WO2021159512A1 - Procédé et appareil de transmission d'informations de contrôle - Google Patents

Procédé et appareil de transmission d'informations de contrôle Download PDF

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Publication number
WO2021159512A1
WO2021159512A1 PCT/CN2020/075394 CN2020075394W WO2021159512A1 WO 2021159512 A1 WO2021159512 A1 WO 2021159512A1 CN 2020075394 W CN2020075394 W CN 2020075394W WO 2021159512 A1 WO2021159512 A1 WO 2021159512A1
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WIPO (PCT)
Prior art keywords
cyclic shift
sequence
shift value
resource
control information
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PCT/CN2020/075394
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English (en)
Chinese (zh)
Inventor
黎超
黄海宁
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华为技术有限公司
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Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to PCT/CN2020/075394 priority Critical patent/WO2021159512A1/fr
Priority to PCT/CN2020/084303 priority patent/WO2021159600A1/fr
Priority to CN202080095581.5A priority patent/CN115053477B/zh
Publication of WO2021159512A1 publication Critical patent/WO2021159512A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • H04L1/12Arrangements for detecting or preventing errors in the information received by using return channel
    • H04L1/16Arrangements for detecting or preventing errors in the information received by using return channel in which the return channel carries supervisory signals, e.g. repetition request signals
    • H04L1/18Automatic repetition systems, e.g. Van Duuren systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W4/00Services specially adapted for wireless communication networks; Facilities therefor
    • H04W4/30Services specially adapted for particular environments, situations or purposes
    • H04W4/40Services specially adapted for particular environments, situations or purposes for vehicles, e.g. vehicle-to-pedestrians [V2P]

Definitions

  • This application relates to the field of communication technology, and in particular to a method and device for transmission of control information.
  • Code division multiple access (code division multiple access, code division multiple access A) is a carrier modulation and multiple access connection technology based on spread spectrum communication.
  • the signals used for data transmission by different user equipment are not based on different frequencies or time slots. Different to distinguish, but use their different spreading sequences to distinguish.
  • Code division multiplexing A technology is widely used in wireless communication systems.
  • the third-generation mobile communication system W Code Division Multiple Access (Wideband Code Division Multiple Access), long term evolution, LTE ) Is the representative 4G system and so on.
  • code division multiplexing A technology can be used to transmit data and control signaling.
  • the code division multiplexing A technology has many advantages, such as improving the reliability of control information transmission, increasing the coverage of control information transmission, and realizing multiple users to multiplex the same time-frequency resource.
  • sequences with good correlation characteristics are usually used to achieve orthogonality between the sequences.
  • different user equipment can use different sequences to send feedback information to the base station on the same time-frequency resources, and the sequences and time-frequency resources used by each UE are configured by the base station through signaling.
  • the sequence can be configured by sequence parameters (for example, base sequence and cyclic shift value).
  • the base station can configure the sequences of three user equipments as sequence 1, sequence 2, and sequence 3 through signaling, so that the three user equipments can use sequence 1 and sequence respectively on the same time-frequency resource. 2 and sequence 3 send feedback information to the base station.
  • sequence parameters for example, base sequence and cyclic shift value
  • the present application provides a control information transmission method and device, which are used to implement code division multiplexing of control information transmission between different UEs when a base station fails or there is no base station.
  • a control information transmission method which is applied to a first device, and the method includes: determining a cyclic shift value of a first sequence according to a physical layer source identifier K and an identifier Mi of the first device; and according to the cyclic shift value Generate the first sequence; send control information to the second device through the first sequence on the resource.
  • code division multiplexing when multiple user equipment transmits control information can be implemented on the same resource or resource set to ensure that all user equipment sequences have
  • the distribution value of the cyclic shift value is as uniform as possible to achieve the best information transmission effect during code division multiplexing transmission between multi-user equipment and the best detection performance on the corresponding receiver side.
  • the resource includes any one or more of time domain resources, frequency domain resources, code domain resources, or space domain resources.
  • the resource when the resource is a time domain resource, its unit is symbol, time slot or subframe, etc.; when the resource is a frequency domain resource, its unit is subchannel, resource block, subcarrier, resource pool, carrier Or bandwidth part; when the resource is a sequence or code domain resource, its unit is a sequence or code channel; when the resource is a spatial domain resource, its unit is a spatial beam direction, a spatial layer or a precoding vector.
  • different resources can be selected for member devices in the same group as much as possible to ensure that each resource in the resource set can be fully utilized, thereby reducing the cyclic shift value required by multiple member devices To improve detection performance.
  • the identifier Mi of the first device is any one of the following: a number identifying the first device, a member identifier of the first device, and receiving first data sent by the second device Device ID.
  • the identifier of the first device may be an identifier indicated by a high-level message, may also be an identifier indicated by a physical layer message, or may also be an identifier indicated by an application layer message, which is not limited in this application.
  • different identifications related to the first device can be used as the identification Mi of the first device, so that the identification of the first device can be flexibly identified, thereby improving the flexibility and diversity of the system.
  • the number that identifies the first device may be an identification or a physical identification when the first device transmits information.
  • it can be any of the following: the mask of the cyclic redundancy check (CRC) of the control information when the first device sends the control information, RNTI, international mobile subscriber identification code (international mobile subscriber identification) number, IMSI), international mobile equipment identity (IMEI), temporary UE identification number S-TMSI, globally unique temporary UE identity (GUTI), and IP address.
  • CRC cyclic redundancy check
  • the base sequence of the first sequence is a predefined base sequence, and the length of the first sequence is 12.
  • the predefined base sequence can be a ZC sequence, or a sequence with excellent correlation characteristics given by computer search, mathematical analysis, etc.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • the positive response of the first data corresponds to the first cyclic shift value of the first sequence
  • the negative response of the first data corresponds to the second cyclic shift value of the first sequence.
  • One cyclic shift value is different from the second cyclic shift value.
  • the cyclic shift value of the first sequence is determined by the index Fi of the resource, the identifier Mi of the first device, and the number Y of cyclic shift pairs.
  • the cyclic shift value of the first sequence is determined by the difference between the identifier Mi of the first device and the index Fi of the resource.
  • the speed and diversity of determining the cyclic shift value of the first sequence can be improved, and the sequence between all user equipments can be distributed as evenly as possible to realize multi-user.
  • the number of cyclic shift pairs is Y; the cyclic shift value of the first sequence is determined by (Mi-Fi)/Y; or, the cyclic shift value of the first sequence Determined by (K+Mi-Fi)/Y.
  • the sequence between all user equipments has as even a distribution of cyclic shift values as possible, so as to achieve the best information transmission effect during code division multiplexing transmission between multiple user equipments, and Corresponds to the best detection performance on the receiver side.
  • the cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C), where b is a positive integer and C is an integer; or , The cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C)mod Ncs, where Ncs is the number of cyclic shifts, Ncs and b are positive integers, and C is an integer.
  • the optional C can take the value 0.
  • Ncs can take a value of 4, 6, 8, or 12; optionally, Ncs can be predefined by the protocol or configured by signaling, such as configured on a resource pool.
  • b can take the value 1, 2, 3, etc.
  • the value of b is (Ncs/Y), where Y is a positive integer, for example, the value is 1, 2, 3, 4, 6, and so on.
  • Y is the number of cyclic shift pairs of the sequence, which may be predefined or configured by signaling.
  • the cyclic shift value of the first sequence includes the first cyclic shift value of the first sequence or the second cyclic shift value of the first sequence, the second cyclic shift value of the first sequence and the first sequence of the first sequence
  • the difference of a cyclic shift value is one-half, one-third, or one-fourth of the number of cyclic shifts Ncs, for example, it can be 6, 4, 3, or 2.
  • the cyclic shift value of the first sequence is determined from a plurality of predefined cyclic shift values by the index Fi of the resource and the identifier Mi of the first device.
  • the multiple predefined cyclic shift values include any one of the following: a group of cyclic shift values arranged at equal intervals; multiple groups of cyclic shift values, each group of cyclic shift values is arranged at equal intervals arrangement.
  • the root sequence number of the first sequence and the cyclic shift value of the first sequence are pre-configured from the resource index Fi and the first device identifier Mi. It is determined from the U sequences on the set, and the U is an integer greater than or equal to 2.
  • the cross-correlation of the sequences among multiple user equipments can be further reduced, and at the same time, the code for transmission of control information between more user equipments can be satisfied. Division multiplexing, so as to achieve the best information transmission effect during code division multiplexing transmission between multi-user equipment and the best detection performance on the corresponding receiver side.
  • the cyclic shift value includes two groups, and each group corresponds to a root sequence number and a group of cyclic shift values.
  • the two groups have different root sequence numbers, and the two groups have the same or different cyclic shift values.
  • a control information transmission method which is applied to a second device, and the method includes: receiving control information sent by a first device through a first sequence, wherein the cyclic shift value of the first sequence is identified by a physical layer source K and the identity Mi of the first device are determined, and the cyclic shift value is used to generate the first sequence; the control information sent by the first device is acquired according to the first sequence.
  • code division multiplexing when multiple user equipment transmits control information can be implemented on the same resource or resource set to ensure that all user equipment sequences have
  • the distribution value of the cyclic shift value is as uniform as possible to achieve the best information transmission effect during code division multiplexing transmission between multi-user equipment and the best detection performance on the corresponding receiver side.
  • the resource includes any one or more of time domain resources, frequency domain resources, code domain resources, or space domain resources.
  • the resource when the resource is a time domain resource, its unit is symbol, time slot or subframe, etc.; when the resource is a frequency domain resource, its unit is subchannel, resource block, subcarrier, resource pool, carrier Or bandwidth part; when the resource is a sequence or code domain resource, its unit is a sequence or code channel; when the resource is a spatial domain resource, its unit is a spatial beam direction, a spatial layer or a precoding vector.
  • different resources can be selected for member devices in the same group as much as possible to ensure that each resource in the resource set can be fully utilized, thereby reducing the cyclic shift value required by multiple member devices To improve detection performance.
  • the identifier Mi of the first device is any one of the following: a number identifying the first device, a member identifier of the first device, and receiving first data sent by the second device Device ID.
  • the identifier of the first device may be an identifier indicated by a high-level message, may also be an identifier indicated by a physical layer message, or may also be an identifier indicated by an application layer message, which is not limited in this application.
  • different identifications related to the first device can be used as the identification Mi of the first device, so that the identification of the first device can be flexibly identified, thereby improving the flexibility and diversity of the system.
  • the number that identifies the first device may be an identification or a physical identification when the first device transmits information.
  • it can be any of the following: the mask of the cyclic redundancy check (CRC) of the control information when the first device sends the control information, the RNTI, the International Mobile Subscriber Identification Code (International Mobile Subscriber Identification) Number, IMSI), International Mobile Equipment Identity (IMEI), Temporary UE Identification Number S-TMSI, Globally Unique Temporary UE Identity (GUTI), and IP address.
  • CRC cyclic redundancy check
  • the base sequence of the first sequence is a predefined base sequence, and the length of the first sequence is 12.
  • the predefined base sequence can be a ZC sequence, or a sequence with excellent correlation characteristics given by computer search, mathematical analysis, etc.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • the positive response of the first data corresponds to the first cyclic shift value of the first sequence
  • the negative response of the first data corresponds to the second cyclic shift value of the first sequence.
  • One cyclic shift value is different from the second cyclic shift value.
  • the cyclic shift value of the first sequence is determined by the index Fi of the resource, the identifier Mi of the first device, and the number Y of cyclic shift pairs.
  • the cyclic shift value of the first sequence is determined by the difference between the index Fi of the resource and the identifier Mi of the first device.
  • the speed and diversity of determining the cyclic shift value of the first sequence can be improved, and the sequence between all user equipments can be distributed as evenly as possible to realize multi-user.
  • the number of cyclic shift pairs is Y; the cyclic shift value of the first sequence is determined by (Mi-Fi)/Y; or, the cyclic shift value of the first sequence Determined by (K+Mi-Fi)/Y, where K is the physical layer source identifier received by the first device from the second device.
  • K is the physical layer source identifier received by the first device from the second device.
  • the cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C), where K is the physical value received from the second device Layer source identification, b is a positive integer, C is an integer; or, the cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C)mod Ncs, where K is the slave second device
  • the received physical layer source identifier, Ncs is the number of cyclic shifts, Ncs and b are positive integers, and C is an integer.
  • the optional C can take the value 0.
  • Ncs can take a value of 4, 6, 8, or 12; optionally, Ncs can be predefined by the protocol or configured by signaling, such as configured on a resource pool.
  • b can take the value 1, 2, 3, etc.
  • the value of b is (Ncs/Y), where Y is a positive integer, for example, the value is 1, 2, 3, 4, 6, and so on.
  • Y is the number of cyclic shift pairs of the sequence, which may be predefined or configured by signaling.
  • the cyclic shift value of the first sequence includes the first cyclic shift value of the first sequence or the second cyclic shift value of the first sequence, and the second cyclic shift value of the first sequence
  • the difference between the cyclic shift value and the first cyclic shift value of the first sequence is one-half, one-third, or one-quarter of the number of cyclic shifts Ncs, for example, it can be 6, 4, 3, or 2. .
  • Ncs number of cyclic shifts
  • the cyclic shift value of the first sequence is determined from a plurality of predefined cyclic shift values by the index Fi of the resource and the identifier Mi of the first device.
  • the multiple predefined cyclic shift values include any one of the following: a group of cyclic shift values arranged in an equally spaced manner; multiple groups of cyclic shift values, each The group cyclic shift values are arranged at equal intervals.
  • the root sequence number of the first sequence and the cyclic shift value of the first sequence are pre-configured or configured in the resource set by the index Fi of the resource and the identifier Mi of the first device. Determined from the U sequences above, U is an integer greater than or equal to 2.
  • U is an integer greater than or equal to 2.
  • the cyclic shift value includes two groups, and each group corresponds to a root sequence number and a group of cyclic shift values.
  • the two groups have different root sequence numbers, and the two groups correspond to cyclic shift values.
  • the shift value is the same or different.
  • a control information transmission device As a first device, the device includes: a processing unit configured to determine the cyclic shift value of the first sequence according to the physical layer source identifier K and the identifier Mi of the first device; processing The unit is also used to generate the first sequence according to the cyclic shift value; the sending unit is used to send the control information to the second device through the first sequence on the resource.
  • the resource includes any one or more of time domain resources, frequency domain resources, code domain resources, or space domain resources.
  • the identifier Mi of the first device is any one of the following: a number identifying the first device, a member identifier of the first device, and receiving first data sent by the second device Device ID.
  • the identifier of the first device may be an identifier indicated by a high-level message, may also be an identifier indicated by a physical layer message, or may also be an identifier indicated by an application layer message.
  • the base sequence of the first sequence is a predefined base sequence, and the length of the first sequence is 12.
  • the predefined base sequence can be a ZC sequence, or a sequence with excellent correlation characteristics given by computer search, mathematical analysis, etc.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • the positive response of the first data corresponds to the first cyclic shift value of the first sequence
  • the negative response of the first data corresponds to the second cyclic shift value of the first sequence.
  • One cyclic shift value is different from the second cyclic shift value.
  • the processing unit is further configured to determine the cyclic shift value of the first sequence according to the index Fi of the resource, the identifier Mi of the first device, and the number Y of cyclic shift pairs.
  • the processing unit is further configured to determine the cyclic shift value of the first sequence according to the difference between the identifier Mi of the first device and the index Fi of the resource.
  • the number of cyclic shift pairs is Y
  • the processing unit is further configured to: determine the cyclic shift value of the first sequence according to (Mi-Fi)/Y; or, according to ( K+Mi-Fi)/Y determines the cyclic shift value of the first sequence, where K is the physical layer source identifier received from the second device.
  • the processing unit is further configured to: determine the cyclic shift value of the first sequence according to b*((K+Mi-Fi)/Y+C), where b is a positive integer , C is an integer; or, determine the cyclic shift value of the first sequence according to b*((K+Mi-Fi)/Y+C)mod Ncs, where Ncs is the number of cyclic shifts, and Ncs and b are positive integers , C is an integer.
  • the optional C can take the value 0.
  • Ncs can take a value of 4, 6, 8, or 12; optionally, Ncs can be predefined by the protocol or configured by signaling, such as configured on a resource pool.
  • b can take the value 1, 2, 3, etc.
  • the value of b is (Ncs/Y), where Y is a positive integer, for example, the value is 1, 2, 3, 4, 6, and so on.
  • Y is the number of cyclic shift pairs of the sequence, which may be predefined or configured by signaling.
  • the cyclic shift value of the first sequence includes the first cyclic shift value of the first sequence or the second cyclic shift value of the first sequence, the second cyclic shift value of the first sequence and the first sequence of the first sequence
  • the difference of a cyclic shift value is one-half, one-third, or one-fourth of the number of cyclic shifts Ncs, for example, it can be 6, 4, 3, or 2.
  • the processing unit is further configured to: determine the cycle of the first sequence from a plurality of predefined cyclic shift values according to the index Fi of the resource and the identifier Mi of the first device. Shift value.
  • the multiple predefined cyclic shift values include any one of the following: a group of cyclic shift values arranged at equal intervals; multiple groups of cyclic shift values, each group of cyclic shift values is arranged at equal intervals arrangement.
  • the third aspect it is also used to: determine the root of the first sequence from U sequences pre-configured or configured on the resource set according to the index Fi of the resource and the identity Mi of the first device.
  • Sequence number and cyclic shift value U is an integer greater than or equal to 2.
  • the cyclic shift value includes two groups, and each group corresponds to a root sequence number and a group of cyclic shift values. The two groups have different root sequence numbers, and the two groups have the same or different cyclic shift values.
  • a control information transmission device As a second device, the device includes: a receiving unit configured to receive control information sent by the first device through a first sequence, wherein the cyclic shift value of the first sequence is determined by The physical layer source identifier K and the identifier Mi of the first device are determined, and the cyclic shift value is used to generate the first sequence; the processing unit is used to obtain the control information sent by the first device according to the first sequence.
  • the resource includes any one or more of time domain resources, frequency domain resources, code domain resources, or space domain resources.
  • the identifier Mi of the first device is any one of the following: a number identifying the first device, a member identifier of the first device, and receiving first data sent by the second device Device ID.
  • the identifier of the first device may be an identifier indicated by a high-level message, may also be an identifier indicated by a physical layer message, or may also be an identifier indicated by an application layer message.
  • the base sequence of the first sequence is a predefined base sequence, and the length of the first sequence is 12.
  • the predefined base sequence can be a ZC sequence, or a sequence with excellent correlation characteristics given by computer search, mathematical analysis, etc.
  • control information is response information corresponding to the first data sent by the second device, and the response information includes an affirmative response or a negative response.
  • the positive response of the first data corresponds to the first cyclic shift value of the first sequence
  • the negative response of the first data corresponds to the second cyclic shift value of the first sequence.
  • One cyclic shift value is different from the second cyclic shift value.
  • the cyclic shift value of the first sequence is determined by the index Fi of the resource, the identifier Mi of the first device, and the number Y of cyclic shift pairs.
  • the cyclic shift value of the first sequence is determined by the difference between the index Fi of the resource and the identifier Mi of the first device.
  • the number of cyclic shift pairs is Y; the cyclic shift value of the first sequence is determined by (Mi-Fi)/Y; or, the cyclic shift value of the first sequence Determined by (K+Mi-Fi)/Y, where K is the physical layer source identifier received by the first device from the second device.
  • the cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C), where K is the physical value received from the second device Layer source identification, b is a positive integer, C is an integer; or, the cyclic shift value of the first sequence is determined by b*((K+Mi-Fi)/Y+C)mod Ncs, where K is the slave second device
  • the received physical layer source identifier, Ncs is the number of cyclic shifts, Ncs and b are positive integers, and C is an integer.
  • the optional C can take the value 0.
  • Ncs can take a value of 4, 6, 8, or 12; optionally, Ncs can be predefined by the protocol or configured by signaling, such as configured on a resource pool.
  • b can take the value 1, 2, 3, etc.
  • the value of b is (Ncs/Y), where Y is a positive integer, for example, the value is 1, 2, 3, 4, 6, and so on.
  • Y is the number of cyclic shift pairs of the sequence, which may be predefined or configured by signaling.
  • the cyclic shift value of the first sequence includes the first cyclic shift value of the first sequence or the second cyclic shift value of the first sequence, and the second cyclic shift value of the first sequence
  • the difference between the cyclic shift value and the first cyclic shift value of the first sequence is one-half, one-third, or one-quarter of the number of cyclic shifts Ncs, for example, it can be 6, 4, 3, or 2. .
  • the cyclic shift value of the first sequence is determined from a plurality of predefined cyclic shift values by the index Fi of the resource and the identifier Mi of the first device.
  • the multiple predefined cyclic shift values include any one of the following: a group of cyclic shift values arranged in an equally spaced manner; multiple groups of cyclic shift values, each The group cyclic shift values are arranged at equal intervals.
  • the root sequence number of the first sequence and the cyclic shift value of the first sequence are pre-configured or configured in the resource set by the index Fi of the resource and the identifier Mi of the first device. Determined from the U sequences above, U is an integer greater than or equal to 2.
  • the cyclic shift value includes two groups, and each group corresponds to a root sequence number and a group of cyclic shift values.
  • the two groups have different root sequence numbers, and the two groups correspond to cyclic shift values.
  • the shift value is the same or different.
  • a control information transmission device may be a first device or a chip built in the first device.
  • the device includes a processor, a memory, a communication interface, and a bus. Bus connection, instructions are stored in the memory, and when the processor runs the instructions, the device executes the control information transmission method provided by the first aspect or any one of the possible implementation manners of the first aspect.
  • a control information transmission device may be a second device or a chip built in the second device.
  • the device includes a processor, a memory, a communication interface, and a bus.
  • the processor, the memory and the communication interface pass through A bus is connected, and instructions are stored in the memory.
  • the processor runs the instructions, the device executes the control information transmission method provided by the second aspect or any one of the possible implementations of the second aspect.
  • a communication system in another aspect of the present application, includes a first device and a second device; wherein, the first device is any one of the foregoing third aspect, any one of the possible implementation manners of the third aspect, or
  • the control information transmission device provided by the fifth aspect is used to implement the control information transmission method provided in the first aspect or any one of the possible implementations of the first aspect; the second device is the fourth aspect and the fourth aspect described above Any one of the possible implementation manners or the control information transmission device provided in the sixth aspect is configured to execute the control information transmission method provided in the foregoing second aspect or any one of the possible implementation manners of the second aspect.
  • a computer-readable storage medium stores instructions. When the instructions run on a device, the device executes the first aspect or the first aspect described above.
  • the control information transmission method provided by any possible implementation mode.
  • a computer-readable storage medium stores instructions.
  • the instructions run on a device, the device executes the second aspect or the second aspect described above.
  • the control information transmission method provided by any possible implementation mode.
  • a computer program product is provided.
  • the device executes the control provided by the first aspect or any one of the possible implementations of the first aspect.
  • Information transmission method is provided.
  • a computer program product is provided.
  • the device executes the control provided by the second aspect or any one of the possible implementations of the second aspect.
  • Information transmission method is provided.
  • any of the above-provided apparatuses, equipment, computer-readable storage media, and computer program products for controlling information transmission methods are all used to execute the corresponding methods provided above, and therefore, the beneficial effects that can be achieved Reference may be made to the beneficial effects in the corresponding methods provided above, which will not be repeated here.
  • FIG. 1 is a schematic structural diagram of a communication system provided by an embodiment of this application.
  • FIG. 2 is a schematic structural diagram of a base station provided by an embodiment of the application.
  • FIG. 3 is a schematic structural diagram of a user equipment provided by an embodiment of this application.
  • FIG. 4 is a schematic flowchart of a control information transmission method provided by an embodiment of this application.
  • FIG. 5 is a schematic diagram of communication between multi-user equipment according to an embodiment of this application.
  • FIG. 6 is a schematic flowchart of another control information transmission method provided by an embodiment of this application.
  • FIG. 7 is a schematic structural diagram of a first device provided by an embodiment of this application.
  • FIG. 8 is a schematic structural diagram of another first device provided by an embodiment of this application.
  • FIG. 9 is a schematic structural diagram of a second device provided by an embodiment of this application.
  • FIG. 10 is a schematic structural diagram of another second device provided by an embodiment of this application.
  • At least one refers to one or more, and “multiple” refers to two or more.
  • And/or describes the association relationship of the associated objects, indicating that there can be three relationships, for example, A and/or B, which can mean: A alone exists, A and B exist at the same time, and B exists alone, where A, B can be singular or plural.
  • the following at least one item (a) or similar expressions refers to any combination of these items, including any combination of a single item (a) or a plurality of items (a).
  • At least one of a, b, or c can mean: a, b, c, a and b, a and c, b and c or a, b and c, where a, b and c can be It can be single or multiple.
  • the character "/" generally indicates that the associated objects before and after are in an "or” relationship.
  • words such as "first” and “second” do not limit the number and execution order.
  • the sequence (for example, the first sequence in the embodiment of the present application) is generated from a base sequence through a cyclic shift, and a base sequence may generate multiple different sequences through different cyclic shifts.
  • the root sequence number is used to generate the base sequence.
  • the root sequence number can also be called the root sequence index, and the base sequence can also be called the root sequence.
  • the following is a sequence of low peak to average power ratio (low peak to average power ratio, low-PAPR) Take an example for illustration.
  • m CS is the cyclic shift value on the length N CS.
  • m CS may also be referred to as the cyclic shift value of the sequence.
  • the base sequence It can be a ZC sequence, assuming that the length of the ZC sequence M ZC is equal to 12, then It can be expressed by formula (III).
  • the technical solution provided in this application can be applied to various wireless communication systems using code division multiple access (code division multiple access, code division multiple access A) technology, for example, the introduction of code division multiplexing on the basis of existing communication systems A technology, 4G communication system, 5G communication system, future evolution system or multiple communication integration systems, etc.
  • the technical solutions provided by this application can include multiple application scenarios, such as machine to machine (M2M), D2M, macro and micro communications, enhanced mobile broadband (eMBB), ultra-high reliability and ultra-high reliability. Scenarios such as ultra-reliable & low-latency communication (uRLLC) and massive machine type communication (mMTC).
  • M2M machine to machine
  • eMBB enhanced mobile broadband
  • uRLLC ultra-reliable & low-latency communication
  • mMTC massive machine type communication
  • These scenarios may include, but are not limited to: a communication scenario between a base station and a base station, a communication scenario between a terminal and a terminal, a communication scenario between a base station and a terminal, and so on.
  • the communication link between the network device and the network device can be called the backhaul link (backhual link, BL)
  • the communication link between the terminal device and the terminal device can be called the inter-device link or the side link (Sidelink, SL)
  • the communication link between the network device and the terminal device may be called an access link (AL).
  • the communication system may include at least one network device 100 and at least one terminal device 200.
  • the network device 100 can communicate with the terminal device 200, and the terminal device 200 can communicate with each other.
  • the terminal devices 200 can also communicate with each other.
  • FIG. 2 one network device 100 and three terminal devices 200 are taken as an example for illustration.
  • the network equipment 100 includes an access network (access network, AN) equipment, such as a base station (e.g., access point), which may refer to the access network through one or more cells and wireless terminals on the air interface.
  • AN access network
  • the device for device communication or, for example, a network device in a V2X technology is a road side unit (RSU).
  • the base station can be used to convert the received air frame and IP packet to each other, as a router between the terminal device and the rest of the access network, where the rest of the access network can include the IP network.
  • the RSU can be a fixed infrastructure entity that supports V2X applications, and can exchange messages with other entities that support V2X applications.
  • the network equipment can also coordinate the attribute management of the air interface.
  • the network equipment may include an evolved base station (nodeB or eNB or e-nodeB, evolutional Node B) in the LTE system or long term evolution-advanced (LTE-A), or may also include 5G new radio (
  • the next generation node B (gNB) in the new radio, NR system also referred to as the NR system for short
  • may also include the centralized unit in the cloud radio access network (Cloud RAN) system (centralized unit, CU) and distributed unit (distributed unit, DU) are not limited in the embodiment of the present application.
  • the terminal device 200 is, for example, a terminal device, or a chip or other component set in the terminal device that can realize the function of the terminal device.
  • Terminal devices include devices that provide users with voice and/or data connectivity. Specifically, they include devices that provide users with voice, or include devices that provide users with data connectivity, or include devices that provide users with voice and data connectivity. . For example, it may include a handheld device with a wireless connection function, or a processing device connected to a wireless modem.
  • the terminal device can communicate with the core network via a radio access network (RAN), exchange voice or data with the RAN, or exchange voice and data with the RAN.
  • RAN radio access network
  • the terminal equipment may include user equipment (UE), wireless terminal equipment, mobile terminal equipment, device-to-device communication (device-to-device, D2D) terminal equipment, vehicle to everything (V2X) terminal equipment , Machine-to-machine/machine-type communications (M2M/MTC) terminal equipment, internet of things (IoT) terminal equipment, subscriber unit, subscriber station ), mobile station, remote station, access point (AP), remote terminal, access terminal, user terminal, user agent (user agent), or user equipment (user device), etc.
  • UE user equipment
  • M2M/MTC Machine-to-machine/machine-type communications
  • IoT internet of things
  • subscriber unit subscriber unit
  • subscriber station mobile station
  • AP access point
  • remote terminal access terminal
  • user terminal user agent
  • user agent user agent
  • user equipment user device
  • PCS personal communication service
  • SIP session initiation protocol
  • WLL wireless local loop
  • PDA personal digital assistants
  • restricted devices such as devices with low power consumption, or devices with limited storage capabilities, or devices with limited computing capabilities. Examples include barcodes, radio frequency identification (RFID), sensors, global positioning system (GPS), laser scanners and other information sensing equipment.
  • RFID radio frequency identification
  • GPS global positioning system
  • the terminal device may also be a wearable device.
  • Wearable devices can also be called wearable smart devices or smart wearable devices, etc. It is a general term for using wearable technology to intelligently design daily wear and develop wearable devices, such as glasses, gloves, watches, clothing and shoes Wait.
  • a wearable device is a portable device that is directly worn on the body or integrated into the user's clothes or accessories. Wearable devices are not only a kind of hardware device, but also realize powerful functions through software support, data interaction, and cloud interaction.
  • wearable smart devices include full-featured, large-sized, complete or partial functions that can be achieved without relying on smart phones, such as smart watches or smart glasses, and only focus on a certain type of application function, and need to cooperate with other devices such as smart phones.
  • Use such as all kinds of smart bracelets, smart helmets, smart jewelry, etc. for physical sign monitoring.
  • all that can perform data communication with a base station can be regarded as a terminal device.
  • the various terminal devices introduced above if they are located on the vehicle (for example, placed in the vehicle or installed in the vehicle), can be regarded as vehicle-mounted terminal equipment, for example, the vehicle-mounted terminal equipment is also called on-board unit (OBU). .
  • OBU on-board unit
  • V2X vehicle to everything
  • V2X specifically includes vehicle-to-vehicle (V2V), vehicle-to-infrastructure (V2I), vehicle-to-pedestrian (V2P) direct communication, and There are several application requirements such as vehicle-to-network (V2N) communication and interaction. as shown in picture 2.
  • V2V refers to the communication between vehicles
  • V2P refers to the communication between vehicles and people (including pedestrians, cyclists, drivers, or passengers)
  • V2I refers to the communication between vehicles and network equipment, such as RSU, and There is another type of V2N that can be included in V2I.
  • V2N refers to the communication between the vehicle and the base station/network.
  • V2P can be used as a safety warning for pedestrians or non-motorized vehicles on the road.
  • vehicles can communicate with roads and even other infrastructure, such as traffic lights, roadblocks, etc., to obtain road management information such as traffic light signal timing.
  • V2V can be used for information interaction and reminding between vehicles, and the most typical application is for the anti-collision safety system between vehicles.
  • V2N is currently the most widely used form of Internet of Vehicles. Its main function is to enable vehicles to connect to a cloud server through a mobile network, and use the navigation, entertainment, or anti-theft application functions provided by the cloud server.
  • V2X it is mainly the communication between terminal equipment and terminal equipment.
  • the current standard protocols support broadcast, multicast, and unicast.
  • Broadcast mode The broadcast mode means that the terminal device as the sender uses the broadcast mode to send data, and multiple terminal device ends can receive sidelink control information (SCI) or sidelink sharing from the sender Channel (sidelink shared channel, SSCH).
  • Multicast mode The multicast mode is similar to broadcast transmission.
  • the terminal equipment as the transmitting end uses the broadcast mode for data transmission, and a group of terminal equipment can parse SCI or SSCH.
  • Unicast mode The unicast mode is that one terminal device sends data to another terminal device, and other terminal devices do not need or cannot parse the data.
  • the network device 100 is used as a base station and the terminal device 200 is used as an example to illustrate the results of the network device 100 and the terminal device 200.
  • FIG. 2 is a schematic structural diagram of a base station provided by an embodiment of the application.
  • the base station may include a baseband processing unit (Building Baseband Unit, BBU) 101 and a remote radio unit (RRU) 102, RRU 102, and antenna feeder.
  • BBU Building Baseband Unit
  • RRU remote radio unit
  • the system 103 is connected, and the BBU 101 and RRU 102 can be disassembled and used as needed.
  • the BBU 101 is used to implement the operation and maintenance of the entire base station 100, implement signaling processing, radio resource management, and transmission interface to the packet core network, and implement the main control functions of the physical layer, medium access control layer, L3 signaling, and operation and maintenance.
  • the RRU 102 is used to implement conversion between baseband signals and radio frequency signals, to implement demodulation of wireless received signals and modulation and power amplification of transmitted signals.
  • the antenna feeder system 103 may include multiple antennas to implement the reception and transmission of wireless air interface signals.
  • FIG. 3 is a schematic structural diagram of a user equipment provided by an embodiment of the application.
  • the mobile phone may include: an RF (radio frequency) circuit 201, a memory 202, other input devices 203, and a display screen 204 , Sensor 205, audio circuit 206, I/O subsystem 207, processor 208, and power supply 209.
  • RF radio frequency
  • the processor 208 is respectively connected to the RF circuit 201, the memory 202, the audio circuit 206, and the power supply 209.
  • the I/O subsystem 207 is connected to other input devices 203, display screens 204, and sensors 205, respectively.
  • the RF circuit 210 can be used for receiving and sending signals during the process of sending and receiving information or talking. In particular, after receiving the downlink information of the base station, it is sent to the processor 208 for processing.
  • the memory 202 can be used to store software programs and modules.
  • the processor 208 executes various functional applications and data processing of the mobile phone by running software programs and modules stored in the memory 202.
  • the other input device 203 can be used to receive input digital or character information, and generate key signal input related to the user settings and function control of the mobile phone.
  • the display screen 204 can be used to display information input by the user or information provided to the user and various menus of the mobile phone, and can also accept user input.
  • the display screen 204 can include a display panel 214 and a touch panel 224.
  • the sensor 205 may be a light sensor, a motion sensor or other sensors.
  • the audio circuit 206 can provide an audio interface between the user and the mobile phone.
  • the I/O subsystem 207 is used to control input and output external devices, and the external devices may include other device input controllers, sensor controllers, and display controllers.
  • the processor 208 is the control center of the mobile phone.
  • the power supply 209 (for example, a battery) is used to supply power to the above-mentioned components.
  • the power supply can be logically connected to the processor 208 through a power management system, so that functions such as charging, discharging, and power consumption can be managed through the power management system.
  • the mobile phone may also include functional modules or devices such as a camera and a Bluetooth module, which will not be repeated here.
  • functional modules or devices such as a camera and a Bluetooth module, which will not be repeated here.
  • FIG. 3 does not constitute a limitation on the mobile phone, and may include more or less components than those shown in the figure, or a combination of some components, or different component arrangements.
  • FIG. 4 is a schematic flowchart of a method for transmitting control information according to an embodiment of the application. The method is applied to a communication system including a first device and a second device. Referring to FIG. 4, the method includes the following steps.
  • the first device determines the cyclic shift value of the first sequence according to the physical layer source identifier K and the identifier Mi of the first device, or determines the cyclic shift value of the first sequence according to the index Fi of the resource and the identifier Mi of the first device. .
  • the cyclic shift value of the first sequence is determined as an example according to the physical layer source identifier K and the identifier Mi of the first device.
  • the first device and the second device may be different devices in the same group.
  • the first device may be a base station or user equipment, and the second device may also be a base station or user equipment.
  • the second device may communicate with multiple member devices in a multicast manner, and the first device may be any member device among the multiple member devices.
  • the second device UE0 may communicate with multiple member devices UE1 to UEM, and the first device may be any member device of UE1 to UEM.
  • the resource may be a resource in a resource set used by multiple member devices to send control information
  • the index Fi of the resource is a resource index of the resource in the resource set, and can be used to identify and index the resource.
  • the resource set may include multiple resources, and each resource in the multiple resources may correspond to a resource index.
  • the English interpretation of K in this application can be described as "K is a physical layer source ID provided by SCI scheduling the PSSCH reception".
  • the resource may include any one or more of time domain resources, frequency domain resources, code domain resources, or space domain resources.
  • the time domain resource refers to the resource occupied in the time domain, and its unit is symbol, slot or subframe, etc. It can be represented by symbol, slot or subframe, etc.;
  • the frequency domain Resources refer to the resources occupied in the frequency domain.
  • the units are sub-channels, resource blocks, sub-carriers, resource pools, carriers, or bandwidth parts. Specifically, they can be through sub-channels, resource blocks, sub-carriers, resource pools, carriers, or bandwidth.
  • the code domain resource refers to the resource occupied in the code domain, and its unit is sequence or code channel, which can be expressed specifically by sequence or code channel, etc.
  • the air domain resource refers to the resource occupied in the airspace ,
  • the unit is a spatial beam direction, a spatial layer, or a precoding vector, which can be specifically represented by a beam direction, a spatial layer, or a precoding vector.
  • the resource may include any one of the above four resources.
  • the resource only includes time domain resources, or the resource only includes frequency domain resources, or the resource includes only code domain resources, or the resource only includes code domain resources.
  • Including airspace resources the resources can include any two of the above four resources, for example, the resources include time-domain resources and frequency-domain resources, or the resources include only time-domain resources and code-domain resources, or the resources only include Time domain resources and space domain resources; the resources may include any three of the above four resources, for example, the resources include time domain resources, frequency domain resources, and code domain resources, or the resources include time domain resources, frequency domain resources And air domain resources, or the resources include frequency domain resources, code domain resources, and air domain resources; the resources may include the above four resources at the same time, that is, the resources include time domain resources, frequency domain resources, code domain resources, and air domain resources.
  • the identifier of the first device may be an identifier indicated by a high-level message, may also be an identifier indicated by a physical layer message, or may also be an identifier indicated by an application layer message, which is not limited in this application.
  • the identifier Mi of the first device may be any of the following: the number that identifies the first device, the member identifier of the first device, the device identifier that receives the first data sent by the second device (the corresponding English may be " Mi is the identity of the UE receiving the PSSCH as indicated by higher layers.”).
  • the number that identifies the first device may be an identification or a physical identification when the first device transmits information.
  • the mask of the cyclic redundancy check (CRC) of the control information when the first device sends the control information the RNTI, the International Mobile Subscriber Identification Code (International Mobile Subscriber Identification) Number, IMSI), International Mobile Equipment Identity (IMEI), Temporary UE Identification Number S-TMSI, Globally Unique Temporary UE Identity (GUTI), and IP address.
  • the identification Mi of the first device is a number that identifies the first device, the identification Mi of the first device may be used to uniquely identify the first device in the entire communication system.
  • the identity Mi of the first device When the identity Mi of the first device is a member identity of the first device, the identity Mi of the first device may be used to uniquely identify the first device among multiple member devices of the user group where the first device is located.
  • the identity Mi of the first device When the identity Mi of the first device is the device identity that receives the first data sent by the second device, the identity Mi of the first device is only used to uniquely identify the first device among the multiple devices that receive the first device sent by the second device. equipment.
  • the range identified by the above three identifiers can be from large to small: the range identified by the number identifying the first device is greater than the range identified by the member ID of the first device, and the range identified by the member ID of the first device is greater than or Equal to the identification of the device that receives the first data sent by the second device.
  • different identifications related to the first device can be used as the identification Mi of the first device, so that the identification of the first device can be flexibly identified, thereby improving the flexibility and diversity of the system.
  • the method further includes S300: the first device receives the first data sent by the second device.
  • the second device can send the first data to multiple member devices in the user group by multicast
  • the first device can be any member device among the multiple member devices
  • the second device can also be multicast
  • the first data is sent to some member devices among multiple member devices in the user group
  • the first device can be any member device among the member devices.
  • the first device can receive the first data sent by the second device.
  • the first device receives the first data sent by the second device
  • the first device correctly receives the first data can mean that The decoding result of the first data received by the first device is correct
  • the first device incorrectly receiving the first data may mean that the first device has not received the first data or the decoding result of the first data received by the first device is incorrect. correct.
  • the response information can include an acknowledgement (acknowledge, ACK) and a non-acknowledge (non-acknowledge, NACK), and the acknowledgement is used to indicate the second device.
  • the negative response is used to indicate that the first data has failed to be received.
  • the cyclic shift value of the first sequence in S301 may include the first cyclic shift value of the first sequence or the second cyclic bit value of the first sequence, and the first cyclic shift value of the first sequence
  • the shift value can correspond to the positive response of the first device (that is, the first device correctly receives the first data)
  • the second cyclic shift value of the first sequence can correspond to the negative response of the first device (that is, the first device did not correctly receive the first data).
  • the first cyclic shift value and the second cyclic shift value may form a cyclic shift pair, and the first cyclic shift value is different from the second cyclic shift value.
  • the first device can determine the first cyclic shift value of the first sequence according to the index Fi of the resource and the identifier Mi of the first device. If the first device does not receive the first data correctly, The first data, the first device can determine the second cyclic shift value of the first sequence according to the index Fi of the resource and the identifier Mi of the first device.
  • the specific process for the first device to determine the first cyclic shift value or the second cyclic shift value of the first sequence according to the index Fi of the resource and the identifier Mi of the first device can refer to the first method below. To the detailed description of the third manner, the embodiments of the present application will not be repeated here.
  • the first device generates a first sequence according to the cyclic shift value.
  • the first device may cyclically shift the base sequence of the first sequence according to the cyclic shift value to generate the first sequence. Specifically, if the first device receives the first data correctly, the first device cyclically shifts the base sequence of the first sequence according to the first cyclic shift value to generate the first sequence; if the first device does not receive the first data correctly Data, the first device cyclically shifts the base sequence of the first sequence according to the second cyclic shift value to generate the first sequence.
  • the base sequence of the first sequence may be predefined, or the base sequence of the first sequence is a base sequence generated by the first device according to the root sequence number, and the root sequence number may be predefined.
  • the length of the first sequence or the length of the base sequence of the first sequence may be predefined.
  • the length of the first sequence or the length of the base sequence of the first sequence may be 12.
  • the base sequence of the first sequence may be a ZC sequence, or a predefined sequence, such as a sequence with excellent correlation characteristics given by computer search, mathematical analysis, etc.
  • S303 The first device sends control information to the second device through the first sequence on the resource.
  • the control information may be response information corresponding to the first data sent by the second device, that is, the first device sends response information to the second device through S303, and the response information includes an affirmative response and a negative response.
  • the first device correctly receives the first data
  • the first device sends an affirmative response to the second device through the first sequence on the resource.
  • the first sequence is the first device according to the first cyclic shift value.
  • the generated sequence If the first device does not receive the first data correctly, the first device sends a negative response to the second device through the first sequence on the resource. At this time, the first sequence is generated by the first device according to the second cyclic shift value sequence.
  • the second device can use the first sequence to decode the control information to obtain the control information. Specifically, when the control information corresponds to the response information of the first data, if the second device uses the first sequence generated by the first cyclic shift value of the first sequence to decode the control information, the obtained control information is Affirmative response of the first data; if the second device uses the first sequence generated by the second cyclic shift value of the first sequence to decode the control information, the obtained control information is the negative response of the first data.
  • the specific process for the second device to determine the cyclic shift value of the first sequence may be the same as or similar to the specific process for the first device to determine the cyclic shift value of the first sequence.
  • the steps of a sequence of cyclic shift values are described in detail as an example.
  • the example in S301 that the first device determines the cyclic shift value of the first sequence according to the physical layer source identifier K and the identifier Mi of the first device is specifically as follows, and the method may include:
  • S301a Determine the cyclic shift value of the first sequence according to the physical layer source identifier K indicated by the first control information and the identifier Mi of the first device.
  • the first control information is information carried in the first-level SCI and/or the second-level SCI.
  • S302a The first device generates a first sequence according to the cyclic shift value.
  • S303a The first device sends second control information to the second device through the first sequence on the resource.
  • the second control information is information of the PSFCH channel carrier of the side feedback channel.
  • the cyclic shift value of the first sequence is determined according to one or more constraint conditions in the following formulas (0-1) to (0-3).
  • a in the above formula is an integer, such as 0, 1, 2 and so on.
  • floor() means to round down the input variable;
  • x n is the intermediate variable; It is a predefined or configured value, such as 12;
  • Mi is the identifier of the received data channel, and its identifier may be indicated by the upper layer protocol (is the identity of the UE receiving the PSSCH as indicated by higher layers).
  • n 0 in the above formula is the first cyclic shift value
  • m cs is the second cyclic shift value.
  • the value of the cyclic shift ⁇ l can be determined by m 0 and m cs , for example: ⁇ l is equal to (m 0 + m cs ), and the following formula (determined by 0-4):
  • the value of the second cyclic shift value m cs may be fixed, or may be configured or pre-configured by signaling, which is not limited in the embodiment of the present application.
  • there are different values for the second cyclic shift value m cs for example, the following Table 0-1 shows the case where the interval between NACK and ACK for the second cyclic shift value m cs is 6. Of course, the interval can also be 1, 2, 3, or 4, etc.
  • the embodiments of this application are This is not limited.
  • the second cyclic shift value m cs between NACK and ACK may also be determined by the number of configured cyclic shift pairs. For example, there may be determine.
  • the first sequence cluster generation method according to the cyclic shift value in other embodiments of the present application can also be used here, which is not limited in the present application.
  • the manner in which the first device sends the second control information to the second device through the first sequence on the resource can also be used here, which is not limited in this application.
  • the second device receives the first sequence, where the first sequence is generated according to the cyclic shift value.
  • the cyclic shift value is determined by the physical layer source identifier K indicated by the first control information and the identifier Mi of the first device.
  • S305a The second device detects the first control information according to the first sequence.
  • the process of generating the first sequence used by the receiving side (ie, the second device) to detect the control information is the same as the process on the sending side (ie, the first device).
  • the process on the sending side ie, the first device.
  • the first device or the second device can determine the cyclic shift value of the first sequence according to the physical layer source identifier K indicated by the first control information and the identifier Mi of the first device to flexibly generate
  • the cyclic shift value of the sequence, and the cyclic shift interval between different transmitting and receiving UEs can be controlled in a corresponding manner, so as to ensure that the interval is separated as much as possible to determine the detection performance of the control information sent through the first sequence.
  • the first device determines the cyclic shift value of the first sequence according to the index Fi of the resource and the identifier Mi of the first device in S301 are specifically described as follows. It should be noted that Fi in this article represents the index of the resource used by the i-th member device in the user group, Mi represents the i-th member device identifier, and CSi_A represents the first cyclic shift of the first sequence used by the i-th member device. Bit value, CSi_N represents the second cyclic shift value of the first sequence used by the i-th member device.
  • the first device determines the cyclic shift value of the first sequence according to the index Fi of the resource, the identifier Mi of the first device, and the number Y of cyclic shift pairs.
  • the corresponding English interpretation of the number of cyclic shift pairs Y can be "a number of cyclic shift pairs for the resource pool and, based on an indication by higher layers.”
  • the selection of the cyclic shift value of the first sequence of different member devices in the user group can be based on first selecting different resources in the resource set in turn, and then sequentially selecting different cyclic shift values in the cyclic shift pair. The order of the bit pairs is executed. At the same time, for the selection of the first cyclic shift value and the second cyclic shift value in the same cyclic shift pair, it can be ensured that the difference between the two cyclic shift values is as large as possible.
  • the first device can determine the first sequence of the first sequence according to Fi, Mi, and Y through the following formula (1-1) or formula (1-2) A cyclic shift value CSi_A.
  • b is a positive integer
  • Ncs is the number of cyclic shifts
  • Ncs is a positive integer
  • C is an integer.
  • the optional C can take the value 0.
  • Ncs in formula (1-2) can be predefined.
  • the value of Ncs can be 4, 6, 8, or 12, etc., which is not specifically limited in the embodiment of the present application.
  • the second cyclic shift value CSi_N of the first sequence and the first cyclic shift value CSi_A of the first sequence satisfy the following relationship: the second cyclic shift value CSi_N of the first sequence and the first sequence of the first sequence.
  • the difference between the two cyclic shift values CSi_A is one-half, one-third or one-fourth of the number of cyclic shifts Ncs.
  • the first device can use the following formula (2-1) or Formula (2-2) determines the second cyclic shift value CSi_A of the first sequence.
  • Ncs is the number of cyclic shifts
  • Ncs is a positive integer
  • C is an integer
  • Ncs may take a value of 4, 6, 8, or 12, etc.
  • Ncs may be predefined by a protocol or configured by signaling, such as configured on a resource pool.
  • b can take a value of 1, 2, or 3, etc.
  • the value of b is (Ncs/Y), where Y is a positive integer, for example, the value is 1, 2, 3, 4, or 6, etc.
  • Y is the number of cyclic shift pairs of the sequence, which may be predefined or configured by signaling.
  • the first device can determine the first cyclic shift of the first sequence according to Fi, Mi, and Y through the following formula (1-3) or formula (1-4)
  • the second cyclic shift value CSi_N of the first sequence is determined by the following formula (2-3) or formula (2-4).
  • the formulas for determining CSi_A and CSi_N in the embodiments of this application are only exemplary, and the specific values of CSi_A and CSi_N can be directly equal to the expressions on the right side of the relevant formulas in this article, or can be determined by the formulas on the right side of this article.
  • the specific values of CSi_A and CSi_N can also be equal to other deformation formulas of the expressions on the right side of the relevant formulas in this article, or new formulas formed by the combination of other variables, etc., these deformation formulas and the resulting The new formulas should all fall within the scope of protection of this application.
  • the resources included in the resource set are: Example)
  • the candidate cyclic shift pairs (CS pairs) are ⁇ (0,6), (2,8), (4,10) ⁇
  • the resources used by UE1 to UE6 are RB0 to RB5
  • the CS pair used is (0, 6)
  • the resources used by UE7 to UE12 are respectively
  • the resources are RB0 to RB5, the CS pairs used are (2, 8), the resources used by UE13 to UE15 are RB0 to RB2, and the CS pairs used are (4, 10).
  • the correspondence between the resource index and the CS pair can be represented by the following Table 1-1.
  • the candidate cyclic shift pair (CS pair) is ⁇ (0,6),(3,9) ⁇ , then according to the above formula (1-1-2) to formula (2- 3-2) It can be calculated that the resources used by UE1 to UE6 are RB0 to RB5, the CS pair used is (0, 6), the resources used by UE7 to UE10 are RB0 to RB3, and the CS pair used is (3 ,9).
  • the corresponding relationship between the resource index and the CS pair can be represented by the following Table 1-2.
  • the candidate cyclic shift pair (CS pair) is ⁇ (0,6) ⁇
  • the corresponding relationship between the resource index and the CS pair can be represented by the following Table 1-3.
  • the candidate cyclic shift pair (CS pair) is ⁇ (0,6), ( 2, 8), (4, 10), (1, 7), (3, 9), (5, 11) ⁇
  • the corresponding relationship between the resource index and the CS pair can be shown in the following table 1-4 To represent.
  • the first device may start from multiple predefined cyclic shift values (or predefined pairs of cyclic shifts, each cyclic shift).
  • the cyclic shift value of the first sequence is determined among the first cyclic shift value and the second cyclic shift value.
  • the multiple predefined cyclic shift values include any one of the following: a group of cyclic shift values arranged in an equally spaced manner, for example, ⁇ (0,6), (2,8), (4,10) ⁇ ; Multiple groups of cyclic shift values, each group of cyclic shift values are arranged at equal intervals, for example, the first group of cyclic shift values ⁇ (0, 6), (2, 8), (4, 10) ⁇ , The second set of cyclic shift values ⁇ (1, 7), (3, 9), (5, 11) ⁇ .
  • the first device can determine the index value according to Fi, Mi, and Y through the formula (K+Mi-Fi)/Y, and according to the index value from the preset Set the cyclic shift value of the preset cyclic shift pair corresponding to the index value in the corresponding relationship between the index value and the preset cyclic shift pair as the cyclic shift value of the first sequence, and each preset cyclic shift
  • the bits include a preset first cyclic shift value and a second cyclic shift value.
  • the range of the cyclic shift value is 0 to 11, and the preset index value includes 0 to 5, the preset index value 0 to 5 corresponds to the preset cyclic shift
  • the pair can be ⁇ (0,6), (2,8), (4,10), (1,7), (3,9), (5,11) ⁇ .
  • the first cyclic bit value in each cyclic shift value may be the first cyclic shift value
  • the second cyclic bit value may be the first cyclic shift value.
  • j represents the preset index value (the value range of j is 0 to 5), the same
  • the fi_A(j) corresponding to the preset index value j represents the first cyclic shift value
  • fi_N(j) represents the second cyclic shift value.
  • the above Table 2-1 is only exemplary, and the specific values of the first cyclic shift value and the second cyclic shift value in the preset cyclic shift pair are also exemplary, for example, the pre-
  • the preset cyclic shift pair corresponding to index values 0 to 5 can also be ⁇ (0, 3), (6, 9), (1, 4), (7, 10), (2, 5), (8 ,11) ⁇ or ⁇ (0, 2), (4, 6), (8, 10), (1, 3), (5, 7), (9, 11) ⁇ , etc., respectively, as shown in Table 2-2 As shown in and 2-3, the above Table 2-1 does not limit the embodiments of the present application.
  • CSi_A for ACK and CSi_N for NACK can be used interchangeably, for example: ⁇ (0, 6), (2, 8), (4, 10), (1 , 7), (3, 9), (5, 11) ⁇ can also be expressed as ⁇ (6, 0), (8, 2), (10, 4), (7, 1), (9, 3) , (11, 5) ⁇ , the above Table 2-1 to Table 2-3 are only exemplary, and do not limit the embodiments of the present application.
  • CSi_A represents the first cyclic shift value corresponding to the index value j
  • CSi_N represents the second cyclic shift value corresponding to the index value j
  • the index value j can be specifically determined by (K+Mi-Fi)/Y.
  • fi_A(i) and fi_N(i) they can be described in the form of tables or in the form of functions, which are not specifically limited in the embodiment of the present application.
  • the first device can determine the index value according to Fi, Mi, and Y through the formula (Mi-Fi)/Y, and according to the index value from the preset index value and the preset index value
  • the cyclic shift value of the preset cyclic shift pair corresponding to the index value is obtained from the correspondence between the cyclic shift pairs as the cyclic shift value of the first sequence, and each preset cyclic shift includes the preset A first cyclic shift value and a second cyclic shift value.
  • CSi_A represents the first cyclic shift value corresponding to the index value j, which can be specifically determined by fi_A(j);
  • CSi_N represents the second cyclic shift value corresponding to the index value j, which can be specifically determined by fi_N(j),
  • the index value j can be specifically determined by (Mi-Fi)/Y.
  • CSi_N fi_N ⁇ (Mi-Fi)/Y ⁇ (3-4)
  • fi_A(i) and fi_N(i) can be described in a table or a predefined arrangement, and can also be described in the form of a function, which is not specifically limited in the embodiment of the present application.
  • the number Y of cyclic shift pairs is 6, the range of cyclic shift values is 0 to 11, and the preset index value includes 0 to 5, the preset index value 0 to 5 is the same as the preset cyclic shift
  • the relationship between bit pairs can also be as shown in 2 above.
  • the first device determines the cyclic shift value of the first sequence from U sequences pre-configured or configured on the resource set according to the index Fi of the resource and the identity Mi of the first device, where U is An integer greater than or equal to 2.
  • the candidate cyclic shift values corresponding to the cyclic shift value of the first sequence include at least two groups, and each group corresponds to a root sequence number and a group of cyclic shift values. At least two groups have different root sequence numbers, and at least two groups have different root sequence numbers. The corresponding cyclic shift values are the same or different.
  • U sequences can be pre-configured or configured on the resource set or resource pool.
  • the root sequence numbers of the U sequences can be pre-configured or configured on the resource set.
  • the number of multiple member devices in the user group where the first device is located is M
  • the number of resources included in the resource set is Z
  • the number of cyclic shift pairs is Y
  • the first device can be based on the ratio of M/Z/Y To determine the root sequence number of the first sequence.
  • the first device can determine that the root sequence number of the first sequence is u2.
  • the first device may determine the cyclic shift value of the first sequence in the manner provided in the first embodiment or the second embodiment.
  • the first A device can determine the first cyclic shift value of the first sequence according to Fi, Mi, and Y using the following formula.
  • the first device determines the first sequence of the first sequence according to the following formula (4-1) or formula (4-2)
  • the second cyclic shift value CSi_N of the first sequence is determined according to the following formula (4-3) or formula (4-4).
  • CSi_N a1+b*(K+Mi-Fi)/Y+C1 (4-3)
  • CSi_N a1+b*((K+Mi-Fi)/Y+C1)mod Ncs (4-4)
  • the root sequence number of the first sequence is u2
  • the first device determines the first cyclic shift of the first sequence according to the following formula (5-1) or formula (5-2)
  • the second cyclic shift value CSi_N of the first sequence is determined according to the following formula (5-3) or formula (5-4).
  • CSi_N a2+b*(K+Mi-Fi)/Y+C2 (5-3)
  • the root sequence number of the first sequence is u1
  • the first device determines the first cyclic shift of the first sequence according to the following formula (4-5) or formula (4-6)
  • the second cyclic shift value CSi_N of the first sequence is determined according to the following formula (4-7) or formula (4-8).
  • the root sequence number of the first sequence is u2
  • the first device determines the first cyclic shift of the first sequence according to the following formula (5-5) or formula (5-6)
  • the second cyclic shift value CSi_N of the first sequence is determined according to the following formula (5-7) or formula (5-8).
  • the first device may start from the predefined multiple cyclic shift values according to Fi, Mi, and Y.
  • the cyclic shift value of the first sequence is determined from the shift value.
  • the root sequence number of the first sequence is u1
  • the first device queries the set of cyclic shift values corresponding to the root sequence number u1 according to Fi, Mi, and Y to determine The cyclic shift value of the first sequence
  • M/Z/Y>1/2 the root sequence number of the first sequence is u2
  • the first device queries the set of cycles corresponding to the root sequence number u2 according to Fi, Mi and Y Shift value to determine the cyclic shift value of the first sequence.
  • a set of cyclic shift values corresponding to the two root sequence numbers can be expressed in the form shown in Table 2-1 above, and can also be expressed in the above formula (3-1) and formula (3-2), or formula (3 -3) and formula (3-4).
  • a set of cyclic shift values corresponding to each root sequence number may also include the root sequence number.
  • multiple predefined cyclic shift values may be ⁇ (u1, 0, 6), (u1 ,2,8),(u1,4,10),(u2,0,6),(u2,2,8),(u2,4,10) ⁇ , ⁇ (u1,0,6),(u1 ,2,8),(u1,4,10),(u2,1,7),(u2,3,9),(u2,5,11) ⁇ , ⁇ (u1,0,2),(u1 , 4, 6), (u1, 8, 10), (u2, 0, 2), (u2, 4, 6), (u2, 8, 10) ⁇ , or ⁇ (u1, 0, 2), ( u1,4,6), (u1,8,10), (u2,1,3), (u2,5,7), (u2,9,11) ⁇ etc.
  • the above-mentioned first method can ensure that the sequence between all member devices has as even a distribution of cyclic shift values as possible, so as to achieve the best information transmission effect during code division multiplexing transmission between multiple member devices, and the most Good corresponds to the detection performance on the receiver side (ie, the second device side).
  • the first device determines the cyclic shift value of the first sequence according to the difference between the index Fi of the resource and the identifier Mi of the first device.
  • the first device determines the cyclic shift value of the first sequence according to the difference between the index Fi of the resource and the identifier Mi of the first device. Specifically, it can be understood that the cyclic shift value of the first sequence is (Mi-Fi)
  • the first device may replace Mi-Fi in formula (1-1) to formula (1-4), and formula (2-1) to formula (2-4) by the variable x , And then the cyclic shift value of the first sequence can be determined according to the substituted formula.
  • the substituted formula can be expressed as formula (1-1)' to formula (1-4)' and formula (2-1)' to Formula (2-4)'.
  • the first device obtains the cyclic shift value of the preset cyclic shift pair corresponding to the index value from the corresponding relationship between the preset index value and the preset cyclic shift pair as the first
  • the specific process of a sequence of cyclic shift values is similar to the description in the second embodiment in the above-mentioned first method, and only needs to use (Mi-Fi) in the above-mentioned second embodiment as the overall variable x. , So you can refer to the relevant description above for details, and will not be repeated here in this application.
  • the first device may determine the cyclic shift value of the first sequence from U sequences pre-configured or configured on the resource set according to the variable x, where U is an integer greater than or equal to 2.
  • the candidate cyclic shift values corresponding to the cyclic shift value of the first sequence include at least two groups, and each group corresponds to a root sequence number and a group of cyclic shift values. At least two groups have different root sequence numbers, and at least two groups have different root sequence numbers. The corresponding cyclic shift values are the same or different.
  • the U sequences can be pre-configured or configured on the resource set.
  • the root sequence numbers of the U sequences can be pre-configured or configured on the resource set in advance.
  • the specific process by which the first device can determine the cyclic shift value of the first sequence in the manner provided by the first two embodiments in the second manner can refer to the relevant description above.
  • the above-mentioned second method can improve the speed and diversity of determining the cyclic shift value of the first sequence, and ensure that the sequence among all member devices has as even a distribution of cyclic shift values as possible, so as to realize multi-member devices.
  • the first device determines the cyclic shift value of the first sequence according to (Mi-Fi)/Y; or, determines the cyclic shift value of the first sequence according to (K+Mi-Fi)/Y, where K Is the physical layer source identifier received from the second device.
  • the first device can pass formula (1-1) and formula (1-2), and (Mi-Fi)/Y in formula (2-1) and formula (2-2) through Replace with variable t, or replace K+Mi-Fi)/Y in formula (1-3) and formula (1-4), and formula (2-3) and formula (2-4) with variable t , And then the cyclic shift value of the first sequence can be determined according to the substituted formula.
  • the substituted formula can be expressed as formula (1-1)” and formula (1-2)”, as well as formula (2-1)” and Formula (2-2)".
  • each preset cyclic shift includes a preset first cyclic shift value and a second cyclic shift value.
  • the first device obtains the cyclic shift value of the preset cyclic shift pair corresponding to the index value from the corresponding relationship between the preset index value and the preset cyclic shift pair as the first
  • the specific process of a sequence of cyclic shift values is similar to the description in the second embodiment in the first method, and only needs to be (K+Mi-Fi)/Y or ( Mi-Fi)/Y can be taken as the overall variable t, so for details, please refer to the relevant description above, which will not be repeated here in this application.
  • the first device may determine the cyclic shift value of the first sequence from U sequences pre-configured or configured on the resource set according to the variable t, where U is an integer greater than or equal to 2.
  • the candidate cyclic shift values corresponding to the cyclic shift value of the first sequence include at least two groups, and each group corresponds to a root sequence number and a group of cyclic shift values. At least two groups have different root sequence numbers, and at least two groups have different root sequence numbers. The corresponding cyclic shift values are the same or different.
  • the U sequences can be pre-configured or configured on the resource set.
  • the root sequence numbers of the U sequences can be pre-configured or configured on the resource set in advance.
  • the specific process by which the first device can determine the cyclic shift value of the first sequence in the manner provided in the first two embodiments in the second manner can refer to the relevant description above. I won't repeat them here.
  • the third method mentioned above can improve the speed and diversity of determining the cyclic shift value of the first sequence, and ensure that the sequence among all member devices has as even a distribution of cyclic shift values as possible, so as to realize multi-member devices.
  • the method provided in the embodiments of the present application can implement code division multiplexing when multiple user equipment transmits control information on the same resource or resource set without network or central node control, so as to ensure that all user equipment
  • the sequence has the distribution value of the cyclic shift value as evenly as possible, in order to achieve the best information transmission effect during code division multiplexing transmission between multi-user equipment, and the best information transmission effect corresponding to the receiver side (that is, the second device side) Excellent detection performance.
  • the embodiment of the present application also provides another control information transmission method, which includes the following steps.
  • the first device determines a cyclic shift value used to send the first control information.
  • the cyclic shift value is determined by the second control information associated with the first control information and/or the CRC of the data scheduled by the second control information; or, the cyclic shift value is determined by the second control information associated with the first control information And/or a combination of one or more of the signaling indicated by the second control information is determined.
  • the first device determines the first sequence according to the cyclic shift value.
  • the first control information is feedback information that the first device receives data sent by the second device.
  • the second control information associated with the first control information and/or the data scheduled by the second control information includes: the first control information is physical layer response information, which is a response to data corresponding to the physical layer response information, where the first control information
  • the second control information is information indicating the transmission resource under which it is based.
  • the second control information is the first-level control information and/or the second-level control information used when the second device sends the foregoing data.
  • the cyclic shift value is determined by a combination of one or more of the second control information associated with the first control information and/or the signaling indicated by the second control information, including the first level second control information And/or a combination of one or more of the signaling indicated by the second level second control information.
  • the signaling included in the first level second control information includes: time domain resource indication information, frequency domain indication information, MCS value, and/or DMRS pattern indication information; the first level second control information includes The signaling includes: indication information of the source identification, and/or indication information of the destination identification, etc.
  • x i represents any one of the indicated signaling
  • L represents the number of signaling bits, or the low L bits or the high L bits in the signaling.
  • the CRC check bit of control information or data after being converted into a decimal number, can be expressed as:
  • p i is the CRC verification bit after the CRC is generated by the originating device (for example, the first device), and L represents the length of the CRC verification bit.
  • the length of the CRC verification bit may be 8, 12, 16, 24, etc.
  • the cyclic shift ⁇ of the sequence used to transmit control information can be described by formula (II-2):
  • l and l' may be the symbol where the first control information is sent, and may be a predetermined constant, such as 12, 10, 11, or 24, which is not limited in the embodiment of the present application.
  • m 0 and m cs are the first cyclic shift value and the second cyclic shift value, respectively, and both are integers.
  • the specific values of m 0 and m cs may be predefined, or configured by signaling, or indicated by signaling configured on the resource pool.
  • the sequence C is a random sequence, and the initial value of the sequence C is generated or
  • the L is a positive integer, such as 10, 16, 24, etc., which is not limited in the embodiment of the present application.
  • It is any one of the above formula (II-0) or (II-1).
  • the random sequence C can be generated by multiplexing NR (the definition in section 5.2.1 in the 38.211 protocol) or the LTE random sequence generation method, which is not limited in the present invention.
  • the first control information is information carried in the PSFCH
  • the second control information is information carried in the first-level or second-level SCI.
  • the first control information is the response information for the data on the PSSCH sent by the UE2 that needs to be sent by the UE1 on the feedback channel PSFCH.
  • the response information includes: only NACK feedback, ACK feedback or NACK feedback.
  • the initial c init of the random sequence C is or to make sure. And correspondingly According to formula (II-0) or (II-1) to generate.
  • the CRC check or control information can be generated from the CRC of the first level SCI or the second SCI indicating the transmission resources of the PSSCH of UE2, or generated by the CRC of the PSSCH sent by UE2, or carried in the PSSCH Of data bits.
  • the second device receives a first sequence, the first sequence is generated according to the cyclic shift value, wherein the cyclic shift value is related to the second control information and/or the first control information
  • the CRC of the data scheduled by the second control information is determined.
  • S22 The second device detects the first control information according to the first sequence.
  • the process of generating the first sequence used by the receiving side (ie, the second device) to detect the control information is the same as the process on the sending side (ie, the first device).
  • the process on the sending side ie, the first device.
  • the method provided by the embodiment of this application is a process of generating the cyclic shift of the sequence. In addition to working alone, it can also be used in combination with other embodiments to determine the cyclic shift value of the sequence. This will not be repeated here.
  • the embodiment of the present application can reuse the formula and protocol for PUCCH generation in NR as much as possible through the above-mentioned method to realize PSFCH sequence generation.
  • the CRC check bit of the transmitted data is used for the corresponding identification on the side link, so as to further verify that the PSSCH and/or SCI are detected correctly, thereby improving the performance and reliability of the system.
  • the first device and the second device include hardware structures and/or software modules corresponding to each function.
  • the present application can be implemented in the form of hardware or a combination of hardware and computer software. Whether a certain function is executed by hardware or computer software-driven hardware depends on the specific application and design constraint conditions of the technical solution. Professionals and technicians can use different methods for each specific application to implement the described functions, but such implementation should not be considered beyond the scope of this application.
  • the embodiment of the present application can divide the first device and the second device into functional modules according to the above method examples.
  • each functional module can be divided corresponding to each function, or two or more functions can be integrated into one processing module. middle.
  • the above-mentioned integrated modules can be implemented in the form of hardware or software functional modules. It should be noted that the division of modules in the embodiments of the present application is illustrative, and is only a logical function division, and there may be other division methods in actual implementation.
  • FIG. 7 shows a possible structural schematic diagram of the control information transmission device involved in an embodiment of the present application.
  • the device includes: The processing unit 401 and the sending unit 402. Further, the device further includes a receiving unit 403.
  • the processing unit 401 can be used to support the device to perform S301 and S302 in the above method embodiment; the sending unit 402 can be used to support the device to perform S303 in the above method embodiment; the receiving unit 403 can be used To support the device to execute S300 in the above method embodiment.
  • the processing unit 401 may be used to support the device to perform S301a and S302a in the foregoing method embodiment, and the sending unit 402 may be used to support the device to perform S303a in the foregoing method embodiment. And/or, the receiving unit 403 may be used to support the device to execute S300 in the foregoing method embodiment.
  • the processing unit 401 may be used to support the device to perform S11 and S12 in the foregoing method embodiment, and the sending unit 402 may be used to support the device to perform S13 in the foregoing method embodiment. And/or, the receiving unit 403 may be used to support the device to execute S300 in the foregoing method embodiment.
  • the processing unit 401 in this embodiment of the application may be the processor of the control information transmission device
  • the sending unit 402 may be the transmitter of the control information transmission device
  • the receiving unit 403 may be the control information transmission device.
  • the receiver of the transmission device, the transmitter can usually be integrated with the receiver and used as a transceiver, and the specific transceiver can also be called a communication interface.
  • the device includes: a processor 411, the memory 412, the communication interface 413, and the bus 414, and the processor 411, the memory 412, and the communication interface 413 are connected through the bus 414.
  • the processor 411 is configured to control and manage the actions of the control information transmission device.
  • the processor 411 may be used to support the device to execute S301 and S302 in the foregoing method embodiment, and to support the device to execute S300 and S303 in the foregoing method embodiment through the communication interface 413, and/or Other processes used in the techniques described in this article.
  • the processing unit 401 may be used to support the device to execute S301a and S302a in the foregoing method embodiment, and to support the device to execute S303a in the foregoing method embodiment through the communication interface 413, and/or Other processes used in the techniques described in this article.
  • the processing unit 401 may be used to support the device to execute S11 and S12 in the foregoing method embodiment, and to support the device to execute S13 in the foregoing method embodiment through the communication interface 413.
  • the communication interface 413 is used to support the control information transmission device to communicate, for example, to support the communication device to communicate with the second device;
  • the memory 411 is used to store the program code and data of the control information transmission device.
  • the processor 411 may be a central processing unit, a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof . It can implement or execute various exemplary logical blocks, modules, and circuits described in conjunction with the disclosure of this application.
  • the processor may also be a combination that implements computing functions, for example, a combination of one or more microprocessors, a combination of a digital signal processor and a microprocessor, and so on.
  • the bus 414 in FIG. 8 may be a peripheral component interconnect standard (PCI) bus or an extended industry standard architecture (EISA) bus, etc.
  • PCI peripheral component interconnect standard
  • EISA extended industry standard architecture
  • the bus can be divided into an address bus, a data bus, a control bus, and so on. For ease of presentation, only one thick line is used in the foregoing FIG. 8, but it does not mean that there is only one bus or one type of bus
  • FIG. 9 shows a possible structural schematic diagram of the control information transmission device involved in an embodiment of the present application.
  • the device as the second device or a chip built into the second device, includes: The receiving unit 501 and the processing unit 502. Further, the device further includes a sending unit 503.
  • the receiving unit 501 can be used to support the device to perform the steps of receiving the control information sent by S303 in the above method embodiment; the processing unit 502 can be used to support the device to perform S304 in the above method embodiment, And/or other processes used in the techniques described herein.
  • the sending unit 503 may be used to support the apparatus to perform the step of sending the first data to the first device in the foregoing method embodiment.
  • the receiving unit 501 may be used to support the device to execute S304a in the foregoing method embodiment, etc.; the processing unit 502 may be used to support the device to perform S305a in the foregoing method embodiment, and/or be used for Other processes of the technique described in this article.
  • the receiving unit 501 may be used to support the device to perform S21 in the foregoing method embodiment, etc.; the processing unit 502 may be used to support the device to perform S22 in the foregoing method embodiment, and/or used to Other processes of the technique described in this article.
  • the processing unit 502 in the embodiment of the present application may be the processor of the control information transmission device
  • the sending unit 503 may be the transmitter of the control information transmission device
  • the receiving unit 501 may be the control information transmission device.
  • the receiver of the transmission device, the transmitter can usually be integrated with the receiver and used as a transceiver, and the specific transceiver can also be called a communication interface.
  • the device includes: a processor 511 and a memory 512 , Communication interface 513 and bus 514.
  • the processor 511 is configured to control and manage the actions of the control information transmission device.
  • the processor 511 may be used to support the device to perform S304 in the above method embodiment, and to support the device to perform the step of sending the first data to the first device in the above method embodiment through the communication interface 513 , And/or other processes used in the techniques described herein.
  • the processor 511 may be used to support the device to perform S305a in the foregoing method embodiment, etc., and to support the device to perform S304a in the foregoing method embodiment through the communication interface 513, and/or for Other processes of the technique described in this article.
  • the processor 511 may be used to support the device to execute S22 and the like in the foregoing method embodiment, and to support the device to execute S21 and the like in the foregoing method embodiment through the communication interface 513.
  • the communication interface 513 can be used to support the device to communicate, for example, to support the device to communicate with other devices such as the first device.
  • the memory 512 can be used to store program codes and data of the device.
  • the processor 511 may be a central processing unit, a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic devices, transistor logic devices, hardware components, or any combination thereof . It can implement or execute various exemplary logical blocks, modules, and circuits described in conjunction with the disclosure of this application.
  • the processor may also be a combination that implements computing functions, for example, a combination of one or more microprocessors, a combination of a digital signal processor and a microprocessor, and so on.
  • the bus 514 in FIG. 10 above may be a Peripheral Component Interconnection Standard (PCI) bus or an Extended Industry Standard Architecture (EISA) bus or the like.
  • PCI Peripheral Component Interconnection Standard
  • EISA Extended Industry Standard Architecture
  • the bus can be divided into an address bus, a data bus, a control bus, and so on.
  • FIG. 10 is represented by only a thick line, but it does not mean that there is only one bus or one type of bus.
  • an embodiment of the present application also provides a communication system, which includes a first device and a second device; wherein, the first device is the control information transmission device provided in FIG. 7 or FIG. The steps of the first device in the method embodiment; the second device is the control information transmission device provided in FIG. 9 or FIG. 10, and is used to execute the steps of the second device in the method embodiment.
  • the disclosed device and method may be implemented in other ways.
  • the device embodiments described above are merely illustrative.
  • the division of the modules or units is only a logical function division. In actual implementation, there may be other division methods, for example, multiple units or components may be divided. It can be combined or integrated into another device, or some features can be omitted or not implemented.
  • the units described as separate parts may or may not be physically separate.
  • the parts displayed as units may be one physical unit or multiple physical units, that is, they may be located in one place, or they may be distributed to multiple different places. . Some or all of the units may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.
  • the functional units in the various embodiments of the present application may be integrated into one processing unit, or each unit may exist alone physically, or two or more units may be integrated into one unit.
  • the above-mentioned integrated unit can be implemented in the form of hardware or software functional unit.
  • the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a readable storage medium.
  • the readable storage medium may include: U disk, mobile hard disk, read-only Various media that can store program codes such as memory, random access memory, magnetic disk or optical disk.
  • a computer-readable storage medium stores instructions. When the instructions run on a device, the device executes the first step in the above method embodiments. Equipment steps.
  • a computer-readable storage medium stores instructions.
  • the device executes the second device in the above method embodiment. A step of.
  • a computer program product is provided.
  • the device executes the steps of the first device in the foregoing method embodiment.
  • a computer program product is provided.
  • the device executes the steps of the second device in the foregoing method embodiment.

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Abstract

La présente invention concerne le domaine technique des communications, et fournit un procédé et un appareil de transmission d'informations de commande, pour mettre en œuvre un multiplexage par répartition de code pour la transmission d'informations de commande entre différents UE en cas de défaillance ou d'absence de station de base. Le procédé comprend les étapes suivantes : un premier dispositif détermine une valeur de décalage cyclique d'une première séquence en fonction d'un identifiant de source K d'une couche physique et d'un identifiant Mi du premier dispositif ; le premier dispositif génère la première séquence en fonction de la valeur de décalage cyclique ; le premier dispositif envoie des informations de commande à un second dispositif sur une ressource au moyen de la première séquence ; lorsque le second dispositif reçoit les informations de commande envoyées par le premier dispositif, le second dispositif obtient les informations de commande conformément à la première séquence.
PCT/CN2020/075394 2020-02-14 2020-02-14 Procédé et appareil de transmission d'informations de contrôle WO2021159512A1 (fr)

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PCT/CN2020/084303 WO2021159600A1 (fr) 2020-02-14 2020-04-10 Procédé et appareil de transmission d'informations de commande
CN202080095581.5A CN115053477B (zh) 2020-02-14 2020-04-10 一种控制信息传输方法及装置

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116800395B (zh) * 2023-08-23 2023-10-27 泸州卓远液压有限公司 一种基于5g的液压设备远程控制方法及装置

Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014148284A1 (fr) * 2013-03-18 2014-09-25 Nec Corporation Procédé d'attribution de ressource phich
CN108347313A (zh) * 2017-01-24 2018-07-31 华为技术有限公司 反馈方法及用户设备
CN108631910A (zh) * 2017-03-22 2018-10-09 华为技术有限公司 一种数据传输方法及装置
CN110061806A (zh) * 2018-12-03 2019-07-26 中国信息通信研究院 一种v2x单播通信方法、终端设备和系统
CN110169095A (zh) * 2019-04-12 2019-08-23 北京小米移动软件有限公司 加扰处理方法、解扰处理方法及装置
CN110383736A (zh) * 2019-05-24 2019-10-25 北京小米移动软件有限公司 反馈信息的传输方法、装置、设备及存储介质

Family Cites Families (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN107995679B (zh) * 2018-01-30 2019-05-17 创新维度科技(北京)有限公司 一种物联网的下行数据传输和下行数据接收方法
WO2020033089A1 (fr) * 2018-08-09 2020-02-13 Convida Wireless, Llc Diffusion, multidiffusion et monodiffusion sur liaison latérale pour ev2x 5g

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2014148284A1 (fr) * 2013-03-18 2014-09-25 Nec Corporation Procédé d'attribution de ressource phich
CN108347313A (zh) * 2017-01-24 2018-07-31 华为技术有限公司 反馈方法及用户设备
CN108631910A (zh) * 2017-03-22 2018-10-09 华为技术有限公司 一种数据传输方法及装置
CN110061806A (zh) * 2018-12-03 2019-07-26 中国信息通信研究院 一种v2x单播通信方法、终端设备和系统
CN110169095A (zh) * 2019-04-12 2019-08-23 北京小米移动软件有限公司 加扰处理方法、解扰处理方法及装置
CN110383736A (zh) * 2019-05-24 2019-10-25 北京小米移动软件有限公司 反馈信息的传输方法、装置、设备及存储介质

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
"3rd Generation Partnership Project; Technical Specification Group Radio Access Network; NR; Physical channels and modulation (Release 16)", 3GPP STANDARD; TECHNICAL SPECIFICATION; 3GPP TS 38.211, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG1, no. V16.0.0, 11 January 2020 (2020-01-11), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France, pages 1 - 129, XP051860643 *

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