Processing method, communication device, and computer-readable storage medium
Patent Information
- Application Number
- PCT/CN2024/121187
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-09-25
- Publication Date
- 2025-07-24
AI Technical Summary
The uplink transmission technology mechanism in the existing protocol solution is incomplete, resulting in an increase in beam information reporting delay and an increase in uplink signaling overhead.
By providing a processing method between the terminal device and the network device, the specific steps include mapping the UCI to the time and frequency resources of the uplink channel, selecting or determining the number of coded modulation symbols and mapping order of each layer of various signals to optimize the transmission of uplink signaling.
This method effectively reduces the delay and uplink signaling overhead of beam information reporting, and improves the performance of the uplink transmission technology mechanism.
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Figure CN2024121187_24072025_PF_FP_ABST
Abstract
Description
Processing method, communication device and computer-readable storage medium Technical Field
[0001] The present application relates to the field of communication technology, and in particular to a processing method, a communication device, and a computer-readable storage medium. Background Art
[0002] UCI (Uplink Control Information) is key control information sent by a terminal device to a network device, and contains necessary information required by the network device to manage and / or schedule the terminal device.
[0003] During the process of conceiving and implementing this application, the inventors discovered that there are at least the following problems: the uplink transmission technical mechanism in the existing protocol scheme is imperfect, which may lead to an increase in the beam information reporting delay and / or an increase in the uplink signaling overhead, and therefore the uplink transmission technical mechanism needs to be improved.
[0004] The preceding description is intended to provide general background information and does not necessarily constitute prior art. Technical Solutions
[0005] The main purpose of this application is to provide a processing method, a communication device and a computer-readable storage medium, aiming to improve the uplink transmission technology mechanism.
[0006] To achieve the above objectives, the present application provides a processing method that can be applied to a terminal device (such as a mobile phone), comprising the steps of:
[0007] S1: Maps UCI to the time-frequency resources of the uplink channel.
[0008] Optionally, the method further comprises at least one of the following:
[0009] The UCI includes at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0010] The time-frequency resources include resource elements;
[0011] Uplink channels include CG PUSCH and / or PUSCH;
[0012] Send uplink channel.
[0013] Optionally, the method further comprises at least one of the following:
[0014] Select or determine the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0015] Determine a first mapping order of the first CSI and / or UL-SCH;
[0016] A second mapping order of at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK is determined.
[0017] Optionally, the method further comprises at least one of the following:
[0018] The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula;
[0019] The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula;
[0020] The first mapping order is used to map the first CSI and / or UL-SCH;
[0021] The second mapping order is used to map at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK;
[0022] The first mapping order includes mapping order 1 and / or mapping order 2;
[0023] The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
[0024] Optionally, step S1 includes at least one of the following:
[0025] Mapping the first CSI and / or UL-SCH to time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order;
[0026] Based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped to the time-frequency resources of PUSCH.
[0027] Optionally, the method further comprises at least one of the following:
[0028] Mapping order 1 is the coded bits of the first CSI;
[0029] Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH;
[0030] Mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2;
[0031] Mapping order 4 is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2;
[0032] Mapping order five: coded bits of HARQ-ACK, coded bits of CSI part 1, coded bits of CSI part 2, coded bits of the first SR and / or the first UCI;
[0033] Mapping order six: coded bits of CSI part 1, coded bits of CSI part 2, coded bits of UL-SCH, coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI;
[0034] Mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0035] Optionally, the method further comprises at least one of the following:
[0036] The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0037] The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS;
[0038] The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI;
[0039] The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK;
[0040] The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH;
[0041] The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS;
[0042] The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
[0043] Optionally, the method further comprises at least one of the following:
[0044] Calculating the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter;
[0045] The reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0046] If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol;
[0047] If there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol;
[0048] Mapping the coded bits of the first SR and / or first UCI starts from the resource element next to the last resource element corresponding to the coded bit of the HARQ-ACK;
[0049] If there are available resource elements in the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the last symbol;
[0050] If there are no available resource elements for the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the symbol next to the last symbol;
[0051] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0052] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol;
[0053] If at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0054] The first CSI satisfies the first condition;
[0055] The first SR is used to request resources to report measurement information that meets the first condition;
[0056] The first UCI is used to notify and / or instruct the network device of a first process.
[0057] Optionally, the method further comprises at least one of the following:
[0058] The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR;
[0059] The first interval is greater than or equal to 1;
[0060] The first processing includes the terminal device reporting measurement information that meets the first condition;
[0061] The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
[0062] The present application also provides a processing method, which can be applied to a network device (such as a base station), comprising the steps of:
[0063] S2: Receive an uplink channel, where the time-frequency resources of the uplink channel include the UCI mapped by the terminal device.
[0064] Optionally, the method further comprises at least one of the following:
[0065] The UCI includes at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0066] The time-frequency resources include resource elements;
[0067] The uplink channel includes CG PUSCH and / or PUSCH.
[0068] Optionally, the method further comprises at least one of the following:
[0069] The terminal device selects or determines the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0070] The terminal device determines a first mapping order of the first CSI and / or UL-SCH;
[0071] The terminal device determines a second mapping order of at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK.
[0072] Optionally, the method further comprises at least one of the following:
[0073] The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula;
[0074] The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula;
[0075] The first mapping order is used to map the first CSI and / or UL-SCH;
[0076] The second mapping order is used to map at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK;
[0077] The first mapping order includes mapping order 1 and / or mapping order 2;
[0078] The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
[0079] Optionally, the terminal device maps the UCI to the time-frequency resources of the uplink channel, including:
[0080] The terminal device maps the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order; and / or,
[0081] The terminal device maps the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK to the time-frequency resources of PUSCH based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order.
[0082] Optionally, the method further comprises at least one of the following:
[0083] Mapping order 1 is the coded bits of the first CSI;
[0084] Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH;
[0085] Mapping order three is: HARQ-ACK coded bits, first SR and / or first UCI coded bits, CSI part 1 coded bits, CSI part 2 coded bits;
[0086] Mapping order four is: HARQ-ACK coded bits, CSI part 1 coded bits, first SR and / or first UCI coded bits, CSI part 2 coded bits;
[0087] Mapping order five: HARQ-ACK coded bits, CSI part 1 coded bits, CSI part 2 coded bits, first SR and / or first UCI coded bits;
[0088] Mapping order six is: coded bits of CSI part 1, coded bits of CSI part 2, coded bits of UL-SCH, coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI.
[0089] Optionally, the method further comprises at least one of the following:
[0090] The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0091] The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS;
[0092] The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI;
[0093] The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK;
[0094] The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH;
[0095] The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS;
[0096] The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
[0097] Optionally, the method further comprises at least one of the following:
[0098] Calculating the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter;
[0099] The reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0100] If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol;
[0101] If there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol;
[0102] Mapping the coded bits of the first SR and / or first UCI starts from the resource element next to the last resource element corresponding to the coded bit of the HARQ-ACK;
[0103] If there are available resource elements in the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the last symbol;
[0104] If there are no available resource elements for the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the symbol next to the last symbol;
[0105] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0106] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol;
[0107] If at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0108] The first CSI satisfies the first condition;
[0109] The first SR is used to request resources to report measurement information that meets the first condition;
[0110] The first UCI is used to notify and / or instruct the network device of a first process.
[0111] Optionally, the method further comprises at least one of the following:
[0112] The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR;
[0113] The first interval is greater than or equal to 1;
[0114] The first processing includes the terminal device reporting measurement information that meets the first condition;
[0115] The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
[0116] The present application also provides a communication device, comprising: a memory, a processor, and a processing program stored in the memory and executable on the processor, wherein the processing program implements the steps of any of the above-described processing methods when executed by the processor.
[0117] The communication device in this application can be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific reference needs to be clarified based on the context.
[0118] The present application also provides a computer-readable storage medium, on which a processing program is stored. When the processing program is executed by a processor, the steps of any of the processing methods described above are implemented.
[0119] The technical solution of this application maps UCI to the time-frequency resources of the uplink channel, improving the uplink transmission technical mechanism. BRIEF DESCRIPTION OF THE DRAWINGS
[0120] The accompanying drawings herein are incorporated into and constitute a part of the specification, illustrate embodiments consistent with the present application, and together with the specification, are used to explain the principles of the present application. In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for describing the embodiments. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without inventive work.
[0121] FIG1 is a schematic diagram of the hardware structure of a mobile terminal for implementing various embodiments of the present application;
[0122] FIG2 is a diagram of a communication network system architecture provided by an embodiment of the present application;
[0123] FIG3 is a schematic diagram of the hardware structure of a controller 140 provided in this application;
[0124] FIG4 is a schematic diagram of the hardware structure of a network node 150 provided in this application;
[0125] FIG5 is a schematic flow chart of a processing method according to the first embodiment;
[0126] FIG6 is a schematic flow chart of a processing method according to a second embodiment;
[0127] FIG7 is a schematic diagram of coding bit mapping according to the fifth embodiment of the present application;
[0128] FIG8 is a schematic flow chart of a processing method according to a seventh embodiment;
[0129] FIG9 is a first structural diagram of a processing device provided in an embodiment of the present application;
[0130] FIG10 is a second structural diagram of a processing device provided in an embodiment of the present application;
[0131] FIG11 is a schematic diagram of the structure of a communication device provided in an embodiment of the present application.
[0132] The purpose of this application, its features, and advantages will be further described in conjunction with the embodiments and with reference to the accompanying drawings. The accompanying drawings illustrate specific embodiments of this application, which will be described in more detail later. These drawings and the accompanying text are not intended to limit the scope of the present application in any way, but rather to illustrate the concepts of this application to those skilled in the art by reference to specific embodiments.
[0133] Implementation Methods of the Application
[0134] Exemplary embodiments will be described in detail herein, with examples illustrated in the accompanying drawings. In the following description, when referring to the drawings, identical numerals in different figures represent identical or similar elements, unless otherwise indicated. The embodiments described in the following exemplary embodiments are not intended to represent all embodiments consistent with the present application. Rather, they are merely examples of apparatus and methods consistent with certain aspects of the present application, as detailed in the appended claims.
[0135] It should be noted that, in this document, the terms "comprises", "includes" or any other variations thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a ..." does not exclude the presence of other identical elements in the process, method, article or device comprising the element, and / or, components, features, and elements with the same name in different embodiments of the present application may have the same meaning or different meanings, and their specific meanings need to be determined by their explanation in the specific embodiment or further combined with the context of the specific embodiment.
[0136] It should be understood that although the terms "first," "second," "third," etc. may be used herein to describe various information, such information should not be limited to these terms. These terms are used solely to distinguish information of the same type from one another. For example, without departing from the scope of this disclosure, first information may also be referred to as second information, and similarly, second information may also be referred to as first information. Depending on the context, the term "if," as used herein, may be interpreted as "upon," "when," or "in response to a determination." Furthermore, as used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context indicates otherwise. It should be further understood that the terms "comprising" and "including" indicate the presence of the recited features, steps, operations, elements, components, items, types, and / or groups, but do not preclude the presence, occurrence, or addition of one or more other features, steps, operations, elements, components, items, types, and / or groups. The terms "or," "and / or," "including at least one of the following," etc., as used herein, may be interpreted as inclusive, meaning any one or any combination. For example, “comprising at least one of the following: A, B, C” means “any of the following: A; B; C; A and B; A and C; B and C; A and B and C”; and for another example, “A, B or C” or “A, B and / or C” means “any of the following: A; B; C; A and B; A and C; B and C; A and B and C”. An exception to this definition will occur only when a combination of elements, functions, steps or operations are inherently mutually exclusive in some manner.
[0137] It should be understood that, although the various steps in the flowchart in the embodiment of the present application are shown in sequence according to the indication of the arrows, these steps are not necessarily performed in sequence in the order indicated by the arrows. Unless clearly stated herein, the execution of these steps is not strictly limited in order, and they can be performed in other orders. Moreover, at least a portion of the steps in the figure may include multiple sub-steps or multiple stages, and these sub-steps or stages are not necessarily performed at the same time, but can be performed at different times, and their execution order is not necessarily performed in sequence, but can be performed in turn or alternately with at least a portion of other steps or sub-steps or stages of other steps.
[0138] As used herein, the words "if" and "if" may be interpreted as "at the time of" or "when" or "in response to determining" or "in response to detecting," depending on the context. Similarly, the phrases "if it is determined" or "if (stated condition or event) is detected" may be interpreted as "when it is determined" or "in response to the determination" or "when detecting (stated condition or event)" or "in response to detecting (stated condition or event)," depending on the context.
[0139] It should be noted that in this article, step codes such as S1 and S2 are used for the purpose of expressing the corresponding content more clearly and concisely, and do not constitute a substantial restriction on the order. When implementing the step, those skilled in the art may execute S2 first and then S1, etc., but these should all be within the scope of protection of this application.
[0140] It should be understood that the specific embodiments described herein are only used to explain the present application and are not intended to limit the present application.
[0141] In the subsequent description, the use of suffixes such as "module", "component" or "unit" to represent elements is only for the purpose of facilitating the description of the present application and has no specific meaning. Therefore, "module", "component" or "unit" can be used interchangeably.
[0142] The communication device in this application can be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific reference needs to be clarified based on the context.
[0143] The terminal device may be implemented in various forms. For example, the terminal device described in this application may include intelligent terminal devices such as mobile phones, tablet computers, laptop computers, PDAs, portable media players (PMPs), navigation devices, wearable devices, smart bracelets, pedometers, and other fixed terminal devices such as digital TVs and desktop computers.
[0144] The subsequent description will be made using a mobile terminal as an example. Those skilled in the art will understand that, in addition to components specifically used for mobile purposes, the configuration according to the embodiments of the present application can also be applied to fixed-type terminal devices.
[0145] Please refer to Figure 1, which is a schematic diagram of the hardware structure of a mobile terminal for implementing various embodiments of the present application. The mobile terminal 100 may include components such as an RF (Radio Frequency) unit 101, a WiFi module 102, an audio output unit 103, an A / V (Audio / Video) input unit 104, a sensor 105, a display unit 106, a user input unit 107, an interface unit 108, a memory 109, a processor 110, and a power supply 111. Those skilled in the art will understand that the mobile terminal structure shown in Figure 1 does not limit the mobile terminal. The mobile terminal may include more or fewer components than shown, or may combine certain components, or arrange the components differently.
[0146] The following is a detailed introduction to the various components of the mobile terminal in conjunction with Figure 1:
[0147] The RF unit 101 can be used to send and receive information or receive signals during calls. Specifically, it receives downlink information from the base station and transmits it to the processor 110 for processing. It also transmits uplink data to the base station. Typically, the RF unit 101 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, and / or other components. Furthermore, the RF unit 101 can communicate with the network and other devices via wireless communication. The above-mentioned wireless communications can use any communication standard or protocol, including but not limited to GSM (Global System of Mobile communication), GPRS (General Packet Radio Service), CDMA2000 (Code Division Multiple Access 2000), WCDMA (Wideband Code Division Multiple Access), TD-SCDMA (Time Division-Synchronous Code Division Multiple Access), FDD-LTE (Frequency Division Duplexing-Long Term Evolution), TDD-LTE (Time Division Duplexing-Long Term Evolution), 5G and 6G, etc.
[0148] WiFi is a short-range wireless transmission technology. A mobile terminal, through WiFi module 102, enables users to send and receive emails, browse web pages, and access streaming media, providing wireless broadband Internet access. Although FIG1 illustrates WiFi module 102, it is understood that it is not a required component of the mobile terminal and can be omitted as needed without altering the essence of the invention.
[0149] The audio output unit 103 can convert audio data received by the RF unit 101 or the WiFi module 102 or stored in the memory 109 into an audio signal and output it as sound when the mobile terminal 100 is in a call signal reception mode, a talk mode, a recording mode, a voice recognition mode, a broadcast reception mode, or the like. Furthermore, the audio output unit 103 can also provide audio output related to a specific function performed by the mobile terminal 100 (e.g., a call signal reception sound, a message reception sound, etc.). The audio output unit 103 may include a speaker, a buzzer, or the like.
[0150] The A / V input unit 104 is used to receive audio or video signals. The A / V input unit 104 may include a graphics processing unit (GPU) 1041 and a microphone 1042. The GPU 1041 processes image data of still images or videos captured by an image capture device (e.g., a camera) in video capture mode or image capture mode. The processed image frames may be displayed on the display unit 106. The image frames processed by the GPU 1041 may be stored in the memory 109 (or other storage medium) or transmitted via the RF unit 101 or the WiFi module 102. The microphone 1042 may receive sound (audio data) in operating modes such as a phone call mode, a recording mode, and a voice recognition mode, and may process such sound into audio data. In the phone call mode, the processed audio (voice) data may be converted into a format that can be transmitted to a mobile communication base station via the RF unit 101. The microphone 1042 may implement various types of noise cancellation (or suppression) algorithms to eliminate (or suppress) noise or interference generated during the reception and transmission of audio signals.
[0151] The mobile terminal 100 also includes at least one sensor 105, such as a light sensor, a motion sensor, and other sensors. Optionally, the light sensor includes an ambient light sensor and a proximity sensor. Optionally, the ambient light sensor can adjust the brightness of the display panel 1061 according to the brightness of the ambient light, and the proximity sensor can turn off the display panel 1061 and / or the backlight when the mobile terminal 100 is moved to the ear. As a type of motion sensor, the accelerometer sensor can detect the magnitude of acceleration in all directions (generally three axes), and can detect the magnitude and direction of gravity when stationary. It can be used for applications that recognize the posture of the mobile phone (such as horizontal and vertical screen switching, related games, magnetometer posture calibration), vibration recognition related functions (such as pedometer, tapping), etc.; as for other sensors that can be configured in the mobile phone, such as fingerprint sensors, pressure sensors, iris sensors, molecular sensors, gyroscopes, barometers, hygrometers, thermometers, infrared sensors, etc., they will not be described here.
[0152] The display unit 106 is used to display information input by the user or information provided to the user. The display unit 106 may include a display panel 1061, which may be configured in the form of a liquid crystal display (LCD), an organic light-emitting diode (OLED), or the like.
[0153] The user input unit 107 can be used to receive input digital or character information and generate key signal input related to user settings and function control of the mobile terminal. Optionally, the user input unit 107 may include a touch panel 1071 and other input devices 1072. The touch panel 1071, also known as a touch screen, can collect user touch operations on or near it (such as operations performed by the user using a finger, stylus, or any other suitable object or accessory on or near the touch panel 1071) and drive corresponding connected devices according to a pre-set program. The touch panel 1071 may include two parts: a touch detection device and a touch controller. Optionally, the touch detection device detects the user's touch direction and detects the signal generated by the touch operation, and transmits the signal to the touch controller; the touch controller receives the touch information from the touch detection device and converts it into touch point coordinates, which are then sent to the processor 110. It can also receive and execute commands sent by the processor 110. And / or, the touch panel 1071 can be implemented using various types such as resistive, capacitive, infrared, and surface acoustic wave. In addition to the touch panel 1071, the user input unit 107 may further include other input devices 1072. Optionally, the other input devices 1072 may include, but are not limited to, one or more of a physical keyboard, function keys (such as volume control keys, power keys, etc.), a trackball, a mouse, a joystick, etc., and the specifics are not limited here.
[0154] Optionally, the touch panel 1071 may overlay the display panel 1061. When the touch panel 1071 detects a touch operation on or near it, it transmits the information to the processor 110 to determine the type of touch event. The processor 110 then provides a corresponding visual output on the display panel 1061 based on the type of touch event. Although in FIG1 , the touch panel 1071 and the display panel 1061 are shown as two separate components to implement the input and output functions of the mobile terminal, in some embodiments, the touch panel 1071 and the display panel 1061 may be integrated to implement the input and output functions of the mobile terminal, which is not limited to this specific embodiment.
[0155] The interface unit 108 serves as an interface through which at least one external device can be connected to the mobile terminal 100. For example, the external device may include a wired or wireless headset port, an external power supply (or battery charger) port, a wired or wireless data port, a memory card port, a port for connecting a device with an identification module, an audio input / output (I / O) port, a video I / O port, a headphone port, etc. The interface unit 108 may be used to receive input (e.g., data information, power, etc.) from an external device and transmit the received input to one or more elements within the mobile terminal 100 or may be used to transmit data between the mobile terminal 100 and an external device.
[0156] Memory 109 can be used to store software programs and various data. Memory 109 may primarily include a program storage area and a data storage area. Optionally, the program storage area may store an operating system and at least one application required for a function (such as a sound playback function or an image playback function); the data storage area may store data generated based on the use of the mobile phone (such as audio data, a phone book, etc.). Furthermore, / or, memory 109 may include high-speed random access memory and non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0157] Processor 110 is the control center of the mobile terminal, connecting all components of the mobile terminal using various interfaces and circuits. By running or executing software programs and / or modules stored in memory 109 and accessing data stored in memory 109, it executes various functions of the mobile terminal and processes data, thereby providing overall monitoring of the mobile terminal. Processor 110 may include one or more processing units; preferably, processor 110 may integrate an application processor and a modem processor. Optionally, the application processor primarily handles the operating system, user interface, and application programs, while the modem processor primarily handles wireless communications. It is understood that the modem processor may not be integrated into processor 110.
[0158] The mobile terminal 100 may also include a power supply 111 (such as a battery) for supplying power to various components. Preferably, the power supply 111 may be logically connected to the processor 110 through a power management system, thereby enabling the power management system to manage functions such as charging, discharging, and power consumption.
[0159] Although not shown in FIG. 1 , the mobile terminal 100 may further include a Bluetooth module, etc., which will not be described in detail here.
[0160] To facilitate understanding of the embodiments of the present application, the communication network system on which the mobile terminal of the present application is based is described below.
[0161] Please refer to Figure 2, which is a communication network system architecture diagram provided in an embodiment of the present application. The communication network system is an NR (New Radio) system of universal mobile communication technology. The NR system includes UE (User Equipment) 201, E-UTRAN (Evolved UMTS Terrestrial Radio Access Network) 202, EPC (Evolved Packet Core) 203 and the operator's IP service 204, which are connected in sequence.
[0162] Optionally, UE201 may be the above-mentioned terminal device 100, which will not be described in detail here.
[0163] E-UTRAN 202 includes eNodeB 2021 and other eNodeBs 2022 . Optionally, eNodeB 2021 may be connected to other eNodeBs 2022 via a backhaul (eg, an X2 interface). eNodeB 2021 is connected to EPC 203 , and eNodeB 2021 may provide access from UE 201 to EPC 203 .
[0164] EPC 203 may include MME (Mobility Management Entity) 2031, HSS (Home Subscriber Server) 2032, other MMEs 2033, SGW (Serving Gate Way) 2034, PGW (PDN Gate Way) 2035, and PCRF (Policy and Charging Rules Function) 2036. MME 2031 is the control node that processes signaling between UE 201 and EPC 203, providing bearer and connection management. HSS 2032 provides registers for managing functions such as the Home Location Register (not shown) and stores user-specific information such as service features and data rates. All user data can be sent through SGW2034, PGW2035 can provide IP address allocation and other functions for UE 201, PCRF2036 is the policy and charging control policy decision point for service data flow and IP bearer resources, and it selects and provides available policy and charging control decisions for the policy and charging execution function unit (not shown in the figure).
[0165] The IP service 204 may include the Internet, an intranet, an IMS (IP Multimedia Subsystem), or other IP services.
[0166] Although the above introduction takes the LTE system as an example, those skilled in the art should know that this application is not only applicable to the LTE system, but can also be applied to other wireless communication systems, such as GSM, CDMA2000, WCDMA, TD-SCDMA, 5G and future new network systems (such as 6G), etc., which are not limited here.
[0167] FIG3 is a schematic diagram of the hardware structure of a controller 140 provided in this application. The controller 140 includes a memory 1401 and a processor 1402. The memory 1401 is used to store program instructions, and the processor 1402 is used to call the program instructions in the memory 1401 to execute the steps performed by the controller in the first embodiment of the above method. The implementation principles and beneficial effects are similar and will not be repeated here.
[0168] Optionally, the controller further includes a communication interface 1403, which can be connected to the processor 1402 via a bus 1404. The processor 1402 can control the communication interface 1403 to implement the receiving and sending functions of the controller 140.
[0169] Figure 4 is a schematic diagram of the hardware structure of a network node 150 provided in this application. Network node 150 includes: a memory 1501 and a processor 1502. Memory 1501 is used to store program instructions, and processor 1502 is used to call the program instructions in memory 1501 to execute the steps performed by the first node in the first embodiment of the above method. The implementation principles and beneficial effects are similar and will not be repeated here.
[0170] Optionally, the controller further includes a communication interface 1503, which can be connected to the processor 1502 via a bus 1504. The processor 1502 can control the communication interface 1503 to implement the receiving and sending functions of the network node 150.
[0171] The integrated modules implemented in the form of software function modules can be stored in a computer-readable storage medium. The software function modules stored in a storage medium include a number of instructions for causing a computer device (which can be a personal computer, server, or network device, etc.) or a processor to execute some of the steps of the methods of various embodiments of the present application.
[0172] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When software is used for implementation, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the process or function according to the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a storage medium or transmitted from one storage medium to another storage medium. For example, the computer instructions can be transmitted from a website, computer, server or data center to another website, computer, server or data center via a wired (e.g., coaxial cable, optical fiber, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) method. The storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more available media integrations. The available medium can be a magnetic medium (e.g., a floppy disk, a hard disk, a tape), an optical medium (e.g., a DVD), or a semiconductor medium (e.g., a solid state drive solid state disk, SSD), etc.
[0173] Based on the above-mentioned mobile terminal hardware structure and communication network system, various embodiments of the present application are proposed.
[0174] Technical terms involved in the embodiments of this application:
[0175] CG PUSCH: Configured Grant Physical Uplink Shared CHannel, configured authorized physical uplink shared channel;
[0176] CG-UCI: Configured Grant Uplink Control Information, configured grant uplink control information;
[0177] CRC: Cyclic Redundancy Check, cyclic redundancy check;
[0178] CSI: Channel State Information, channel state information;
[0179] CSI-RS: Channel State Information Reference Signal, channel state information reference signal;
[0180] CSIPart1: Channel State Information Part 1, CSI Part 1;
[0181] CSIPart2: Channel State Information Part 2, CSI Part 2;
[0182] DCI: Downlink Control Information, downlink control information;
[0183] DMRS: DeModulation Reference Signal, demodulation reference signal;
[0184] HARQ-ACK: Hybrid Automatic Repeat reQuest-ACKnowledgement, hybrid automatic repeat request confirmation;
[0185] L1-RSRP: Layer-1 Reference Signal Receiving Power, layer 1 reference signal receiving power;
[0186] L1-SINR: Layer-1 Signal to Interference plus Noise Ratio, layer 1 signal to interference plus noise ratio;
[0187] MAC CE: MAC Control Element, media access control control unit;
[0188] PUSCH: Physical Uplink Shared CHannel, physical uplink shared channel;
[0189] UCI: Uplink Control Information, uplink control information;
[0190] UL-SCH: UpLink Shared CHannel, uplink shared channel:
[0191] OFDM: Orthogonal Frequency Division Multiplexing, orthogonal frequency division multiplexing;
[0192] SR: Scheduling Request, scheduling request;
[0193] SS / PBCH Block: Synchronization Signal / Physical Broadcast CHannel Block, synchronization signal / physical broadcast channel block;
[0194] TCI: Transmission Configuration Indicator, transmission configuration indication;
[0195] RE:Resource Element,resource element;
[0196] RRC: Radio Resource Control.
[0197] First embodiment
[0198] 5 , which is a flow chart of a processing method according to a first embodiment, the processing method of the embodiment of the present application can be applied to a terminal device (such as a mobile phone), including the following steps:
[0199] S1: Maps UCI to the time-frequency resources of the uplink channel.
[0200] Optionally, the UCI includes at least one of a first CSI, a first SR, a first UCI, a CSI part 1, a CSI part 2, and a HARQ-ACK.
[0201] Optionally, the uplink channel includes CG PUSCH and / or PUSCH.
[0202] Optionally, the time-frequency resources include resource elements.
[0203] Optionally, based on a preset formula, the terminal device may select or determine the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK.
[0204] Optionally, the preset formula includes at least one of a first formula, a second formula, a third formula, a fourth formula, a fifth formula, a sixth formula, a seventh formula, an eighth formula and a ninth formula.
[0205] Optionally, the number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula and the fourth formula.
[0206] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula.
[0207] Optionally, the first CSI and / or UL-SCH is mapped according to a first mapping order.
[0208] Optionally, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped in a second mapping order.
[0209] Optionally, according to the first mapping order, the first CSI and / or UL-SCH may be mapped to the CG PUSCH.
[0210] Optionally, according to the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK may be mapped to the PUSCH.
[0211] Optionally, the first mapping order includes mapping order one and / or mapping order two.
[0212] Optionally, mapping order one is the coded bits of the first CSI.
[0213] Optionally, mapping order two is the coded bits of the first CSI and the coded bits of the UL-SCH.
[0214] Optionally, the second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six and mapping order seven.
[0215] Optionally, mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2.
[0216] Optionally, mapping order four is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2.
[0217] Optionally, mapping order five is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the first SR and / or the coded bits of the first UCI.
[0218] Optionally, mapping order six is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the first SR and / or the coded bits of the first UCI.
[0219] Optionally, mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0220] Optionally, the coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0221] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0222] Optionally, the coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI.
[0223] Optionally, the coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK.
[0224] Optionally, the coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of the CSI part 2 and / or the coded bits of the UL-SCH.
[0225] Optionally, the coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS.
[0226] Optionally, the coded bits of HARQ-ACK are mapped to reserved resource elements of HARQ-ACK.
[0227] Through the technical solution of this embodiment, the uplink transmission technical mechanism is improved by mapping the UCI to the time-frequency resources of the uplink channel.
[0228] Second embodiment
[0229] 6 , which is a flow chart of a processing method according to a second embodiment, based on the first embodiment of the present application, this embodiment further discloses step S1, which includes step S11 and / or step S12:
[0230] S11: Map the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order;
[0231] Optionally, the number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula and the fourth formula.
[0232] Optionally, the first mapping order is used to map the first CSI and / or UL-SCH.
[0233] Optionally, the first mapping order includes mapping order one and / or mapping order two.
[0234] Optionally, mapping order one is the coded bits of the first CSI.
[0235] Optionally, mapping order two is the coded bits of the first CSI and the coded bits of the UL-SCH.
[0236] Optionally, the first CSI satisfies the first condition.
[0237] Optionally, the first condition is satisfied, including at least one of the following:
[0238] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the current beam and / or reference signal and the first threshold;
[0239] The sum of the signal quality of the new beam and / or reference signal and the first threshold is greater than the signal quality of the current beam and / or reference signal;
[0240] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the reference signal with the Mth best signal quality determined by the activated TCI state and a second threshold;
[0241] The sum of the signal quality of the new beam and / or reference signal and the second threshold is greater than the signal quality of the reference signal determined by the activated TCI state and having the Mth best signal quality;
[0242] The signal quality of the current beam and / or reference signal is less than a third threshold.
[0243] Optionally, at least one of the first threshold, the second threshold and the third threshold is a preset threshold, which is configured based on RRC / MAC CE / DCI or is a preset value.
[0244] Optionally, the reference signal is a CSI-RS or a synchronization signal / physical broadcast channel block (SS / PBCH Block).
[0245] Optionally, the signal quality is L1-RSRP or L1-SINR.
[0246] Optionally, M is an integer, based on RRC / MAC CE / DCI configuration or a preset value.
[0247] S12: Based on the number of coded modulation symbols per layer and the second mapping order of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK, map the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK to the time-frequency resources of PUSCH.
[0248] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula.
[0249] Optionally, the second mapping order is used to map at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK.
[0250] Optionally, the second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six and mapping order seven.
[0251] Optionally, mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2.
[0252] Optionally, mapping order four is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2.
[0253] Optionally, mapping order five is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the first SR and / or the coded bits of the first UCI.
[0254] Optionally, mapping order six is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the first SR and / or the coded bits of the first UCI.
[0255] Optionally, mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0256] Optionally, the coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0257] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0258] Optionally, the coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI.
[0259] Optionally, the coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK.
[0260] Optionally, the coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of the CSI part 2 and / or the coded bits of the UL-SCH.
[0261] Optionally, the coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS.
[0262] Optionally, the coded bits of HARQ-ACK are mapped to reserved resource elements of HARQ-ACK.
[0263] Optionally, the number of reserved resource elements of the first SR and / or the first UCI is calculated based on the first parameter.
[0264] Optionally, the first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR.
[0265] Optionally, the reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0266] Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0267] Optionally, if the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol.
[0268] Optionally, if there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0269] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the next resource element of the last resource element corresponding to the coded bits of the HARQ-ACK.
[0270] Optionally, if there are available resource elements in the last symbol corresponding to the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the last symbol.
[0271] Optionally, if there is no available resource element for the last symbol corresponding to the coded bits of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0272] Optionally, if the remaining coded bits of at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that the current symbol can carry, the coded bits are continuously mapped on the current symbol.
[0273] Optionally, if the remaining coded bits of at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that the current symbol can carry, the coded bits are mapped at a first interval on the current symbol.
[0274] Optionally, the first interval is greater than or equal to 1.
[0275] Optionally, if at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0276] Optionally, the first SR is used to request resources to report measurement information that meets a first condition.
[0277] Optionally, the first UCI is used to notify and / or instruct the network device to perform the first process.
[0278] Optionally, the first processing includes the terminal device reporting measurement information that meets the first condition.
[0279] Through the technical solution of this embodiment, specifically by mapping the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order; based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped to the time-frequency resources of the PUSCH, thereby improving the uplink transmission technical mechanism, thereby reducing the delay in reporting beam information, and / or reducing the uplink signaling overhead.
[0280] Third embodiment
[0281] On the basis of any of the above embodiments, this embodiment further discloses the processing method in the above embodiments, and specifically further discloses a solution for mapping the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH.
[0282] In the embodiment of the present application, the first CSI is multiplexed into PUSCH transmission to timely report measurement information. Therefore, it is necessary to determine the first CSI mapping to PUSCH transmission method.
[0283] Optionally, the first CSI includes measurement information of a new beam and / or reference signal that meets the first condition.
[0284] Optionally, the first condition includes at least one of the following:
[0285] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the current beam and / or reference signal and the first threshold;
[0286] The sum of the signal quality of the new beam and / or reference signal and the first threshold is greater than the signal quality of the current beam and / or reference signal;
[0287] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the reference signal with the Mth best signal quality determined by the activated TCI state and a second threshold;
[0288] The sum of the signal quality of the new beam and / or reference signal and the second threshold is greater than the signal quality of the reference signal determined by the activated TCI state and having the Mth best signal quality;
[0289] The signal quality of the current beam and / or reference signal is less than a third threshold.
[0290] Optionally, at least one of the first threshold, the second threshold and the third threshold is a preset threshold, which is configured based on RRC / MAC CE / DCI or is a preset value.
[0291] Optionally, the reference signal is a CSI-RS or a synchronization signal / physical broadcast channel block (SS / PBCH Block).
[0292] Optionally, the signal quality is L1-RSRP or L1-SINR.
[0293] Optionally, M is an integer, based on RRC / MAC CE / DCI configuration or a preset value.
[0294] Optionally, multiplexing the first CSI into the PUSCH for transmission includes at least one of the following:
[0295] Selecting or determining the number of coded modulation symbols per layer of the first CSI;
[0296] Determine a first mapping order of the first CSI and / or UL-SCH;
[0297] Based on the number of coded modulation symbols per layer of the first CSI and the first mapping order, the first CSI and / or UL-SCH are mapped to the time-frequency resources of the CG PUSCH.
[0298] Optionally, the first mapping order includes mapping order one and / or mapping order two.
[0299] Optionally, mapping order one is the coded bits of the first CSI.
[0300] Optionally, mapping order two is the coded bits of the first CSI and the coded bits of the UL-SCH.
[0301] Optionally, the time-frequency resources include resource elements.
[0302] Optionally, for mapping order one, mapping the coded bits of the first CSI to the time-frequency resources of the CG PUSCH includes at least one of the following:
[0303] The coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS;
[0304] The coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0305] If the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS;
[0306] If the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying the DMRS.
[0307] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry a DMRS, including at least one of the following:
[0308] (1) Continuous mapping of coded bits;
[0309] Optionally, the remaining coded bits are not less than the maximum coded bits that can be carried by the current symbol, and the coded bits are continuously mapped on the current symbol;
[0310] Optionally, if there are remaining coded bits, continue mapping the remaining coded bits on the next symbol;
[0311] Optionally, the first interval is 1;
[0312] Optionally, the first interval is an interval between two consecutive REs.
[0313] (2) The coded bits are mapped at a first interval.
[0314] Optionally, the remaining coded bits are less than the maximum coded bits that can be carried by the current symbol, and the coded bits are mapped at a first interval on the current symbol;
[0315] Optionally, the first interval is greater than or equal to 1;
[0316] Optionally, the first interval is an interval between two consecutive REs.
[0317] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying the DMRS, including at least one of the following:
[0318] (1) The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols;
[0319] (2) Continuous mapping of coded bits;
[0320] Optionally, the remaining coded bits are not less than the maximum coded bits that can be carried by the current symbol, and the coded bits are continuously mapped on the current symbol.
[0321] Optionally, if there are remaining coded bits, the remaining coded bits are mapped onto the next symbol.
[0322] Optionally, the first interval is 1.
[0323] Optionally, the first interval is an interval between two consecutive REs.
[0324] (3) The coded bits are mapped at the first interval.
[0325] Optionally, the remaining coded bits are less than the maximum coded bits that can be carried by the current symbol, and the coded bits are mapped on the current symbol at a first interval.
[0326] Optionally, the first interval is greater than or equal to 1.
[0327] Optionally, the first interval is an interval between two consecutive REs.
[0328] Optionally, if the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry a DMRS, including at least one of the following:
[0329] (1) The second condition is satisfied, including the number of HARQ-ACK reserved resource elements being 0, the number of HARQ-ACK bits being 0, The value of is at least one of 0;
[0330] (2) Continuous mapping of coded bits;
[0331] Optionally, the remaining coded bits are not less than the maximum coded bits that can be carried by the current symbol, and the coded bits are continuously mapped on the current symbol.
[0332] Optionally, if there are remaining coded bits, the remaining coded bits are mapped onto the next symbol.
[0333] Optionally, the first interval is 1.
[0334] (3) The coded bits are mapped at the first interval.
[0335] Optionally, the remaining coded bits are less than the maximum coded bits that can be carried by the current symbol, and the coded bits are mapped on the current symbol at a first interval.
[0336] Optionally, the first interval is greater than or equal to 1.
[0337] Optionally, if the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying the DMRS, including at least one of the following:
[0338] (1) The second condition is satisfied, including the number of HARQ-ACK reserved resource elements being 0, the number of HARQ-ACK bits being 0, The value of is at least one of 0;
[0339] (2) The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols;
[0340] (3) Continuous mapping of coded bits;
[0341] Optionally, the remaining coded bits are not less than the maximum coded bits that can be carried by the current symbol, and the coded bits are continuously mapped on the current symbol.
[0342] Optionally, if there are remaining coded bits, the remaining coded bits are mapped onto the next symbol.
[0343] Optionally, the first interval is 1.
[0344] (4) The coded bits are mapped at the first interval.
[0345] Optionally, the remaining coded bits are less than the maximum coded bits that can be carried by the current symbol, and the coded bits are mapped on the current symbol at a first interval.
[0346] Optionally, the first interval is greater than or equal to 1.
[0347] Optionally, for mapping order 2, mapping the coded bits of the first CSI and the coded bits of the UL-SCH to the time-frequency resources of the CG PUSCH includes at least one of the following:
[0348] The coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry a DMRS. After the coded bits of the first CSI are mapped, the coded bits of the UL-SCH are mapped next. Optionally, the coded bits of the UL-SCH are mapped starting from the resource element next to the last resource element corresponding to the coded bits of the first CSI.
[0349] The coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. After the coded bits of the first CSI are mapped, the coded bits of the UL-SCH are mapped. Optionally, the coded bits of the UL-SCH are mapped starting from the first OFDM symbol that does not carry DMRS.
[0350] If the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS. After the coded bits of the first CSI are mapped, the coded bits of the UL-SCH are mapped next. Optionally, the coded bits of the UL-SCH are mapped starting from the resource element next to the last resource element corresponding to the coded bits of the first CSI.
[0351] If the second condition is met, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. After mapping the coded bits of the first CSI, the coded bits of UL-SCH are mapped. Optionally, the coded bits of UL-SCH are mapped starting from the first OFDM symbol that does not carry DMRS.
[0352] Through the technical solution of this embodiment, specifically by providing multiple solutions for mapping the first CSI and / or UL-SCH to the time-frequency resources of CG PUSCH, the uplink transmission technical mechanism is improved, thereby realizing timely reporting of measurement information and / or reducing the delay in reporting beam information.
[0353] Fourth embodiment
[0354] On the basis of any of the above embodiments, this embodiment further discloses the processing method in the above embodiments, and specifically further discloses a method for determining the number of coded modulation symbols per layer of the first CSI.
[0355] Optionally, the number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula and the fourth formula.
[0356] Optionally, if the PUSCH transmits only the first CSI, the number of coded modulation symbols per layer of the first CSI is determined by the first formula:
[0357] Optionally, O CSI is the number of bits of the first CSI.
[0358] Optionally, L CSI is the number of CRC bits of the first CSI.
[0359] Optionally,
[0360] Optionally, It is the offset value of CSIPart1.
[0361] Optionally,
[0362] Optionally, is the offset value of the first CSI.
[0363] Optionally, the offset value index value of the first CSI is determined based on RRC / DCI, and / or the offset value of the first CSI is determined based on the offset value index value of the first CSI and a preset table.
[0364] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally, Optionally, is the total number of PUSCH OFDM symbols, including the OFDM symbols of DMRS.
[0365] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS.
[0366] Optionally, R is the PUSCH code rate.
[0367] Optionally, Q m is the modulation order of PUSCH.
[0368] Optionally, α is determined by a scaling parameter (scaling).
[0369] Optionally, if the PUSCH transmits only the first CSI, the number of coded modulation symbols per layer of the first CSI is the smaller one between the number of the first resource elements and the number of the second resource elements.
[0370] Optionally, the first number of resource elements is the number of resource elements used to transmit the first CSI.
[0371] Optionally, the number of first resource elements is determined by the following formula:
[0372] Optionally, the number of first resource elements is determined by at least one of the number of bits of the first CSI, the number of CRC bits of the first CSI, the offset value of the PUSCH, the code rate of the PUSCH, and the modulation order of the PUSCH.
[0373] Optionally, the first number of resource elements is rounded up.
[0374] Optionally, the second number of resource elements is the number of resource elements used to transmit UCI in all OFDM symbols occupied by the PUSCH.
[0375] Optionally, the number of the second resource elements is determined by the following formula:
[0376] Optionally, the second number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0377] Optionally, the second number of resource elements is rounded up.
[0378] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS.
[0379] Optionally, if the PUSCH transmits only the first CSI, the number of coded modulation symbols per layer of the first CSI is determined by the second formula:
[0380] Optionally, O CSI is the number of bits of the first CSI.
[0381] Optionally, L CSI is the number of CRC bits of the first CSI.
[0382] Optionally,
[0383] Optionally, It is the offset value of CSIPart1.
[0384] Optionally, Optionally, It is the offset value of the first CSI. Optionally, the offset value index value of the first CSI is determined based on RRC / DCI, and / or the offset value of the first CSI is determined based on the offset value index value of the first CSI and a preset table.
[0385] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally, Optionally, is the total number of PUSCH OFDM symbols, including the OFDM symbols of DMRS.
[0386] Optionally, l0 is the symbol index value of the first OFDM symbol that does not carry a PUSCH DMRS after the first DMRS symbol in PUSCH transmission.
[0387] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0388] Optionally, if the PUSCH only transmits the first CSI, the number of coded modulation symbols per layer of the first CSI is the smaller one between the number of the first resource elements and the number of the third resource elements.
[0389] Optionally, the first number of resource elements is the number of resource elements used to transmit the first CSI.
[0390] Optionally, the number of first resource elements is determined by the following formula:
[0391] Optionally, the number of first resource elements is determined by at least one of the number of bits of the first CSI, the number of CRC bits of the first CSI, the offset value of the PUSCH, the code rate of the PUSCH, and the modulation order of the PUSCH.
[0392] Optionally, the first number of resource elements is rounded up.
[0393] Optionally, the third resource element number is OFDM symbol 10 to OFDM symbol 11 occupied by PUSCH. The number of resource elements used to transmit UCI.
[0394] Optionally, the number of the third resource elements is determined by the following formula:
[0395] Optionally, the third number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0396] Optionally, the third number of resource elements is rounded up.
[0397] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0398] Optionally, if the PUSCH transmits the first CSI and the UL-SCH, the number of coded modulation symbols per layer of the first CSI is determined by the third formula:
[0399] Optionally, O CSI is the number of bits of the first CSI.
[0400] Optionally, L CSI is the number of CRC bits of the first CSI.
[0401] Optionally,
[0402] Optionally, It is the offset value of CSIPart1.
[0403] Optionally, Optionally, It is the offset value of the first CSI. Optionally, the offset value index value of the first CSI is determined based on RRC / DCI, and / or the offset value of the first CSI is determined based on the offset value index value of the first CSI and a preset table.
[0404] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally, Optionally, is the total number of PUSCH OFDM symbols, including the OFDM symbols of DMRS.
[0405] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS.
[0406] Optionally, C UL-SCH is the number of code blocks transmitted by PUSCH.
[0407] Optionally, K r is the size of the rth code block transmitted by PUSCH.
[0408] Optionally, α is determined by a scaling parameter (scaling).
[0409] Optionally, if the PUSCH transmits the first CSI and the UL-SCH, the number of coded modulation symbols per layer of the first CSI is the smaller one between the fourth number of resource elements and the second number of resource elements.
[0410] Optionally, the fourth number of resource elements is the number of resource elements used to transmit the first CSI.
[0411] Optionally, the fourth resource element quantity is determined by the following formula:
[0412] Optionally, the fourth number of resource elements is determined by at least one of the number of bits of the first CSI, the number of CRC bits of the first CSI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0413] Optionally, the fourth number of resource elements is rounded up.
[0414] Optionally, the second number of resource elements is the number of resource elements used to transmit UCI in all OFDM symbols occupied by the PUSCH.
[0415] Optionally, the number of the second resource elements is determined by the following formula:
[0416] Optionally, the second number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0417] Optionally, the second number of resource elements is rounded up.
[0418] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol that does not carry DMRS.
[0419] Optionally, if the PUSCH transmits the first CSI and the UL-SCH, the number of coded modulation symbols per layer of the first CSI is determined by the fourth formula:
[0420] Optionally, Optionally, It is the offset value of CSIPart1.
[0421] Optionally, Optionally, It is the offset value of the first CSI. Optionally, the offset value index value of the first CSI is determined based on RRC / DCI, and / or the offset value of the first CSI is determined based on the offset value index value of the first CSI and a preset table.
[0422] Optionally, l0 is the symbol index value of the first OFDM symbol that does not carry a PUSCH DMRS after the first DMRS symbol in PUSCH transmission.
[0423] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0424] Optionally, if the PUSCH transmits the first CSI and the UL-SCH, the number of coded modulation symbols per layer of the first CSI is the smaller one between the fourth number of resource elements and the third number of resource elements.
[0425] Optionally, the fourth number of resource elements is the number of resource elements used to transmit the first CSI.
[0426] Optionally, the fourth resource element quantity is determined by the following formula:
[0427] Optionally, the fourth number of resource elements is determined by at least one of the number of bits of the first CSI, the number of CRC bits of the first CSI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0428] Optionally, the fourth number of resource elements is rounded up.
[0429] Optionally, the third resource element number is OFDM symbol 10 to OFDM symbol 11 occupied by PUSCH. The number of resource elements used to transmit UCI.
[0430] Optionally, the number of the third resource elements is determined by the following formula:
[0431] Optionally, the third number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0432] Optionally, the third number of resource elements is rounded up.
[0433] Optionally, the coded bits of the first CSI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0434] Through the technical solution of this embodiment, specifically by clarifying the method for determining the number of coded modulation symbols per layer of the first CSI, the first CSI and / or UL-SCH is mapped to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order, thereby improving the uplink transmission technical mechanism.
[0435] Fifth embodiment
[0436] Based on any of the above embodiments, this embodiment further discloses the processing method in the above embodiment, and specifically further discloses a scheme for mapping at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK to the time-frequency resources of PUSCH.
[0437] In the embodiment of the present application, the first SR and / or the first UCI are multiplexed into the PUSCH transmission to timely request resource reporting measurement information. Therefore, a method is needed to determine the time-frequency resources of the PUSCH mapped with the first SR and / or the first UCI.
[0438] Optionally, the PUCCH and PUSCH of the transmitted first SR and / or first UCI overlap in the time domain.
[0439] Optionally, the PUSCH transmits UL-SCH (eg, transport blocks or data).
[0440] Optionally, the first SR is associated with a scheduling request index value (SchedulingRequestId).
[0441] Optionally, the first SR is used to request resources to report measurement information that meets a first condition.
[0442] Optionally, the first UCI is associated with a PUCCH resource index value (PUCCH-ResourceId).
[0443] Optionally, the first UCI is used to notify and / or instruct the network device to perform a first process. Optionally, the first process includes the terminal device reporting measurement information that meets a first condition.
[0444] Optionally, multiplexing the first SR and / or the first UCI into the PUSCH for transmission includes at least one of the following:
[0445] Select or determine the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0446] Determining a second mapping order of at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK;
[0447] Based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped to the time-frequency resources of PUSCH.
[0448] Optionally, the second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six and mapping order seven.
[0449] Optionally, mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2.
[0450] Optionally, mapping order four is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2.
[0451] Optionally, mapping order five is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the first SR and / or the coded bits of the first UCI.
[0452] Optionally, mapping order six is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the first SR and / or the coded bits of the first UCI.
[0453] Optionally, mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0454] Optionally, the time-frequency resources include resource elements.
[0455] Optionally, the mapping methods in mapping order 3, mapping order 4, mapping order 5, mapping order 6, and mapping order 7 include at least one of the following:
[0456] (1) For mapping order three, the mapping order is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1 (CSI Part 1), and the coded bits of CSI part 2 (CSI Part 2).
[0457] Optionally, mapping the coded bits of the first SR and / or the first UCI to the time-frequency resources of the PUSCH includes at least one of the following:
[0458] The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying the DMRS. Optionally, the coded bits of the HARQ-ACK are mapped first, and then the coded bits of the first SR and / or the first UCI are mapped. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0459] The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of the first SR and / or the first UCI are mapped first, then the coded bits of CSI part 1 are mapped, and finally the coded bits of CSI part 2 are mapped. Referring to Figure 7, Figure 7 is a schematic diagram of coded bit mapping according to the fifth embodiment of the present application.
[0460] Optionally, the coded bits of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0461] Optionally, the last symbol corresponding to the coded bits of HARQ-ACK still has available resource elements, and the coded bits of the first SR and / or the first UCI start from the last symbol.
[0462] Optionally, there is no available resource element for the last symbol corresponding to the coded bits of HARQ-ACK, and the coded bits of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0463] Optionally, the coded bits of the first SR and / or first UCI are mapped starting from the next resource element of the last resource element corresponding to the coded bits of the HARQ-ACK.
[0464] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the next resource element of the coded bits of the HARQ-ACK.
[0465] Optionally, the coded bits of CSI part 1 and / or the coded bits of CSI part 2 are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0466] Optionally, the last symbol corresponding to the coded bits of the first SR and / or the first UCI still has available resource elements, and the coded bits of CSI part 1 start from the last symbol. Optionally, after mapping the coded bits of CSI part 1, the coded bits of CSI part 2 are mapped next.
[0467] Optionally, there is no available resource element for the last symbol corresponding to the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 1 start from the next symbol of the last symbol. Optionally, after mapping the coded bits of CSI part 1, the coded bits of CSI part 2 are mapped.
[0468] Optionally, the coded bits of CSI part 1 are mapped starting from the next resource element of the last resource element corresponding to the coded bits of the first SR and / or first UCI. Optionally, after the coded bits of CSI part 1 are mapped, the coded bits of CSI part 2 are mapped next.
[0469] Optionally, the coded bits of CSI part 1 are mapped starting from the next resource element of the coded bits of the first SR and / or first UCI. Optionally, after the coded bits of CSI part 1 are mapped, the coded bits of CSI part 2 are mapped next.
[0470] Optionally, the continuous mapping of the coded bits includes at least one of the following:
[0471] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0472] If there are remaining coded bits for at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH, continue mapping the remaining coded bits on the next symbol;
[0473] The first interval is 1;
[0474] The first interval is the interval between two consecutive REs.
[0475] Optionally, the coded bits are mapped at a first interval, including at least one of the following:
[0476] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, map the coded bits at a first interval on the current symbol;
[0477] The first interval is greater than or equal to 1;
[0478] The first interval is the interval between two consecutive REs.
[0479] (2) For mapping order four, the mapping order is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2.
[0480] Optionally, the coded bits of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0481] Optionally, the coded bits of CSI part 1 and / or the coded bits of CSI part 2 are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0482] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of the first SR and / or the first UCI are mapped, and finally the coded bits of CSI part 2 are mapped.
[0483] Optionally, the last symbol corresponding to the coded bits of CSI part 1 still has available resource elements, and the coded bits of the first SR and / or the first UCI start from the last symbol. Optionally, after mapping the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 2 are mapped next.
[0484] Optionally, there is no available resource element for the last symbol corresponding to the coded bits of CSI part 1, and the coded bits of the first SR and / or the first UCI start from the next symbol of the last symbol. Optionally, after mapping the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 2 are mapped.
[0485] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the next resource element of the last resource element corresponding to the coded bits of CSI part 1. Optionally, after mapping the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 2 are mapped next.
[0486] Optionally, the next resource element of the coded bits of CSI part 1 starts mapping the coded bits of the first SR and / or the first UCI. Optionally, after mapping the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 2 are mapped next.
[0487] Optionally, the continuous mapping of the coded bits includes at least one of the following:
[0488] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0489] If there are remaining coded bits in at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH, continue mapping the remaining coded bits on the next symbol;
[0490] The first interval is 1.
[0491] Optionally, the coded bits are mapped at a first interval, including at least one of the following:
[0492] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, map the coded bits at a first interval on the current symbol;
[0493] The first interval is greater than or equal to 1.
[0494] (3) For mapping order five, the mapping order is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of the first SR and / or the first UCI.
[0495] Optionally, the coded bits of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0496] Optionally, the coded bits of CSI part 1 and / or the coded bits of CSI part 2 are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0497] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of CSI part 2 are mapped, and finally the coded bits of the first SR and / or the first UCI are mapped.
[0498] Optionally, the last symbol corresponding to the coded bits of the CSI part 2 still has available resource elements, and the coded bits of the first SR and / or the first UCI start from the last symbol.
[0499] Optionally, the last symbol corresponding to the coded bits of CSI part 2 has no available resource elements, and the coded bits of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0500] Optionally, the coded bits of the first SR and / or first UCI are mapped starting from the resource element next to the last resource element corresponding to the coded bits of the CSI part 2.
[0501] Optionally, the coded bits of the first SR and / or first UCI are mapped starting from the next resource element of the coded bits of CSI part 2.
[0502] Optionally, the continuous mapping of the coded bits includes at least one of the following:
[0503] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0504] If there are remaining coded bits for at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH, continue mapping the remaining coded bits on the next symbol;
[0505] The first interval is 1;
[0506] The coded bits are mapped at a first interval, including at least one of the following:
[0507] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, map the coded bits at a first interval on the current symbol;
[0508] The first interval is greater than or equal to 1.
[0509] (4) For mapping order six, the mapping order is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI.
[0510] Optionally, the number of HARQ-ACK bits is less than or equal to 2.
[0511] Optionally, the number of reserved resource elements of the first SR and / or the first UCI is calculated.
[0512] Optionally, the number of reserved resource elements of the first SR and / or the first UCI is calculated based on the first parameter.
[0513] Optionally, the first parameter includes at least one of the following:
[0514] The number of bits of the first SR and / or the first UCI is a first number (eg, SR );
[0515] The PUSCH offset value is equal to the HARQ-ACK offset value;
[0516] The PUSCH offset value is equal to the SR offset value.
[0517] Optionally, when calculating the number of reserved resource elements of the first SR and / or the first UCI, the number of bits of the first SR and / or the first UCI is the first number (for example: SR ), optionally, O SR is 1.
[0518] Optionally, when calculating the number of reserved resource elements of the first SR and / or the first UCI,
[0519] Optionally, when calculating the number of reserved resource elements of the first SR and / or the first UCI, Optionally, It is the offset value of the SR. Optionally, the offset value index value of the SR is determined based on RRC / DCI, and / or the offset value of the SR is determined based on the offset value index value of the SR and a preset table.
[0520] Optionally, the reserved resource elements of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0521] Optionally, the reserved resource elements of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0522] Optionally, starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS, the reserved resource elements of HARQ-ACK are first determined, and then the reserved resource elements of the first SR and / or the first UCI are determined.
[0523] Optionally, if the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol.
[0524] Optionally, if there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0525] Optionally, the reserved resource elements of the first SR and / or the first UCI start from the next resource element of the last resource element corresponding to the reserved resource element of the HARQ-ACK.
[0526] Optionally, the reserved resource elements of the first SR and / or the first UCI start from the next resource element of the reserved resource elements of the HARQ-ACK.
[0527] Optionally, the coded bits of CSI part 1 and / or the coded bits of CSI part 2 are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0528] Optionally, after mapping the coded bits of CSI part 2, the coded bits of UL-SCH are mapped next.
[0529] Optionally, the coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK. Optionally, the coded bits of HARQ-ACK can occupy the resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH.
[0530] Optionally, the coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK.
[0531] Optionally, the coded bits of the first SR and / or the first UCI are mapped to the reserved resource elements of the first SR and / or the first UCI. Optionally, the coded bits of the first SR and / or the first UCI can occupy the resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH.
[0532] Optionally, the continuous mapping of the coded bits includes at least one of the following:
[0533] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0534] If there are remaining coded bits for at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH, continue mapping the remaining coded bits on the next symbol;
[0535] The first interval is 1;
[0536] The first interval is the interval between two consecutive REs.
[0537] Optionally, the coded bits are mapped at a first interval, including at least one of the following:
[0538] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, map the coded bits at a first interval on the current symbol;
[0539] The first interval is greater than or equal to 1;
[0540] The first interval is the interval between two consecutive REs.
[0541] (5) For mapping order seven, the mapping order is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0542] Optionally, the number of reserved resource elements of the first SR and / or the first UCI is calculated based on the first parameter.
[0543] Optionally, the first parameter includes at least one of the following:
[0544] The number of bits of the first SR and / or the first UCI is a first number (eg, SR );
[0545] The PUSCH offset value is equal to the HARQ-ACK offset value;
[0546] The PUSCH offset value is equal to the SR offset value.
[0547] Optionally, the reserved resource elements of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0548] Optionally, the reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0549] Optionally, starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS, the reserved resource elements of the first SR and / or the first UCI are first determined, and then the reserved resource elements of HARQ-ACK are determined.
[0550] Optionally, after mapping the coded bits of CSI part 2, the coded bits of UL-SCH are mapped next.
[0551] Optionally, the coded bits of the first SR and / or the first UCI are mapped to the reserved resource elements of the first SR and / or the first UCI. Optionally, the coded bits of the first SR and / or the first UCI can occupy the resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH.
[0552] Optionally, the coded bits of HARQ-ACK are mapped after the coded bits of the first SR and / or the first UCI.
[0553] Optionally, the coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK. Optionally, the coded bits of HARQ-ACK can occupy the resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH.
[0554] Optionally, the coded bits are mapped continuously.
[0555] Optionally, the coded bits are mapped at a first interval.
[0556] Through the technical solution of this embodiment, specifically by providing multiple schemes for mapping at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK to the time-frequency resources of PUSCH, the uplink transmission technical mechanism is improved, thereby timely requesting resources to report measurement information, and / or reducing the delay in reporting beam information.
[0557] Sixth embodiment
[0558] On the basis of any of the foregoing embodiments, this embodiment further discloses the processing method in the foregoing embodiments, and specifically further discloses a method for determining the number of coded modulation symbols per layer of the first SR and / or the first UCI.
[0559] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula.
[0560] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by a fifth formula:
[0561] Optionally, O SR is the number of bits of the first SR and / or the first UCI.
[0562] Optionally, L SR is the number of CRC bits of the first SR and / or the first UCI.
[0563] Optionally, Optionally, It is the offset value of the SR. Optionally, the offset value index value of the SR is determined based on RRC / DCI, and / or the offset value of the SR is determined based on the offset value index value of the SR and a preset table.
[0564] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally, Optionally, is the total number of PUSCH OFDM symbols, including the OFDM symbols of DMRS.
[0565] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0566] Optionally, C UL-SCH is the number of code blocks transmitted by PUSCH.
[0567] Optionally, K r is the size of the rth code block transmitted by PUSCH.
[0568] Optionally, α is determined by a scaling parameter (scaling).
[0569] Optionally, l0 is the symbol index value of the first OFDM symbol that does not carry a PUSCH DMRS after the first DMRS symbol in PUSCH transmission.
[0570] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0571] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the smaller one between the fifth number of resource elements and the third number of resource elements.
[0572] Optionally, the fifth number of resource elements is the number of resource elements used to transmit the first SR and / or the first UCI.
[0573] Optionally, the fifth resource element quantity is determined by the following formula:
[0574] Optionally, the fifth number of resource elements is determined by at least one of the number of bits of the first SR and / or the first UCI, the number of CRC bits of the first SR and / or the first UCI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0575] Optionally, the fifth number of resource elements is rounded up.
[0576] Optionally, the third resource element number is OFDM symbol 10 to OFDM symbol 11 occupied by PUSCH. The number of resource elements used to transmit UCI.
[0577] Optionally, the number of the third resource elements is determined by the following formula:
[0578] Optionally, the third number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0579] Optionally, the third number of resource elements is rounded up.
[0580] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0581] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by a sixth formula:
[0582] Optionally, O SR is the number of bits of the first SR and / or the first UCI.
[0583] Optionally, L SR is the number of CRC bits of the first SR and / or the first UCI.
[0584] Optionally, Optionally, is the offset value of SR.
[0585] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally,
[0586] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0587] Optionally, CUL-SCH is the number of code blocks transmitted by PUSCH.
[0588] Optionally, K r is the size of the rth code block transmitted by PUSCH.
[0589] Optionally, α is determined by a scaling parameter (scaling).
[0590] Optionally, Q′ACK / CG-UCI is the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI determined based on TS 38.212.
[0591] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the smaller one between the fifth number of resource elements and the sixth number of resource elements.
[0592] Optionally, the fifth number of resource elements is the number of resource elements used to transmit the first SR and / or the first UCI.
[0593] Optionally, the fifth resource element quantity is determined by the following formula:
[0594] Optionally, the fifth number of resource elements is determined by at least one of the number of bits of the first SR and / or the first UCI, the number of CRC bits of the first SR and / or the first UCI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0595] Optionally, the fifth number of resource elements is rounded up.
[0596] Optionally, the sixth number of resource elements is the difference between the second number of resource elements and the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI.
[0597] Optionally, the number of the sixth resource elements is determined by the following formula:
[0598] Optionally, the sixth number of resource elements is determined by at least one of a scaling parameter, the number of resource elements used to transmit UCI, and the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI.
[0599] Optionally, the second number of resource elements is the number of resource elements used to transmit UCI in all OFDM symbols occupied by the PUSCH.
[0600] Optionally, the number of the second resource elements is determined by the following formula:
[0601] Optionally, the second number of resource elements is determined by a scaling parameter and / or the number of resource elements used to transmit UCI.
[0602] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0603] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by a seventh formula:
[0604] Optionally, O SR is the number of bits of the first SR and / or the first UCI.
[0605] Optionally, L SR is the number of CRC bits of the first SR and / or the first UCI.
[0606] Optionally, Optionally, is the offset value of SR.
[0607] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally,
[0608] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of the first SR and / or the first UCI are mapped, and finally the coded bits of CSI part 2 are mapped.
[0609] Optionally, C UL-SCH is the number of code blocks transmitted by PUSCH.
[0610] Optionally, K r is the size of the rth code block transmitted by PUSCH.
[0611] Optionally, α is determined by a scaling parameter (scaling).
[0612] Optionally, Q′ACK / CG-UCI is the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI determined based on TS 38.212.
[0613] Optionally, Q′ CSI-1 is the number of coded modulation symbols per layer of CSI part 1 determined based on TS 38.212.
[0614] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the smaller one between the fifth number of resource elements and the seventh number of resource elements.
[0615] Optionally, the fifth number of resource elements is the number of resource elements used to transmit the first SR and / or the first UCI.
[0616] Optionally, the fifth resource element quantity is determined by the following formula:
[0617] Optionally, the fifth number of resource elements is determined by at least one of the number of bits of the first SR and / or the first UCI, the number of CRC bits of the first SR and / or the first UCI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0618] Optionally, the fifth number of resource elements is rounded up.
[0619] Optionally, the seventh number of resource elements is the difference between the sixth number of resource elements and the number of coded modulation symbols per layer of CSI part 1.
[0620] Optionally, the number of the seventh resource element is determined by the following formula:
[0621] Optionally, the seventh number of resource elements is determined by at least one of a scaling parameter, the number of resource elements used to transmit UCI, the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI, and the number of coded modulation symbols per layer of CSI part 1.
[0622] Optionally, the sixth number of resource elements is the difference between the second number of resource elements and the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI.
[0623] Optionally, the second number of resource elements is the number of resource elements used to transmit UCI in all OFDM symbols occupied by the PUSCH.
[0624] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of the first SR and / or the first UCI are mapped, and finally the coded bits of CSI part 2 are mapped.
[0625] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by an eighth formula:
[0626] Optionally, O SR is the number of bits of the first SR and / or the first UCI.
[0627] Optionally, L SR is the number of CRC bits of the first SR and / or the first UCI.
[0628] Optionally, Optionally, is the offset value of SR.
[0629] Optionally, is the number of resource elements that can be used to transmit UCI in OFDM symbol 1 of PUSCH transmission, and optionally,
[0630] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of CSI part 2 are mapped, and finally the coded bits of the first SR and / or the first UCI are mapped.
[0631] Optionally, C UL-SCH is the number of code blocks transmitted by PUSCH.
[0632] Optionally, K r is the size of the rth code block transmitted by PUSCH.
[0633] Optionally, α is determined by a scaling parameter (scaling).
[0634] Optionally, Q′ACK / CG-UCI is the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI determined based on TS 38.212.
[0635] Optionally, Q′ CSI-1 is the number of coded modulation symbols per layer of CSI part 1 determined based on TS 38.212.
[0636] Optionally, Q′ CSI-2 It is the number of coded modulation symbols per layer of CSI part 2 determined based on TS 38.212.
[0637] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the smaller one between the fifth number of resource elements and the eighth number of resource elements.
[0638] Optionally, the fifth number of resource elements is the number of resource elements used to transmit the first SR and / or the first UCI.
[0639] Optionally, the fifth resource element quantity is determined by the following formula:
[0640] Optionally, the fifth number of resource elements is determined by at least one of the number of bits of the first SR and / or the first UCI, the number of CRC bits of the first SR and / or the first UCI, the offset value of the PUSCH, the number of resource elements used to transmit UCI, and the size of the code block transmitted by the PUSCH.
[0641] Optionally, the fifth number of resource elements is rounded up.
[0642] Optionally, the eighth number of resource elements is the difference between the seventh number of resource elements and the number of coded modulation symbols per layer of CSI part 2.
[0643] Optionally, the eighth resource element quantity is determined by the following formula:
[0644] Optionally, the eighth number of resource elements is determined by at least one of a scaling parameter, the number of resource elements used to transmit UCI, the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI, the number of coded modulation symbols per layer of CSI part 1, and the number of coded modulation symbols per layer of CSI part 2.
[0645] Optionally, the seventh number of resource elements is the difference between the sixth number of resource elements and the number of coded modulation symbols per layer of CSI part 1.
[0646] Optionally, the sixth number of resource elements is the difference between the second number of resource elements and the number of coded modulation symbols per layer of HARQ-ACK / CG-UCI.
[0647] Optionally, the second number of resource elements is the number of resource elements used to transmit UCI in all OFDM symbols occupied by the PUSCH.
[0648] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry DMRS. Optionally, the coded bits of CSI part 1 are mapped first, then the coded bits of CSI part 2 are mapped, and finally the coded bits of the first SR and / or the first UCI are mapped.
[0649] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by a ninth formula:
[0650] Optionally, is the number of reserved resource elements for the first SR and / or first UCI in OFDM symbol 1, optionally,
[0651] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0652] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the number of reserved resource elements of the first SR and / or the first UCI.
[0653] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is the OFDM symbol 0 to OFDM symbol occupied by the PUSCH The number of reserved resource elements for the first SR and / or the first UCI in the .
[0654] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined by the tenth formula:
[0655] Optionally, is the number of reserved resource elements for the first SR and / or first UCI in OFDM symbol 1, optionally,
[0656] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol after the first group of OFDM symbols carrying DMRS. Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0657] Optionally, the number of coded modulation symbols per layer of at least one of CSI part 1, CSI part 2, and HARQ-ACK is determined based on TS 38.212.
[0658] Through the technical solution of this embodiment, the method for determining the number of coded modulation symbols per layer of the first SR and / or the first UCI is clarified, so as to achieve the mapping of the first SR and / or the first UCI to the time-frequency resources of the PUSCH based on the number of coded modulation symbols per layer of the first SR and / or the first UCI and the second mapping order, thereby improving the uplink transmission technical mechanism.
[0659] Seventh embodiment
[0660] 8 is a flow chart of a processing method according to a seventh embodiment. The method of this embodiment can be applied to a network device (such as a base station), and includes the following steps:
[0661] S2: Receive an uplink channel, where the time-frequency resources of the uplink channel include the UCI mapped by the terminal device.
[0662] Optionally, the network device receives an uplink channel sent by the terminal device, and the time-frequency resources of the uplink channel include UCI mapped by the terminal device.
[0663] Optionally, the UCI includes at least one of a first CSI, a first SR, a first UCI, a CSI part 1, a CSI part 2, and a HARQ-ACK.
[0664] Optionally, the uplink channel includes CG PUSCH and / or PUSCH.
[0665] Optionally, the time-frequency resources include resource elements.
[0666] Optionally, based on a preset formula, the terminal device may select or determine the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK.
[0667] Optionally, the preset formula includes at least one of a first formula, a second formula, a third formula, a fourth formula, a fifth formula, a sixth formula, a seventh formula, an eighth formula and a ninth formula.
[0668] Optionally, the number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula and the fourth formula.
[0669] Optionally, the number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula.
[0670] Optionally, the first CSI and / or UL-SCH is mapped according to a first mapping order.
[0671] Optionally, the first CSI satisfies the first condition.
[0672] Optionally, the first condition is satisfied, including at least one of the following:
[0673] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the current beam and / or reference signal and the first threshold;
[0674] The sum of the signal quality of the new beam and / or reference signal and the first threshold is greater than the signal quality of the current beam and / or reference signal;
[0675] The signal quality of the new beam and / or reference signal is greater than the sum of the signal quality of the reference signal with the Mth best signal quality determined by the activated TCI state and a second threshold;
[0676] The sum of the signal quality of the new beam and / or reference signal and the second threshold is greater than the signal quality of the reference signal determined by the activated TCI state and having the Mth best signal quality;
[0677] The signal quality of the current beam and / or reference signal is less than a third threshold.
[0678] Optionally, at least one of the first threshold, the second threshold and the third threshold is a preset threshold, which is configured based on RRC / MAC CE / DCI or is a preset value.
[0679] Optionally, the reference signal is a CSI-RS or a synchronization signal / physical broadcast channel block (SS / PBCH Block).
[0680] Optionally, the signal quality is L1-RSRP or L1-SINR.
[0681] Optionally, M is an integer, based on RRC / MAC CE / DCI configuration or a preset value.
[0682] Optionally, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped in a second mapping order.
[0683] Optionally, according to the first mapping order, the first CSI and / or UL-SCH can be mapped to the time-frequency resources of the CG PUSCH.
[0684] Optionally, according to the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK can be mapped to the time-frequency resources of the PUSCH.
[0685] Optionally, the first mapping order includes mapping order one and / or mapping order two.
[0686] Optionally, mapping order one is the coded bits of the first CSI.
[0687] Optionally, mapping order two is the coded bits of the first CSI and the coded bits of the UL-SCH.
[0688] Optionally, the second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six and mapping order seven.
[0689] Optionally, mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2.
[0690] Optionally, mapping order four is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2.
[0691] Optionally, mapping order five is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the first SR and / or the coded bits of the first UCI.
[0692] Optionally, mapping order six is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the first SR and / or the coded bits of the first UCI.
[0693] Optionally, mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0694] Optionally, the coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0695] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS.
[0696] Optionally, the coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI.
[0697] Optionally, the coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK.
[0698] Optionally, the coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of the CSI part 2 and / or the coded bits of the UL-SCH.
[0699] Optionally, the coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS.
[0700] Optionally, the coded bits of HARQ-ACK are mapped to reserved resource elements of HARQ-ACK.
[0701] Optionally, the number of reserved resource elements of the first SR and / or the first UCI is calculated based on the first parameter.
[0702] Optionally, the first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR.
[0703] Optionally, the reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS.
[0704] Optionally, the first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbol.
[0705] Optionally, if the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol.
[0706] Optionally, if there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0707] Optionally, the coded bits of the first SR and / or the first UCI are mapped starting from the next resource element of the last resource element corresponding to the coded bits of the HARQ-ACK.
[0708] Optionally, if there are available resource elements in the last symbol corresponding to the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the last symbol.
[0709] Optionally, if there is no available resource element for the last symbol corresponding to the coded bits of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the next symbol of the last symbol.
[0710] Optionally, if the remaining coded bits of at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that the current symbol can carry, the coded bits are continuously mapped on the current symbol.
[0711] Optionally, if the remaining coded bits of at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that the current symbol can carry, the coded bits are mapped at a first interval on the current symbol.
[0712] Optionally, the first interval is greater than or equal to 1.
[0713] Optionally, if at least one of HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0714] Optionally, the first SR is used to request resources to report measurement information that meets a first condition.
[0715] Optionally, the first UCI is used to notify and / or instruct the network device to perform the first process.
[0716] Optionally, the first processing includes the terminal device reporting measurement information that meets the first condition.
[0717] Through the technical solution of this embodiment, the uplink channel sent by the terminal device is received by the network device, and the time-frequency resources of the uplink channel include the UCI mapped by the terminal device, thereby improving the uplink transmission technical mechanism.
[0718] Eighth embodiment
[0719] Referring to Figure 9, Figure 9 is a schematic diagram of the structure of a processing device provided in an embodiment of the present application. The device can be installed in or is the terminal device in the above-mentioned method embodiment. The processing device shown in Figure 9 can be used to perform some or all of the functions in the method embodiment described in the above embodiment. As shown in Figure 9, the processing device 1100 includes:
[0720] The processing module 1101 is configured to map the UCI to time-frequency resources of an uplink channel.
[0721] Optionally, the device further comprises at least one of the following:
[0722] The UCI includes at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0723] The time-frequency resources include resource elements;
[0724] Uplink channels include CG PUSCH and / or PUSCH;
[0725] Send uplink channel.
[0726] Optionally, the device further comprises at least one of the following:
[0727] Select or determine the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0728] Determine a first mapping order of the first CSI and / or UL-SCH;
[0729] A second mapping order of at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK is determined.
[0730] Optionally, the device further comprises at least one of the following:
[0731] The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula;
[0732] The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula;
[0733] The first mapping order is used to map the first CSI and / or UL-SCH;
[0734] The second mapping order is used to map at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK;
[0735] The first mapping order includes mapping order 1 and / or mapping order 2;
[0736] The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
[0737] Optionally, mapping the UCI to the time-frequency resources of the uplink channel includes at least one of the following:
[0738] Mapping the first CSI and / or UL-SCH to time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order;
[0739] Based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped to the time-frequency resources of PUSCH.
[0740] Optionally, the device further comprises at least one of the following:
[0741] Mapping order 1 is the coded bits of the first CSI;
[0742] Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH;
[0743] Mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2;
[0744] Mapping order 4 is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2;
[0745] Mapping order five: coded bits of HARQ-ACK, coded bits of CSI part 1, coded bits of CSI part 2, coded bits of the first SR and / or the first UCI;
[0746] Mapping order six: coded bits of CSI part 1, coded bits of CSI part 2, coded bits of UL-SCH, coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI;
[0747] Mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
[0748] Optionally, the device further comprises at least one of the following:
[0749] The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0750] The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS;
[0751] The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI;
[0752] The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK;
[0753] The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH;
[0754] The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS;
[0755] The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
[0756] Optionally, the device further comprises at least one of the following:
[0757] Calculating the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter;
[0758] The reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0759] If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol;
[0760] If there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol;
[0761] Mapping the coded bits of the first SR and / or first UCI starts from the resource element next to the last resource element corresponding to the coded bit of the HARQ-ACK;
[0762] If there are available resource elements in the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the last symbol;
[0763] If there are no available resource elements for the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the symbol next to the last symbol;
[0764] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0765] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol;
[0766] If at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0767] The first CSI satisfies the first condition;
[0768] The first SR is used to request resources to report measurement information that meets the first condition;
[0769] The first UCI is used to notify and / or instruct the network device of a first process.
[0770] Optionally, the device further comprises at least one of the following:
[0771] The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR;
[0772] The first interval is greater than or equal to 1;
[0773] The first processing includes the terminal device reporting measurement information that meets the first condition;
[0774] The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
[0775] The processing device provided in the embodiment of the present application has similar implementation principles and beneficial effects to the technical solutions shown in the above-mentioned corresponding method embodiments, and will not be described in detail here.
[0776] Ninth embodiment
[0777] Referring to Figure 10, Figure 10 is a second structural diagram of a processing device provided in an embodiment of the present application. The device can be mounted on or is the network device in the above-mentioned method embodiment. The processing device shown in Figure 10 can be used to perform some or all of the functions in the method embodiment described in the above embodiment. As shown in Figure 10, the processing device 1200 includes:
[0778] The receiving module 1201 is configured to receive an uplink channel, where the time-frequency resources of the uplink channel include UCI mapped by the terminal device.
[0779] Optionally, the device further comprises at least one of the following:
[0780] The UCI includes at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0781] The time-frequency resources include resource elements;
[0782] The uplink channel includes CG PUSCH and / or PUSCH.
[0783] Optionally, the device further comprises at least one of the following:
[0784] The terminal device selects or determines the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, CSI part 1, CSI part 2, and HARQ-ACK;
[0785] The terminal device determines a first mapping order of the first CSI and / or UL-SCH;
[0786] The terminal device determines a second mapping order of at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK.
[0787] Optionally, the device further comprises at least one of the following:
[0788] The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula;
[0789] The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula;
[0790] The first mapping order is used to map the first CSI and / or UL-SCH;
[0791] The second mapping order is used to map at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH, and HARQ-ACK;
[0792] The first mapping order includes mapping order 1 and / or mapping order 2;
[0793] The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
[0794] Optionally, the terminal device maps the UCI to the time-frequency resources of the uplink channel, including:
[0795] The terminal device maps the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order; and / or,
[0796] The terminal device maps the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK to the time-frequency resources of PUSCH based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order.
[0797] Optionally, the device further comprises at least one of the following:
[0798] Mapping order 1 is the coded bits of the first CSI;
[0799] Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH;
[0800] Mapping order three is: HARQ-ACK coded bits, first SR and / or first UCI coded bits, CSI part 1 coded bits, CSI part 2 coded bits;
[0801] Mapping order four is: HARQ-ACK coded bits, CSI part 1 coded bits, first SR and / or first UCI coded bits, CSI part 2 coded bits;
[0802] Mapping order five: HARQ-ACK coded bits, CSI part 1 coded bits, CSI part 2 coded bits, first SR and / or first UCI coded bits;
[0803] Mapping order six is: coded bits of CSI part 1, coded bits of CSI part 2, coded bits of UL-SCH, coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI.
[0804] Optionally, the device further comprises at least one of the following:
[0805] The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0806] The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS;
[0807] The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI;
[0808] The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK;
[0809] The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of CSI part 2 and / or the coded bits of UL-SCH;
[0810] The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS;
[0811] The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
[0812] Optionally, the device further comprises at least one of the following:
[0813] Calculating the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter;
[0814] The reserved resource elements for HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS;
[0815] If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol;
[0816] If there are no available resource elements in the last symbol corresponding to the reserved resource elements of HARQ-ACK, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol;
[0817] Mapping the coded bits of the first SR and / or first UCI starts from the resource element next to the last resource element corresponding to the coded bit of the HARQ-ACK;
[0818] If there are available resource elements in the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the last symbol;
[0819] If there are no available resource elements for the last symbol corresponding to the HARQ-ACK coded bits, the coded bits of the first SR and / or first UCI start from the symbol next to the last symbol;
[0820] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol;
[0821] If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol;
[0822] If at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH has remaining coded bits, the remaining coded bits are mapped to the next symbol.
[0823] The first CSI satisfies the first condition;
[0824] The first SR is used to request resources to report measurement information that meets the first condition;
[0825] The first UCI is used to notify and / or instruct the network device of a first process.
[0826] Optionally, the device further comprises at least one of the following:
[0827] The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR;
[0828] The first interval is greater than or equal to 1;
[0829] The first processing includes the terminal device reporting measurement information that meets the first condition;
[0830] The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
[0831] The processing device provided in the embodiment of the present application has similar implementation principles and beneficial effects to the technical solutions shown in the above-mentioned corresponding method embodiments, and will not be described in detail here.
[0832] Refer to Figure 11, which is a schematic diagram of the structure of a communication device provided in an embodiment of the present application. As shown in Figure 11, the communication device 160 described in this embodiment can be the terminal device (or component that can be used for a terminal device) or network device (or component that can be used for a network device) mentioned in the aforementioned method embodiment. The communication device 160 can be used to implement the methods corresponding to the terminal device or network device described in the aforementioned method embodiment. For details, please refer to the description of the aforementioned method embodiment.
[0833] The communication device 160 may include one or more processors 161, also referred to as processing units, which may perform certain control or processing functions. Processor 161 may be a general-purpose processor or a dedicated processor. For example, it may be a baseband processor or a central processing unit. The baseband processor may be used to process communication protocols and communication data, while the central processing unit may be used to control the communication device, execute software programs, and process software program data.
[0834] Optionally, the processor 161 may also store instructions 163 or data (eg, intermediate data). Optionally, the instructions 163 may be executed by the processor 161 to enable the communication device 160 to execute the method corresponding to the terminal device or network device described in the above method embodiment.
[0835] Optionally, the communication device 160 may include a circuit that can implement the functions of sending, receiving, or communicating in the aforementioned method embodiments.
[0836] Optionally, the communication device 160 may include one or more memories 162 , on which instructions 164 may be stored. The instructions may be executed on the processor 161 , so that the communication device 160 performs the method described in the above method embodiment.
[0837] Optionally, data may also be stored in the memory 162. The processor 161 and the memory 162 may be provided separately or integrated together.
[0838] Optionally, the communication device 160 may further include a transceiver 165 and / or an antenna 166. The processor 161 may be referred to as a processing unit, and controls the communication device 160 (terminal device, core network device, or wireless access network device). The transceiver 165 may be referred to as a transceiver unit, transceiver, transceiver circuit, or transceiver, and is used to implement the transceiver functions of the communication device 160.
[0839] Optionally, if the communication device 160 is used to implement operations corresponding to the terminal device in the above embodiments, for example, the transceiver 165 can send an uplink channel; and the processor 161 can map the UCI to the time-frequency resources of the uplink channel.
[0840] Optionally, the specific implementation process of the processor 161 and the transceiver 165 can refer to the relevant description of the above embodiments, which will not be repeated here.
[0841] Optionally, if the communication device 160 is used to implement operations corresponding to the network devices in the above embodiments, for example, the transceiver 165 may receive an uplink channel, and the time-frequency resources of the uplink channel include UCI mapped by the terminal device.
[0842] Optionally, the specific implementation process of the processor 161 and the transceiver 165 can refer to the relevant description of the above embodiments, which will not be repeated here.
[0843] The processor 161 and transceiver 165 described in this application can be implemented on an IC (Integrated Circuit), an analog integrated circuit, an RFIC (Radio Frequency Integrated Circuit), a mixed-signal integrated circuit, an ASIC (Application Specific Integrated Circuit), a PCB (Printed Circuit Board), an electronic device, etc. The processor 161 and transceiver 165 can also be manufactured using various integrated circuit process technologies, such as CMOS (Complementary Metal Oxide Semiconductor), NMOS (N Metal-Oxide-Semiconductor), PMOS (Positive Channel Metal Oxide Semiconductor), BJT (Bipolar Junction Transistor), bipolar CMOS (BiCMOS), silicon germanium (SiGe), gallium arsenide (GaAs), etc. In this application, a communication device can be a terminal device (such as a mobile phone) or a network device (such as a base station), which needs to be determined according to the context. In addition, the terminal device can be implemented in various forms. For example, the terminal devices described in this application may include mobile terminals such as mobile phones, tablet computers, laptop computers, PDAs, portable media players (PMPs), navigation devices, wearable devices, smart bracelets, pedometers, etc., as well as fixed terminal devices such as digital TVs and desktop computers.
[0844] Although the communication device is described above by taking a terminal device or a network device as an example, the scope of the communication device described in this application is not limited to the above-mentioned terminal device or network device, and the structure of the communication device may not be limited to Figure 11. The communication device may be an independent device or may be part of a larger device.
[0845] An embodiment of the present application also provides a communication system, including: a terminal device as in any of the above embodiments; and a network device as in any of the above embodiments.
[0846] An embodiment of the present application also provides a communication device, including a memory and a processor, wherein a processing program is stored in the memory, and when the processing program is executed by the processor, the steps of the processing method in any of the above embodiments are implemented.
[0847] The communication device in this application can be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific reference needs to be clarified based on the context.
[0848] An embodiment of the present application further provides a computer-readable storage medium, on which a processing program is stored. When the processing program is executed by a processor, the steps of the processing method in any of the above embodiments are implemented.
[0849] In the embodiments of the communication device and computer-readable storage medium provided in the embodiments of the present application, all technical features of any of the above-mentioned processing method embodiments may be included. The expanded and explained contents of the specification are basically the same as those of the embodiments of the above-mentioned methods and will not be repeated here.
[0850] The present application also provides a computer program product, which includes computer program code. When the computer program code is executed on a computer, the computer executes the methods described in the various possible embodiments. The present application also provides a chip, which includes a memory and a processor. The memory is used to store the computer program, and the processor is used to call and execute the computer program from the memory, so that a device equipped with the chip executes the methods described in the various possible embodiments.
[0851] It is understood that the above scenarios are merely examples and do not constitute a limitation on the application scenarios of the technical solutions provided in the embodiments of this application. The technical solutions of this application can also be applied to other scenarios. For example, it is known to those skilled in the art that with the evolution of system architecture and the emergence of new business scenarios, the technical solutions provided in the embodiments of this application are equally applicable to similar technical problems. The serial numbers of the above embodiments of this application are for descriptive purposes only and do not represent the advantages or disadvantages of the embodiments. The steps in the methods of the embodiments of this application can be adjusted in order, combined, and deleted according to actual needs. The units in the devices of the embodiments of this application can be combined, divided, and deleted according to actual needs. In this application, for the same or similar terms, concepts, technical solutions, and / or application scenario descriptions, they are generally only described in detail the first time they appear. When they appear again, they are generally not repeated for the sake of brevity. When understanding the technical solutions of this application, for the same or similar terms, concepts, technical solutions, and / or application scenario descriptions that are not described in detail later, reference can be made to the relevant detailed descriptions that precede them. In this application, the descriptions of each embodiment have their own focus. For parts that are not described or recorded in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments. The various technical features of the technical solution of this application can be combined arbitrarily. In order to make the description concise, not all possible combinations of the various technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this application.
[0852] Through the description of the above embodiments, it will be clear to those skilled in the art that the above-mentioned embodiment methods can be implemented by means of software plus the necessary general hardware platform, or of course by hardware, but in many cases the former is a better embodiment. Based on this understanding, the technical solution of the present application is essentially or partly contributed to the prior art and can be embodied in the form of a software product, which is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) as above, including several instructions for enabling a terminal device (which can be a mobile phone, computer, server, controlled terminal device, or network device, etc.) to execute the method of each embodiment of the present application. In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the process or function according to the embodiment of the present application is generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. Computer instructions can be stored in a storage medium or transmitted from one storage medium to another storage medium. For example, computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center via wired (e.g., coaxial cable, optical fiber, digital subscriber line) or wireless (e.g., infrared, wireless, microwave, etc.) means. The storage medium can be any available medium that can be accessed by a computer or a data storage device such as a server or data center that includes one or more available media integrated. The available medium can be a magnetic medium (e.g., a floppy disk, a storage disk, a tape), an optical medium (e.g., a DVD), or a semiconductor medium (e.g., a solid-state disk (SSD)). The above are only preferred embodiments of the present application and do not limit the scope of the patent of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the scope of patent protection of the present application.
Claims
1. A processing method, wherein: Applied to terminal equipment, including the steps of: S1: Map the UCI to the time-frequency resources of the uplink channel.
2. The method of claim 1, wherein: Also includes at least one of the following: The UCI includes at least one of a first CSI, a first SR, a first UCI, a CSI part 1, a CSI part 2, and a HARQ-ACK; The time-frequency resource includes resource elements; The uplink channel includes CG PUSCH and / or PUSCH; Send uplink channel.
3. The method of claim 2, wherein: Also includes at least one of the following: Select or determine the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, the CSI part 1, the CSI part 2, and the HARQ-ACK; Determine a first mapping order of the first CSI and / or UL-SCH; A second mapping order of at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK is determined.
4. The method of claim 3, wherein: Also includes at least one of the following: The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula; The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula; The first mapping order is used to map the first CSI and / or UL-SCH; The second mapping order is used to map at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK; The first mapping order includes mapping order one and / or mapping order two; The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
5. The method of claim 3, wherein: Step S1 includes at least one of the following: Mapping the first CSI and / or UL-SCH to time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order; Based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order, at least one of the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and HARQ-ACK is mapped to the time-frequency resources of PUSCH.
6. The method of claim 4, wherein: Also includes at least one of the following: Mapping order 1 is the coded bits of the first CSI; Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH; Mapping order three is the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI, the coded bits of CSI part 1, and the coded bits of CSI part 2; Mapping order 4 is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of the first SR and / or the first UCI, and the coded bits of CSI part 2; Mapping order five is the coded bits of HARQ-ACK, the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of the first SR and / or the first UCI; Mapping order six is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of HARQ-ACK, the coded bits of the first SR and / or the first UCI; Mapping order seven is the coded bits of CSI part 1, the coded bits of CSI part 2, the coded bits of UL-SCH, the coded bits of the first SR and / or the first UCI, and the coded bits of HARQ-ACK.
7. The method of claim 6, wherein: Also includes at least one of the following: The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS; The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS; The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI; The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK; The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of the CSI part 2 and / or the coded bits of the UL-SCH; The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS; The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
8. The method of claim 7, wherein: Also includes at least one of the following: Calculate the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter; The reserved resource elements of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS; If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol; If the last symbol corresponding to the reserved resource elements of HARQ-ACK has no available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol; Mapping the coded bits of the first SR and / or the first UCI starts from the next resource element of the last resource element corresponding to the coded bit of the HARQ-ACK; if there are available resource elements for the last symbol corresponding to the coded bit of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the last symbol; If there is no available resource element for the last symbol corresponding to the coded bits of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the symbol next to the last symbol; If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol; If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol; If at least one of the HARQ-ACK, the first SR and / or the first UCI, the CSI part 1, the CSI part 2, and the UL-SCH has remaining coded bits, the remaining coded bits are mapped on the next symbol; The first CSI satisfies the first condition; The first SR is used to request resources to report measurement information that meets the first condition; The first UCI is used to notify and / or instruct the network device of a first process.
9. The method of claim 8, wherein: Also includes at least one of the following: The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR; The first interval is greater than or equal to 1; The first processing includes the terminal device reporting measurement information that meets the first condition; The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
10. A processing method, wherein: Applied to network equipment, including the steps of: S2: Receive an uplink channel, where the time-frequency resources of the uplink channel include UCI mapped by the terminal device.
11. The method of claim 10, wherein: Also includes at least one of the following: The UCI includes at least one of a first CSI, a first SR, a first UCI, a CSI part 1, a CSI part 2, and a HARQ-ACK; The time-frequency resource includes resource elements; The uplink channel includes CG PUSCH and / or PUSCH.
12. The method of claim 11, wherein: Also includes at least one of the following: The terminal device selects or determines the number of coded modulation symbols per layer of at least one of the first CSI, the first SR, the first UCI, the CSI part 1, the CSI part 2, and the HARQ-ACK; The terminal device determines a first mapping order of the first CSI and / or UL-SCH; The terminal device determines a second mapping order of at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK.
13. The method of claim 12, wherein: Also includes at least one of the following: The number of coded modulation symbols per layer of the first CSI is determined according to at least one of the first formula, the second formula, the third formula, and the fourth formula; The number of coded modulation symbols per layer of the first SR and / or the first UCI is determined according to at least one of the fifth formula, the sixth formula, the seventh formula, the eighth formula, the ninth formula, and the tenth formula; The first mapping order is used to map the first CSI and / or UL-SCH; The second mapping order is used to map at least one of the first SR, the first UCI, the CSI part 1, the CSI part 2, the UL-SCH, and the HARQ-ACK; The first mapping order includes mapping order one and / or mapping order two; The second mapping order includes at least one of mapping order three, mapping order four, mapping order five, mapping order six, and mapping order seven.
14. The method of claim 12, wherein: The terminal device maps the UCI to the time-frequency resources of the uplink channel, including: The terminal device maps the first CSI and / or UL-SCH to the time-frequency resources of the CG PUSCH based on the number of coded modulation symbols per layer of the first CSI and the first mapping order; and / or, The terminal device maps the first SR, the first UCI, CSI part 1, CSI part 2, UL-SCH and at least one of HARQ-ACK to the time-frequency resources of PUSCH based on the number of coded modulation symbols per layer of at least one of the first SR, the first UCI, CSI part 1, CSI part 2 and HARQ-ACK and the second mapping order.
15. The method of claim 13, wherein: Also includes at least one of the following: Mapping order 1 is the coded bits of the first CSI; Mapping order 2 is the coded bits of the first CSI and the coded bits of the UL-SCH; Mapping order three is: coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI, coded bits of CSI part 1, and coded bits of CSI part 2; Mapping order 4 is: coded bits of HARQ-ACK, coded bits of CSI part 1, coded bits of the first SR and / or the first UCI, and coded bits of CSI part 2; Mapping order five: coded bits of HARQ-ACK, coded bits of CSI part 1, coded bits of CSI part 2, coded bits of the first SR and / or the first UCI; Mapping order six is: coded bits of CSI part 1, coded bits of CSI part 2, coded bits of UL-SCH, coded bits of HARQ-ACK, coded bits of the first SR and / or the first UCI.
16. The method of claim 15, wherein: Also includes at least one of the following: The coded bits of the first SR and / or the first UCI start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS; The coded bits of the first SR and / or the first UCI are mapped starting from the first OFDM symbol that does not carry a DMRS; The coded bits of the first SR and / or the first UCI are mapped to reserved resource elements of the first SR and / or the first UCI; The coded bits of the first SR and / or the first UCI are mapped after the coded bits of the HARQ-ACK; The coded bits of the first SR and / or the first UCI occupy resource elements corresponding to the coded bits of the CSI part 2 and / or the coded bits of the UL-SCH; The coded bits of CSI part 1 are mapped starting from the first OFDM symbol that does not carry DMRS; The coded bits of HARQ-ACK are mapped to the reserved resource elements of HARQ-ACK.
17. The method of claim 16, wherein: Also includes at least one of the following: Calculate the number of reserved resource elements of the first SR and / or the first UCI based on the first parameter; The reserved resource elements of HARQ-ACK start from the first OFDM symbol after the first group of OFDM symbols carrying DMRS; If the last symbol corresponding to the reserved resource elements of HARQ-ACK still has available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the last symbol; If the last symbol corresponding to the reserved resource elements of HARQ-ACK has no available resource elements, the reserved resource elements of the first SR and / or the first UCI start from the symbol next to the last symbol; Mapping the coded bits of the first SR and / or the first UCI starts from the next resource element of the last resource element corresponding to the coded bit of the HARQ-ACK; if there are available resource elements for the last symbol corresponding to the coded bit of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the last symbol; If there is no available resource element for the last symbol corresponding to the coded bits of the HARQ-ACK, the coded bits of the first SR and / or the first UCI start from the symbol next to the last symbol; If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are not less than the maximum coded bits that can be carried by the current symbol, the coded bits are continuously mapped on the current symbol; If the remaining coded bits of at least one of the HARQ-ACK, the first SR and / or the first UCI, CSI part 1, CSI part 2, and UL-SCH are less than the maximum coded bits that can be carried by the current symbol, the coded bits are mapped at the first interval on the current symbol; If at least one of the HARQ-ACK, the first SR and / or the first UCI, the CSI part 1, the CSI part 2, and the UL-SCH has remaining coded bits, the remaining coded bits are mapped on the next symbol; The first CSI satisfies the first condition; The first SR is used to request resources to report measurement information that meets the first condition; The first UCI is used to notify and / or instruct the network device of a first process.
18. The method of claim 17, wherein: Also includes at least one of the following: The first parameter includes at least one of the following: the number of bits of the first SR and / or the first UCI is a first number, the offset value of the PUSCH is equal to the offset value of the HARQ-ACK, and the offset value of the PUSCH is equal to the offset value of the SR; The first interval is greater than or equal to 1; The first processing includes the terminal device reporting measurement information that meets the first condition; The first group of OFDM symbols includes at least one OFDM symbol or at least one consecutive OFDM symbols.
19. A communication device, wherein: include: A memory, a processor, and a processing program stored in the memory and executable on the processor, wherein the processing program is executed by the processor to implement the steps of the processing method according to claim 1 or 10.
20. A computer-readable storage medium, wherein: The computer-readable storage medium stores a computer program, and the computer program is executed by a processor to implement the steps of the processing method according to claim 1 or 10.
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