Processing method, communication device and storage medium
By using rule-based instruction bits for uplink transmission beam information in terminal and network devices, the problem of selecting a suitable uplink transmission beam is solved, thereby improving data transmission performance and communication efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHENZHEN TRANSSION HLDG CO LTD
- Filing Date
- 2026-01-06
- Publication Date
- 2026-04-21
AI Technical Summary
The existing technology does not clearly define how to select or determine the available and/or better uplink transmit beams from multiple sets of uplink transmit beam information, which affects data transmission performance.
Terminal equipment and network equipment select or determine uplink transmit beams based on a first rule, and specify available and/or better uplink transmit beams by indicating bits of uplink transmit beam information, including bit indications of the channel state information request field, the physical uplink shared channel frequency domain resource allocation field, and the time domain resource allocation field.
This improves data transmission performance and ensures the selection of appropriate uplink transmit beams to enhance communication efficiency during random access.
Smart Images

Figure CN121908378A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of communication technology, specifically to a processing method, communication device, and storage medium. Background Technology
[0002] By transmitting multiple PRACH (Physical Random Access Channel) messages across different transmit beams, multiple sets of uplink transmit beam information can be obtained. This provides a basis for Msg3 (message 3) to select available and / or better uplink transmit beams, thereby improving data transmission performance.
[0003] In the process of conceiving and implementing this application, the inventors discovered at least the following problems: How to select or determine the available and / or better uplink transmit beam for Msg3 from the above multiple sets of uplink transmit beam related information is currently unclear and urgently needs improvement.
[0004] The preceding description is intended to provide general background information and does not necessarily constitute prior art. Summary of the Invention
[0005] The main objective of this application is to provide a processing method, communication device, and storage medium, which aims to clarify how to select or determine an available and / or better uplink transmit beam for message 3 in order to support improved data transmission performance.
[0006] This application provides a processing method applicable to terminal devices (such as mobile phones), including the following steps: S2: Select or determine at least one uplink transmit beam based on the first rule.
[0007] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0008] Optionally, the processing method further includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0009] Optionally, the processing method further includes at least one of the following; At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
[0010] Optionally, the processing method further includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
[0011] Optionally, the processing method further includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0012] This application also provides a processing method applicable to network devices (such as base stations), including the following steps: S1: Send first information to enable the terminal device to select or determine at least one uplink transmission beam based on a first rule.
[0013] Optionally, the first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field.
[0014] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0015] Optionally, the processing method further includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0016] Optionally, the processing method further includes at least one of the following: At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
[0017] Optionally, the processing method further includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
[0018] Optionally, the processing method further includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0019] This application also provides a processing apparatus, the processing apparatus comprising: The determination module is used to select or determine at least one uplink transmit beam based on a first rule.
[0020] This application also provides a processing apparatus, the processing apparatus comprising: The transmitting module is used to transmit first information so that the terminal device selects or determines at least one uplink transmission beam based on a first rule.
[0021] This application also provides a communication device, including: a memory, a processor, and a processing program stored in the memory and executable on the processor, wherein the processing program, when executed by the processor, implements the steps of any of the processing methods described above.
[0022] The communication equipment mentioned in this application may be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific meaning needs to be clarified in the context.
[0023] Unless otherwise specified, the values of single uppercase letters such as X, Y, and N appearing in this application are generally 0 or positive integers.
[0024] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, implements the steps of any of the processing methods described above.
[0025] In the technical solution of this application, the terminal device selects or determines at least one uplink transmission beam based on a first rule, which can clearly define how to select or determine available and / or better uplink transmission beam information for message 3, so as to support the improvement of data transmission performance. Attached Figure Description
[0026] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application. To more clearly illustrate the technical solutions of the embodiments of this application, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, those skilled in the art can obtain other drawings based on these drawings without any creative effort.
[0027] Figure 1 A schematic diagram of the hardware structure of a mobile terminal to implement the various embodiments of this application; Figure 2A communication network system architecture diagram provided in this application embodiment; Figure 3 A schematic diagram of the hardware structure of a controller 140 provided in this application; Figure 4 A schematic diagram of the hardware structure of a network node 150 provided in this application; Figure 5 This is a schematic flowchart illustrating the processing method of the first embodiment of this application; Figure 6 This is a schematic flowchart illustrating the processing method of the fifth embodiment of this application; Figure 7 This is a schematic diagram illustrating the interaction flow between a network device and a terminal device in the processing method shown in the sixth embodiment of this application; Figure 8 Schematic diagram of the processing apparatus provided in the embodiments of this application Figure 1 ; Figure 9 Schematic diagram of the processing apparatus provided in the embodiments of this application Figure 2 ; Figure 10 This is a schematic diagram of the structure of a communication device provided in an embodiment of this application.
[0028] The realization of the objectives, functional features, and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. The accompanying drawings have illustrated specific embodiments of this application, which will be described in more detail below. These drawings and textual descriptions are not intended to limit the scope of the concept in any way, but rather to illustrate the concepts of this application to those skilled in the art through reference to specific embodiments. Detailed Implementation
[0029] Exemplary embodiments will now be described in detail, examples of which are illustrated in the accompanying drawings. When the following description relates to the drawings, unless otherwise indicated, the same numbers in different drawings denote the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with this application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of this application as detailed in the appended claims.
[0030] It should be noted that, in this document, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element, and / or, components, features, and elements with the same names in different embodiments of this application may have the same meaning or different meanings, the specific meaning of which must be determined by its interpretation in that specific embodiment or further in conjunction with the context of that specific embodiment.
[0031] 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 only to distinguish information of the same type from one another. For example, without departing from the scope of this document, 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 word "if," as used herein, may be interpreted as "when," "when," or "in response to determination." Furthermore, as used herein, the singular forms "a," "an," and "the" are intended to also include the plural forms unless the context indicates otherwise. It should be further understood that the terms "comprising," "including," indicate the presence of the stated feature, step, operation, element, component, item, kind, and / or group, but do not exclude the presence, occurrence, or addition of one or more other features, steps, operations, elements, components, items, kinds, and / or groups. The terms "or," "and / or," "including at least one of the following," etc., as used in this application, may be interpreted as inclusive, or mean any one or any combination thereof. For example, "including at least one of the following: A, B, C" means "any one of the following: A; B; C; A and B; A and C; B and C; A and B and C." Similarly, "A, B, or C" or "A, B, and / or C" means "any one of the following: A; B; C; A and B; A and C; B and C; A and B and C." Exceptions to this definition only occur when the combination of elements, functions, steps, or operations is inherently mutually exclusive in some way.
[0032] It should be understood that although the steps in the flowcharts of this application's embodiments are shown sequentially according to the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless explicitly stated herein, there is no strict order restriction on the execution of these steps, and they can be executed in other orders. Moreover, at least some of the steps in the figures may include multiple sub-steps or multiple stages. These sub-steps or stages are not necessarily completed at the same time, but can be executed at different times, and their execution order is not necessarily sequential, but can be performed alternately or in turn with other steps or at least a portion of the sub-steps or stages of other steps.
[0033] Depending on the context, the words “if” or “suppose” as used here can be interpreted as “when” or “in response to determination” or “in response to detection.” Similarly, depending on the context, the phrases “if determination” or “if detection (of the stated condition or event)” can be interpreted as “when determination” or “in response to determination” or “when detection (of the stated condition or event)” or “in response to detection (of the stated condition or event).”
[0034] It should be noted that step designations such as S1 and S2 are used in this document for the purpose of more clearly and concisely describing the corresponding content, and do not constitute a substantial limitation on the order. In specific implementation, those skilled in the art may execute S2 first and then S1, etc., but these should all be within the protection scope of this application.
[0035] It should be understood that the specific embodiments described herein are merely illustrative of this application and are not intended to limit this application.
[0036] In the following description, the use of suffixes such as "module," "part," or "unit" to denote elements is solely for the purpose of illustration and has no specific meaning in itself. Therefore, "module," "part," or "unit" may be used interchangeably.
[0037] The communication equipment mentioned in this application may be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific meaning needs to be clarified according to the context.
[0038] Terminal devices can be implemented in various forms. For example, the terminal devices described in this application may include smart terminal devices such as mobile phones, tablets, laptops, handheld computers, personal digital assistants (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.
[0039] The following description will use a mobile terminal as an example. Those skilled in the art will understand that, apart from elements specifically designed for mobile purposes, the construction according to the embodiments of this application can also be applied to fixed-type terminal devices.
[0040] Please see Figure 1 This is a schematic diagram of the hardware structure of a mobile terminal implementing various embodiments of this application. The mobile terminal 100 may include: 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, etc. Those skilled in the art will understand that... Figure 1 The mobile terminal structure shown does not constitute a limitation on the mobile terminal. The mobile terminal may include more or fewer components than shown, or combine certain components, or have different component arrangements.
[0041] The following is combined with Figure 1 A detailed introduction to each component of the mobile terminal: The radio frequency unit 101 can be used for receiving and transmitting signals during information transmission or calls. Specifically, it receives downlink information from the base station and processes it with the processor 110; additionally, it transmits uplink data to the base station. Typically, the radio frequency unit 101 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low-noise amplifier, a duplexer, etc. And / or, the radio frequency unit 101 can also communicate wirelessly with networks and other devices. The aforementioned wireless communications may 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.
[0042] WiFi is a short-range wireless transmission technology. Mobile terminals using the WiFi module 102 can help users send and receive emails, browse web pages, and access streaming media, providing users with wireless broadband internet access. Although Figure 1 WiFi module 102 is shown, but it is understood that it is not a necessary component of a mobile terminal and can be omitted as needed without changing the nature of the invention.
[0043] The audio output unit 103 can convert audio data received by the radio frequency unit 101 or the WiFi module 102 or stored in the memory 109 into audio signals and output them as sound when the mobile terminal 100 is in call signal receiving mode, call mode, recording mode, voice recognition mode, broadcast receiving mode, or other modes. Furthermore, the audio output unit 103 can also provide audio output related to specific functions performed by the mobile terminal 100 (e.g., call signal receiving sound, message receiving sound, etc.). The audio output unit 103 may include a speaker, a buzzer, etc.
[0044] 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 acquired by an image capture device (such as a camera) in video capture mode or image capture mode. The processed image frames can be displayed on the display unit 106. The image frames processed by the GPU 1041 can be stored in the memory 109 (or other storage medium) or transmitted via the radio frequency unit 101 or the WiFi module 102. The microphone 1042 can receive sound (audio data) in operating modes such as telephone call mode, recording mode, and voice recognition mode, and can process such sound into audio data. The processed audio (voice) data can be converted into a format that can be transmitted to a mobile communication base station via the radio frequency unit 101 in telephone call mode. The microphone 1042 can 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.
[0045] 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 ambient light level, and the proximity sensor can turn off the display panel 1061 and / or 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 various directions (generally three axes), and can detect the magnitude and direction of gravity when stationary. It can be used for applications that recognize the phone's posture (such as landscape / portrait switching, related games, magnetometer posture calibration), vibration recognition related functions (such as pedometer, tapping), etc. Other sensors that may be configured in the phone, such as fingerprint sensors, pressure sensors, iris sensors, molecular sensors, gyroscopes, barometers, hygrometers, thermometers, and infrared sensors, will not be described in detail here.
[0046] 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.
[0047] User input unit 107 can be used to receive input numerical or character information, and generate key signal inputs related to user settings and function control of the mobile terminal. Optionally, user input unit 107 may include touch panel 1071 and other input devices 1072. Touch panel 1071, also known as touch screen, can collect touch operations on or near the user (such as operations performed by the user using a finger, stylus, or any suitable object or accessory on or near touch panel 1071), and drive corresponding connection devices according to a pre-set program. Touch panel 1071 may include two parts: touch detection device and touch controller. Optionally, touch detection device detects the user's touch position and the signal generated by the touch operation, and transmits the signal to touch controller; touch controller receives touch information from touch detection device, converts it into touch point coordinates, and sends it to processor 110, and can receive and execute commands from processor 110. And / or, 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 also include other input devices 1072. Optionally, other input devices 1072 may include, but are not limited to, one or more of the following: physical keyboard, function keys (such as volume control buttons, power buttons, etc.), trackball, mouse, joystick, etc., without being specifically limited here.
[0048] Optionally, the touch panel 1071 may cover 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. Subsequently, the processor 110 provides corresponding visual output on the display panel 1061 based on the type of touch event. Although in Figure 1 In this embodiment, the touch panel 1071 and the display panel 1061 are two independent components to realize the input and output functions of the mobile terminal. However, in some embodiments, the touch panel 1071 and the display panel 1061 can be integrated to realize the input and output functions of the mobile terminal. The specific implementation is not limited here.
[0049] Interface unit 108 serves as an interface through which at least one external device can connect to 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. Interface unit 108 may be used to receive input (e.g., data, power, etc.) from the external device and transmit the received input to one or more components within mobile terminal 100, or it may be used to transmit data between mobile terminal 100 and the external device.
[0050] The memory 109 can be used to store software programs and various data. The memory 109 may primarily include a program storage area and a data storage area. Optionally, the program storage area may store the operating system, applications required for at least one function (such as sound playback, image playback, etc.), etc.; the data storage area may store data created based on the use of the mobile phone (such as audio data, phonebook, etc.). And / or, the memory 109 may include high-speed random access memory, and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0051] The processor 110 is the control center of the mobile terminal. It connects various parts of the mobile terminal via various interfaces and lines. By running or executing software programs and / or modules stored in the memory 109, and by calling data stored in the memory 109, it performs various functions and processes data of the mobile terminal, thereby providing overall monitoring of the mobile terminal. The processor 110 may include one or more processing units; preferably, the processor 110 may integrate an application processor and a modem processor. Optionally, the application processor mainly handles the operating system, user interface, and applications, while the modem processor mainly handles wireless communication. It is understood that the modem processor may not be integrated into the processor 110.
[0052] The mobile terminal 100 may also include a power supply 111 (such as a battery) that supplies power to various components. Preferably, the power supply 111 can be logically connected to the processor 110 through a power management system, thereby enabling functions such as charging, discharging, and power consumption management through the power management system.
[0053] although Figure 1 As not shown, the mobile terminal 100 may also include a Bluetooth module, etc., which will not be described in detail here.
[0054] To facilitate understanding of the embodiments of this application, the communication network system on which the mobile terminal of this application is based is described below.
[0055] Please see Figure 2 , Figure 2This application provides a communication network system architecture diagram. The communication network system is a New Radio (NR) system based on general mobile communication technology. The NR system includes a UE (User Equipment) 201, an E-UTRAN (Evolved UMTS Terrestrial Radio Access Network) 202, an EPC (Evolved Packet Core) 203, and the operator's IP services 204, which are connected in sequence.
[0056] Optionally, UE201 can be the aforementioned terminal device 100, which will not be described in detail here.
[0057] E-UTRAN202 includes eNodeB2021 and other eNodeB2022s. Optionally, eNodeB2021 can connect to other eNodeB2022s via backhaul (e.g., X2 interface). eNodeB2021 connects to EPC203 and can provide UE201 with access to EPC203.
[0058] EPC203 may include an MME (Mobility Management Entity) 2031, an HSS (Home Subscriber Server) 2032, other MMEs 2033, an SGW (Serving Gateway) 2034, a PGW (Packet Data Network Gateway) 2035, and a PCRF (Policy and Charging Rules Function) 2036, etc. Optionally, MME2031 is the control node that handles signaling between UE201 and EPC203, providing bearer and connection management. HSS2032 is used to provide registers to manage functions such as the Home Location Register (not shown in the figure) and stores user-specific information such as service characteristics and data rates. All user data can be sent through SGW2034. PGW2035 can provide UE 201 IP address allocation and other functions. PCRF2036 is the policy and charging control decision point for service data flow and IP bearer resources. It selects and provides available policy and charging control decisions for the policy and charging enforcement function unit (not shown in the figure).
[0059] IP services 204 may include the Internet, intranet, IMS (IP Multimedia Subsystem), or other IP services.
[0060] Although the above description uses 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 also to other wireless communication systems, such as GSM, CDMA2000, WCDMA, TD-SCDMA, 5G and future new network systems (such as 6G), etc., without limitation.
[0061] Figure 3 This application provides a schematic diagram of the hardware structure of a controller 140. 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 principle and beneficial effects are similar, and will not be described again here.
[0062] 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.
[0063] Figure 4 This application provides a schematic diagram of the hardware structure of a network node 150. The network node 150 includes a memory 1501 and a processor 1502. The memory 1501 is used to store program instructions, and the processor 1502 is used to call the program instructions in the memory 1501 to execute the steps performed by the first node in the first embodiment of the above method. The implementation principle and beneficial effects are similar, and will not be described again here.
[0064] 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.
[0065] The integrated modules described above, implemented as software functional modules, can be stored in a computer-readable storage medium. These software functional modules, stored in a storage medium, include several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) or processor to execute some steps of the methods of the various embodiments of this application.
[0066] In the above embodiments, implementation can be achieved, in whole or in part, through software, hardware, firmware, or any combination thereof. When implemented in software, it can be implemented, in whole or in part, as a computer program product. A computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the flow or function according to the embodiments of this application is generated. 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. 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, fiber optic, digital subscriber line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.) means. 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 integrates one or more available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium (e.g., solid-state disk, SSD), etc.
[0067] Based on the above-described mobile terminal hardware structure and communication network system, various embodiments of this application are proposed.
[0068] Technical terms used in the embodiments of this application: RAR: Random Access Response; UL grant: UpLink grant; PUSCH: Physical Uplink Shared Channel; PUCCH: Physical Uplink Control Channel; MSB: Most Significant Bit; PRB: Physical Resource Block; LSB: Least Significant Bit; CSI: Channel State Information; MAC: Medium Access Control; SubPDU: Sub Protocol Data Unit; PDU: Protocol Data Unit; PRACH: Physical Random Access Channel; PUSCH frequency resource allocation, physical uplink shared channel frequency domain resource allocation; RAR ULgrant: Random access response uplink grant domain; CSI request: Channel State Information Request; BWP: Bandwidth Part; UL BWP: Uplink bandwidth portion; TA: Timing Advance; TAG: TimingAdvanceGroup; C-RNTI: Cell Radio Network Temporary Identity; TCI: Transmission Configuration Indication; Msg3: Message 3; Frequency hopping flag: Frequency domain frequency hopping flag.
[0069] First Embodiment Reference Figure 5 , Figure 5 This is a flowchart illustrating the processing method of the first embodiment of this application. The processing method of this embodiment can be applied to a terminal device (such as a mobile phone), including step S2: Step S2: The terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0070] This embodiment takes into account that existing protocols have not clearly defined what rules should be used to select and determine the available and / or better uplink transmit beam for message 3 among multiple sets of uplink transmit beam related information, thereby affecting the performance of data transmission.
[0071] Therefore, this embodiment proposes a technical solution in which the terminal device selects or determines at least one uplink transmit beam based on a first rule, and can clearly indicate the available and / or better uplink transmit beam information for message 3, so as to support the improvement of transmission performance in the random access process.
[0072] Optionally, in response to the received first information, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0073] Optionally, the first information is sent by the network device.
[0074] Alternatively, network equipment may be base stations, etc.
[0075] Optionally, the first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field.
[0076] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0077] Optionally, the Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation field.
[0078] Optionally, the Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field.
[0079] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response.
[0080] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the second random access response.
[0081] Optionally, the uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0082] Optionally, the number of bits used for the allocation of frequency domain resources of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N.
[0083] Optionally, the number of bits used for the time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y.
[0084] The values of Y are 0, 1, X, and X. At least one of 1.
[0085] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0086] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0087] Optionally, X can be 1 bit or 3 bits.
[0088] Optionally, if X is 1 bit, then Y can be 0 or 1.
[0089] Optionally, if X is 1 bit, then the (N+1)th most significant bit of the physical uplink shared channel frequency domain resource allocation field is a bit used to indicate uplink transmit beam information.
[0090] Optionally, if X is 1 bit, the bits occupied by the channel state information request field are used to indicate the uplink transmit beam information.
[0091] Optionally, if X is 1 bit, the most significant bit of the physical uplink shared channel time domain resource allocation field is the bit used to indicate uplink transmit beam information.
[0092] Optionally, if X is 1 bit, the newly added uplink transmit beam information indication field in the first random access response is used to indicate the uplink transmit beam.
[0093] Optionally, if X is 1 bit, the uplink transmit beam information indication field in the second random access response is used to indicate the uplink transmit beam.
[0094] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1.
[0095] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2.
[0096] Optionally, if the frequency domain hopping flag in the uplink grant is set to 0, then N=0.
[0097] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N=1.
[0098] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N=2.
[0099] Optionally, the first random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink beam information indication field.
[0100] Optionally, the reserved bit field (R) value is set to 0.
[0101] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0102] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0103] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the size of the temporary identifier field of the temporary cell radio network is 16 bits. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and optionally, the size of the uplink transmit beam information indication field is X bits.
[0104] Optionally, the second random access response includes a reserved bit field and / or an uplink transmit beam information indication field. Optionally, the reserved bit field value is set to 0. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and the size of the uplink transmit beam information indication field is X bits.
[0105] Optionally, the first random access response and the second random access response are located in the same Media Access Control Protocol (MAC) data unit.
[0106] Optionally, the first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units.
[0107] Optionally, the random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0108] Optionally, if there exists a cell that only allows R20 and later terminal devices to access, a third random access response can be redefined for R20 and later terminal devices.
[0109] Optionally, the third random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink transmit beam information indication field.
[0110] Optionally, cells that allow R20 and later terminal devices to access the network are independent of cells that allow terminal devices prior to R20 to access the network.
[0111] Optionally, for R20 and later terminal devices, a third random access response mechanism is introduced and redefined. This mechanism can effectively reduce the impact of the new random access response on existing traditional terminal devices; and / or, subsequent terminal devices can identify the new random access response, adapt to multi-physical random access channel transmission scenarios, and thus obtain optimal beam information.
[0112] Through the technical solution of this embodiment, the terminal device selects or determines at least one uplink transmission beam based on the first rule, which can clearly define how to select or determine available and / or better uplink transmission beam information for message 3, so as to support the improvement of data transmission performance.
[0113] Second Embodiment Based on the first embodiment described above, a second embodiment of this application is proposed, which further discloses a method for determining the uplink transmission beam.
[0114] Optionally, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0115] Optionally, in response to receiving the first information, the terminal device selects or determines at least one uplink transmission beam based on the first rule.
[0116] Optionally, the first information is sent by the network device.
[0117] Optionally, the first information includes a physical uplink shared channel frequency domain resource allocation field and / or a channel state information request field.
[0118] Optionally, the Physical Uplink Shared Channel Frequency Domain Resource Allocation field and / or Channel State Information Request field are included in the uplink grant of the first random access response.
[0119] Optionally, the Physical Uplink Shared Channel Frequency Domain Resource Allocation field and / or Channel State Information Request field are included in the uplink grant of the second random access response.
[0120] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit, Y bit, is the Y bit in the physical uplink shared channel frequency domain resource allocation field.
[0121] The values of Y are 0, 1, X, and X. At least one of 1.
[0122] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0123] Optionally, the Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation field.
[0124] Optionally, the X bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation field are the (N+1)th to (N+X)th most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation field.
[0125] Optionally, the most significant bit in the bits used to indicate uplink transmit beam information is the bit occupied by the channel state information request field. Optionally, the least significant bit Y in the bits used to indicate uplink transmit beam information is the Y bit in the physical uplink shared channel frequency domain resource allocation field.
[0126] Optionally, among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Optionally, among the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field.
[0127] Optionally, the X bits used to indicate uplink transmit beam information are the X bits in the physical uplink shared channel frequency domain resource allocation field.
[0128] Optionally, the number of bits used for the allocation of frequency domain resources of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus X and then minus N.
[0129] Optionally, the number of bits used for the allocation of frequency domain resources of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N.
[0130] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0131] Optionally, X can be 1 bit or 3 bits.
[0132] Optionally, if X is 1 bit, then Y can be 0 or 1.
[0133] Optionally, if X is 1 bit, then the (N+1)th most significant bit of the physical uplink shared channel frequency domain resource allocation field is a bit used to indicate uplink transmit beam information.
[0134] Optionally, if X is 1 bit, the bits occupied by the channel state information request field are used to indicate the uplink transmit beam information.
[0135] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1.
[0136] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2.
[0137] Optionally, if the frequency domain hopping flag in the uplink grant is set to 0, then N=0.
[0138] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N=1.
[0139] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N=2.
[0140] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit is the bit occupied by the channel state information request field; and / or, among the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Optionally, the Y bit in the physical uplink shared channel frequency domain resource allocation field is the N+1 to N+Y most significant bits of the physical uplink shared channel frequency domain resource allocation field. Optionally, the total number of bits used to indicate uplink transmit beam information is X. Optionally, Y equals X-1. Optionally, the composition of the X bits used to indicate uplink transmit beam information is shown in Table 1. Table 1
[0141] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; and / or, among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Optionally, the Y bit in the physical uplink shared channel frequency domain resource allocation field is the N+1 to N+Y most significant bits of the physical uplink shared channel frequency domain resource allocation field. Optionally, the total number of bits used to indicate uplink transmit beam information is X. Optionally, Y equals X-1. Optionally, the composition of the X bits used to indicate uplink transmit beam information is shown in Table 2. Table 2
[0142] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field; optionally, the Y bit in the physical uplink shared channel frequency domain resource allocation field is the (N+1)th to (N+Y)th most significant bits of the physical uplink shared channel frequency domain resource allocation field; optionally, the number of bits used for physical uplink shared channel frequency domain resource allocation is the number of bits occupied by the physical uplink shared channel frequency domain resource allocation field minus Y and then minus N; optionally, the physical uplink shared channel frequency domain resource allocation... The number of bits in the allocation field is 14. Optionally, if the frequency hopping flag in the uplink grant is 1, the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, Y is equal to the total number of bits X used to indicate uplink transmit beam information, and X is 3. Optionally, based on the fact that the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, N is equal to 1. Optionally, based on the value of N, the value of X, and the number of bits in the physical uplink shared channel frequency domain resource allocation field, the distribution of each bit in the physical uplink shared channel frequency domain resource allocation field is shown in Table 3 below: Table 3
[0143] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; and / or, among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Optionally, the Y bit in the physical uplink shared channel frequency domain resource allocation field is the N+1 to N+Y most significant bits of the physical uplink shared channel frequency domain resource allocation field. Optionally, the number of bits used for physical uplink shared channel frequency domain resource allocation is the number of bits occupied by the physical uplink shared channel frequency domain resource allocation field minus Y and then minus N. Optionally, the number of bits in the physical uplink shared channel frequency domain resource allocation field is 14. Optionally, the frequency hopping flag in the uplink grant is set to 1; optionally, the number of physical resource blocks in the initial uplink bandwidth portion is less than 50; optionally, the total number of bits X used to indicate uplink transmit beam information is set to 3; optionally, based on the fact that the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, N is equal to 1; optionally, if the first value is 1, then Y is set to X-1; optionally, based on the values of N, Y, and the number of bits in the physical uplink shared channel frequency domain resource allocation field, the distribution of each bit in the physical uplink shared channel frequency domain resource allocation field is shown in Table 4 below: Table 4
[0144] Optionally, the first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field.
[0145] Optionally, the reserved bit field (R) value is set to 0.
[0146] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0147] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0148] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the temporary identifier field of the temporary cell radio network is 16 bits in size.
[0149] Through the technical solution of this embodiment, the terminal device selects or determines at least one uplink transmit beam based on a first rule. Specifically, the first rule includes at least one of the following: among the bits used to indicate uplink transmit beam information, the highest bit is the bit occupied by the channel state information request field; among the bits used to indicate uplink transmit beam information, the lowest bit is the bit occupied by the channel state information request field; among the bits used to indicate uplink transmit beam information, the highest Y bit is the Y bit in the physical uplink shared channel frequency domain resource allocation field; and among the bits used to indicate uplink transmit beam information, the lowest Y bit is the Y bit in the physical uplink shared channel frequency domain resource allocation field. This embodiment establishes a clear and unified bit mapping rule for the terminal device to obtain the uplink transmit beam, enabling the terminal device to quickly and / or accurately parse the bit information related to the uplink transmit beam, thereby reducing beam decision delay, reducing processing complexity, and improving the efficiency and reliability of uplink transmission configuration.
[0150] Third Embodiment Based on any of the above embodiments of this application, a third embodiment of this application is proposed, which further discloses a method for determining the uplink transmission beam.
[0151] Optionally, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0152] Optionally, in response to receiving the first information, the terminal device selects or determines at least one uplink transmission beam based on the first rule.
[0153] Optionally, the first information includes a channel state information request field and / or a physical uplink shared channel time domain resource allocation field.
[0154] Optionally, the channel state information request field and / or the physical uplink shared channel time domain resource allocation field are included in the uplink grant of the first random access response.
[0155] Optionally, the channel state information request field and / or the physical uplink shared channel time domain resource allocation field are included in the uplink grant of the second random access response.
[0156] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit, Y bit, is the Y bit in the physical uplink shared channel time domain resource allocation field.
[0157] Optionally, the highest bit of the bits used to indicate uplink transmit beam information is the bit occupied by the channel state information request field. Optionally, the lowest bit Y of the bits used to indicate uplink transmit beam information is the Y bit in the physical uplink shared channel time domain resource allocation field.
[0158] Optionally, among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field. Optionally, among the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field.
[0159] Optionally, the value of Y can be 0, 1, X, or X. At least one of 1.
[0160] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0161] Optionally, the Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field.
[0162] Optionally, the X bits in the physical uplink shared channel time domain resource allocation field are the first X most significant bits of the physical uplink shared channel time domain resource allocation field.
[0163] Optionally, the number of bits used for the time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y.
[0164] Optionally, the number of bits used for the time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus X.
[0165] Optionally, the 4-Y least significant bits in the physical uplink shared channel time domain resource allocation field are used for physical uplink shared channel time domain resource allocation.
[0166] Optionally, the 4-X least significant bits in the physical uplink shared channel time domain resource allocation field are used for physical uplink shared channel time domain resource allocation.
[0167] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0168] Optionally, X can be 1 bit or 3 bits.
[0169] Optionally, if X is 1 bit, then Y can be 0 or 1.
[0170] Optionally, if X is 1 bit, the bits occupied by the channel state information request field are used to indicate the uplink transmit beam information.
[0171] Optionally, if X is 1 bit, the most significant bit of the physical uplink shared channel time domain resource allocation field is the bit used to indicate uplink transmit beam information.
[0172] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit is the bit occupied by the channel state information request field; and / or, among the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field. Optionally, the Y bits in the physical uplink shared channel time domain resource allocation field are the first Y most significant bits of the physical uplink shared channel time domain resource allocation field. Optionally, the total number of bits used to indicate uplink transmit beam information is X, and Y = X - 1. Optionally, the composition of the X bits used to indicate uplink transmit beam information is shown in Table 1.
[0173] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; and / or, among the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field. Optionally, the Y bits in the physical uplink shared channel time domain resource allocation field are the first Y most significant bits of the physical uplink shared channel time domain resource allocation field. Optionally, the total number of bits used to indicate uplink transmit beam information is X, and Y = X - 1. Optionally, the composition of the X bits used to indicate uplink transmit beam information is shown in Table 2.
[0174] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; optionally, the Y bits in the physical uplink shared channel time domain resource allocation field are the first Y most significant bits of the physical uplink shared channel time domain resource allocation field; optionally, the number of bits used for physical uplink shared channel time domain resource allocation is the number of bits occupied by the physical uplink shared channel time domain resource allocation field minus Y; optionally, the total number of bits used to indicate uplink transmit beam information is X, and Y = X; optionally, the total number of bits used to indicate uplink transmit beam information X is 2; optionally, based on the value of X and the number of bits in the physical uplink shared channel time domain resource allocation field, the distribution of each bit in the physical uplink shared channel frequency domain resource allocation field is shown in Table 5 below: Table 5
[0175] Optionally, the first rule includes: among the bits used to indicate uplink transmit beam information, the most significant bit Y is the Y bit in the physical uplink shared channel time-domain resource allocation field; therefore, the Y bits in the physical uplink shared channel time-domain resource allocation field are the first Y most significant bits of the physical uplink shared channel time-domain resource allocation field. Optionally, the number of bits used for physical uplink shared channel time-domain resource allocation is the number of bits occupied by the physical uplink shared channel time-domain resource allocation field minus Y. Optionally, the total number of bits used to indicate uplink transmit beam information is X, and Y = X - 1. Optionally, if the total number of bits used to indicate uplink transmit beam information X is 2, then the value of Y is 1. Optionally, based on the value of Y and the number of bits in the physical uplink shared channel time-domain resource allocation field, the distribution of each bit in the physical uplink shared channel frequency-domain resource allocation field is shown in Table 6 below: Table 6
[0176] Optionally, the first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field.
[0177] Optionally, the reserved bit field (R) value is set to 0.
[0178] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0179] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0180] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the size of the temporary identifier field of the temporary cell radio network is 16 bits.
[0181] Through the technical solution of this embodiment, the terminal device can select or determine at least one uplink transmit beam based on a first rule. Specifically, the first rule includes at least one of the following: among the bits used to indicate uplink transmit beam information, the highest bit is the bit occupied by the channel state information request field; among the bits used to indicate uplink transmit beam information, the lowest bit is the bit occupied by the channel state information request field; among the bits used to indicate uplink transmit beam information, the highest Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field; and among the bits used to indicate uplink transmit beam information, the lowest Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. This embodiment establishes a clear and unified bit mapping rule for the terminal device to obtain the uplink transmit beam, enabling the terminal device to quickly and / or accurately parse the bit information related to the uplink transmit beam, thereby reducing beam decision delay, reducing processing complexity, and improving the efficiency and reliability of uplink transmission configuration.
[0182] Fourth embodiment Based on any of the above embodiments of this application, a fourth embodiment of this application is proposed, which further discloses a method for determining the uplink transmission beam.
[0183] Optionally, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0184] Optionally, in response to receiving the first message, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0185] Optionally, the first information is sent by the network device.
[0186] Optionally, the first information includes an uplink transmit beam information indication field.
[0187] Optionally, the uplink transmit beam information indication field is included in the first random access response and / or the second random access response.
[0188] Optionally, the first rule includes: Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0189] The value of Y is X.
[0190] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0191] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0192] Optionally, X can be 1 bit or 3 bits.
[0193] Optionally, if X is 1 bit, the newly added uplink transmit beam information indication field in the first random access response is used to indicate the uplink transmit beam.
[0194] Optionally, if X is 1 bit, the uplink transmit beam information indication field in the second random access response is used to indicate the uplink transmit beam.
[0195] Optionally, the first random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink beam information indication field.
[0196] Optionally, the reserved bit field (R) value is set to 0.
[0197] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0198] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0199] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the size of the temporary identifier field of the temporary cell radio network is 16 bits. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and the size of the uplink transmit beam information indication field is X bits.
[0200] Optionally, the distribution of each field in the first random access response is shown in Table 7: Table 7
[0201] Optionally, the random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0202] Optionally, the second random access response includes a reserved bit field and / or an uplink transmit beam information indication field.
[0203] Optionally, the reserved bit field value is set to 0.
[0204] Optionally, the uplink beam information indication field is used to indicate uplink transmit beam information, and the size of the uplink transmit beam information indication field is X bits.
[0205] Optionally, the distribution of each field in the second random access response is shown in Table 8: Table 8
[0206] Optionally, the first random access response and the second random access response are located in the same Media Access Control Protocol (MAC) data unit.
[0207] Optionally, the first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units.
[0208] Optionally, the random access responses of terminal devices prior to R20 and those of terminal devices in R20 and later are located in independent Media Access Control Protocol (MAC) data units.
[0209] Optionally, the random access response of terminal devices prior to R20 can be a traditional random access response.
[0210] Optionally, the random access response of terminal equipment in R20 and later can be a first random access response and / or a second random access response.
[0211] Optionally, if there exists a cell that only allows R20 and later terminal devices to access, a third random access response can be redefined for R20 and later terminal devices.
[0212] Optionally, the third random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink transmit beam information indication field.
[0213] Optionally, the distribution of each field in the third random access response is shown in Table 7.
[0214] Optionally, for R20 and later terminal devices, a third random access response mechanism is introduced and redefined. This mechanism can effectively reduce the impact of the new random access response on existing traditional terminal devices; and / or, subsequent terminal devices can identify the new random access response, adapt to multi-physical random access channel transmission scenarios, and thus obtain optimal beam information.
[0215] Through the technical solution of this embodiment, the terminal device selects or determines at least one uplink transmit beam based on a first rule. Specifically, the first rule includes: among the bits used to indicate uplink transmit beam information, the highest bit (Y bit) is the Y bit in the uplink transmit beam information indication field. This embodiment establishes a clear and unified bit mapping rule for the terminal device to obtain the uplink transmit beam, enabling the terminal device to quickly and / or accurately parse the bit information related to the uplink transmit beam, thereby reducing beam decision delay, lowering processing complexity, and improving the efficiency and reliability of uplink transmission configuration.
[0216] Fifth embodiment Reference Figure 6 , Figure 6 This is a flowchart illustrating the processing method of the fifth embodiment of this application. The processing method of this embodiment can be applied to network devices (such as base stations), including step S1: Step S1: The network device sends first information to enable the terminal device to select or determine at least one uplink transmission beam based on the first rule.
[0217] This embodiment proposes a technical solution in which a network device sends first information to enable a terminal device to select or determine at least one uplink transmit beam based on a first rule. This can clearly indicate available and / or better uplink transmit beam information for message 3, thereby supporting improved transmission performance during random access.
[0218] Optionally, the first information is provided by the network device.
[0219] Alternatively, network equipment may be base stations, etc.
[0220] Optionally, the network device sends the first message.
[0221] Optionally, the terminal device receives the first information.
[0222] Optionally, in response to the received first information, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0223] Optionally, the first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field.
[0224] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0225] Optionally, the Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation field.
[0226] Optionally, the Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field.
[0227] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response.
[0228] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the second random access response.
[0229] Optionally, the uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0230] Optionally, the number of bits used for the allocation of frequency domain resources of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N.
[0231] Optionally, the number of bits used for the time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y.
[0232] The values of Y are 0, 1, X, and X. At least one of 1.
[0233] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0234] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0235] Optionally, X can be 1 bit or 3 bits.
[0236] Optionally, if X is 1 bit, then Y can be 0 or 1.
[0237] Optionally, if X is 1 bit, then the (N+1)th most significant bit of the physical uplink shared channel frequency domain resource allocation field is a bit used to indicate uplink transmit beam information.
[0238] Optionally, if X is 1 bit, the bits occupied by the channel state information request field are used to indicate the uplink transmit beam information.
[0239] Optionally, if X is 1 bit, the most significant bit of the physical uplink shared channel time domain resource allocation field is the bit used to indicate uplink transmit beam information.
[0240] Optionally, if X is 1 bit, the newly added uplink transmit beam information indication field in the first random access response is used to indicate the uplink transmit beam.
[0241] Optionally, if X is 1 bit, the uplink transmit beam information indication field in the second random access response is used to indicate the uplink transmit beam.
[0242] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1.
[0243] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2.
[0244] Optionally, if the frequency domain hopping flag in the uplink grant is set to 0, then N=0.
[0245] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N=1.
[0246] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N=2.
[0247] Optionally, the first random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink beam information indication field.
[0248] Optionally, the reserved bit field (R) value is set to 0.
[0249] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0250] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0251] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the size of the temporary identifier field of the temporary cell radio network is 16 bits. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and optionally, the size of the uplink transmit beam information indication field is X bits.
[0252] Optionally, the second random access response includes a reserved bit field and / or an uplink transmit beam information indication field. Optionally, the reserved bit field value is set to 0. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and the size of the uplink transmit beam information indication field is X bits.
[0253] Optionally, the first random access response and the second random access response are located in the same Media Access Control Protocol (MAC) data unit.
[0254] Optionally, the first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units.
[0255] Optionally, the random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0256] Optionally, if there exists a cell that only allows R20 and later terminal devices to access, a third random access response can be redefined for R20 and later terminal devices.
[0257] Optionally, the third random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink transmit beam information indication field.
[0258] Optionally, cells that allow R20 and later terminal devices to access the network are independent of cells that allow terminal devices prior to R20 to access the network.
[0259] Optionally, for R20 and later terminal devices, a third random access response mechanism is introduced and redefined. This mechanism can effectively reduce the impact of the new random access response on existing traditional terminal devices; and / or, subsequent terminal devices can identify the new random access response, adapt to multi-physical random access channel transmission scenarios, and thus obtain optimal beam information.
[0260] Through the technical solution of this embodiment, the network device sends first information so that the terminal device selects or determines at least one uplink transmission beam based on the first rule. This clarifies how to select or determine available and / or better uplink transmission beam information for message 3, thereby supporting improved data transmission performance.
[0261] Sixth Embodiment Reference Figure 7 , Figure 7 This application provides a processing method according to the sixth embodiment, which includes steps S1 and S2: (The sixth embodiment is a schematic diagram of the interaction process between a network device and a terminal device.) Step S1: The network device sends first information to enable the terminal device to determine at least one uplink transmission beam based on the first information; Step S2: The terminal device determines at least one uplink transmission beam based on the first information.
[0262] This embodiment proposes a technical solution whereby a network device sends first information, and a terminal device selects or determines at least one uplink transmission beam based on a first rule. This can clearly indicate available and / or better uplink transmission beam information for message 3, thereby supporting improved transmission performance during random access.
[0263] Optionally, the first information is provided by the network device.
[0264] Alternatively, network equipment may be base stations, etc.
[0265] Optionally, the network device sends the first message.
[0266] Optionally, the terminal device receives the first information.
[0267] Optionally, in response to the received first information, the terminal device selects or determines at least one uplink transmit beam based on the first rule.
[0268] Optionally, the first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field.
[0269] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0270] Optionally, the Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation field.
[0271] Optionally, the Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field.
[0272] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response.
[0273] Optionally, at least one of the physical uplink shared channel frequency domain resource allocation field, the channel state information request field, and the physical uplink shared channel time domain resource allocation field is included in the uplink grant of the second random access response.
[0274] Optionally, the uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0275] Optionally, the number of bits used for the allocation of frequency domain resources of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N.
[0276] Optionally, the number of bits used for the time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y.
[0277] The values of Y are 0, 1, X, and X. At least one of 1.
[0278] Optionally, X is the total number of bits used to indicate uplink transmit beam information.
[0279] Optionally, the value of X is related to the number of beams scanned in each random access attempt.
[0280] Optionally, X can be 1 bit or 3 bits.
[0281] Optionally, if X is 1 bit, then Y can be 0 or 1.
[0282] Optionally, if X is 1 bit, then the (N+1)th most significant bit of the physical uplink shared channel frequency domain resource allocation field is a bit used to indicate uplink transmit beam information.
[0283] Optionally, if X is 1 bit, the bits occupied by the channel state information request field are used to indicate the uplink transmit beam information.
[0284] Optionally, if X is 1 bit, the most significant bit of the physical uplink shared channel time domain resource allocation field is the bit used to indicate uplink transmit beam information.
[0285] Optionally, if X is 1 bit, the newly added uplink transmit beam information indication field in the first random access response is used to indicate the uplink transmit beam.
[0286] Optionally, if X is 1 bit, the uplink transmit beam information indication field in the second random access response is used to indicate the uplink transmit beam.
[0287] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1.
[0288] Optionally, if the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2.
[0289] Optionally, if the frequency domain hopping flag in the uplink grant is set to 0, then N=0.
[0290] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N=1.
[0291] Optionally, if the frequency hopping flag in the uplink grant is set to 1, and the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N=2.
[0292] Optionally, the first random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink beam information indication field.
[0293] Optionally, the reserved bit field (R) value is set to 0.
[0294] Optionally, for the Timing Advance Command Application Indication (TI) field, if the serving cell performing the random access procedure has two timing advance groups configured, then the Timing Advance Command Application Indication field indicates one of the two timing advance groups to which the timing advance command applies. Optionally, when the upper layer sets the higher layer parameter tag2-flag to true, the field value of 0 indicates the tag2-Id of the serving cell, and the field value of 1 indicates the tag-Id of the serving cell; otherwise, when the higher layer parameter tag2-flag is not set to true, the field value of 0 indicates the tag-Id, and the field value of 1 indicates the tag2-Id of the serving cell. Optionally, if the serving cell performing the random access procedure has not configured two timing advance groups, then this position is replaced by the R bit.
[0295] Optionally, the Timing Advance Command field indicates a timing advance index value, which controls the amount of timing adjustment that the media access control entity must apply in TS 38.213 [6]. Optionally, the size of the Timing Advance Command field is 12 bits.
[0296] Optionally, the uplink grant field indicates the resources used on the uplink in TS 38.213 [6], and optionally, the size of the uplink grant field is 27 bits. Optionally, the temporary identifier field of the temporary cell radio network indicates the temporary identifier used by the media access control entity during the random access process, and optionally, the size of the temporary identifier field of the temporary cell radio network is 16 bits. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and optionally, the size of the uplink transmit beam information indication field is X bits.
[0297] Optionally, the second random access response includes a reserved bit field and / or an uplink transmit beam information indication field. Optionally, the reserved bit field value is set to 0. Optionally, the uplink transmit beam information indication field is used to indicate uplink transmit beam information, and the size of the uplink transmit beam information indication field is X bits.
[0298] Optionally, the first random access response and the second random access response are located in the same Media Access Control Protocol (MAC) data unit.
[0299] Optionally, the first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units.
[0300] Optionally, the random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0301] Optionally, if there exists a cell that only allows R20 and later terminal devices to access, a third random access response can be redefined for R20 and later terminal devices.
[0302] Optionally, the third random access response includes at least one of the following: reserved bit field, timing advance command application indication field, timing advance command field, uplink authorization field, temporary cell radio network temporary identifier field, and uplink transmit beam information indication field.
[0303] Optionally, cells that allow R20 and later terminal devices to access the network are independent of cells that allow terminal devices prior to R20 to access the network.
[0304] Optionally, for R20 and later terminal devices, a third random access response mechanism is introduced and redefined. This mechanism can effectively reduce the impact of the new random access response on existing traditional terminal devices; and / or, subsequent terminal devices can identify the new random access response, adapt to multi-physical random access channel transmission scenarios, and thus obtain optimal beam information.
[0305] Through the technical solution of this embodiment, the network device sends the first information, and the terminal device selects or determines at least one uplink transmission beam based on the first rule. It can be clearly defined how to select or determine available and / or better uplink transmission beam information for message 3 to support the improvement of data transmission performance.
[0306] Seventh Embodiment Please see Figure 8 , Figure 8 Schematic diagram of the processing apparatus provided in the embodiments of this application Figure 1 This device can be mounted on or is the terminal device in the above method embodiments. For example... Figure 8 As shown, the processing device 160 includes: The determination module 1601 is used to select or determine at least one uplink transmit beam based on a first rule.
[0307] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0308] Optionally, the processing apparatus further includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0309] Optionally, the processing apparatus further includes at least one of the following; At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
[0310] Optionally, the processing apparatus further includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
[0311] Optionally, the processing apparatus further includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0312] The processing device provided in this application embodiment is similar in implementation principle and beneficial effect to the technical solution shown in the corresponding method embodiment above, and will not be described again here.
[0313] Eighth embodiment Please see Figure 9 , Figure 9 Schematic diagram of the processing apparatus provided in the embodiments of this application Figure 2 The device can be mounted on or is the network device in the above method embodiments. Figure 9 The processing apparatus shown can be used to perform some or all of the functions described in the method embodiments above. For example... Figure 9 As shown, the device 170 includes: The transmitting module 1701 is used to transmit first information so that the terminal device selects or determines at least one uplink transmission beam based on a first rule.
[0314] Optionally, the first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field.
[0315] Optionally, the first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
[0316] Optionally, the processing apparatus further includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
[0317] Optionally, the processing apparatus further includes at least one of the following: At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
[0318] Optionally, the processing apparatus further includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
[0319] Optionally, the processing apparatus further includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
[0320] The processing device provided in this application embodiment is similar in implementation principle and beneficial effect to the technical solution shown in the corresponding method embodiment above, and will not be described again here.
[0321] See Figure 10 , Figure 10This is a schematic diagram of the structure of a communication device provided in an embodiment of this application. Figure 10 As shown, the communication device 180 described in this embodiment can be a terminal device (or a component that can be used in a terminal device) or a network device (or a component that can be used in a network device) mentioned in the foregoing method embodiments. The communication device 180 can be used to implement the methods corresponding to the terminal device or network device described in the above method embodiments, as detailed in the descriptions in the above method embodiments.
[0322] The communication device 180 may include one or more processors 1801, which may also be referred to as processing units, and can perform certain control or processing functions. The processor 1801 may be a general-purpose processor or a dedicated processor, such as a baseband processor or a central processing unit. The baseband processor can be used to process communication protocols and communication data, while the central processing unit can be used to control the communication device, execute software programs, and process data from the software programs.
[0323] Optionally, the processor 1801 may also store instructions 1803 or data (e.g., intermediate data); optionally, the instructions 1803 may be executed by the processor 1801 to cause the communication device 180 to perform the methods described in the above method embodiments corresponding to the terminal device or network device.
[0324] Optionally, the communication device 180 may include a circuit that can perform the functions of sending, receiving, or communicating in the foregoing method embodiments.
[0325] Optionally, the communication device 180 may include one or more memories 1802, which may store instructions 1804 that can be executed on the processor 1801 to cause the communication device 180 to perform the methods described in the above method embodiments.
[0326] Alternatively, the memory 1802 may also store data. The processor 1801 and the memory 1802 can be configured separately or integrated together.
[0327] Optionally, the communication device 180 may further include a transceiver 1805 and / or an antenna 1806. The processor 1801, which may be referred to as a processing unit, controls the communication device 180 (terminal device, core network device, or wireless access network device). The transceiver 1805, which may be referred to as a transceiver unit, transceiver, transceiver circuit, or transceiver, is used to implement the transceiver functions of the communication device 180.
[0328] Optionally, if the communication device 180 is used to implement the operation corresponding to the terminal device in the above embodiments, for example, the transceiver 1805 may receive the first information; and the processor 1801 may select or determine at least one uplink transmission beam based on the first rule.
[0329] Optionally, the specific implementation process of the processor 1801 and transceiver 1805 can be found in the relevant descriptions of the above embodiments, and will not be repeated here.
[0330] Optionally, if the communication device 180 is used to implement the operation corresponding to the network device in the above embodiments, for example, the transceiver 1805 can send the first information.
[0331] Optionally, the specific implementation process of the processor 1801 and transceiver 1805 can be found in the relevant descriptions of the above embodiments, and will not be repeated here.
[0332] The processor 1801 and transceiver 1805 described in this application can be implemented on ICs (Integrated Circuits), analog integrated circuits, RFICs (Radio Frequency Integrated Circuits), mixed-signal integrated circuits, ASICs (Application Specific Integrated Circuits), PCBs (Printed Circuit Boards), electronic devices, etc. The processor 1801 and transceiver 1805 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.
[0333] In this application, the communication device can be a terminal device (such as a mobile phone) or a network device (such as a base station), depending on the context. Furthermore, the terminal device can be implemented in various forms. For example, the terminal devices described in this application can include mobile terminals such as mobile phones, tablets, laptops, PDAs, personal digital assistants (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.
[0334] Although the communication devices described above are exemplified as terminal devices or network devices, the scope of the communication devices described in this application is not limited to the aforementioned terminal devices or network devices, and the structure of the communication devices may vary. Figure 10 There are limitations. Communication equipment can be a standalone device or part of a larger device.
[0335] This application also provides a communication system, including: a terminal device as described in any of the above embodiments; and a network device as described in any of the above embodiments.
[0336] This application also provides a communication device, including a memory and a processor. The memory stores a processing program, and when the processing program is executed by the processor, it implements the steps of the processing method in any of the above embodiments.
[0337] The communication equipment mentioned in this application may be a terminal device (such as a mobile phone) or a network device (such as a base station). The specific meaning needs to be clarified according to the context.
[0338] This application also provides a computer-readable storage medium storing a processing program, which, when executed by a processor, implements the steps of the processing method in any of the above embodiments.
[0339] In the embodiments of the communication device and storage medium provided in this application, all the technical features of any of the above-described processing method embodiments may be included. The extended and explained contents of the specification are basically the same as the embodiments of the above methods, and will not be repeated here.
[0340] This application also provides a computer program product, which includes computer program code. When the computer program code is run on a computer, it causes the computer to perform the methods described in the various possible implementations above.
[0341] This application also provides a chip, including a memory and a processor. The memory is used to store a computer program, and the processor is used to call and run the computer program from the memory, so that a device with the chip installed performs the methods described in the various possible implementations above.
[0342] 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, as those skilled in the art will know, with the evolution of system architecture and the emergence of new business scenarios, the technical solutions provided in the embodiments of this application are also applicable to similar technical problems.
[0343] The sequence numbers of the embodiments in this application are for descriptive purposes only and do not represent the superiority or inferiority of the embodiments.
[0344] The steps in the method of this application embodiment can be adjusted, combined, or deleted according to actual needs.
[0345] The units in the device of this application embodiment can be merged, divided, and deleted according to actual needs.
[0346] In this application, the same or similar terms, concepts, technical solutions and / or application scenario descriptions are generally described in detail only when they appear for the first time. When they appear again, they are generally not repeated for the sake of brevity. When understanding the technical solutions and other contents of this application, the same or similar terms, concepts, technical solutions and / or application scenario descriptions that are not described in detail later can be referred to their previous relevant detailed descriptions.
[0347] In this application, the descriptions of the various embodiments have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.
[0348] The technical features of the present application can be combined in any way. For the sake of brevity, not all possible combinations of the 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 the present application.
[0349] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods of the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk) as described above, and includes several instructions to cause a terminal device (which may be a mobile phone, computer, server, controlled terminal device, or network device, etc.) to execute the methods of each embodiment of this application.
[0350] In the above embodiments, implementation can be achieved, in whole or in part, through software, hardware, firmware, or any combination thereof. When implemented in software, it can be implemented, in whole or in part, as a computer program product. A computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, all or part of the flow or function according to the embodiments of this application is generated. 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. 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, fiber optic, digital subscriber line) or wireless (e.g., infrared, wireless, microwave, etc.) means. 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 integrates one or more available media. The available medium can be a magnetic medium (e.g., floppy disk, storage disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium (e.g., solid state disk (SSD)).
[0351] The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.
Claims
1. A processing method, characterized in that, Applied to terminal devices, including the following steps: S2: Select or determine at least one uplink transmit beam based on the first rule.
2. The method according to claim 1, characterized in that, The first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
3. The method according to claim 2, characterized in that, It also includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
4. The method according to claim 3, characterized in that, It also includes at least one of the following; At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
5. The method according to claim 4, characterized in that, It also includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
6. The method according to claim 5, characterized in that, It also includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
7. A processing method, characterized in that, Applied to network devices, including the following steps: S1: Send first information to enable the terminal device to select or determine at least one uplink transmission beam based on a first rule.
8. The method according to claim 7, characterized in that, It also includes at least one of the following: The first information includes at least one of the following: physical uplink shared channel frequency domain resource allocation field, channel state information request field, physical uplink shared channel time domain resource allocation field, and uplink transmit beam information indication field; The first rule includes at least one of the following: Of the bits used to indicate uplink transmit beam information, the highest bit is occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the least significant bit is the bit occupied by the channel state information request field; Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the least significant bit Y is the Y bit in the physical uplink shared channel frequency domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the highest bit Y is the Y bit in the physical uplink shared channel time domain resource allocation field; Of the bits used to indicate uplink transmit beam information, the least significant bit Y bit is the Y bit in the physical uplink shared channel time domain resource allocation field. Of the bits used to indicate uplink transmit beam information, the most significant bit, Y bit, is the Y bit in the uplink transmit beam information indication field.
9. The method according to claim 8, characterized in that, It also includes at least one of the following: The Y bits in the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field are the N+1 to N+Y most significant bits of the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field; The Y bits in the Physical Uplink Shared Channel Time Domain Resource Allocation field are the first Y most significant bits of the Physical Uplink Shared Channel Time Domain Resource Allocation field; The uplink transmit beam information indication field is located in the first random access response and / or the second random access response.
10. The method according to claim 9, characterized in that, It also includes at least one of the following: At least one of the physical uplink shared channel frequency domain resource allocation field, channel state information request field, and physical uplink shared channel time domain resource allocation field is included in the uplink grant of the first random access response; At least one of the following fields—the Physical Uplink Shared Channel Frequency Domain Resource Allocation Field, the Channel State Information Request Field, and the Physical Uplink Shared Channel Time Domain Resource Allocation Field—is included in the uplink grant of the second random access response.
11. The method according to claim 10, characterized in that, It also includes at least one of the following: The number of bits used for the frequency domain resource allocation of the physical uplink shared channel is the number of bits occupied by the frequency domain resource allocation field of the physical uplink shared channel minus Y and then minus N; The number of bits used for time-domain resource allocation of the physical uplink shared channel is the number of bits occupied by the time-domain resource allocation field of the physical uplink shared channel minus Y; If the number of physical resource blocks in the initial uplink bandwidth portion is less than 50, then N equals 1; If the number of physical resource blocks in the initial uplink bandwidth portion is greater than 50, then N equals 2; The values of Y are 0, 1, X, and X. At least one of 1.
12. The method according to claim 11, characterized in that, It also includes at least one of the following: X is the total number of bits used to indicate uplink transmit beam information; The first random access response includes at least one of the following: a reserved bit field, a timed advance command application indication field, a timed advance command field, an uplink authorization field, and a temporary cell radio network temporary identifier field; The first random access response and the second random access response are located in the same Media Access Control Protocol data unit; The first random access response and the second random access response are located in two separate Media Access Control Protocol (Media Access Control) data units. The random access response, which includes the uplink transmit beam information indication field, is located in the last media access control sub-protocol data unit within the media access control protocol data unit.
13. A communication device, characterized in that, include: A memory and a processor, wherein the memory stores a processing program, and the processing program, when executed by the processor, implements the processing method as described in any one of claims 1 to 12.
14. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a processing program, which, when executed by a processor, implements the processing method as described in any one of claims 1 to 12.