier may carry downlink scheduling information of three or more PDSCHs, and on the first carrier There may be other downlink subframes that carry only the downlink scheduling information of the two PDSCHs, that is, the downlink scheduling information carried by the first carrier and the downlink scheduling information of the downlink scheduling PDSCH of the same subframe on the second carrier. Therefore, the PDCCH load of each downlink subframe on the first carrier is unbalanced.
- the downlink subframe 1 of the first carrier needs to carry the DL-Grant of the four PDSCHs, that is, the first carrier downlink subframe 1 DL-Grant, the same subframe on the second carrier (the downlink subframe 1 of the first carrier), the DL-Grant corresponding to the second carrier, and the DL- corresponding to the second carrier (the downlink subframe 3 of the first carrier)
- the Grant and the DL-Grant on the second carrier cross-subframe downlink subframe 4.
- the first carrier downlink subframe 0 only needs to carry two DL-Grants of the PDSCH, that is, the DL-Grant on the first carrier downlink subframe 0 and the same subframe on the first carrier downlink subframe 0 on the second carrier. DL-Grant.
- the downlink sub-frame 6 of the first carrier needs to carry the DL-Grant of the four PDSCHs
- the first carrier downlink sub-frame 5 only needs to carry the DL-Grant of the two PDSCHs.
- the load on the downlink sub-frame 1 and the downlink sub-frame 6 of the first carrier is the largest, and the load on the downlink sub-frame 0 and the downlink sub-frame 5 is the smallest, which causes the PDCCH load of each downlink sub-frame on the first carrier to be unbalanced.
- the DL-Grant on the second carrier downlink subframe 3 is adjusted to the first carrier uplink-downlink subframe 0.
- the DL-Grant on the second carrier downlink subframe 8 is adjusted to the downlink subframe 5 on the first carrier
- the DL-Grant on the second carrier downlink subframe 9 is still adjusted to the downlink subframe on the first carrier.
- Frame 6 As shown in FIG. 3B, in the sending method of step 32, each downlink subframe on the first carrier carries at most one downlink scheduling information across the subframe.
- the DL-Grants of the three PDSCHs are respectively carried on the first carrier downlink subframes 0, 1, 5 and 6.
- the DL-Grants of the three PDSCHs carried by the downlink subframe 0 on the first carrier are: DL-grant corresponding to the first carrier downlink subframe 0, DL-grant corresponding to the second carrier downlink subframe 0, and the second carrier The DL-grant corresponding to the downlink subframe 3.
- the DL-Grants of the three PDSCHs carried by the downlink subframe 1 on the first carrier are: DL-grant corresponding to the first carrier downlink subframe 1, DL-grant corresponding to the second carrier downlink subframe 1, and the second carrier The DL-grant corresponding to the downlink subframe 4.
- the DL-Grants of the three PDSCHs carried in the downlink sub-frame 5 on the first carrier are: downlink scheduling information corresponding to the downlink subframe 5 of the first carrier, downlink scheduling information corresponding to the downlink subframe 5 on the second carrier, and Downlink scheduling information corresponding to the downlink subframe 8 on the second carrier.
- the DL-Grants of the three PDSCHs carried in the downlink subframe 6 on the first carrier are: downlink scheduling information corresponding to the downlink subframe 6 of the first carrier, downlink scheduling information corresponding to the downlink subframe 6 on the second carrier, and Downlink scheduling information corresponding to the downlink subframe 9 on the second carrier.
- the downlink subframes 0, 1, 5, and 6 on the first carrier are referred to as the seventh downlink subframe in the embodiment of the present invention.
- cross-carrier scheduling it is necessary to distinguish which PDSCH or PUSCH of a certain PDCCH is scheduled. Further, the cross-carrier scheduling and the same-carrier scheduling may be distinguished by a carrier indicator field (CIF) in the PDCCH, and the same subframe downlink scheduling and cross-subframe downlink scheduling under the cross-carrier scheduling, the prior art has not yet The method of differentiation. As shown in FIG.
- CIF carrier indicator field
- the DL-grant corresponding to the second carrier downlink subframe 0 of the first carrier downlink subframe 0 is referred to as the first carrier downlink subframe 0
- the downlink downlink subframe 0 is the same subframe downlink scheduling under the cross-carrier scheduling, and the first carrier downlink subframe 0 carries the second carrier downlink subframe 3 corresponding DL-grant is called the first carrier downlink subframe 0 cross-carrier scheduling Downstream scheduling across subframes. It is necessary to distinguish the first carrier downlink subframe 0 and the DL-grant corresponding to the second carrier downlink subframe 0, and the first carrier downlink subframe 0 bears the second carrier downlink subframe 3
- the terminal determines, according to the indication of the base station, that the corresponding PDSCH is received on the same subframe of the second carrier or the corresponding PDSCH is received on the cross-subframe of the second carrier.
- the embodiment of the present invention mainly distinguishes the cross-carrier scheduling type of the downlink subframes on the first carrier by the following method, that is, distinguishes between the same subframe downlink scheduling and the cross-subframe downlink scheduling:
- the second type is divided by the Transmit Power Control (TPC) of the ACK/NACK Resource Indicator (ARI).
- TPC Transmit Power Control
- ARI ACK/NACK Resource Indicator
- the uplink ACK/NACK resource may be indicated by scheduling a 2-bit TPC in the PDCCH (S-PDCCH, Secondary-PDCCH) of the downlink second carrier, where the TPC is used as the ACK/NACK.
- Resource indication ARI
- the specific 2 bits may indicate that one of the 4 resources is used by the UE, and the TPC in the PDCCH (P-PDCCH, Primary-PDCCH) scheduling the downlink first carrier is used as the real transmission power control. .
- One mode is: using a partial state in the ARI, that is, an ACK/NACK resource, to distinguish between the same subframe and cross-subframe downlink scheduling under cross-carrier scheduling, for example, the 00 and 01 states of the ARI indicate the downlink scheduling of the same subframe.
- And 00 and 01 represent two ACK/NACK resources available for downlink scheduling of the same subframe; 10 states of the ARI indicate downlink scheduling across subframes, and 10 indicates ACK/NACK resources scheduled for downlink scheduling of subframes; 11 states of ARI indicate simultaneous The same subframe and the cross-subframe downlink scheduling, and the 11 state indicates the ACK/NACK resource scheduled in the same subframe and the cross-subframe downlink scheduling, specifically, when the same subframe downlink scheduling and cross-subframe downlink scheduling ACK/NACK are in When the same uplink subframe is fed back, the 11 state may represent a shared ACK/NACK resource of the same subframe and cross-subframe downlink scheduling, when the same subframe downlink scheduling and cross-subframe downlink scheduling ACK/NACK are different. When the uplink subframe is fed back, the 11 state can represent two copies of the same subframe and the sub-frame downlink scheduling respectively.
- Another way is: directly distinguish by TPC field, and power adjustment can be based on the last PDCCH or other means.
- the uplink ACK/NACK under RIO TDD CA has two transmission modes, one called PUCCH format 3, which can be used for ACK/NACK transmission of no more than 20 bits.
- PUCCH format 3 which can be used for ACK/NACK transmission of no more than 20 bits.
- 2 bits in DL_grant The DAI is redundant.
- PUCCH format la/lb+ channel selection which can be used as ACK/NACK transmission of no more than 4 bits.
- the time domain partial binding may be used to make the number of ACK/NACK bits not greater than 4, for example, carrier aggregation of two uplink and downlink configurations 2, then on subframe 2, Need to feed back 8 bits of ACK/NACK (after the codeword is bound), then the carrier can be a total of 4 bits, then use PUCCH format la/lb+ channel selection to transmit, then 2 bits in DL_grant
- the DAI is used to find out if the DL_grant of the last subframe in time on each carrier is missed by the UE.
- the specific DL DAI to distinguish the same subframe and cross-subframe downlink scheduling under cross-carrier scheduling is as follows: a) directly use 2-bit DL DAI to distinguish.
- the second carrier 2 bit DL DAI may be directly used, for example, a):
- the PDCCH of the second carrier is scheduled.
- the DAI (S-DAI, Secondary-DAI) in the PDCCH may be used in conjunction with the DAI (P-DAI, Primary-DAI) in the PDCCH scheduling the first carrier.
- the specific use is as follows:
- the S-DAI is still used as a normal DAI.
- the P-DAI is used to indicate the PDSCH scheduling of the same subframe and the cross-subframe across the carrier, and the specific method is as follows: if the UE does not receive the P-DAI, the UE considers that the cross-span is not received. The same subframe of the carrier and PDSCH scheduling across the subframe.
- the independent scheduling if the P-DAI is equal to the S-DAI, the S-PDCCH of the S-DAI is used to schedule the PDSCH of the same carrier across the carrier, and if not, the S-DAI is represented.
- the S-PDCCH is used to schedule a PDSCH across carriers across subframes and vice versa. If the same subframe of the cross-carrier and the PDSCH of the cross-subframe are simultaneously scheduled, the S-DAI with a smaller value indicates that the S-PDCCH of the S-DAI is used to schedule the PDSCH of the same carrier across the carrier, and the value is compared. A large S-DAI indicates that the S-PDCCH of the S-DAI is used to schedule a PDSCH across carriers across subframes, and vice versa. If the UE does not receive the P-DAI and only receives one S-DAI, the UE considers that it has not received the cross. The same subframe of the carrier and PDSCH scheduling across the subframe.
- the fifth type differentiated by adding new scrambling codes in the PDCCH.
- the original scrambling code indicates that the same subframe is scheduled for downlink, and the newly added scrambling code indicates downlink scheduling across subframes; and vice versa.
- the original scrambling code indicates the same subframe downlink scheduling.
- the new scrambling code 1 indicates cross-subframe downlink scheduling, and the new scrambling code 2 indicates the same subframe and cross. Subframes are scheduled at the same time; other combinations are similarly included.
- the radio resource control (Radio Resource Control, hereinafter referred to as RRC) signaling or the media access control (MAC) signaling configuration uses the same subframe downlink scheduling or cross-subframe downlink scheduling.
- RRC signaling configuration is used as an example.
- the RRC signaling can be semi-statically configured to be downlink scheduling of the same sub-carriers in a certain period of time, and the cross-subframe downlink scheduling of the cross-carrier is not supported;
- the semi-static configuration can be configured as downlink scheduling across subframes. In this subframe, cross-subframe downlink scheduling of cross-carriers is not supported.
- the PDCCH is implicitly indicated by the location of the PDCCH in the search space.
- the PDCCH is scheduled to represent the same subframe downlink scheduling in a part of its search space, and the sub-frame downlink scheduling is performed in another part, or is scheduled simultaneously with the subframe and the cross-subframe.
- the PDCCH is blindly detected by the terminal in the specified search space location or by the base station, and the PDCCH received in the part 1 of the search space may represent the same subframe downlink scheduling of the cross-carrier, and the PDCCH received in part 2 of the search space may be Indicates cross-subframe downlink scheduling across carriers, and vice versa.
- the configuration at this different time can be preset or the base station can be configured to the UE.
- the PDCCH in the first subframe or the first radio frame scheduling indicates the same subframe downlink scheduling
- the PDCCH in the second subframe or the second radio frame scheduling indicates cross-subframe downlink scheduling, or simultaneous scheduling in the same subframe and the cross subframe.
- the first to fifth methods are differentiated in the downlink scheduling information by different methods.
- Downstream indication information indicating a cross-carrier scheduling type.
- the carrier scheduling is the same downlink scheduling of the subframe or the downlink scheduling of the subframe.
- FIG. 4A is a flowchart of Embodiment 4 of a method for transmitting downlink scheduling information provided by the present invention.
- the embodiment includes:
- Step 41A The base station determines, in the downlink subframe of the second carrier, the first downlink subframe, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Step 42 The base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe of the second carrier in the subframe of the second carrier at the corresponding time on the first carrier.
- the time corresponding to the fifth downlink subframe is before the time corresponding to the first downlink subframe.
- the time corresponding to the fifth downlink subframe is the uplink subframe, and the time corresponding to the fifth downlink subframe is before the time corresponding to the first downlink subframe.
- the step 42A is specifically: the base station sends the downlink corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe before the time corresponding to the first downlink subframe at the time corresponding to the first carrier.
- the scheduling information is sent to the terminal, where the downlink scheduling information corresponding to the second downlink subframe on the second carrier is sent, and the downlink scheduling information corresponding to the downlink subframe on the first carrier is sent.
- the same subframe on the first carrier in the downlink subframe 7 on the second carrier is an uplink subframe, and the DL-Grant cross-subframe corresponding to the downlink subframe 7 on the second carrier can be adjusted to The downlink subframe 5 or 6 on the first carrier is carried. If the scheduling delay is minimized, the DL-Grant cross-subframe corresponding to the downlink subframe 7 on the second carrier may be adjusted to be carried on the downlink sub-frame 6 on the first carrier.
- the downlink subframe 6 on the first carrier will have the same downlink scheduling as the subframe: the DL-Grant corresponding to the downlink subframe 6 on the second carrier, and there is also a cross-subframe downlink scheduling: the downlink on the second carrier Subframe 7 corresponds to DL-Grant.
- the downlink subframe of the first carrier When the downlink subframe of the first carrier is the uplink subframe, the downlink subframe of the first carrier does not need to carry the DL-Grant of the same subframe on the second carrier, therefore, To prevent the same subframe downlink scheduling and the cross-subframe downlink scheduling from occurring in one subframe, the cross-subframe corresponding to the downlink subframe on the second carrier may be adjusted to other downlink subframes on the first carrier, where the downlink is performed.
- the same subframe on the second carrier of the subframe is an uplink subframe.
- the downlink subframe 4 on the first carrier does not need to carry the same subframe downlink scheduling, and only needs to carry the cross-subframe downlink scheduling, that is, it is not necessary to distinguish the cross-carrier same subframe and the cross-subframe downlink scheduling at this time.
- FIG. 4C is a flowchart of Embodiment 5 of a method for transmitting downlink scheduling information provided by the present invention. As shown in FIG. 4C, this embodiment includes:
- Step 41B The base station determines the first downlink subframe in the downlink subframe on the second carrier, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Step 42B The base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe on the first carrier; the time corresponding to the fifth downlink subframe is in the first downlink.
- the subframe where the ACK/NACK is located does not need to be ACK/NACK bound on the first carrier.
- the downlink scheduling information corresponding to the subframe 4 on the second carrier cannot be transmitted in the same subframe (uplink subframe) on the first carrier, and can be corresponding according to the criterion of minimum ACK/NACK feedback delay.
- the downlink scheduling information is tuned to the subframe 1 on the first carrier; if the above-mentioned cross-carrier-sorting downlink scheduling and cross-subframe downlink scheduling are used, the P in the transmission method provided in the embodiment corresponding to the embodiment is used.
- the P-DAI of subframe 1 on the first carrier cannot be used, because the ACK/NACK corresponding to the PDSCH on the subframe 1 of the first carrier needs to be time domain ACK on the feedback subframe 2 /NACK part binding (this time both carriers have
- the ACK/NACK feedback and the number of ACK/NACK feedbacks on the first carrier are greater than 2) and the P-DAI count is used. Therefore, the downlink scheduling information corresponding to the subframe 4 of the second carrier can be adjusted to the subframe 0 on the first carrier, because the ACK/NACK feedback subframe 4 corresponding to the PDSCH of the subframe 0 on the first carrier does not need to be processed.
- the domain ACK/NACK is partially bound, so P-DAI is available.
- the P-DAI in the PDCCH scheduling the first carrier can be used to distinguish the cross-carrier same-subframe downlink scheduling and the cross-subframe downlink scheduling from the S-D AI.
- FIG. 5A is a flowchart of Embodiment 1 of an uplink scheduling information sending method according to the present invention. As shown in FIG. 5A, this embodiment includes:
- Step 51 The base station determines a first uplink subframe in an uplink subframe on the second carrier, and schedules a time corresponding to the third downlink subframe in the first uplink subframe when the second carrier is not in cross-carrier scheduling.
- the subframe on the carrier is an uplink subframe.
- the third downlink of the uplink scheduling information of the first uplink subframe PUSCH on the second carrier is scheduled on the second carrier. Send on the frame.
- the PDCCH is carried on the second carrier, the downlink subframe of the PUSCH carried in the second uplink subframe is scheduled to be the fourth downlink subframe on the second carrier.
- the third downlink subframe is on the first carrier according to the timing relationship between the UL-grant and the scheduled PUSCH on the first carrier.
- the corresponding same subframe is an uplink subframe, and the uplink scheduling information corresponding to the first uplink subframe on the second carrier (that is, the uplink scheduling information for scheduling the PUSCH carried in the first uplink subframe on the second carrier) ) Cannot be sent in the same subframe on the first carrier.
- the uplink subframe corresponding to the second uplink subframe on the second carrier is the downlink subframe, and the uplink scheduling information corresponding to the second uplink subframe when the cross-carrier scheduling is performed.
- the fourth downlink subframe may be directly transmitted on the same subframe on the first carrier.
- the cross-carrier scheduling may not be able to send the uplink scheduling information of the second carrier on the first carrier. Therefore, the base station needs to determine that the downlink subframe of each uplink subframe is scheduled on the second carrier.
- the same subframe is an uplink subframe, that is, the first uplink subframe is determined in all the uplink subframes, and the uplink scheduling information of the PUSCH of the first uplink subframe is scheduled on the second carrier to meet the required downlink subframe on the first carrier. Send on.
- the following describes the timing relationship between the UL-grant of the first carrier and the scheduled PUSCH in the LTE TDD system, and the timing relationship between the UL-grant of the second carrier and the scheduled PUSCH, indicating that the uplink scheduling information on the second carrier cannot be in the first carrier.
- the subframe in which the number is located represents the uplink subframe, and the rest is the downlink subframe
- the number in the uplink subframe indicates the UL_grant that schedules the current uplink subframe PUSCH.
- the PUSCH of the uplink subframe 8 of the second carrier is scheduled by the UL-grant on the second carrier downlink subframe 4
- the PUSCH of the uplink subframe 7 of the second carrier is scheduled by the UL-grant on the second carrier downlink subframe 1.
- the same subframe on the first carrier of the downlink subcarrier 1 of the second carrier is a downlink subframe, and therefore, the UL_grant for scheduling the second carrier uplink subframe 7 may be in the downlink subframe 1 of the first carrier (the first carrier)
- the downlink subframe 1 is called the same subframe of the downlink subframe 1 on the second carrier. Since the same subframe on the first carrier of the downlink subframe 4 of the second carrier is an uplink subframe, the scheduling is performed.
- the UL_grant of the two-carrier uplink subframe 8 cannot be transmitted on the uplink subframe 4 on the first carrier.
- the uplink subframe 8 of the second carrier is referred to as the first uplink subframe on the second carrier in the embodiment of the present invention, and the downlink subframe 4 of the downlink subframe 8 is scheduled on the second carrier, which is referred to in the embodiment of the present invention. It is a third downlink subframe on the second carrier.
- Step 52 The base station sends the uplink scheduling information corresponding to the first uplink subframe on the second carrier to the terminal in the sixth downlink subframe on the first carrier; the time corresponding to the sixth downlink subframe is in the first uplink subframe. prior to.
- the uplink scheduling information corresponding to each third downlink subframe of each first uplink subframe is scheduled to be adjusted to the first carrier at the time of the first uplink subframe.
- the base station sends the uplink scheduling information to the terminal to send the corresponding PUSCH in a certain interval.
- the base station sends the uplink scheduling information to the terminal to send the corresponding PUSCH at least four subframes.
- the downlink subframe should also be separated from the first uplink subframe by a certain number of subframes, where the number of subframes is the number of subframes that the base station needs to send the uplink scheduling information to the terminal to send the corresponding PUSCH.
- the downlink subframe on the first carrier that carries the uplink scheduling information corresponding to the first uplink subframe is referred to as the sixth downlink subframe on the first carrier.
- the base station may notify the terminal to adjust the timing relationship between the subframes by using signaling.
- the timing relationship between the adjusted subframes may also be configured for the terminal, so that after receiving the uplink scheduling information of the cross-carriers, the terminal may reply to the uplink in the corresponding uplink subframe according to the timing relationship between the subframes.
- the base station may also add a subframe indication field to the uplink scheduling information of the first carrier, and indicate the uplink subframe on the second carrier that is scheduled to be cross-carrier scheduled by the uplink scheduling information, that is, which uplink on the second carrier is indicated.
- the uplink data of the uplink scheduling information cross-carrier scheduling is sent to the base station in the subframe.
- the base station may also send the second uplink subframe corresponding to the second carrier.
- the uplink scheduling information corresponding to the uplink subframe on the first carrier also referred to as the uplink scheduling information for scheduling the PUSCH of the uplink subframe carried on the first carrier.
- the UL_grant and its scheduled PUSCH, or the PUSCH and its corresponding PHICH are not in the same subframe, because the base station or the terminal requires a certain processing time, and the time interval is generally not less than 4 subframes.
- the UL-grant of the uplink subframe 8 is scheduled on the second carrier, and is adjusted to the first carrier before the uplink subframe 8 and with the uplink subframe. Is it at least 4 sub-frames of downlink subframe 0 or downlink subframe 1? Loaded.
- the base station also sends, to the terminal, the uplink scheduling information corresponding to the second row subframe on the second carrier and the first carrier on the first carrier.
- Uplink scheduling information corresponding to the uplink subframe With independent scheduling, joint scheduling can also be used.
- the uplink scheduling information for scheduling the corresponding PUSCH is sent to the terminal through multiple independent PDCCHs. Specifically, on the downlink subframe of the first carrier, the uplink scheduling information corresponding to the first uplink subframe on the second carrier is sent to the terminal across the subframe, and the second carrier is sent on the second carrier.
- the uplink scheduling information corresponding to the uplink subframe and the uplink scheduling information corresponding to the uplink subframe on the first carrier is sent, to the terminal across the subframe, and the second carrier is sent on the second carrier.
- the PDCCH is used to transmit the uplink scheduling information of the PUSCH on the second carrier, that is, the PUSCH and the same subframe scheduled by the subframe after the carrier aggregation
- the downlink scheduled PUSCH shares one PDCCH.
- the uplink scheduling information corresponding to the first uplink subframe on the second carrier and the second carrier are transmitted to the terminal across the subframe through one PDCCH.
- the scheduling of the two subframes shares the control information in the PDCCH.
- the uplink scheduling information corresponding to the uplink subframe on the first carrier is sent to the terminal through another PDCCH.
- the base station when the physical downlink control channel on the second carrier is carried on the first carrier, the base station adjusts the uplink scheduling information corresponding to the third downlink subframe on the second carrier across the subframe. Sending on the first carrier on the sixth downlink subframe before the first uplink subframe. Therefore, when the cross-carrier PDCCH is scheduled, the second carrier can be scheduled on the first carrier.
- FIG. 6 is a flowchart of Embodiment 2 of an uplink scheduling information sending method according to the present invention. For the most The time delay from the sending of the uplink scheduling information by the base station to the delay of the terminal transmitting the corresponding PUSCH is as shown in FIG. 6A.
- the embodiment includes:
- Step 61 The base station determines the first uplink subframe in the uplink subframe on the second carrier, and schedules the time corresponding to the third downlink subframe in the first uplink subframe on the second carrier on the second carrier.
- the subframe is an uplink subframe;
- Step 62 The base station sends, to the terminal, the first downlink subframe corresponding to the first uplink subframe on the second carrier, where the transmission time delay is the smallest, and the first uplink subframe is at least N subframes.
- the sixth downlink subframe on the first carrier and the first uplink subframe on the second carrier have the smallest transmission time delay and at least N subframes from the first uplink subframe.
- N is the number of subframes between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal. Because the terminal receives the UL-Grant to the terminal to send the UL-Grant scheduled PUSCH, it takes a certain time, that is, several subframes. Therefore, when the base station sends the uplink scheduling information corresponding to the first uplink subframe to the terminal, it needs to be separated from the first uplink subframe by several subframes.
- Step 62 is specifically as follows: The base station sends the uplink scheduling information corresponding to the first uplink subframe on the second carrier to the terminal in the sixth downlink subframe. In addition, the base station sends the uplink scheduling information corresponding to the second uplink subframe on the second carrier and the uplink scheduling information corresponding to the uplink subframe on the first carrier to the terminal in the sixth downlink subframe.
- the downlink subframe 1 has the smallest time delay from the uplink subframe 8 and is spaced before the uplink subframe 8 and at least 4 subframes from the uplink subframe 8.
- FIG. 7A is a flowchart of Embodiment 3 of an uplink scheduling information sending method according to the present invention.
- one downlink subframe on the first carrier may carry uplink scheduling information of three or more PUSCHs, and there may be other downlink subframes on the first carrier that only carry one PUSCH. Upstream scheduling information. Therefore, the PDCCH load of each downlink subframe on the first carrier is not balanced.
- this embodiment includes:
- Step 71 The base station determines a first uplink subframe in an uplink subframe on the second carrier, and the second carrier The subframe corresponding to the third downlink subframe in which the first uplink subframe is scheduled in the non-cross-carrier scheduling on the wave is the uplink subframe on the first carrier;
- Step 72 The base station sends the uplink scheduling information corresponding to the first uplink subframe on the second carrier to the terminal in the sixth downlink subframe on the first carrier; the time corresponding to the sixth downlink subframe is in the first uplink subframe.
- the uplink scheduling information corresponding to a first uplink subframe of the second carrier is carried by the sixth downlink subframe.
- step 62 it is possible that, on some downlink subframes on the first carrier, there is no uplink scheduling information carried by the third downlink subframe on the second carrier when the non-cross-carrier scheduling is performed, that is, For some downlink subframes, when the non-cross-carrier scheduling is not carried, the uplink scheduling information of two or more first uplink subframes on the second carrier is separately scheduled. Some downlink subframes carry uplink scheduling information carried by two or more third downlink subframes on the second carrier when the non-cross-carrier scheduling is performed. As shown in FIG.
- the three UL-grants carried by the downlink subframe 1 on the first carrier include: scheduling the UL-grant of the PUSCH on the uplink subframe 5 on the first carrier, scheduling The UL_grant of the PUSCH on the uplink subframe 7 on the second carrier and the UL_grant of the PUSCH on the uplink subframe 8 on the second carrier are scheduled.
- the downlink subframe 0 on the first carrier carries only one UL-grant: the UL-grant that schedules the uplink subframe 4 on the first carrier. Therefore, the downlink subframe 1 on the first carrier has the largest load and the downlink subframe 0 is the smallest, and the PDCCH load of each downlink subframe on the first carrier is unbalanced.
- the base station determines the sixth downlink subframe in the downlink subframe before the first uplink subframe on the first carrier.
- the sixth downlink sub-frame carries at least one uplink scheduling information corresponding to a first uplink subframe on the second carrier, and the fifth downlink subframe is separated from the first uplink subframe by at least N subframes.
- the delay of the sixth downlink subframe that needs to be corresponding to the first uplink subframe is minimum when the above conditions are met.
- the downlink subframe 0 of the first carrier is before the uplink subframe 8 of the second carrier and is spaced apart from the uplink subframe 8 by 7 subframes.
- the UL_grant corresponding to the downlink subframe 4 on the second carrier is adjusted to the downlink subframe 0 on the first carrier. Therefore, the downlink subframe 0 on the first carrier carries the uplink scheduling information corresponding to the first uplink subframe on the second carrier, and the compromise between the minimum scheduling delay and the balanced PDCCH load is obtained.
- the PUSCH on the uplink subframe 7 on the second carrier is scheduled on the downlink subframe 1 on the first carrier.
- the downlink subframe 1 on the second carrier schedules the uplink subframe 7 on the second carrier, which is uplink scheduling for the first subframe under the cross-carrier; on the downlink subframe 1 on the first carrier Scheduling the PUSCH on the uplink subframe 8 on the second carrier (in the non-cross-carrier scheduling, the downlink subframe 4 on the second carrier schedules the uplink subframe 8 on the second carrier; and in the cross-carrier scheduling, the second carrier
- the downlink subframe 4 on the first carrier is an uplink subframe, and is uplink scheduling for the second subframe under the cross carrier.
- the base station indicates the downlink subframe on the first carrier to the terminal by using a new bit in the physical downlink control channel, a newly added scrambling code, a carrier indication field, a transmission power control, a downlink allocation indication, or an uplink index (UL Index).
- a cross-carrier uplink scheduling type or, by means of RRC signaling, MAC signaling, a search space of a physical downlink control channel, or a scheduling moment of a physical downlink control channel, indicating, to the terminal, a cross-carrier uplink scheduling type of a downlink subframe on the first carrier;
- the cross-carrier uplink scheduling type includes uplink scheduling of the first subframe uplink scheduling and second subframe uplink scheduling of the second subframe uplink scheduling in the first subframe.
- FIG. 8 is a flowchart of Embodiment 4 of an uplink scheduling information sending method according to the present invention.
- the scheduling between the carriers can be distinguished by the CIF in the PDCCH, and the two subframes are scheduled under the cross-carrier scheduling. There is no distinguishing method in the prior art.
- the embodiment includes:
- Step 81 The base station determines a first uplink subframe in an uplink subframe on the second carrier, and schedules a time corresponding to the third downlink subframe in the first uplink subframe on the second carrier when the second carrier is not in cross-carrier scheduling.
- the subframe is an uplink subframe;
- Step 82 The base station sends a first uplink subcarrier on the second carrier to the terminal on the sixth downlink subframe that does not carry the UL-grant when the subframe on the second carrier is not on the cross-carrier scheduling.
- the subframe on the second carrier corresponding to the sixth downlink subframe does not carry the UL-grant when it is not in the cross-carrier scheduling.
- the subframe number of the downlink subframe 0 on the first carrier corresponding to the same subframe on the second carrier does not appear in all uplink subframes on the second carrier, and the downlink subframe 0 is in the Before the uplink subframe 8, there are 7 subframes from the uplink subframe 8. Because, on the second carrier The row subframe 0 does not carry the UL_grant of any uplink subframe before the cross-carrier scheduling.
- the downlink subframe 0 on the first carrier After adjusting the UL_grant of the uplink subframe 8 on the second carrier to the downlink subframe 0 on the first carrier, the downlink subframe 0 on the first carrier has only the first subframe uplink scheduling under the cross carrier without the first
- the two subframes are uplink scheduled, that is, the first subframe uplink scheduling and the second subframe uplink scheduling under the cross carrier are not required to be distinguished at this time. Therefore, the purpose of avoiding distinguishing between the first subframe uplink scheduling and the second subframe uplink scheduling under the cross-carrier can be achieved.
- FIG. 9 is a schematic structural diagram of Embodiment 1 of a downlink scheduling information sending apparatus according to the present invention. As shown in FIG. 9, the embodiment includes: a downlink subframe determining module 91 and a downlink scheduling sending module 92.
- the downlink subframe determining module 91 is configured to determine, in a downlink subframe on the second carrier, a first downlink subframe, where the subframe corresponding to the first downlink subframe is an uplink subframe;
- the downlink scheduling sending module 92 is configured to send downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in a fifth downlink subframe on the first carrier, where the time corresponding to the fifth downlink subframe is Before the time corresponding to the first downlink subframe.
- the delay is minimal.
- the time corresponding to the fifth downlink subframe is the uplink subframe in the subframe of the second carrier.
- the fifth downlink subframe carries downlink scheduling information corresponding to at most one first downlink subframe on the second carrier.
- the downlink scheduling sending module 92 adds new bits, a new scrambling code, a carrier indication field, and a sending in the physical downlink control channel.
- a power control, a downlink allocation indication, or an ACK/NACK resource indication indicating, to the terminal, a cross-carrier downlink scheduling type of the fifth downlink subframe on the first carrier; or, by using radio resource control signaling, media access control signaling,
- the search space of the physical downlink control channel or the scheduling moment of the physical downlink control channel indicates the cross-carrier downlink scheduling type of the fifth downlink subframe on the first carrier to the terminal.
- the independent scheduling mode may be used, or the joint scheduling mode may be used.
- the downlink scheduling sending module 92 is specifically configured to send, by using a plurality of independent physical downlink control channels, downlink scheduling information corresponding to the first downlink subframe on the second carrier, and send the second carrier on the second carrier. Second downlink subframe pair The downlink scheduling information and the corresponding downlink scheduling information on the first carrier are sent.
- the downlink scheduling sending module 92 is specifically configured to send the second carrier to the terminal across the subframe through a physical downlink control channel on the first carrier in the fifth downlink subframe before the first downlink subframe.
- the fifth downlink subframe on the first carrier is in the same subframe at the same time on the first carrier.
- the third carrier on the second carrier is scheduled by the first carrier to be cross-carrier scheduled, and the downlink scheduling transmission module passes the first a downlink allocation indication in the downlink scheduling information sent by the fifth downlink subframe on the carrier, and indicating, to the terminal, a cross-carrier downlink scheduling type on the fifth downlink subframe on the first carrier.
- the base station before the first carrier cross-carrier carries the PDCCH on the second carrier, to ensure that the PDSCH on the second carrier is scheduled across the carrier on the first carrier, the base station places the second carrier on the second carrier.
- the same subframe on a carrier is that the downlink scheduling information corresponding to the first downlink subframe of the uplink subframe is adjusted to the downlink subframe bearer on the first carrier. Therefore, when the carrier is cross-carrier, the base station can send downlink scheduling information for scheduling the PDSCH on the second carrier on the first carrier.
- FIG. 10 is a schematic structural diagram of Embodiment 1 of an apparatus for transmitting uplink scheduling information according to the present invention. As shown in FIG. 10, the method includes: an uplink subframe determining module 101 and an uplink scheduling sending module 102.
- the uplink subframe determining module 101 is configured to determine a first uplink subframe in an uplink subframe on the second carrier, and schedule a time corresponding to the third downlink subframe in the first uplink subframe when the second carrier is not in cross-carrier scheduling
- the subframe on the first carrier is an uplink subframe.
- the uplink scheduling sending module 102 is configured to send uplink scheduling information corresponding to the first uplink subframe on the second carrier to the terminal in the sixth downlink subframe on the first carrier, where the time corresponding to the sixth downlink subframe is in the first Before an uplink subframe.
- the sixth downlink subframe and the second carrier An uplink subframe has a minimum transmission time delay and is separated from the first uplink subframe by at least N subframes; N is a number of subframes between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal. .
- the subframes on the second carrier corresponding to the sixth downlink subframe do not carry the uplink scheduling information when the non-cross-carrier scheduling is performed.
- the subframes on the second carrier corresponding to the sixth downlink subframe do not carry the uplink scheduling information when the non-cross-carrier scheduling is performed.
- the uplink scheduling sending module 102 indicates to the terminal the sixth on the first carrier by using a new bit in the physical downlink control channel, a newly added scrambling code, a carrier indication field, a transmission power control, a downlink allocation indication, or an uplink index.
- the cross-carrier uplink scheduling type of the downlink subframe; or, by the radio resource control signaling, the medium access control signaling, the search space of the physical downlink control channel, or the scheduling moment of the physical downlink control channel, indicating to the terminal the first carrier Cross-carrier uplink scheduling type of six downlink subframes.
- the independent scheduling mode may be used, or the joint scheduling mode may be used.
- the uplink scheduling sending module 102 is configured to send the first to the terminal by using multiple independent physical downlink control channels on the first carrier in the sixth downlink subframe before the first uplink subframe.
- the uplink scheduling sending module 102 is specifically configured to send, by using a physical downlink control channel, the second carrier on the second carrier in the sixth downlink subframe before the first uplink subframe on the first carrier.
- the control channel sends the uplink scheduling information corresponding to the uplink subframe on the first carrier to the terminal.
- the downlink scheduling information sent by the fifth downlink subframe on the first carrier includes a downlink allocation indication, and the downlink allocation, in order to distinguish the DL-Grant-time cross-carrier scheduling type of the cross-carrier scheduling on the first carrier. Instructing to indicate to the terminal that the on the first carrier Cross-carrier downlink scheduling type on the fifth downlink subframe.
- the fifth downlink subframe on the first carrier is determined according to the following method: determining, according to the first timing relationship, all downlink subframes corresponding to a maximum number of uplink ACK/NACKs that can be fed back by the third uplink subframe on the second carrier And determining, in the downlink subframes, the downlink subframes with the earliest scheduling time in the downlink subframes, where the earliest downlink subframe at the scheduling time is the same as the time of the fifth downlink subframe on the second carrier on the second carrier Subframe.
- the first timing relationship may be a timing relationship of uplink ACK/NACK when the second carrier is separately configured.
- the uplink scheduling information sending apparatus of the embodiment of the present invention when the physical downlink control channel on the second carrier is carried on the first carrier, the uplink scheduling sending module crosses the uplink scheduling information corresponding to the third downlink subframe on the second carrier The frame is adjusted to be transmitted on the first carrier on the sixth downlink subframe before the first uplink subframe.
- the PUSCH on the second carrier can be scheduled on the first carrier.
- FIG. 11 is a flowchart of Embodiment 1 of a method for receiving downlink scheduling information according to the present invention. As shown in FIG. 11, this embodiment includes:
- Step 111 The terminal receives the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station on the second downlink subframe in the second downlink subframe before the first downlink subframe.
- the subframe on the first carrier at the time corresponding to the first downlink subframe is an uplink subframe.
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station in the fifth downlink subframe before the first downlink subframe.
- the downlink scheduling information corresponding to the second downlink subframe on the second carrier that is sent by the base station is also received.
- the time corresponding to the second downlink subframe on the second carrier is the downlink subframe in the subframe of the first carrier.
- Step 112 The terminal receives the downlink data corresponding to the downlink scheduling information on the first downlink subframe on the second carrier according to the received downlink scheduling information.
- the terminal When the physical downlink control channel on the second carrier is carried on the first carrier, the terminal is in the fifth time before the first downlink subframe on the first carrier according to the configured timing relationship between the PDCCH & PDSCH and the uplink ACK/NACK.
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station across the subframe is received.
- the timing relationship between the PDCCH & PDSCH and the uplink ACK/NACK is that when the physical downlink control channel on the second carrier is carried on the first carrier, the base station re-determines the downlink scheduling information on the second carrier on the first carrier. PDCCH & PDSCH and uplink ACK/NACK New timing relationship.
- the base station can send the PDCCH&PDSCH and the uplink to the terminal through signaling.
- the new timing relationship of ACK/NACK the signaling may be high layer signaling such as RRC, MAC, layer 1 or layer 2 signaling, such as PDCCH.
- a new timing relationship between PDCCH & PDSCH and uplink ACK/NACK is pre-configured on both sides of the base station and the terminal.
- the second carrier is used to indicate that the downlink scheduling information is scheduled across carriers.
- the downlink subframe that is, which downlink subframe on the second carrier is downlink data that indicates that the downlink scheduling information is cross-carrier scheduled.
- the terminal may determine, according to the indication of the subframe indication field of the downlink scheduling information, which downlink subframe on the second carrier that is scheduled by the downlink scheduling information, and receive the downlink scheduling on the corresponding downlink subframe on the second carrier.
- the downlink data corresponding to the information.
- the method for determining, by the terminal according to the indication of the subframe indication field of the downlink scheduling information, which downlink subframe on the second carrier that the downlink scheduling information is scheduled to be cross-carrier, may be described in the corresponding embodiment in FIG. 18 .
- the terminal receives the newly added bits in the physical downlink control channel, the added scrambling code, the carrier indication field, the transmission power control, the downlink allocation indication, or the ACK/NACK resource.
- the scheduling type and the downlink scheduling information, the downlink data corresponding to the downlink scheduling information is received on the first downlink subframe of the second carrier.
- the terminal When the terminal determines that the cross-carrier downlink scheduling type of the downlink subframe on the first carrier is the downlink scheduling of the same subframe, the terminal receives the downlink data scheduled by the downlink scheduling information on the first downlink subframe of the second carrier. After receiving the DL Grant on the first downlink carrier in the fifth downlink subframe before the first downlink subframe, determining that the DL Grant is in the downlink scheduling of the same subframe, the terminal is on the second carrier corresponding to the downlink subframe. On the same subframe, the PDSCH scheduled with the DL Grant is received.
- the cross-carrier downlink scheduling type of the downlink subframe on the first carrier of the terminal is the cross-subframe downlink scheduling
- the downlink scheduling information corresponding to the second downlink subframe on the second carrier is received across the subframe on the second carrier.
- Downstream data After receiving the DL Grant on the first downlink carrier in the fifth downlink subframe before the first downlink subframe, determining that the DL Grant is downlink scheduling across the subframe, the terminal is in The foregoing downlink subframe corresponds to a cross-subframe on the second carrier, and receives the PDSCH 0 scheduled with the DL Grant.
- the terminal feeds back the timing of the ACK/NACK corresponding to the PDSCH to the base station, and determines according to the PDSCH, instead of determining according to the corresponding PDCCH.
- the terminal according to the new timing relationship between the PDCCH & PDSCH and the uplink ACK/NACK that can minimize the scheduling delay, the transmission time delay corresponding to the first downlink subframe on the second carrier is the smallest, and the time is in the first downlink subframe.
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station across the subframe is received on the previous fifth downlink subframe.
- the terminal according to the new timing relationship between the PDCCH & PDSCH and the uplink ACK/NACK that can obtain a compromise between the minimum scheduling delay and the PDCCH load, and the fifth downlink before the first downlink subframe on the first carrier
- the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station across the subframe is received; the fifth downlink subframe carries only the downlink scheduling information corresponding to the first downlink subframe.
- the base station may be in the first carrier before the first downlink subframe and in the same carrier of the second carrier.
- the downlink scheduling information is sent to the terminal. Therefore, the terminal according to the new timing relationship between the PDCCH & PDSCH and the uplink ACK/NACK, before the first downlink subframe on the first carrier and on the fifth downlink subframe of the uplink subframe in the same subframe of the second carrier And receiving downlink scheduling information sent by the base station across the subframe.
- FIG. 12A is a schematic structural diagram of Embodiment 1 of a downlink scheduling information receiving apparatus according to the present invention. As shown in FIG. 12A, the embodiment includes: a downlink scheduling receiving module 121 and a downlink data receiving module 122.
- the downlink scheduling receiving module 121 is configured to receive, on the first carrier, the downlink scheduling information corresponding to the first downlink subframe on the second carrier that is sent by the base station, in the fifth downlink subframe before the first downlink subframe.
- the subframe corresponding to the first downlink subframe on the second carrier on the first carrier is an uplink subframe;
- the downlink data receiving module 122 is configured to receive downlink data corresponding to downlink scheduling information on the first downlink subframe on the second carrier according to the received downlink scheduling information.
- the fifth downlink subframe corresponds to the time and the first downlink
- the time delay of the line subframe corresponding to the moment is the smallest.
- the fifth downlink subframe carries downlink scheduling information corresponding to at most one first downlink subframe on the second carrier, when a compromise is obtained between the minimum scheduling delay and the PDCCH load.
- the time corresponding to the fifth downlink subframe is the uplink subframe of the second carrier.
- FIG. 12B the following figure further includes: a downlink scheduling type receiving module 123;
- FIG. 12B is a downlink provided by the present invention, as shown in FIG. 12B, in order to distinguish the same subframe downlink scheduling and cross-frame downlink scheduling information.
- the downlink scheduling type receiving module 123 is configured to receive a new bit in the physical downlink control channel, a newly added scrambling code, a carrier indication field, a transmission power control, a downlink allocation indication, an ACK/NACK resource indication, and a radio resource control signaling.
- the downlink data receiving module 122 is configured to receive, according to the cross-carrier downlink scheduling type and the downlink scheduling information of the fifth downlink subframe on the first carrier, the downlink scheduling information corresponding to the downlink downlink information in the first downlink subframe on the second carrier. Downstream data.
- the downlink scheduling receiving module receives the downlink scheduling information corresponding to the first downlink subframe on the second carrier on the fifth subframe of the first carrier.
- the PDSCH on the second carrier can be scheduled on the first carrier.
- FIG. 13 is a flowchart of Embodiment 1 of an uplink scheduling information receiving method according to the present invention.
- the embodiment includes: Step 131: The base station receives, on the first carrier, the first uplink subframe on the second carrier that is sent by the base station, in the sixth downlink subframe before the first uplink subframe.
- Corresponding uplink scheduling information The subframe corresponding to the third downlink subframe in the first uplink subframe when the second carrier is scheduled to be non-cross-carrier scheduling is the uplink subframe.
- the terminal determines the time before the first uplink subframe on the first carrier according to the timing relationship between the configured UL_grant and the scheduled PUSCH.
- Receiving uplink scheduling information corresponding to the first uplink subframe on the second carrier that is sent by the base station, and scheduling the first uplink subcarrier on the second carrier The same subframe on the first carrier of the third downlink subframe of the frame is an uplink subframe.
- the timing relationship between the UL_grant and the scheduled PUSCH in the embodiment of the present invention is when the physical downlink control channel on the second carrier is carried on the first carrier, in order to schedule the second carrier on the first carrier.
- Uplink scheduling information a new timing relationship between the UL-grant and the scheduled PUSCH that the base station re-determines.
- the base station may send a new timing relationship between the terminal UL-grant and its scheduled PUSCH by using signaling, which may be high-level signaling such as RRC, MAC, layer 1 signaling or layer 2 signaling, such as PDCCH.
- signaling which may be high-level signaling such as RRC, MAC, layer 1 signaling or layer 2 signaling, such as PDCCH.
- a new timing relationship between the UL_grant and its scheduled PUSCH is pre-configured on both sides of the base station and the terminal.
- the base station adds the PDCCH on the second carrier to the first carrier
- the second carrier for indicating the uplink scheduling information cross-carrier scheduling is used.
- the uplink subframe above that is, which uplink subframe on the second carrier is used to send uplink data of the uplink scheduling information cross-carrier scheduling to the base station.
- the terminal may determine, according to the indication of the subframe indication field corresponding to the uplink scheduling information, which uplink subframe on the second carrier that is scheduled by the uplink scheduling information, and send the uplink subframe to the base station in the corresponding uplink subframe on the second carrier.
- Downlink data of uplink scheduling information scheduling may be described in the corresponding embodiment in FIG.
- Step 132 The base station sends the uplink data corresponding to the uplink scheduling information on the first uplink subframe of the second carrier according to the received uplink scheduling information.
- the terminal when the PDCCH on the second carrier is carried on the first carrier, the terminal receives the first uplink subframe on the second carrier in the sixth subframe on the first carrier. Up-to-point scheduling information.
- the PUSCH on the second carrier can be scheduled on the first carrier.
- the terminal corresponds to the first uplink subframe on the second carrier, before the first uplink subframe, according to the new timing relationship between the UL-grant and the scheduled PUSCH that can minimize the scheduling delay.
- the scheduling information is sent to the base station to receive the number of subframes between the uplink data corresponding to the uplink scheduling information.
- the terminal can obtain a compromise between minimizing the scheduling delay and the PDCCH load according to the terminal.
- the new timing relationship between the UL-grant and the scheduled PUSCH, on the first carrier, on the sixth downlink subframe before the first uplink subframe, and the first uplink subframe corresponding to the second carrier sent by the receiving base station Uplink scheduling information, where the fifth downlink subframe carries at most one uplink scheduling information corresponding to a first uplink subframe on the second carrier.
- the first subframe uplink scheduling first subframe uplink scheduling and the second subframe uplink scheduling second subframe uplink scheduling may occur simultaneously on one downlink subframe on the first carrier.
- the terminal receives the newly added bit in the physical downlink control channel, the added scrambling code, the carrier indication field, the transmission power control, the uplink allocation indication, the RRC signaling, the MAC signaling, the search space of the physical downlink control channel, or the physical The cross-carrier uplink scheduling type of the sixth downlink subframe indicated by the scheduling moment of the downlink control channel.
- the terminal sends the uplink data corresponding to the uplink scheduling information in the first uplink subframe on the second carrier according to the cross-carrier uplink scheduling type and the uplink scheduling information of the sixth downlink subframe.
- the first subframe downlink scheduling and the second subframe downlink scheduling in the cross-carrier uplink scheduling are avoided, and the base station can avoid distinguishing the first subframe downlink scheduling and the second subframe downlink scheduling UL in the cross-carrier uplink scheduling.
- the grant has a new timing relationship with the scheduled PUSCH, and sends uplink scheduling information to the terminal. Therefore, the terminal receives the first uplink on the second carrier that is sent by the base station on the sixth downlink subframe before the first uplink subframe on the first carrier according to the new timing relationship between the UL grant and the PUSCH that is scheduled.
- the uplink scheduling information corresponding to the subframe; the same subframe of the sixth downlink subframe on the second carrier does not carry the uplink scheduling information when the non-cross-carrier scheduling is performed.
- FIG. 14 is a schematic structural diagram of Embodiment 1 of an apparatus for receiving uplink scheduling information according to the present invention. As shown in FIG. 14A, the embodiment includes: an uplink scheduling receiving module 141 and an uplink data sending module 142.
- the uplink scheduling receiving module 141 is configured to receive uplink scheduling information corresponding to the first uplink subframe on the second carrier that is sent by the base station, in the sixth downlink subframe before the first uplink subframe, on the first carrier;
- the subframe corresponding to the third downlink subframe in which the first uplink subframe is scheduled on the second carrier is not the cross-carrier scheduling, and the subframe on the first carrier is the uplink subframe.
- the uplink data sending module 142 is configured to send uplink data corresponding to the uplink scheduling information on the first uplink subframe on the second carrier according to the received uplink scheduling information.
- the sixth downlink subframe and the first uplink subframe on the second carrier have the smallest transmission time delay and are separated from the first uplink subframe by at least N subframes; N is the terminal receiving the uplink scheduling signal. And the number of subframes in which the terminal transmits the uplink data corresponding to the uplink scheduling information. Or, the subframe on the second carrier corresponding to the sixth downlink subframe does not carry the uplink scheduling information when the non-cross carrier scheduling is performed. Or, the sixth downlink subframe at most carries uplink scheduling information corresponding to a first uplink subframe on the second carrier.
- FIG. 14B is a schematic structural diagram of Embodiment 2 of an apparatus for receiving uplink scheduling information according to the present invention.
- FIG. 14B further includes: an uplink scheduling type receiving module 143.
- the uplink scheduling type receiving module 143 is configured to receive a new bit in the physical downlink control channel, a newly added scrambling code, a carrier indication field, a transmission power control, an uplink allocation indication, a radio resource control signaling, and a media access control letter.
- a cross-carrier uplink scheduling type of the sixth downlink subframe indicated by the search space of the physical downlink control channel or the scheduling moment of the physical downlink control channel;
- the uplink data sending module 142 is configured to send the uplink data corresponding to the uplink scheduling information in the first uplink subframe on the second carrier according to the cross-carrier uplink scheduling type and the uplink scheduling information of the sixth downlink subframe.
- the uplink scheduling information receiving apparatus of the embodiment of the present invention when the PDCCH on the second carrier is carried on the first carrier, the uplink scheduling receiving module receives the first uplink on the second carrier in the sixth subframe on the first carrier. Uplink scheduling information for the subframe pair.
- the cross-carrier PDCCH is scheduled, the PUSCH on the second carrier can be scheduled on the first carrier.
- the interference between the macro cell and the control channel of the micro cell is large.
- CA Carrier Aggregation
- the PDCCH of multiple carriers can be placed on a part of the carrier.
- Both the macro cell and the micro cell have two carrier aggregations: C1 carrier and C2 carrier aggregation. Since the two carriers of the two cells are of the same frequency, the PDCCH interference is large.
- the macro cell can put the PDCCHs of C1 and C2 on C2, and the micro cell is placed on the C1 carrier, which can reduce the interference of the PDCCH and ensure the PDCCH performance. As shown in FIG.
- the C2 carrier of the configuration 3 of the macro-cell base station is the first carrier, which is used to carry the PDCCH
- the C1 carrier of the configuration 2 of the micro-cell base station is the first carrier, and is used to carry the PDCCH. Therefore, the PDCCHs of the two cells are reduced in frequency division by means of frequency division.
- the interfering cell may be turned off to perform PDCCH transmission to coordinate interference.
- Coordination can be performed by two cells, for example, the macro cell base station transmits coordination information to the micro cell base station through the X2 interface or the spatial interface, or the coordination information is configured by the macro micro cell base station in advance without signaling.
- Coordination information includes the first small The area base station (such as a macro cell) turns off the transmission of the PDCCH in a certain subframe, and the second cell base station (such as the micro cell base station) normally transmits the information of the PDCCH in a certain subframe, so that the macro micro cell base station is in some subframes.
- the cross-carrier scheduling is not used, and the downlink scheduling information corresponding to the first downlink subframe or the uplink scheduling information corresponding to the first uplink subframe in the foregoing embodiment may be the same carrier corresponding to the scheduled data.
- the timing of the PUSCH is performed. This method does not need to introduce cross-subframe downlink scheduling or cross-carrier second subframe uplink scheduling, and does not modify the existing system timing relationship.
- the subframe 4 of the configuration 2 carrier of the macro cell closes the PDCCH transmission, and correspondingly, the subframe 4 of the configuration 2 carrier of the micro cell can transmit the PDCCH to schedule the current same carrier (the configuration 2 carrier of the micro cell)
- the subframe 3 of the micro-cell configuration 2 carrier PDCCH transmission is closed, and correspondingly, the subframe 3 of the configuration 2 carrier of the macro cell can transmit the PDCCH to schedule the current same carrier (configuration 2 carrier of the macro cell).
- the interfering cell may also use the cross-subframe scheduling of the same carrier, and the timing of the scheduling may ensure that the ACK/NACK feedback of the same subframe and the cross-subframe scheduling are in different uplink subframes to reduce the 'J, ACK/NACK resources. conflict.
- the PDCCH corresponding to the PDSCH downlink scheduling of the subframe 3 of the configuration 2 carrier of the macro cell may be transmitted on the subframe 8 of the same carrier (configuration 2 carrier of the macro cell), such that the subframe 8 of the same carrier is scheduled in the same subframe.
- the PDSCH and the sub-uplink subframes 2 and 7 scheduled by the same carrier cross-subframe reduce the ACK/NACK resource conflict, and by introducing the same carrier cross-subframe scheduling, it is not necessary to turn off the PDCCH transmission on some subframes of the interfering cell. , which in turn increases system throughput.
- the present invention further includes an embodiment in which the two TDD carriers are aggregated, and the two TDD carriers may be the first carrier and the second carrier, and the scheduling timing problem in the scenario of the cross-carrier scheduling of the carrier aggregation of the different configurations of the TDD is performed.
- the uplink and downlink configurations of the two TDD carriers are different.
- the PDCCH scheduling the second carrier is sent on the first carrier.
- the first carrier is an uplink subframe and the second carrier is a downlink subframe
- the first carrier cannot send the downlink subframe of the second carrier
- the downlink subframe of the second carrier is the first subframe.
- the PDCCH scheduling the first subframe on the second carrier is sent on the first subframe on the second carrier, but the PDCCH is sent in The data area of the first subframe on the second carrier, that is, the non-control region.
- the control region is an area that carries the PDCCH in the LTE lower version system, and may be the first n symbols of the subframe, where the data region is the region carrying the PDSCH, that is, the n+1th symbol to the last symbol in the subframe, where the n Is a natural number not greater than 4.
- the PDCCH may be transmitted based on the UE-specific reference signal, that is, transmitted in a manner based on channel information precoding.
- the TDD system uses carrier aggregation technology. If two aggregated carriers are located in different frequency bands, each carrier can adopt a separate uplink and downlink configuration. If the two carriers of the TDD system use different uplink and downlink configurations, the two carriers may have subframes with different transmission directions at the same time, that is, one carrier, that is, the first carrier, and the uplink subframe, and at the same time
- the other carrier, that is, the second carrier is a downlink subframe.
- the UE does not support simultaneous reception and transmission in order to simplify the implementation of the UE. That is, for a subframe in which the transmission direction is inconsistent, the UE can only be in the second carrier. Cannot be sent on the first carrier but not on the first carrier.
- ACK/NACK that is, the downlink subframe corresponding to the ACK/NACK cannot be scheduled; or, it can only be sent on the first carrier but not on the second carrier, that is, the second carrier cannot be scheduled for downlink transmission.
- the primary carrier is an uplink subframe and the secondary carrier is a downlink subframe at the same time. If the secondary carrier is configured according to the configured timing relationship, the uplink subframe of the primary carrier does not When the uplink acknowledgement/non-acknowledgement information (ACK/NACK) is sent, the subframes in which the transmission directions do not match are in the downlink direction, that is, the subframes in which the UEs do not have different transmission directions on different carriers at the same time, at the same time. Data and/or control information is received on the downlink subframe, and no data and/or control information is transmitted at the same time.
- ACK/NACK uplink acknowledgement/non-acknowledgement information
- the subframes 3, 4, 8, and 9 are all subframes with inconsistent transmission directions, that is, the four subframes of the primary carrier are uplink.
- the subframes, and the four subframes of the secondary carrier are downlink subframes, and according to the configured timing relationship, the uplink subframes 3 and 8 of the primary carrier do not carry uplink ACK/NACK, and then the transmission is performed for 3 and 8 at this time.
- the UE may be specified to receive data and/or control information on the secondary carrier without transmitting data and/or control information on the primary carrier.
- FIG. 16 is a flowchart of Embodiment 6 of a method for transmitting downlink scheduling information according to the present invention. Real The method provided by the embodiment can distinguish the DL-Gold time cross-carrier scheduling type of cross-carrier scheduling on the first carrier. As shown in FIG. 16A, this embodiment includes:
- Step 161 The base station determines the first downlink subframe in the downlink subframe on the second carrier, where the subframe corresponding to the first downlink subframe is the uplink subframe.
- Step 162 The base station determines, according to the first timing relationship, all downlink subframes corresponding to the maximum number of uplink ACK/NACKs that can be fed back by the third uplink subframe on the second carrier, and determines the downlink of the earliest scheduling time in all downlink subframes.
- the earliest downlink subframe at the scheduling time is the same subframe on the second carrier as the fifth downlink subframe on the first carrier.
- Step 163 The base station sends the downlink scheduling information corresponding to the first downlink subframe on the second carrier to the terminal in the fifth downlink subframe on the first carrier, and the downlink sent in the fifth downlink subframe on the first carrier.
- the scheduling information includes a downlink allocation indication, and the downlink allocation indication is used to indicate to the terminal the cross-carrier downlink scheduling type on the fifth downlink subframe on the first carrier.
- the DL-grant on the first downlink subframe on the second carrier cannot be on the first carrier, because the subframe corresponding to the first downlink subframe of the second carrier is the uplink subframe, Send on the same subframe.
- the DL-Grant corresponding to the first downlink subframe on the second carrier may be configured on the first carrier at the time of the first downlink subframe.
- the previous downlink subframe is transmitted on the fifth downlink subframe, and the DL DAI of the fifth downlink subframe is used to indicate the cross-carrier downlink scheduling type of the fifth downlink subframe on the first carrier.
- the fifth downlink subframe of the first carrier is determined according to the following method: determining, according to the first timing relationship, all downlink subframes corresponding to the maximum number of uplink ACK/NACKs that can be fed back by the third uplink subframe on the second carrier And determining, in all the downlink subframes, the earliest downlink subframe in the scheduling time, and the earliest downlink subframe in the scheduling time is the subframe on the second carrier that is the same as the fifth downlink subframe on the first carrier.
- the first timing relationship is a timing relationship of uplink ACK/NACK when the second carrier is separately configured.
- the second carrier is independently scheduled, it can also be understood that when the second carrier is not cross-carrier scheduling, the second carrier is used to feed back the uplink ACK/NACK, that is, the second carrier is separately configured without being required to be cross-carrier scheduled by other carriers, for example. Only one carrier is configured on the terminal: the second carrier, and the uplink ACK/NACK corresponding to the downlink subframe on the second carrier is fed back on the second carrier.
- the second carrier is used to feed back the ACK/NACK, all the downlink subframes corresponding to the uplink ACK/NACK that can be fed back by the third uplink subframe on the second carrier can be understood as the third uplink subframe on the second carrier.
- ACK/NACK feedback window when the second carrier is used to feed back the uplink ACK/NACK, all the downlink subframes corresponding to the uplink ACK/NACK that can be fed back by the third uplink subframe on the second carrier can be understood as the third uplink subframe on the second carrier.
- the maximum number of uplinks that can be fed back If the downlink subframes corresponding to the ACK/NACK are 4, 5, 6, and 8, the ACK/NACK feedback window of the uplink subframe 2 includes four downlink subframes of 4, 5, 6, and 8; For some of the four subframes, the feedback window further includes four subframes, and does not depend on the number of scheduled subframes.
- the fifth downlink subframe of the first carrier is in the same subframe at the time of the second carrier, and the second carrier is in the ACK/NACK feedback window of the third uplink subframe on the second carrier when the second carrier is separately configured.
- the first carrier is scheduled at the earliest time when the first carrier cross-carrier scheduling.
- the DL DAI of two bits in the DL_grant on the downlink subframe is used to distinguish the downlink subframe from the ACK/NACK feedback window of its corresponding uplink subframe, which is the first scheduled downlink. Subframes, that is, the order in which the DL-Grant is received.
- the fifth downlink subframe of the first carrier is the same subframe on the second carrier, that is, the same downlink of the fifth downlink subframe of the first carrier on the second carrier.
- the terminal receives the DL_grant of the cross carrier from the fifth downlink subframe of the first carrier, It can be determined that the DL_grant is the earliest DL_grant in the ACK/NACK feedback window of an uplink subframe, and the DL DAI in the DL_grant can be set to 1 by default, and does not need to be taken by the DL DAI.
- the value is used to display the scheduling order indicating the DL_grant, and thus the DL DAI of the DL_grant can be used to distinguish the cross-carrier downlink scheduling type.
- the specific distinguishing method is that the value of DL DAI is "01", indicating that the corresponding DL-grant is scheduled to be the same subframe across carriers, that is, the same subframe downlink scheduling under cross-carrier scheduling; the value of DL DAI is "10" Indicates that the corresponding DL-grant scheduling is a cross-subcarrier cross-subframe, that is, cross-subframe downlink scheduling under cross-carrier scheduling; the value of DL DAI is "11", indicating that the corresponding DL-grant is scheduling the same subframe across carriers. And cross-subframes, that is, cross-subframe downlink scheduling under the same subframe downlink scheduling and cross-carrier scheduling under cross-carrier scheduling.
- the cross-subframe scheduling can also be bound.
- the value of DL DAI is "01", indicating that the corresponding DL-grant schedules the same subframe across carriers, that is, the same subframe downlink scheduling under cross-carrier scheduling; the value of DL DAI is "10" indicating the corresponding DL-
- the grant schedules multiple cross-subframes across carriers, that is, multiple cross-subframe downlink scheduling under cross-carrier scheduling; the value of DL DAI is "11", indicating that the corresponding DL-grant schedules the same sub-carrier scheduling.
- Multiple cross-subframes in a frame and a cross-carrier are the same subframe downlink scheduling and multiple cross-subframe downlink scheduling under cross-carrier scheduling.
- the downlink subframe 8 is forwarded to the ACK/NACK subframe.
- the uplink ACK/NACK feedback window of uplink subframe 2 is 4, 5, 6, and 8.
- the value of the DL DAI in the DL_Gold of the downlink subframe 4 is 1, and the value of the DL DAI in the DL-grant of the downlink subframe 5 is 2, and the downlink sub-frame
- the value of the DL DAI in the DL_Gold of the frame 6 is 3, and the value of the DL DAI in the DL_Gold of the downlink subframe 8 is 4, and the terminal needs to feed back the downlink subframes 4, 5, and 6 to the base station in the uplink subframe 2.
- ACK/NACK corresponding to 8 respectively if the base station does not send the DL-Grant on the downlink subframe 4, and only transmits the DL-Grant on the downlink subframes 5, 6, and 8, respectively, the terminal only has the uplink subframe 2
- the uplink ACK/NACK corresponding to the DL-Gate of the downlink subframes 5, 6 and 8 is fed back to the base station, and the ACK/NACK corresponding to the DL-Gold on the downlink subframe 4 is not required to be fed back to the base station in the uplink subframe 2.
- the base station only schedules some of the four subframes of 4, 5, 6, and 8, but the uplink ACK/NACK feedback window of the uplink subframe 2 is still 4, 5, 6, and 8, and the uplink subframe is
- the uplink ACK/NACK feedback window does not depend on the number of subframes scheduled by the base station. Therefore, the ACK/NACK feedback window of the uplink subframe 2 is defined as all downlink subframes corresponding to the ACK/NACK that the uplink subframe 2 can feed back.
- the downlink subframe 8 on the second carrier is the uplink subframe in the same subframe 8 on the first carrier. Therefore, the downlink subframe 8 on the second carrier cannot be scheduled through the uplink subframe 8 of the first carrier. Determining any one of the uplink subframes on the second carrier determines an uplink ACK/NACK feedback window of the uplink subframe when the second carrier is used to feed back the uplink ACK/NACK.
- the subframe with the earliest scheduling time when the second carrier is scheduled by the first carrier determining, in the ACK/NACK feedback window of the uplink subframe, the subframe with the earliest scheduling time when the second carrier is scheduled by the first carrier, and adjusting the DL_grant of the downlink subframe 8 of the second carrier to The subframe is transmitted in the earliest subframe of the scheduling time, and the same subframe of the earliest subframe at the scheduling moment is before the moment of the downlink subframe 8 in the same subframe on the first carrier.
- uplink subframe 2 is determined on the second carrier, and the ACK/NACK feedback window of the uplink subframe 2 is 4, 5, 6, and 8.
- the subframe with the earliest scheduling time in all the downlink subframes of the ACK/NACK feedback window of the uplink subframe 2 is the downlink subframe 4, and the downlink subframe 8 of the second carrier may be scheduled.
- the DL_grant is adjusted to the downlink subframe 4 of the first carrier, and the time of the downlink subframe 4 of the first carrier is before the downlink subframe 8 of the second carrier.
- the terminal may determine that the DL-grant is the earliest scheduling time in the uplink ACK/NACK feedback window of an uplink subframe on the second carrier.
- DL_grant by default, the value of DL DAI in the DL_grant is 1.
- the DL DAI of the downlink subframe 4 of the first carrier is used to distinguish the cross-carrier scheduling type on the downlink subframe 4 of the first carrier, that is, the DL-grant on the downlink subframe 4 of the first carrier is distinguished.
- the cross-carrier scheduling is the same subframe of the second carrier, the cross-subframe of the second carrier, or the same subframe and the cross-subframe of the second carrier are simultaneously scheduled.
- the uplink subframe 7 is determined on the second carrier, and the base station sends the downlink subframes 9, 0, 1, and 3 of the first carrier respectively when the second carrier is used for feeding back ACK/NACK.
- DL_ Grant therefore, the ACK/NACK feedback window of the uplink subframe 7 is 9, 0, 1, and 3.
- the subframe with the earliest scheduling time in all the downlink subframes of the ACK/NACK feedback window of the uplink subframe 7 is the downlink subframe 9, and the downlink subframe of the second carrier may be scheduled.
- the DL_grant of 8 is adjusted to the downlink subframe 9 of the first carrier, and the timing of the downlink subframe 9 of the first carrier is before the downlink subframe 8 of the second carrier. Transmitting the DL_grant of the downlink subframe 8 of the second carrier on the downlink subframe 4 of the first carrier, compared with the DL_grant of the downlink subframe 8 transmitting the second carrier on the downlink subframe 9 of the first carrier.
- the delay between the transmission of the DL_Gr ant from the base station to the terminal on the first carrier to the reception of the PDSCH scheduled by the DL_Grant on the second carrier is shorter.
- the downlink subframe 4 on the second carrier is the uplink subframe in the same subframe 4 on the first carrier. Therefore, the downlink subframe 4 on the second carrier cannot be scheduled by the same subframe on the first carrier, that is, the uplink subframe 4 of the first carrier.
- the ACK/NACK feedback window of the uplink subframe 2 is 4, 5, 6, and 8.
- the downlink subframe 5 on the second carrier becomes the downlink subframe with the earliest scheduling time in the ACK/NACK feedback window of the uplink subframe 2, and the downlink subframe of the second carrier can be scheduled.
- the DL_grant of frame 4 is adjusted to the downlink subframe 5 of the first carrier.
- the cross-carrier downlink scheduling type is distinguished by the DL DAI in the DL-grant of the cross-carrier scheduling on the downlink subframe 5 of the first carrier.
- the downlink subframe 7 on the second carrier is the uplink subframe in the same subframe 7 on the first carrier. Therefore, the downlink subframe 7 on the second carrier cannot be scheduled by the same subframe on the first carrier.
- the uplink subframe 2 may be determined on the second carrier, and when the second carrier is used to feed back the uplink ACK/NACK, the ACK/NACK feedback window of the uplink subframe 2 is 1, 5, and 6.
- the subframe with the earliest scheduling time in all the downlink subframes of the uplink ACK/NACK feedback window of the uplink subframe 2 is the downlink subframe 1, and the downlink subframe 7 of the second carrier may be scheduled.
- the DL_grant is adjusted to the downlink subframe 1 of the first carrier, and the time of the downlink subframe 1 of the first carrier is before the downlink subframe 7 of the second carrier.
- the DL DAI in the DL_grant on the downlink subframe 1 of the first carrier is used to distinguish the cross-carrier downlink scheduling type on the downlink subframe 1 of the first carrier. In addition, it can also be determined on the second carrier.
- Row subframe 4 when the second carrier is used to feed back uplink ACK/NACK, the uplink subframe 4
- the ACK/NACK feedback window is 0 and 9.
- the subframe with the earliest scheduling time in all the downlink subframes of the uplink ACK/NACK feedback window of the uplink subframe 4 is the downlink subframe 0, and the downlink subframe 7 of the second carrier may be scheduled.
- the DL_grant is adjusted to the downlink subframe 0 of the first carrier, and the cross-carrier downlink scheduling type on the downlink subframe 1 of the first carrier is distinguished by the DL DAI in the DL_grant on the downlink subframe 1 of the first carrier.
- the uplink subframe 3 may also be determined on the second carrier, and when the second carrier is used to feed back ACK/NACK, the uplink ACK/NACK feedback window of the uplink subframe 4 is 7 and 8.
- the subframe with the earliest scheduling time in all the downlink subframes of the uplink ACK/NACK feedback window of the uplink subframe 3 is the downlink subframe 8
- the downlink subframe 7 of the second carrier may be scheduled.
- the DL_grant is adjusted to the downlink subframe 8 of the first carrier, and the DL DAI in the DL_grant on the downlink subframe 8 of the first carrier is used to distinguish the cross-carrier downlink scheduling type on the downlink subframe 8 of the first carrier. .
- the base station is only in the downlink subframe.
- the downlink scheduling information corresponding to the downlink subframe A on the second carrier is transmitted to the terminal in the downlink subframe in which the downlink subframe A of the first carrier is the same on the first carrier.
- the base station may be in the downlink subframe in which the downlink subframe A is in the same subframe on the first carrier, that is, the downlink subframe A is on the first carrier, or in the downlink subframe.
- A sends the downlink scheduling information corresponding to the downlink subframe A on the second carrier to the terminal in the downlink subframe before the downlink subframe A on the first carrier.
- FIG. 17 is a flowchart of Embodiment 7 of a method for transmitting downlink scheduling information according to the present invention. As shown in FIG. 17A, this embodiment includes:
- Step 171 The base station determines the downlink subframe A in the downlink subframe on the second carrier.
- Step 172 On the downlink subframe B of the first carrier, the base station sends the downlink scheduling information of the downlink subframe A on the second carrier to the terminal; if the downlink subframe A on the first carrier and the second carrier The same sub-frame is the uplink sub-frame, and the time corresponding to the downlink sub-frame B is before the time corresponding to the downlink sub-frame A; if the same sub-frame on the first carrier and the downlink sub-frame A on the second carrier is the downlink sub-frame In the frame, the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the time corresponding to the downlink subframe B is the same time as the time corresponding to the downlink subframe A.
- the terminal sends downlink scheduling information corresponding to the downlink subframe A on the second carrier.
- the downlink scheduling information of the downlink subframe 4 on the second carrier is adjusted and transmitted to the downlink subframe 1 on the first carrier.
- the downlink scheduling information of the downlink subframe 9 on the second carrier is adjusted and transmitted to the downlink subframe 6 on the first carrier.
- the base station may be in the same carrier on the first carrier in the downlink subframe A, that is, the downlink subframe A is in the first carrier.
- the downlink scheduling information corresponding to the downlink subframe A on the second carrier is sent to the terminal in the downlink subframe with the same time.
- the downlink scheduling information corresponding to the downlink subframe 0 on the first carrier may be sent to the terminal on the downlink subframe 0 of the first carrier.
- the base station may also be in the downlink subframe before the downlink subframe A on the first carrier in the downlink subframe A. And transmitting, to the terminal, downlink scheduling information corresponding to the downlink subframe A on the second carrier. As shown in FIG. 16B, the base station may send downlink scheduling information corresponding to the downlink subframe 1 on the second carrier to the terminal on the downlink subframe 0 of the first carrier, where the base station may be on the downlink subframe 5 on the first carrier. Sending downlink scheduling information corresponding to the downlink subframe 6 on the second carrier to the terminal.
- the base station indicates, by using the subframe indication field in the downlink scheduling information, the downlink subframe on the second carrier that is scheduled by the downlink scheduling information, and the terminal receives the downlink of the second carrier on the first carrier.
- the information is scheduled, it is determined in which downlink subframe of the second carrier, the downlink data scheduled by the downlink scheduling information is received.
- the subframe indication field in the downlink scheduling information on the first carrier includes at least one of the first value, the second value, the third value, and the fourth value.
- a bit may be added to the PDCCH on the first carrier, and the added bit indicates the downlink subframe on the second carrier on which the downlink data scheduled by the downlink scheduling information on the first carrier is scheduled.
- the newly added bit is called a Sub-frame Indicator Field (SIF).
- SIF Sub-frame Indicator Field
- the newly added SIF in the downlink scheduling information is two bits, the first value may be 00, the second value may be 01, the third value may be 10, and the fourth value may be Is 11.
- the value of the sub-frame indication field is 00, indicating that the downlink subframe A corresponding to the second carrier of the downlink scheduling information is the same as the corresponding time of the downlink subframe B on the first carrier;
- the value of the indication field is 01, indicating that the downlink subframe A of the second carrier that is scheduled to be cross-carrier scheduled by the downlink scheduling information is the first downlink subframe that is later than the time corresponding to the downlink subframe B on the first carrier, that is, the second carrier
- the downlink subframe A is the first downlink subframe of the same subframe in which the downlink subframe B on the first carrier is on the second carrier;
- the value of the subframe indication field is 10, indicating that the downlink scheduling information is cross-carrier scheduled.
- the downlink subframe A of the second carrier is a second downlink subframe that is later than the time corresponding to the downlink subframe B on the first carrier; the value of the subframe indication field is 11, indicating that the downlink scheduling information is second across the carrier scheduling.
- the downlink subframe of the carrier is a third downlink subframe that is later than the time corresponding to the downlink subframe B on the first carrier.
- the base station may also indicate, by using a Downlink Assignment Index (DL DAI) in the downlink scheduling information, the downlink subframe on the second carrier that the downlink scheduling information is scheduled to be cross-carrier scheduled, and the specific indication method and the indication method by using the SIF the same.
- DL DAI Downlink Assignment Index
- the value of DL DAI is 00, indicating that the downlink subframe corresponding to the second carrier of the downlink scheduling information is corresponding to the time corresponding to the downlink subframe B on the first carrier; the value of the DL DAI is 01, indicating the downlink.
- the downlink subframe A of the second carrier in which the scheduling information is cross-carrier scheduled is the first downlink subframe that is later than the time corresponding to the downlink subframe B on the first carrier, that is, the downlink subframe A of the second carrier is the first carrier that is delayed.
- the downlink subframe B on the second carrier is the first downlink subframe of the same subframe on the second carrier; the value of the DL DAI is 10, indicating that the downlink subframe A of the second carrier that is scheduled by the downlink scheduling information is compared with the second subframe
- the downlink subframe B on one carrier corresponds to the second downlink subframe that is delayed at a time; the value of the DL DAI is 11, indicating that the downlink subframe A of the second carrier that is scheduled by the downlink scheduling information is more than that on the first carrier.
- the downlink subframe B corresponds to the third downlink subframe that is delayed at the time.
- FIG. 17B and FIG. 17C are examples of how to indicate the downlink subframe on the second carrier of the DL-Grant cross-carrier scheduling in the DL-Grant of the cross-carrier scheduling, that is, how to indicate the downlink data of the DL-Grant cross-carrier scheduling. Which downlink subframe on the second carrier.
- the base station sends the DL-Grant corresponding to the downlink subframe 1 on the second carrier to the terminal on the downlink subframe 0 of the first carrier.
- the downlink subframe 1 on the second carrier is the first downlink subframe that is later than the same subframe on the second carrier of the downlink subframe 0 on the first carrier, and therefore, the downlink subframe of the base station on the first carrier In the PDCCH of 0, the value of the SIF corresponding to the DL-Grant corresponding to the downlink subframe 1 on the second carrier scheduled across the carrier is set to 01.
- the downlink subframes 3, 4, 8, and 9 on the second carrier are the uplink subframes at the same time on the first carrier, that is, the downlink subframes 3 and 4 on the second carrier. 8 and 9 in the first
- the same subframe on a carrier is an uplink subframe.
- the downlink scheduling information corresponding to the downlink subframes 3, 4, 8, and 9 of the second carrier is sent on the first carrier during cross-carrier scheduling.
- the DL-Grant cross-subframe corresponding to the downlink sub-frame 3 of the second carrier may be adjusted to be carried on the downlink sub-frame 0 of the first carrier, and the DL-Grant cross corresponding to the downlink sub-frame 4 of the second carrier may be used.
- the sub-frame is adjusted to be carried on the downlink sub-frame 1 of the first carrier, and the DL-Grant cross-subframe corresponding to the downlink sub-frame 8 of the second carrier is adjusted to be carried on the downlink sub-frame 5 on the first carrier, The DL-Grant cross-subframe corresponding to the downlink subframe 9 of the second carrier is adjusted to be carried on the downlink subframe 6 on the first carrier.
- the downlink sub-frame 0 on the first carrier carries the downlink on the first carrier.
- DL-Grant corresponding to subframe 0 DL-Grant corresponding to downlink subframe 0 on the second carrier (cross-carrier same subframe scheduling), and DL-Grant corresponding to downlink subframe 3 on the second carrier (cross-carrier span) Subframe scheduling).
- the base station sets the value of the SIF corresponding to the DL-Grant corresponding to the downlink subframe 0 on the second carrier that is scheduled across the carrier to 00, and the downlink subcarrier on the second carrier
- the value of the SIF corresponding to the DL-Grant corresponding to the frame 3 is 11.
- the base station sets the value of the SIF corresponding to the DL-Grant corresponding to the downlink subframe 1 on the second carrier that is scheduled across the carrier to 00, and the downlink subcarrier on the second carrier.
- the value of the SIF corresponding to the DL-Grant corresponding to the frame 4 is 11.
- the base station sets the value of the SIF corresponding to the downlink scheduling information corresponding to the downlink subframe 5 on the second carrier that is scheduled across the carrier to 00, and the downlink subcarrier on the second carrier.
- the value of the SIF corresponding to the DL-Grant corresponding to the frame 8 is set to 11.
- the base station sets the value of the SIF corresponding to the DL-Grant corresponding to the downlink subframe 6 on the second carrier that is scheduled across the carrier to 00, and the downlink subcarrier on the second carrier.
- the value of the SIF corresponding to the DL-Grant corresponding to the frame 9 is set to 11.
- the subframe on the first carrier corresponding to the downlink subframe A on the second carrier is an uplink subframe
- the base station is in the uplink subframe.
- the downlink scheduling information corresponding to the downlink subframe A on the second carrier is sent to the terminal on the downlink subframe B before the time corresponding to the downlink subframe A, so that the second carrier is scheduled when the first carrier cross-carriers.
- the base station may send downlink scheduling information for scheduling the PDSCH on the second carrier to the terminal on the first carrier.
- the subframe on the first carrier is the downlink subframe
- the base station can time to the terminal on the downlink subframe B before the time corresponding to the downlink subframe A on the first carrier.
- Sending a downlink subframe A on the second carrier The downlink scheduling information corresponding to the downlink subframe A on the second carrier may be sent to the terminal in the downlink subframe A of the first carrier.
- the base station further indicates, by using the newly added subframe indication field in the downlink scheduling information, the downlink subframe on the second carrier that is scheduled to be downlinked by the downlink scheduling information, so that the terminal receives the downlink of the second carrier on the first carrier.
- the information is scheduled, it is determined in which downlink subframe of the second carrier, the downlink data scheduled by the downlink scheduling information is received.
- FIG. 18 is a flowchart of Embodiment 2 of a method for receiving downlink scheduling information provided by the present invention.
- the terminal receives the downlink data corresponding to the downlink scheduling information in the corresponding downlink subframe of the second carrier according to the subframe indication domain.
- this embodiment includes:
- Step 181 On the downlink subframe B of the first carrier, the terminal receives the downlink scheduling information of the downlink subframe A on the second carrier that is sent by the base station, where the downlink subframe on the first carrier and the second carrier
- the subframes with the same A time are the uplink subframes, and the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A. If the subframes on the first carrier and the downlink subframe A at the second carrier are the same, the downlink is the downlink.
- the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the time corresponding to the downlink subframe B is the same time as the time corresponding to the downlink subframe A.
- Step 182 The terminal receives the downlink data corresponding to the downlink scheduling information on the downlink subframe A on the second carrier according to the received downlink scheduling information.
- the DL-Grant cross-subframe corresponding to the downlink subframe 3 of the second carrier is adjusted to be carried on the downlink subframe 0 of the first carrier, and then the first carrier is used.
- the base station sets the value of the SIF corresponding to the DL-Grant of the PDSCH on the downlink subframe 0 on the second carrier that is scheduled across the carrier to 00, and the downlink subframe 3 on the second carrier.
- the value of the SIF corresponding to the DL-Grant of the upper PDSCH is set to 11.
- the terminal receives three DL-Grants of the PDSCH on the PDCCH of the downlink subframe 0 on the first carrier, where the SIF value corresponding to one DL-Grant is 00, and the terminal may determine the second carrier of the DL-Grant cross-carrier scheduling.
- the downlink subframe is the same subframe on the second carrier of the downlink subframe 0 on the first carrier, that is, the downlink subframe of the second carrier scheduled by the DL-Grant cross-carrier and the downlink subframe on the first carrier If the corresponding time is the same, the DL-Grant scheduled PDSCH is received on the downlink subframe 0 of the second carrier; where the SIF value of the other DL-Grant is 11, the terminal may determine the DL-Grant cross-carrier scheduling.
- the downlink subframe of the second carrier is lower than the downlink subframe of the first carrier.
- the method for receiving the downlink scheduling information in the embodiment of the present invention when the first carrier carries the PDCCH on the second carrier, if the subframe corresponding to the same time in the downlink subframe A on the second carrier is the uplink subframe, the terminal The device receives downlink scheduling information corresponding to the downlink subframe A on the second carrier that is sent by the base station on the downlink subframe B before the time corresponding to the downlink subframe A on the first carrier, so that the first carrier cross-carrier scheduling is performed on the first carrier.
- the base station may send downlink scheduling information for scheduling the PDSCH on the second carrier to the terminal on the first carrier.
- the first carrier may also be in the first carrier.
- the downlink scheduling information corresponding to the downlink subframe A on the second carrier is sent to the terminal in the downlink subframe A.
- the base station further indicates, by using the newly added subframe indication field in the downlink scheduling information, the downlink subframe on the second carrier that is scheduled to be cross-carrier scheduled by the downlink scheduling information, so that the terminal receives the downlink of the second carrier on the first carrier.
- the information it is determined in which downlink subframe of the second carrier, the downlink data scheduled by the downlink scheduling information is received.
- the base station may be in the downlink subframe.
- the UL_grant for scheduling the uplink subframe C on the second carrier is sent to the terminal, and the base station may also be in the first carrier before the uplink subframe C of the second carrier and the second
- the uplink subframe C of the carrier satisfies any one of the downlink subframes of the minimum scheduling interval N subframes, and sends a UL_grant that schedules the uplink subframe C on the second carrier to the terminal.
- the base station can only send the UL_grant that schedules the uplink subframe C on the second carrier to the terminal on the downlink subframe E of the first carrier.
- FIG. 19A is a flowchart of Embodiment 5 of an uplink scheduling information sending method according to the present invention. As shown in FIG. 19A, this embodiment includes:
- Step 191 The base station determines an uplink subframe C in an uplink subframe on the second carrier.
- Step 192 On the downlink subframe D on the first carrier, the base station sends the second carrier to the terminal.
- the time interval between the time corresponding to the subframe E on the first carrier and the time corresponding to the uplink subframe C is a scheduling interval of N subframes.
- the base station may be on the subframe E of the first carrier, or a sub-frame.
- the uplink scheduling information of the uplink subframe C scheduled to be scheduled on the second carrier is scheduled to be sent to the terminal in the downlink subframe before the subframe E.
- the base station may be in the first On the carrier, the uplink scheduling information of the uplink subframe C on the second carrier is scheduled to be sent to the terminal in the downlink subframe before the subframe E.
- the uplink subframe G is spaced from the uplink subframe C when the subframe corresponding to the downlink subframe of the uplink subframe C is the uplink subframe G.
- the downlink subframe D is before the uplink subframe G; if the uplink subframe G and the uplink subframe C are separated by a subframe greater than N, and the uplink subframe C meets the minimum scheduling interval N subframes
- the subframe E is an uplink subframe
- the downlink subframe D is a downlink subframe immediately before the subframe E on the first carrier; if the subframe in which the uplink subframe G and the uplink subframe C are spaced apart is greater than N, and the first carrier
- the subframe E that satisfies the minimum scheduling interval of the N subframes is the downlink subframe, and the downlink subframe D may be the subframe E of the first carrier, or may be the time before the subframe E on the first carrier.
- the base station may send a scheduling second to the terminal on the first carrier corresponding to the uplink subframe 2 on the second carrier and the uplink subframe 2 at least four subframes. UL-grant of uplink subframe 2 on the carrier.
- the downlink subframe 6 on the first carrier is separated from the uplink subframe 2 on the second carrier by four subframes, and the moment of the first carrier downlink subframe 6 is before the uplink subframe 2 of the second carrier. Therefore, when the PDCCH of the second carrier is carried on the first carrier, the base station may send the UL-grant of the uplink subframe 2 on the second carrier to the terminal in the downlink subframe 6 on the first carrier.
- the downlink subframe 9 of the first carrier is separated from the uplink subframe 2 on the second carrier by seven subframes, and the time of the first carrier downlink subframe 9 is It is engraved before the uplink subframe 2 of the second carrier. Therefore, the base station may also send a UL-grant for scheduling the uplink subframe 2 on the second carrier to the terminal in the downlink subframe 9 of the first carrier.
- the uplink subframe 8 of the second carrier and the uplink subframe 8 of the second carrier satisfy the minimum scheduling interval, and the subframe of the four subframes is the uplink subframe 4, and when the PDCCH of the second carrier is carried on the first carrier,
- the uplink subframe 4 of the first carrier transmits a UL-grant that schedules an uplink subframe on the second carrier to the terminal.
- the UL_grant of the uplink subframe 8 scheduling the second carrier can be adjusted to be carried on the downlink subframe 1 on the first carrier.
- the time of the downlink subframe 1 on the first carrier is before the uplink subframe 8 of the second carrier and is separated from the uplink subframe 8 by eight subframes, which satisfies the requirement of four subframes of the minimum scheduling interval.
- the base station indicates, by using the subframe indication field in the uplink scheduling information, the uplink subframe on the second carrier that is scheduled by the uplink scheduling information, and the terminal sends the uplink scheduling to the base station in the corresponding uplink subframe of the second carrier.
- the subframe indication field includes at least one of a fifth value, a sixth value, a seventh value, and an eighth value.
- a new bit may be added to the uplink scheduling information of the first carrier, and the newly added bit indicates that the uplink data scheduled by the uplink scheduling information on the first carrier is on the uplink subframe of the second carrier. send.
- the new bit is called the Subframe Indicator Field (SIF).
- the SIF includes a first value of 00, a second value of 01, a third value of 10, and a fourth value of 11.
- the newly added SIF for the uplink scheduling information in the PDCCH is two bits. Since the base station in the TDD system sends the uplink scheduling information to the terminal to send the corresponding uplink data to the base station, at least four subframes are required to be separated.
- the value of the SIF corresponding to the uplink scheduling information indicating the time between the uplink subframe C of the second carrier that is scheduled by the uplink scheduling information and the same subframe of the downlink subframe D of the first carrier on the second carrier. relationship.
- the value of the SIF is 00, indicating that the uplink subframe C of the second carrier that is scheduled by the uplink scheduling information is delayed by N subframes from the time corresponding to the downlink subframe D on the first carrier; the value of the subframe indication domain SIF is 01.
- the uplink subframe C of the second carrier that is scheduled to be cross-carrier scheduled by the uplink scheduling information is the first uplink subframe that is later than the reference subframe F on the second carrier, and the reference subframe F on the second carrier is smaller than the first subframe.
- the downlink subframe D on the carrier is delayed by N subframes; the value of the subframe indication field is 10, and the uplink subframe C of the second carrier that is scheduled to be cross-carrier scheduled by the uplink scheduling information is smaller than the reference subframe on the second carrier.
- the second uplink subframe of the F lag; the value of the subframe indication field is 11, indicating that the uplink subframe C of the second carrier scheduled by the uplink scheduling information is compared with the second carrier
- the reference subframe F corresponds to the third uplink subframe whose time lags.
- the PDCCH carrying the second carrier when the PDCCH carrying the second carrier is carried on the first carrier, if the base station sends the UL-Grant and scheduling of the uplink subframe 2 on the second carrier to the terminal on the downlink subframe 9 of the first carrier.
- the PDCCH of the downlink subframe 9 of the first carrier includes two UL-Grants for inter-carrier scheduling, where the UL of the uplink subframe 3 of the first carrier is scheduled.
- the value of the SIF corresponding to the Grant in the PDCCH is 11.
- the downlink subframe 5 of the second carrier lags the subframe corresponding to the downlink subframe 9 of the first carrier by four subframes, which is called a reference subframe.
- the uplink subframe 2 of the second carrier is a third uplink subframe that is later than the same subframe of the second carrier, and therefore, the UL-Grant of the uplink subframe 3 of the first carrier is scheduled.
- the value of the SIF corresponding to the PDCCH is 11.
- the uplink subframe 8 of the second carrier and the uplink subframe 8 of the second carrier satisfy the minimum scheduling interval, and the subframe of the fourth carrier is the uplink subframe 4, and the PDCCH carrying the second carrier on the first carrier is considered.
- the base station sends a UL-grant to the terminal to send the corresponding PUSCH delay, and carries the UL-grant of the uplink subframe 8 that schedules the second carrier on the downlink subframe 1 on the first carrier.
- the time of the downlink subframe 1 of the first carrier is before the downlink subframe 7 of the second carrier and meets the requirement of four subframes of the minimum scheduling interval, and when the PDCCH of the second carrier is carried on the first carrier, the first The downlink subframe 1 on the carrier carries the UL_grant of the uplink subframe 7 that schedules the second carrier. Therefore, when the PDCCH of the second carrier is carried on the first carrier, the PDCCH of the downlink subframe 1 of the first carrier includes two UL-Grants scheduled across carriers. The UL_grant of the downlink subframe 7 of the second carrier and the UL_grant of the uplink subframe 8 of the second carrier are scheduled.
- the downlink subframe 5 of the second carrier is delayed by four subframes, which is called the reference subframe, from the same subframe on the second carrier.
- the downlink subframe 7 of the second carrier is the second uplink subframe that is later than the reference subframe of the second carrier. Therefore, the value of the SIF in the UL_grantH of the downlink subframe 7 of the second carrier is set to 10;
- the downlink subframe 8 of the carrier is the second uplink subframe that is later than the reference subframe of the second carrier. Therefore, the value of the SIF in the UL_grant scheduling the second carrier uplink subframe 8 is set to 11.
- the newly added SIF for the UL_grant in the PDCCH may also be three bits. Since the base station sends the UL_grant to the terminal to transmit the corresponding PUSCH to the base station in the TDD system, at least four subframes are required to be separated. The valid values of SIF at this time are 100, 101, 110, and 111.
- the downlink subframe D may satisfy the minimum scheduling interval with the uplink subframe C.
- the downlink subframe E of the N subframes may also be before the downlink subframe E. If the subframes in which the uplink subframe C meets the minimum scheduling interval N subframes are uplink subframes, the downlink subframe D satisfies the uplink subframe C.
- the minimum scheduling interval is before the subframes of N subframes.
- the base station can send the uplink scheduling information of the PUSCH on the second carrier to the terminal on the first carrier, and solve the problem that the time corresponding to the downlink subframe of the uplink subframe C is scheduled to be in the first carrier when the non-cross-carrier scheduling is performed on the second carrier.
- the base station schedules the uplink subframe C on the second carrier on the first carrier. Further, the base station determines, by using the subframe indication field in the uplink scheduling information, the uplink subframe on the second carrier that is scheduled by the uplink scheduling information, so that the terminal sends the uplink scheduling to the base station in the corresponding uplink subframe of the second carrier.
- the uplink data corresponding to the information is mapped to the information.
- FIG. 20 is a flowchart of Embodiment 2 of an uplink scheduling information receiving method provided by the present invention. As shown in FIG. 20, this embodiment includes:
- Step 201 On the downlink subframe D on the first carrier, the terminal receives the uplink scheduling information of the uplink subframe C on the second carrier that is sent by the base station; the time corresponding to the subframe E on the first carrier and the uplink subframe C
- the interval of the corresponding time is N subframes of the scheduling interval, if the subframe E is a downlink subframe, the downlink subframe D and the subframe E are the same subframe, or the downlink subframe D is before the subframe E; if the subframe E is an uplink subframe
- the downlink subframe D is before the subframe E;
- N is the number of subframes at least the interval between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal.
- Step 202 The terminal sends, according to the received uplink scheduling information, the uplink data corresponding to the uplink scheduling information to the base station on the uplink subframe C of the second carrier.
- the uplink scheduling information received by the terminal further includes a subframe indication field, and the subframe indication field corresponding to the uplink scheduling information is used to indicate to the terminal an uplink subframe on the second carrier scheduled by the uplink scheduling information.
- the terminal sends the uplink data corresponding to the uplink scheduling information to the base station on the uplink subframe C of the second carrier according to the uplink scheduling information and the subframe indication field corresponding to the uplink scheduling information.
- the PDCCH of the downlink subframe 9 of the first carrier includes two cross-carrier scheduled UL-Grants. One of them is scheduling The UL-Grant of the uplink subframe 2 of the second carrier, the other is the UL-Gmnt of the uplink subframe 3 of the first carrier, and the SIF of the UL-Gmnt of the uplink subframe 3 of the first carrier in the PDCCH. The value is 11.
- the terminal When the terminal receives the UL-Grant with the SIF value of 11 on the downlink subframe 9 of the first carrier, the terminal determines that the uplink subframe 2 of the second carrier scheduled by the UL-Grant is corresponding to the reference subframe of the second carrier.
- the third uplink subframe in which the time lags the terminal transmits the PUSCH corresponding to the UL_grant to the base station on the third uplink subframe that is later than the reference subframe corresponding to the second carrier.
- the reference subframe of the second carrier here is the downlink subframe 5 on the second carrier, and the time corresponding to the downlink subframe 9 of the first carrier is delayed by four subframes.
- the terminal receives two cross-carrier scheduled UL-Grants on the downlink subframe 1 of the first carrier: scheduling the downlink subframe 7 of the second carrier UL_grant and UL-grant scheduling the second carrier uplink subframe 8.
- the value of the SIF in the UL_grantH of the downlink sub-frame 7 of the second carrier is set to 10, and the value of the SIF in the UL_grant of the sub-frame 8 of the second carrier is set to 11.
- the downlink subframe 5 of the second carrier is delayed by four subframes than the time corresponding to the downlink subframe 1 of the first carrier, and is referred to as a reference subframe.
- the terminal may determine that the uplink subframe on the second carrier scheduled by the UL-grant is a second uplink subframe that is later than the reference subframe corresponding to the second carrier, and second.
- the reference subframe of the carrier is delayed by four subframes from the same subframe on the second carrier of the downlink subframe 1 on the first carrier, so that the terminal is delayed by the second uplink at a time corresponding to the reference subframe of the second carrier.
- the PUSCH corresponding to the UL_grant is transmitted to the base station.
- the terminal may determine that the uplink subframe on the second carrier scheduled by the UL-grant is a third uplink subframe that is later than the reference subframe corresponding to the second carrier, and second.
- the reference subframe of the carrier is delayed by four subframes from the same subframe on the second carrier of the downlink subframe 1 on the first carrier, so that the terminal lags behind the third subframe of the reference subframe of the second carrier.
- the PUSCH corresponding to the UL_grant is transmitted to the base station.
- the base station when the PDCCH on the second carrier is carried on the first carrier, the base station sends the uplink subframe C corresponding to the second carrier to the terminal in the downlink subframe D on the first carrier.
- the downlink subframe D may be a downlink subframe E that satisfies a minimum scheduling interval of N subframes with the uplink subframe C, or may be before the downlink subframe E; if the uplink subframe C satisfies a minimum scheduling interval of N subframes
- the subframe of the frame is an uplink subframe, and the downlink subframe D is preceded by a subframe that satisfies a minimum scheduling interval of N subframes with the uplink subframe C.
- the terminal can be The uplink scheduling information of the PUSCH on the second carrier is received on the first carrier, and the subframe corresponding to the downlink subframe of the uplink subframe C is scheduled to be the uplink subframe when the non-cross-carrier scheduling is performed on the second carrier.
- the terminal receives the technical problem of scheduling the uplink scheduling information of the uplink subframe C on the second carrier on the first carrier.
- the subframe indication field in the uplink scheduling information is used to notify the uplink subframe on the second carrier of the uplink scheduling information, and the terminal sends the uplink scheduling to the base station in the corresponding uplink subframe of the second carrier.
- the uplink data corresponding to the information is used to notify the uplink subframe on the second carrier of the uplink scheduling information.
- FIG. 21 is a schematic structural diagram of Embodiment 2 of a downlink scheduling information sending apparatus according to the present invention. As shown in FIG. 21, the embodiment includes: a downlink subframe determining module 211 and a downlink scheduling sending module 212.
- the downlink subframe determining module 211 is configured to determine the downlink subframe A in the downlink subframe on the second carrier, and the downlink scheduling sending module 212 is configured to send the second carrier to the terminal in the downlink subframe B on the first carrier.
- the downlink scheduling information of the downlink sub-frame A is the same as the uplink sub-frame at the time of the downlink sub-frame A on the second carrier, and the time corresponding to the downlink sub-frame B corresponds to the downlink sub-frame A.
- the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the downlink The time corresponding to the subframe B and the time corresponding to the downlink subframe A are the same time.
- the downlink scheduling information includes a subframe indication field, where the subframe indication field is used to indicate a downlink subframe on the second carrier scheduled for cross-carrier scheduling of the downlink scheduling information.
- the subframe indication field in the downlink scheduling information includes at least one of a first value, a second value, a third value, and a fourth value; the first value is used to indicate that the downlink subframe A of the second carrier corresponds to The time is the same as the time corresponding to the downlink subframe B on the first carrier; the second value is used to indicate that the downlink subframe A of the second carrier is lower than the first carrier in the subframe on the second carrier.
- the downlink allocation indication in the downlink scheduling information may also be used to indicate to the terminal, the downlink subframe on the second carrier of the downlink scheduling information cross-carrier scheduling.
- the specific indication method is the same as the indication method of the subframe indication field.
- FIG. 22 is a schematic structural diagram of Embodiment 3 of a downlink scheduling information receiving apparatus according to the present invention. As shown 22, the embodiment includes: a downlink scheduling receiving module 221 and a downlink data receiving module 222.
- the downlink scheduling receiving module 221 is configured to receive, on the downlink subframe B of the first carrier, downlink scheduling information of the downlink subframe A on the second carrier that is sent by the base station;
- the subframes in which the downlink subframe A is the same time are the uplink subframes, and the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A; if the downlink carrier is the same as the downlink subframe A on the second carrier
- the subframe is a downlink subframe, and the time corresponding to the downlink subframe B is before the time corresponding to the downlink subframe A, or the time corresponding to the downlink subframe B is the same time as the time corresponding to the downlink subframe A.
- the downlink data receiving module 222 is configured to receive downlink data corresponding to the downlink scheduling information on the downlink subframe A on the second carrier according to the received downlink scheduling information.
- the downlink scheduling information includes a subframe indication field, where the subframe indication field is used to indicate a downlink subframe on the second carrier that is scheduled to be cross-carrier scheduled by the downlink scheduling information, where the subframe indication domain includes at least a first value and a second value. At least one of a third value and a fourth value.
- the downlink data receiving module 222 is specifically configured to: if the value of the subframe indication field is the first value, and receive the downlink scheduling information corresponding to the time in the second carrier that is the same as the time corresponding to the downlink subframe B on the first carrier If the value of the subframe indication field is the second value, on the first downlink subframe that is delayed by the time corresponding to the downlink subframe B on the first carrier, the downlink scheduling information is received. If the value of the subframe indication field is the third value, the downlink corresponding to the downlink scheduling information is received on the second downlink subframe that is delayed by the time corresponding to the downlink subframe B on the first carrier on the first carrier. If the value of the subframe indication field is the fourth value, the downlink data corresponding to the downlink scheduling information is received on the third downlink subframe that is delayed by the time corresponding to the downlink subframe B on the first carrier on the first carrier. .
- FIG. 23 is a schematic structural diagram of Embodiment 2 of an apparatus for transmitting uplink scheduling information according to the present invention. As shown in FIG. 23, the embodiment includes: an uplink subframe determining module 231 and an uplink scheduling sending module 232.
- the uplink subframe determining module 231 is configured to determine an uplink subframe in an uplink subframe on the second carrier.
- the uplink scheduling sending module 232 is configured to send uplink scheduling information of the uplink subframe C on the second carrier to the terminal in the downlink subframe D on the first carrier; the time and uplink corresponding to the subframe E on the first carrier
- the time interval corresponding to the subframe C is the scheduling interval N subframes, if the subframe E is the downlink subframe; the downlink subframe D and the subframe E are the same subframe, or the downlink subframe D is before the subframe E; if the subframe E For The uplink subframe, the downlink subframe D is before the subframe E; N is the number of subframes at least the interval between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal.
- the uplink scheduling information includes a subframe indication field, and the subframe indication domain indicates to the terminal, the uplink subframe on the second carrier that is scheduled by the uplink scheduling information.
- the subframe indication field in the uplink scheduling information includes at least one of a fifth value, a sixth value, a seventh value, and an eighth value; the fifth value is used to indicate that the uplink subframe C of the second carrier corresponds to The time is later than the time corresponding to the downlink subframe D on the first carrier by N subframes; the sixth value is used to indicate that the uplink subframe C of the second carrier is the reference subframe F on the second carrier than the second carrier a first uplink subframe in which the corresponding time lags, and a reference subframe F on the second carrier is a subframe lags N subframes on a second carrier corresponding to a downlink subframe D on the first carrier; The seventh value is used to indicate that the uplink subframe C of the second carrier is the second uplink subframe on the second carrier that is later than the
- FIG. 24 is a schematic structural diagram of Embodiment 3 of an apparatus for receiving uplink scheduling information according to the present invention. As shown in FIG. 24, the embodiment includes: an uplink scheduling receiving module 241 and an uplink data sending module 242.
- the uplink scheduling receiving module 241 is configured to receive uplink scheduling information of the uplink subframe C on the second carrier that is sent by the base station on the downlink subframe D on the first carrier, and the time corresponding to the subframe E on the first carrier
- the time interval corresponding to the uplink subframe C is the scheduling interval N subframes, if the subframe E is a downlink subframe, the downlink subframe D and the subframe E are the same subframe, or the downlink subframe D is before the subframe E; E is an uplink subframe, and the downlink subframe D is before the subframe E; N is a number of subframes at least the interval between the uplink scheduling information received by the terminal and the uplink data corresponding to the uplink scheduling information sent by the terminal;
- the uplink data sending module 242 is configured to send uplink data corresponding to the uplink scheduling information to the base station in the uplink subframe C on the second carrier according to the received uplink scheduling information.
- the uplink scheduling information includes a subframe indication field, and the subframe indication domain indicates to the terminal, the uplink subframe on the second carrier that is scheduled by the uplink scheduling information.
- the subframe indication field includes at least one of a fifth value, a sixth value, a seventh value, and an eighth value.
- the uplink data sending module 242 is specifically configured to: if the value of the subframe indication field is the fifth value, delay the N subframes on the second carrier from the time corresponding to the downlink subframe D on the first carrier according to the received uplink scheduling information.
- the base station sends the uplink data corresponding to the uplink scheduling information; if the value of the subframe indication field is the sixth value, on the second uplink, the first uplink subframe that is later than the reference subframe on the second carrier, the base station Transmitting the uplink data corresponding to the uplink scheduling information; the reference subframe on the second carrier is delayed by N subframes from the time corresponding to the downlink subframe D on the first carrier; if the value of the subframe indication field is the seventh value, the second carrier The second uplink subframe that is later than the reference subframe on the second carrier is sent to the base station, and the uplink data corresponding to the uplink scheduling information is sent to the base station; the value of the subframe indication field is the eighth value, and the second carrier is used.
- the uplink data corresponding to the uplink scheduling information is sent to the base station in a third uplink subframe that is later than the reference subframe on the second carrier.
- each module described above is described in the corresponding embodiment of FIG. 20, and details are not described herein again.
- a person skilled in the art can understand that all or part of the steps of implementing the above method embodiments may be completed by using hardware related to program instructions, and the foregoing program may be stored in a computer readable storage medium, and the program is executed when executed.
- the foregoing steps include the steps of the foregoing method embodiments; and the foregoing storage medium includes: a medium that can store program codes, such as a ROM, a RAM, a magnetic disk, or an optical disk.
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Abstract
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Priority Applications (8)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
EP12741978.6A EP2663146B1 (en) | 2011-02-01 | 2012-02-01 | Method and apparatus for transmitting and receiving uplink/downlink scheduling information |
JP2013552093A JP5663817B2 (ja) | 2011-02-01 | 2012-02-01 | アップリンク/ダウンリンクスケジューリング情報を送信および受信するための方法および装置 |
EP16206327.5A EP3206453B1 (en) | 2011-02-01 | 2012-02-01 | Method and apparatus for sending uplink scheduling information, and method and apparatus for receiving uplink scheduling information |
CN201280007253.0A CN103339999B (zh) | 2011-02-01 | 2012-02-01 | 上/下行调度信息发送方法和接收方法及装置 |
RU2013140409/07A RU2540960C1 (ru) | 2011-02-01 | 2012-02-01 | Способ и устройство для отправки информации диспетчеризации в восходящей/нисходящей линии связи, а также способ и устройство для приема информации диспетчеризации в восходящей/нисходящей линии связи |
US13/956,899 US9504054B2 (en) | 2011-02-01 | 2013-08-01 | Method and apparatus for sending uplink/downlink scheduling information, and method and apparatus for receiving uplink/downlink scheduling information |
US15/340,421 US9980280B2 (en) | 2011-02-01 | 2016-11-01 | Method and apparatus for sending uplink/downlink scheduling information, and method and apparatus for receiving uplink/downlink scheduling information |
US15/972,470 US10638500B2 (en) | 2011-02-01 | 2018-05-07 | Method and apparatus for sending uplink/downlink scheduling information, and method and apparatus for receiving uplink/downlink scheduling information |
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
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CN201110034427 | 2011-02-01 | ||
CN201110034427.X | 2011-02-01 | ||
CN201110320442.0A CN102624507B (zh) | 2011-02-01 | 2011-10-20 | 上/下行调度信息发送方法和接收方法及装置 |
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US9980280B2 (en) | 2018-05-22 |
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US10638500B2 (en) | 2020-04-28 |
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US20180255565A1 (en) | 2018-09-06 |
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