Random access method and related device
By configuring the SSB wide beam to correspond to multiple narrow beams, the problem of frequent collisions of random access preambles is solved, and the access capacity and PRACH transmission performance are improved.
Patent Information
- Application Number
- CN202311464436.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-11-03
- Publication Date
- 2025-05-06
AI Technical Summary
In non-terrestrial network communication systems, due to the limited coverage range of single beam during random access, the collision frequency of the random access preamble is high, which affects the access capacity.
By configuring an SSB wide beam to correspond to multiple narrow beams, each narrow beam to correspond to one or more ROs, the terminal device selects the target narrow beam according to its position for random access to reduce the probability of collision.
It effectively reduces the collision probability of random access preambles, improves access capacity, and improves the transmission performance of PRACH.
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Figure CN119946892A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of communications, and in particular to a random access method and related devices. Background Art
[0002] In non-terrestrial network (NTN) communication systems, each satellite can generally cover a large area. Under a given link budget and system resources, satellite networks can improve the coverage area of a single beam through beam design to improve the coverage of the entire satellite. Due to the limited coverage of a single beam, a single satellite still needs a large number of beams to achieve wider coverage.
[0003] In the random access (RA) phase, the satellite, as a network device, needs to scan all beams in turn and configure random access resources for the terminal device. The random access process generally refers to the process from when the terminal device sends a random access preamble to try to access the network device to when the terminal device establishes a basic signaling connection with the network device. Currently, network devices can broadcast different synchronization signal blocks (SSBs) for different communication areas and distinguish the SSBs by the SSB index number. Different SSB index numbers represent downlink synchronization signals in different beam directions.
[0004] According to the 3rd Generation Partnership Project (3GPP) protocol definition, the terminal device can determine the corresponding random access occasion (RA occasion, RO) according to the SSB, and send a random access preamble on the RO through the physical random access channel (PRACH) to request access. Among them, the time-frequency resource location of the RO resource is configured by the network side.
[0005] However, the number of random access preambles available for the RO corresponding to an SSB wide beam is limited, and multiple terminal devices may select the same random access preamble, which will cause collisions of random access preambles and affect access capacity. Summary of the invention
[0006] The present application provides a random access method and related devices, which are beneficial to reducing the collision probability of sending random access preamble codes during random access and improving access capacity.
[0007] In the first aspect, a random access method is provided, which can be executed by a terminal device, or by a component of the terminal device (such as a processor, chip, or chip system, etc.), or by a logic module or software that can implement all or part of the terminal device functions.
[0008] The method includes: receiving configuration information from a network device, the configuration information is used to indicate that an SSB corresponds to multiple beams, each of the multiple beams corresponds to one or more ROs; determining a target beam from the multiple beams; and sending a random access preamble code to the network device at the RO corresponding to the target beam.
[0009] In the present application, SSB corresponds to multiple beams, which can be understood as a wide beam corresponding to one SSB (referred to as an SSB wide beam) can correspond to multiple narrow beams, that is, one SSB corresponds to multiple narrow beams (referred to as an SSB narrow beam). The coverage of one SSB wide beam includes the coverage of the multiple SSB narrow beams. The target beam is one of the multiple SSB narrow beams, and the location of the terminal device is within the coverage of the target beam.
[0010] It should be understood that one SSB originally corresponds to one wide beam, and one SSB wide beam has one or more corresponding ROs, while in the present application one SSB may correspond to multiple narrow beams, and each SSB narrow beam has its corresponding RO. In this way, the RO corresponding to one SSB wide beam may include the ROs corresponding to multiple SSB narrow beams.
[0011] In the scenario where a SSB wide beam covers multiple terminal devices, different terminal devices may be in the coverage of different SSB narrow beams. When different terminal devices select different SSB narrow beams as target beams, since different SSB narrow beams correspond to different ROs, collisions between different terminal devices when sending random access preambles can be avoided, thereby improving the access capacity within this wide beam. And since the gain of the SSB narrow beam is higher, it is beneficial to improve the transmission performance of the PRACH.
[0012] In combination with the first aspect, in certain implementations of the first aspect, determining a target beam from the multiple beams includes: obtaining the coverage range of at least one beam among the multiple beams; and determining the target beam from the at least one beam based on the location of the terminal device and the coverage range of the at least one beam.
[0013] In the present application, the at least one beam refers to at least one SSB narrow beam, and the number of the at least one beam is less than or equal to the number of the multiple beams. The terminal device obtains the coverage of at least one of the multiple beams, which means that when the terminal device determines the target beam, it can obtain the coverage of one SSB narrow beam among the multiple SSB narrow beams each time in a traversal manner, and determine whether the position of the terminal device is within the coverage of the SSB narrow beam. When the terminal device determines that its position is within the coverage of the SSB narrow beam, the terminal device stops detecting. This method is conducive to reducing the amount of calculation of the terminal device.
[0014] In combination with the first aspect, in certain implementations of the first aspect, before obtaining the coverage range of at least one beam among the multiple beams, the method also includes: receiving first information and beam pattern information from a network device, the first information being used to indicate the coverage range of the network device, and the beam pattern information being used to indicate the distribution of at least one SSB within the coverage range of the network device, the multiple beams corresponding to each SSB in at least one SSB, and the distribution of the multiple beams within the coverage range of the corresponding SSB; determining the coverage range of the at least one SSB based on the distribution of the at least one SSB within the coverage range of the network device; determining the coverage range of the multiple beams based on the distribution of the multiple beams within the coverage range of the corresponding SSB.
[0015] In combination with the first aspect, in certain implementations of the first aspect, before obtaining the coverage range of at least one beam among the multiple beams, the method also includes: receiving second information and coverage angle information of the beam, the second information being used to indicate the location of the network device, and the coverage angle information of the beam being used to indicate the coverage angle of each beam among the multiple beams; determining the coverage range of the multiple beams based on the location of the network device and the coverage angle information of the beam.
[0016] In combination with the first aspect, in certain implementations of the first aspect, before obtaining the coverage of at least one of the multiple beams, the method further includes: obtaining the center point coordinates of at least one of the multiple beams. Determining a target beam from the at least one beam according to the position of the terminal device and the coverage of the at least one beam includes: determining the distance between the terminal device and each of the at least one beam according to the position of the terminal device and the center point coordinates of the at least one beam; and determining the beam of the at least one beam whose distance to the terminal device meets a preset condition as the target beam.
[0017] In combination with the first aspect, in some implementations of the first aspect, the preset condition includes: less than or equal to a preset threshold; or, the distance is the shortest.
[0018] In combination with the first aspect, in certain implementations of the first aspect, before obtaining the center point coordinates of at least one beam among the multiple beams, the method also includes: receiving third information from a network device, the third information being used to indicate the center point coordinates of each beam among the multiple beams, or being used to indicate the distance between a reference point and each beam among the multiple beams and the coverage angle of each beam among the multiple beams; determining the center point coordinates of each beam among the multiple beams based on the third information.
[0019] On the second aspect, a random access method is provided, which can be executed by a network device, or by a component of a network device (such as a processor, chip, or chip system, etc.), or by a logic module or software that can implement all or part of the base station functions.
[0020] The method includes: sending configuration information to a terminal device, the configuration information is used to indicate that the SSB corresponds to multiple beams, each of the multiple beams corresponds to one or more ROs; receiving a random access preamble code from the terminal device, the random access preamble code is located on the RO corresponding to the target beam in the multiple beams.
[0021] In the present application, SSB corresponds to multiple beams, which can be understood as a wide beam corresponding to one SSB (referred to as an SSB wide beam) can correspond to multiple narrow beams, that is, one SSB corresponds to multiple narrow beams (referred to as an SSB narrow beam). The coverage of one SSB wide beam includes the coverage of the multiple SSB narrow beams. The target beam is one of the multiple SSB narrow beams, and the location of the terminal device is within the coverage of the target beam.
[0022] It should be understood that one SSB originally corresponds to one wide beam, and one SSB wide beam has one or more corresponding ROs, while in the embodiment of the present application, one SSB can correspond to multiple narrow beams, and each SSB narrow beam has its corresponding RO. In this way, the RO corresponding to one SSB wide beam can include ROs corresponding to multiple SSB narrow beams. In this way, when different terminal devices select different SSB narrow beams as target beams, since different SSB narrow beams correspond to different ROs, collisions when different terminal devices send random access preambles can be avoided, and network devices can receive random access preambles from different terminal devices on ROs corresponding to different SSB narrow beams, thereby improving the access capacity within this wide beam. And since the gain of the SSB narrow beam is higher, it is beneficial to improve the transmission performance of PRACH.
[0023] In combination with the second aspect, in some implementations of the second aspect, the method further includes: sending first information and beam pattern information to a terminal device, the first information being used to indicate the coverage of the network device, and the beam pattern information being used to indicate the distribution of at least one SSB within the coverage of the network device, the multiple beams corresponding to each SSB in the at least one SSB, and the distribution of the multiple beams within the coverage of the corresponding SSB. This is conducive to reducing the signaling overhead of the network device.
[0024] In conjunction with the second aspect, in some implementations of the second aspect, the method further includes: sending second information and beam coverage angle information to the terminal device, the second information is used to indicate the location of the network device, and the beam coverage angle information is used to indicate the coverage angle of each beam in the multiple beams. In this way, it is helpful to reduce the signaling overhead of the network device.
[0025] In combination with the second aspect, in some implementations of the second aspect, the method further includes: sending third information to the terminal device, the third information being used to indicate the coordinates of the center point of each of the multiple beams; or, being used to indicate the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams. Such an indication method is simple and direct, and is conducive to simplifying the operation of determining the coverage range of the multiple beams.
[0026] In a third aspect, a communication device is provided, including: a module for executing a method in any possible implementation of any of the above aspects. Specifically, the device includes a module for executing a method in any possible implementation of any of the above aspects.
[0027] In one design, the device may include a module corresponding to each of the methods / operations / steps / actions described in any of the above aspects. The module may be a hardware circuit, software, or a combination of hardware circuit and software.
[0028] In another design, the device is a communication chip, which may include an input circuit or interface for sending information or data, and an output circuit or interface for receiving information or data.
[0029] In another design, the apparatus is a terminal device or a network device, which may include a transmitter for sending information or data and a receiver for receiving information or data.
[0030] In another design, the apparatus is used to execute the method in any possible implementation of any of the above aspects, and the apparatus can be configured in a terminal device or a network device.
[0031] In a fourth aspect, a communication device is provided, comprising: a processor, wherein the processor is used to call and run a computer program from a memory, so that the device executes a method in any possible implementation manner of any of the above aspects.
[0032] Optionally, the device further comprises a memory, which can be used to store instructions and data. The memory is coupled to the processor, and when the processor executes the instructions stored in the memory, the methods described in the above aspects can be implemented.
[0033] Optionally, the device further includes: a transmitter (transmitter) and a receiver (receiver), and the transmitter and the receiver can be separately arranged or integrated together, which is called a transceiver (transceiver).
[0034] In a fifth aspect, a computer program product is provided, the computer program product comprising: a computer program (also referred to as code, or instruction), which, when executed, enables a computer to execute a method in any possible implementation of any of the above aspects.
[0035] In a sixth aspect, a computer-readable storage medium is provided, which stores a computer program (also referred to as code, or instruction) which, when executed on a computer, enables the computer to execute a method in any possible implementation of any of the above aspects.
[0036] In a seventh aspect, the present application provides a chip system comprising at least one processor for supporting the implementation of the functions involved in any of the above aspects, such as receiving or processing the data involved in the above method.
[0037] In one possible design, the chip system also includes a memory, which is used to store program instructions and data, and the memory is located inside or outside the processor.
[0038] Optionally, the chip system may consist of a chip, or may include a chip and other discrete devices. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] Figure 1 It is a schematic diagram of an extremely wide coverage scenario;
[0040] Figure 2 It is a schematic diagram of a random access phase and a service data transmission phase;
[0041] Figure 3 It is a schematic diagram of the mapping relationship between SSB and RO;
[0042] Figure 4 is a schematic diagram of a PRACH configuration;
[0043] Figure 5 It is a schematic diagram of a wide beam and a narrow beam;
[0044] Figure 6 It is a schematic diagram of a random access phase and a service data transmission phase provided by an embodiment of the present application;
[0045] Figure 7 It is a schematic diagram of the architecture of a communication system applicable to the embodiments of the present application;
[0046] Figure 8 It is a schematic diagram of the architecture of an NTN applicable to the embodiments of the present application;
[0047] Fig. 9 is a schematic diagram of a satellite communication scenario applicable to an embodiment of the present application;
[0048] Fig.10 is a schematic flow chart of a random access method provided in an embodiment of the present application;
[0049] Fig.11A and Fig. 11B It is a schematic diagram of RO configuration of SSB narrow beam provided in an embodiment of the present application;
[0050] Fig.12 is a schematic diagram of a beam coverage area provided in an embodiment of the present application;
[0051] Fig.13 and Fig.14 is a schematic diagram of a random access phase provided in an embodiment of the present application;
[0052] Fig.15 is a schematic flow chart of another random access method provided in an embodiment of the present application;
[0053] Fig.16 and Fig.17 is a schematic diagram of a beam coverage pattern provided in an embodiment of the present application;
[0054] Fig.18 is a schematic flow chart of another random access method provided in an embodiment of the present application;
[0055] Fig.19 is a schematic flow chart of another random access method provided in an embodiment of the present application;
[0056] Figure 20 to Figure 22 It is a schematic block diagram of a communication device provided in an embodiment of the present application. DETAILED DESCRIPTION
[0057] The technical solution in this application will be described below in conjunction with the accompanying drawings.
[0058] Before introducing the random access method and related devices provided in the embodiments of the present application, the following points are explained.
[0059] First, in the embodiments shown below, various terms and English abbreviations, such as configuration information, SSB, target beam, etc., are illustrative examples given for the convenience of description and should not constitute any limitation to this application. This application does not exclude the possibility of defining other terms that can achieve the same or similar functions in existing or future protocols.
[0060] Second, in the embodiments shown below, the first, second and various numerical numbers are only used for the convenience of description and are not used to limit the scope of the embodiments of the present application.
[0061] Third, "at least one" means one or more, and "more than one" means two or more. "And / or" describes the association relationship of associated objects, indicating that three relationships may exist. For example, A and / or B can mean: A exists alone, A and B exist at the same time, and B exists alone, where A and B can be singular or plural. The character " / " generally indicates that the associated objects before and after are in an "or" relationship. "At least one of the following items" or similar expressions refers to any combination of these items, including any combination of single items or plural items. For example, at least one of a, b and c can mean: a, or b, or c, or a and b, or a and c, or b and c, or a, b and c, where a, b, c can be single or multiple.
[0062] Fourth, "sending" and "receiving" in this application indicate the direction of signal transmission. For example, "sending a random access preamble code to a network device" can be understood as the destination end of the random access preamble code is the network device, which can include direct sending through the air interface, and also include indirect sending through the air interface by other units or modules. "Receiving configuration information from a network device" can be understood as the source end of the configuration information is the network device, which can include directly receiving from the network device through the air interface, and also include indirectly receiving from the network device through the air interface from other units or modules. "Sending" can also be understood as the "output" of the chip interface, and "receiving" can also be understood as the "input" of the chip interface.
[0063] In other words, sending and receiving can be performed between devices, for example, between a terminal device and a network device; it can also be performed within a device, for example, sending or receiving between components, modules, chips, software modules or hardware modules within the device through a bus, wiring or interface.
[0064] The following is an introduction to the relevant technologies and concepts involved in this application.
[0065] The sixth generation mobile communication technology (6G) and future communication systems are considered as follows: Figure 1 The extreme wide coverage scenario shown in Figure 1, in which the base station can provide services to terminal devices within a range of tens of kilometers. This scenario has the following characteristics: first, the transmission distance is long, the path loss is large, and the power on the base station and terminal device side is limited; second, the base station is located at a high position, and the channel between the base station and the user approaches the line of sight (LOS) transmission of the wireless channel; third, the extreme wide coverage must not only meet the access of users within the full coverage, but also ensure user performance.
[0066] In the context of extremely wide coverage, there may be a variety of scenario requirements, such as satellite scenarios, where the large coverage area of satellites can meet the access needs of more users. Another example is the ultra-large coverage of tens of kilometers on the ground.
[0067] Since satellites have the advantages of being less susceptible to natural disasters or external damage, research is currently underway to use satellites as access network devices (e.g., base stations) in mobile communication systems to provide communication services to oceans, forests, and other areas. Unlike ground base stations, satellites move faster relative to the ground and have longer signal propagation distances, which results in greater signal path loss when satellites are used as base stations (which can be called satellite base stations). The communication mechanisms designed for terminal devices and ground base stations in current mobile communication systems cannot be directly applied to the communication between terminal devices and satellites. Therefore, in order to enable satellites to provide communication services to terminal devices as base stations, how the communication signals between terminal devices and satellite base stations overcome signal path loss to improve coverage, and how to ensure that terminal devices stably complete initial access and reduce access delays are issues that need to be addressed.
[0068] In order to support wider business coverage, network equipment may need to provide network services for a larger communication area. Taking the NTN communication system as an example, each satellite / high-altitude platform / base station can usually cover a large area. Under a given link budget and system resources, the satellite improves the coverage area of a single beam through beam design to improve the coverage of the entire satellite. However, due to the limited coverage of a single beam, a single satellite still needs a large number of beams to achieve wider coverage.
[0069] Among them, the beam is the main lobe of the directional array diagram of a signal. The coverage of a beam refers to the projection range of the beam on the ground. The network device can adjust the weight of the antenna so that the beam sent by the network device points to different directions and has different coverage. The coverage of the beam discussed in this application refers to the coverage of the beam on the ground. As the satellite base station moves and the weight is adjusted, the coverage of the beam will also change accordingly.
[0070] In the random access phase, the satellite acts as a network device and scans all beams in turn to configure random access resources for the terminal device. Among them, the random access process generally refers to the process from the terminal device sending a random access preamble to start trying to access the network device to the establishment of a basic signaling connection between the terminal device and the network device. At present, the network device can broadcast different SSBs for different communication areas and distinguish different SSBs by the index number of the SSB. Usually, different SSB index numbers indicate downlink synchronization signals in different beam directions, covering and serving different areas. After receiving the SSB, the terminal device completes timing synchronization and confirms the time-frequency position of the system information block 1 (system information block, SIB1) according to the information indication in the SSB, and completes the parsing of SIB 1 to obtain the cell information. According to the search space of SIB19 configured in SIB1, SIB19 is detected and data parsing is completed to obtain the satellite's ephemeris information. After obtaining the cell information and / or ephemeris information, the terminal device sends a random access preamble in the corresponding uplink resource according to the configuration information and the index of the SSB. For the network device, the area where the terminal device is located can be determined through the received random access preamble code and the corresponding uplink resources, and a connection can be established with the terminal device.
[0071] Figure 2 It is a schematic diagram of the random access phase and the service data transmission phase, and briefly introduces the four-step random access process of the new radio (NR). Among them, the random access process includes: the network device uses a wide beam to send SSB to the terminal device. The terminal device receives SIB1 according to the SSB, and obtains cell information, RO resource configuration information, etc. from SIB1. The terminal device determines the RO to be used according to the index of the SSB and the RO resource configuration information, and performs physical random access channel (PRACH) transmission on the determined RO to make a random access request. After receiving PRACH, the network device sends a random access response (RAR) to the terminal device, and through RAR scheduling, the terminal device sends message 3 (message 3) on the corresponding time-frequency resource to make a radio resource control (RRC) setup request (setup request). After receiving message 3, the network device sends message 4 (message 4) to the terminal device to establish RRC. After receiving message 4, the terminal device sends message 5 to the network device to complete the initial access process.
[0072] In the random access phase mentioned above, the network device and the terminal device use wide beams to complete the initial access process. In the service data transmission phase, the network device obtains channel state information (CSI) or user location, and uses narrow beams to transmit service data to improve link budget and communication rate.
[0073] During the initial access process in the extreme wide coverage scenario, PRACH is associated with SSB, and the same wide beam is used to send PRACH for random access. The subsequent uplink and downlink data can only obtain a narrow beam for transmission after the access is completed.
[0074] It should be noted that wide beam and narrow beam are relative concepts. The width of the beam refers to the angle of the beam, which can affect the coverage of the beam. A wide beam means that the angle of the beam is larger and the coverage is wider. A narrow beam means that the angle of the beam is smaller and the coverage is narrow.
[0075] Although using a wide beam corresponding to SSB during random access can ensure full coverage, the gain of the wide beam is low and the transmission performance is limited.
[0076] According to the 3GPP protocol definition, the terminal device can determine the corresponding RO according to the SSB, and perform PRACH transmission on the RO to initiate a random access request. The time-frequency resource location of the RO is configured by the network device side. Among them, PRACH transmission includes the terminal device sending a random access preamble code to the base station.
[0077] The network device can specify the time domain format of RO through the format table, and specify the mapping relationship between RO and SSB in the frequency domain through parameters. Figure 3 This is a schematic diagram of the mapping relationship between SSB and RO. Figure 3 As shown, the mapping relationship between RO and SSB in the frequency domain can be one-to-one, such as Figure 3 There is a mapping relationship between SSB_0 and RO_0 in ; it can also be many-to-one, such as Figure 3 RO_0, RO_1, RO_2, and RO_3 in the table all have a mapping relationship with SSB_0; it can also be one-to-many, such as Figure 3 RO_0 in the table has a mapping relationship with SSB_0, SSB_1, SSB_2, and SSB_3 respectively.
[0078] In addition to sending the mapping relationship between RO and SSB to the terminal device, the network device may also send RO resource configuration information to the terminal device. Table 1 shows a type of RO resource configuration information with a random access configuration index of 251.
[0079] Table 1
[0080]
[0081] In Table 1, the RACH configuration period is in units of radio frames, which is determined by the period x and the offset value y. SFN )mod(x)=y. The random access preamble format (also called preamble format) is C2, the subframe numbers where RO exists are 2 and 7, and the starting symbol is l 0 =0 indicates that the starting position of the first RO in the time domain is symbol 0. Indicates the number of 30 kHz PRACH slots corresponding to one subframe. Indicates the number of ROs that can be configured for each PRACH time slot. Indicates the number of symbols occupied by random access time domain resources. According to Table 1, we can get Figure 4 The configuration diagram of PRACH is shown in FIG.
[0082] like Figure 4 As shown, there are 10 subframes in a 10 millisecond (ms) system frame, the subframe numbers of which are RO are 2 and 7, and 1 subframe corresponds to 2 30 kHz PRACH time slots. Each PRACH time slot can be configured with 2 time domain ROs, for example, so 8 time domain ROs can be configured within 10 ms.
[0083] After the network device sends multiple SSBs to the terminal device, the terminal device selects an RO corresponding to one of the SSBs to transmit a random access preamble, and the network device receives the PRACH sent by the terminal device on the RO.
[0084] In order to improve the transmission performance of the beam, in a possible implementation, the network device may divide the system information into cell-level system information and regional-level system information. Among them, the cell-level system information includes an extended master information block (master information block extended, MIB-E), and the regional-level system information includes the remaining system information block (system information block remaining, SIB-R). MIB-E is used to carry the system information necessary for the terminal device to initiate PRACH transmission, which reduces the amount of carried information and can improve the link budget to a certain extent. In addition, the use of MIB-E under a limited link budget reduces the number of system information carrying bits, which is beneficial to improving transmission performance. At the same time, the correspondence between a wide beam and multiple regional-level narrow beams (regional-level narrow beams may be referred to as narrow beams in this application) is defined, and the coverage range of a wide beam includes the coverage range of multiple narrow beams, and the coverage range of a narrow beam is smaller than the coverage range of a wide beam.
[0085] Figure 5 It is a schematic diagram of wide beam and narrow beam. Figure 5 As shown, the coverage of a wide beam includes the coverage of three narrow beams: narrow beam 0, narrow beam 1 and narrow beam 2.
[0086] Based on the above method, Figure 6 Schematic diagram of a random access phase and a service data transmission phase provided by an embodiment of the present application. Figure 6 As shown in the figure, during the random access phase, the network device can use a wide beam to send SSB and MIB-E to ensure wide coverage of necessary information. After receiving MIB-E, the terminal device uses a wide beam for PRACH transmission.
[0087] In one possible implementation, the base station uses multiple narrow beams (eg Figure 5 The narrow beam 0, narrow beam 1, and narrow beam 2 in the PRACH are received concurrently to locate the position of the terminal device and determine the target narrow beam (e.g. Figure 5 The terminal device is located within the coverage of the target narrow beam. The base station sends subsequent SIB-R, RAR, and message 4 to the terminal device through the target narrow beam to improve the transmission performance of the channel. The terminal device opens a receiving window and receives SIB-R, RAR, and message 4 within the receiving window.
[0088] In another possible implementation, when the terminal device uses a wide beam for PRACH transmission, it can simultaneously send the location information of the terminal device to the base station, and the base station can determine the above-mentioned target narrow beam according to the location information of the terminal device.
[0089] During the service data transmission phase, the base station and terminal equipment use narrow beams for uplink and downlink data transmission.
[0090] In the random access process of the above method, PRACH is associated with SSB and the same wide beam is used for PRACH transmission. However, when the terminal device transmits PRACH according to the RO resource corresponding to the wide beam, the number of random access preambles available for the RO resource corresponding to a wide beam is limited, so collision of random access preambles is prone to occur, affecting the access capacity. In addition, due to the low gain of the wide beam, the performance of PRACH transmission is limited.
[0091] In view of this, an embodiment of the present application provides a random access method and apparatus thereof, in which a network device can configure a wide beam corresponding to multiple narrow beams, each narrow beam corresponding to one or more ROs, and terminal devices in different areas can send random access preambles on the ROs corresponding to the narrow beams to which they belong, which is conducive to reducing the collision probability of sending random access preambles during random access and improving access capacity. In addition, since a narrow beam is used for PRACH transmission, the gain of the narrow beam is higher, which is conducive to improving the transmission performance of PRACH.
[0092] When the terminal device is located within the coverage of a narrow beam, the narrow beam is the narrow beam to which the terminal device belongs.
[0093] Figure 7 700 is a schematic diagram of the architecture of a communication system 700 applicable to the embodiment of the present application. Figure 7 As shown, the communication system 700 may include at least one access network device (such as Figure 7 110a, 110b, 110c), and may also include at least one terminal (such as Figure 7 120a-120g in FIG. 120b). The access network devices may be connected to each other via wired or wireless means. Figure 7 This is just a schematic diagram, and the communication system may also include other network devices, for example, wireless relay equipment and wireless backhaul equipment.
[0094] Figure 8 Schematic diagram of an NTN architecture applicable to the embodiment of the present application. Figure 8As shown, the satellite has some or all of the functions of an access network device and can be called a satellite base station. The satellite base station can provide wireless access services and schedule wireless resources for terminal devices that access the network through the satellite base station. The satellite base station communicates with the terminal device through the user-universal terrestrial radio access network-user (Uu) interface. Among them, the satellite base station and the core network (CN) can communicate through the next generation network (NG) interface. The satellite base station and the core network can exchange the core network's non-access stratum (NAS) signaling and user service data through the NG interface. The satellite radio interface (SRI) is the feeder link between the NTN gateway and the satellite. Figure 8 In the NG, SRI can be used as part of the NG interface to achieve communication interaction between the satellite and the core network.
[0095] Fig. 9 The communication scenario shown can be called a satellite communication scenario, in which the network equipment includes satellite equipment and a gateway. The terminal equipment includes an Internet of Things terminal, and can also be a terminal of other forms and performances, such as a mobile phone terminal, a high-altitude aircraft, etc., which are not limited here. The link between the satellite and the terminal equipment (or user terminal) is called a service link, and the link between the satellite and the gateway is called a feeder link. The solution of the present application can also be applied to Fig. 9 The communication scenario shown is an expansion of the multi-satellite communication scenario.
[0096] Optionally, satellite equipment can be divided into transparent mode and regenerative mode according to the working mode. When the satellite works in transparent mode, the satellite has the function of relaying. The gateway station / signal gateway station has the function of base station or part of the base station function, and the gateway station / signal gateway station can be regarded as a base station.
[0097] Optionally, when the satellite operates in regeneration mode, the satellite has data processing capabilities, has the functions of a base station or partial base station functions, and the satellite can be regarded as a base station. It should be noted that the technical solution of the embodiment of the present application is applicable to a communication system that integrates terrestrial communication and satellite communication, and the communication system may also be referred to as an NTN communication system. Among them, the terrestrial communication system may be, for example, a long term evolution (LTE) system, a universal mobile telecommunication system (UMTS), a fifth generation mobile communication technology (5G) communication system or a new radio (NR) system, or a communication system that is the next step in the development of the 5G communication system, etc., which is not limited here.
[0098] Among them, satellite communication systems have a wider coverage than traditional mobile communication systems and can overcome natural geographical obstacles such as oceans, deserts, and mountains. In order to overcome the shortcomings of traditional communication networks, satellite communication can be used as an effective supplement to traditional networks.
[0099] According to the orbital altitude of the satellite, the satellite communication system can be divided into the following three types: geostationary earth orbit (GEO) satellite communication system (also known as synchronous orbit satellite system), medium earth orbit (MEO) satellite communication system and low earth orbit (LEO) satellite communication system.
[0100] GEO satellites are also generally called geostationary orbit satellites, and their orbital altitude can be 35,786 kilometers (km). Their main advantage is that they are stationary relative to the ground and can provide a large coverage area. However, GEO satellites also have relatively prominent disadvantages: for example, they are too far away from the earth, requiring a larger diameter antenna; the transmission delay is large, at about 0.5 seconds, which cannot meet the needs of real-time services; at the same time, their orbital resources are relatively tight, the launch cost is high, and they cannot provide coverage for the polar regions.
[0101] The orbital altitude of MEO satellites is between 2000 and 35786 km. A relatively small number of satellites can achieve global coverage, but their transmission delay is higher than that of LEO satellites. They are mainly used for positioning and navigation.
[0102] The orbital altitude of LEO satellites is between 300 and 2000 km. Compared with MEO and GEO satellites, LEO satellites have lower orbital altitudes, smaller data transmission delays, smaller power losses, and relatively lower launch costs. Therefore, LEO satellite communication networks have received widespread attention in recent years.
[0103] It is generally believed that NTN communication has different channel characteristics compared with terrestrial communication, such as large transmission delay and large Doppler frequency deviation. For example, the round-trip delay of GEO satellite communication is 238-270 (ms). The round-trip delay of LEO satellite communication is 8ms-20ms.
[0104] The network device provided in the embodiment of the present application may be a base station, a Node B, an evolved Node B (eNodeB or eNB), a transmission reception point (TRP), a next generation Node B (gNB) in a 5G mobile communication system, an access network device in an open radio access network (O-RAN or open RAN), or a next generation base station in 6G. Alternatively, the network device may also be a satellite base station in an NTN communication network (such as a Figure 8 The access network device may be a satellite base station (such as a satellite base station in a future mobile communication system), or a base station in a future mobile communication system, or an access node in a wireless fidelity (WiFi) system. Alternatively, the network device may also be a module or unit that performs some functions of a base station, for example, a centralized unit (CU), a distributed unit (DU), a centralized unit control plane (CU control plane, CU-CP) module, or a centralized unit user plane (CU user plane, CU-UP) module. ... Figure 7 110a), or a macro base station (such as Figure 7 110b), the access network device may also be a micro base station or an indoor station (such as Figure 7 110c), it can also be a relay node or a host node, etc. The specific technology and specific device form adopted by the access network device are not limited in this application. Among them, the 5G mobile communication system can also be called an NR mobile communication system. The access network node in this application can be an access network device, or it can be a module or unit configured in the access network device.
[0105] The terminal device provided in the embodiment of the present application may also be referred to as a terminal, user equipment (UE), a mobile station, or a mobile terminal, etc. The terminal device can be widely used in various scenarios for communication. The scenario includes, for example, but is not limited to at least one of the following scenarios: enhanced mobile broadband (eMBB), ultra-reliable low-latency communication (URLLC), massive machine-type communications (mMTC), device-to-device (D2D), vehicle to everything (V2X), machine-type communication (MTC), Internet of Things (IOT), virtual reality, augmented reality, industrial control, autonomous driving, telemedicine, smart grid, smart furniture, smart office, smart wearable, smart transportation, or smart city, etc. The terminal may be a mobile phone (such as Figure 7 Mobile phones 120a, 120d, 120f), tablet computers, computers with wireless transceiver functions (such as Figure 7 Computers 120g in the market), wearable devices, vehicles (such as Figure 7 120b), helicopters, airplanes, drones (such as Figure 7 120c in ), ships, robots, robotic arms, or smart home devices (such as Figure 7 The present application does not limit the specific technology and specific device form adopted by the terminal device.
[0106] The base station and / or terminal device can be fixed or movable. The base station and / or terminal device can be deployed on land, including indoors or outdoors, handheld or vehicle-mounted; or can be deployed on the water surface; or can be deployed on aircraft, balloons and artificial satellites in the air. This application does not limit the environment / scenario in which the base station and terminal device are located. The base station and terminal device can be deployed in the same or different environments / scenarios, for example, the base station and terminal device are deployed on land at the same time; or, the base station is deployed on land and the terminal device is deployed on the water surface, etc., which will not be listed one by one here. This application does not limit the communication method between terminal devices.
[0107] In the embodiments of the present application, the terminal devices and network devices may be hardware devices, or software functions running on dedicated hardware, or software functions running on general-purpose hardware, such as virtualization functions instantiated on a platform (e.g., a cloud platform), or entities including dedicated or general-purpose hardware devices and software functions. The present application does not limit the specific forms of the terminal devices and network devices.
[0108] Fig.10 1 is a schematic flow chart of a random access method 1000 provided in an embodiment of the present application. The method 1000 involves interaction between a terminal device and a network device, wherein the network device may be, for example, a satellite base station, and the terminal device may be, for example, a mobile phone. The embodiment of the present application does not limit the specific forms of the network device and the terminal device.
[0109] The method 1000 includes S1001 to S1003, and the specific steps are as follows:
[0110] S1001, a network device sends configuration information to a terminal device, where the configuration information is used to indicate that an SSB corresponds to multiple beams, and each of the multiple beams corresponds to one or more ROs. Correspondingly, the terminal device receives the configuration information.
[0111] Among them, SSB corresponds to multiple beams means that one SSB corresponds to multiple narrow beams (for example Figure 5 The wide beam described in the specification corresponds to narrow beam 0, narrow beam 1 and narrow beam 2). It should be understood that originally one SSB corresponds to one wide beam, but in the present application one SSB corresponds to multiple narrow beams, that is, a wide beam corresponding to one SSB may correspond to multiple narrow beams. The coverage of a wide beam corresponding to one SSB may include the coverage of multiple narrow beams corresponding to the SSB. The ROs corresponding to multiple narrow beams are different from each other.
[0112] For the sake of convenience of description, the wide beam corresponding to SSB is referred to as the SSB wide beam, and the narrow beam corresponding to SSB is referred to as the SSB narrow beam.
[0113] The network device can define RO resources according to the number of SSB narrow beams. For example, if the number of multiple SSB narrow beams is N and N=2, N is 2, which means that one SSB wide beam corresponds to two SSB narrow beams, or one SSB wide beam can be split into two SSB narrow beams.
[0114] Exemplarily, the network device indicates that SSB_0 (SSB_0 can represent the SSB with index number 0) corresponds to two SSB narrow beams, including SSB narrow beam 0 and SSB narrow beam 1, and the wide beam corresponding to SSB_0 is SSB wide beam 0, and SSB wide beam 0 has a mapping relationship with RO_0. In the case where SSB wide beam 0 corresponds to SSB narrow beam 0 and SSB narrow beam 1, when configuring the RO resources of SSB wide beam 0, the network device can divide RO_0 into RO_0_0 corresponding to SSB narrow beam 0 and RO_0_1 corresponding to SSB narrow beam 1, which is equivalent to the original SSB wide beam 0 corresponding to one RO_0, while the RO resources corresponding to SSB wide beam 0 in the present application include RO_0_0 and RO_0_1. Among them, RO_0_0 and RO_0_1 are different.
[0115] Fig.11A This is a schematic diagram of an RO configuration of an SSB narrow beam provided in an embodiment of the present application. Fig.11A Can be combined with the above Figure 4 The description of Fig.11A As shown, the subframe with subframe number 2 includes four ROs, RO_0, RO_1, RO_2, and RO_3. Before the network device adds the correspondence between the SSB wide beam and multiple SSB narrow beams, it is assumed that SSB wide beam 0 corresponds to RO_0, SSB wide beam 1 corresponds to RO_1, SSB wide beam 2 corresponds to RO_2, and SSB wide beam 3 corresponds to RO_3. After the network device adds the correspondence between the SSB wide beam and multiple SSB narrow beams, the RO corresponding to the SSB wide beam may include the RO corresponding to multiple SSB narrow beams.
[0116] For example, after adding SSB narrow beam 0_0 and SSB narrow beam 0_1 corresponding to SSB wide beam 0, the RO corresponding to SSB wide beam 0 may include RO_0_0 and RO_0_1, where RO_1_0 and RO_1_1 are ROs corresponding to SSB narrow beam 0_0 and SSB narrow beam 0_1, respectively.
[0117] For example, after adding SSB narrow beam 1_0 and SSB narrow beam 1_1 corresponding to SSB wide beam 1, the RO corresponding to SSB wide beam 1 may include RO_1_0 and RO_1_1, where RO_1_0 and RO_1_1 are ROs corresponding to SSB narrow beam 1_0 and SSB narrow beam 1_1, respectively.
[0118] For example, after adding SSB narrow beam 2_0 and SSB narrow beam 2_1 corresponding to SSB wide beam 2, the RO corresponding to SSB wide beam 2 may include RO_2_0 and RO_2_1, where RO_2_0 and RO_2_1 are ROs corresponding to SSB narrow beam 2_0 and SSB narrow beam 2_1, respectively.
[0119] For example, after adding SSB narrow beam 3_0 and SSB narrow beam 3_1 corresponding to SSB wide beam 3, the RO corresponding to SSB wide beam 3 may include RO_3_0 and RO_3_1, where RO_3_0 and RO_3_1 are ROs corresponding to SSB narrow beam 3_0 and SSB narrow beam 3_1, respectively.
[0120] In the above example, each SSB narrow beam corresponds to one RO. In addition, the SSB narrow beam can also correspond to multiple ROs.
[0121] In one possible case, the maximum number of ROs that can be configured in a PRACH time slot is 2. Fig.11A Taking the PRACH time slot with the time slot number of 4 (PRACH time slot #4) as an example, at most two ROs, RO_0 and RO_1, can be configured. Fig.11A Taking the PRACH time slot with the time slot number of 5 (PRACH time slot #5) as an example, at most two ROs, RO_2 and RO_3, can be configured. In this case, after the network device adds the correspondence between the SSB wide beam and multiple SSB narrow beams, the RO resources under one PRACH time slot can no longer be split. In response to this situation, the network device can configure the 30kHZ PRACH time slot to double, and increase the number of ROs in the system frame by increasing the number of PRACH time slots that can be configured with ROs.
[0122] In view of the above situation, Fig. 11B FIG. 1 is another schematic diagram of RO configuration of SSB narrow beam provided in an embodiment of the present application. Fig. 11B As shown, the subframe numbers with RO are 2, 3, 7, and 8, and 1 subframe corresponds to 2 30kHZ PRACH time slots. For example, subframe #2 corresponds to PRACH time slot #4 and PRACH time slot #5, and subframe #3 corresponds to PRACH time slot #6 and PRACH time slot #7. Each PRACH time slot can be configured with 2 time domain ROs.
[0123] Exemplarily, the RO corresponding to PRACH time slot #4 includes RO_0 and RO_1, the RO corresponding to PRACH time slot #5 includes RO_2 and RO_3, the RO corresponding to PRACH time slot #6 includes RO_4 and RO_5, and the RO corresponding to PRACH time slot #7 includes RO_6 and RO_7. After the network device adds the correspondence between the SSB wide beam and multiple SSB narrow beams, for example, SSB wide beam 0 corresponds to SSB narrow beam 0_0 and SSB narrow beam 0_1, SSB wide beam 1 corresponds to SSB narrow beam 1_0 and SSB narrow beam 1_1, SSB wide beam 2 corresponds to SSB narrow beam 2_0 and SSB narrow beam 2_1, and SSB wide beam 3 corresponds to SSB narrow beam 3_0 and SSB narrow beam 3_1, then the network device can configure SSB narrow beam 0_0 to correspond to RO_0, SSB narrow beam 0_1 to correspond to RO_1, SSB narrow beam 1_0 to correspond to RO_2, SSB narrow beam 1_1 to correspond to RO_3, SSB narrow beam 2_0 to correspond to RO_4, SSB narrow beam 2_1 to correspond to RO_5, SSB narrow beam 3_0 to correspond to RO_6, and SSB narrow beam 3_1 to correspond to RO_7.
[0124] The number N of multiple SSB narrow beams corresponding to the SSB wide beam can be flexibly configured according to different requirements. For example, for different coverage areas, the value of N can be the same or different.
[0125] In one possible implementation, for example Fig.12 As for the sub-satellite area shown in the figure, there are many users, but the number of random access preambles available for one RO is limited, so it is easy for collisions to occur when different users send random access preambles, affecting access performance. Based on this, the network device can configure a larger N value for the sub-satellite area, such as N=4, which means that one SSB corresponds to four narrow beams, that is, one SSB wide beam corresponds to four SSB narrow beam RO resources.
[0126] In another possible implementation, for example Fig.12 As for the edge area shown in the figure, the number of users is small, and the probability of collision when different users send random access preamble codes is small. Based on this, the network device can configure a smaller N value for the edge area, for example, N=2, which means that one SSB corresponds to two narrow beams, that is, one SSB wide beam corresponds to the RO resources of two SSB narrow beams.
[0127] By flexibly configuring the N value of different areas, it is helpful to avoid unnecessary resource overhead caused by configuring a unified N value.
[0128] S1002, the terminal device determines a target beam from the multiple beams.
[0129] Based on the above description of S1001, the terminal device can determine that the SSB corresponds to multiple SSB narrow beams according to the indication of the configuration information. Different SSB narrow beams have their own corresponding ROs. The terminal device can select an SSB narrow beam from multiple SSB narrow beams as a target beam, and then the terminal device can send a random access preamble code on the RO corresponding to the target beam for random access.
[0130] How to determine the target beam from multiple beams is described in detail below and will not be described in detail here.
[0131] S1003, the terminal device sends a random access preamble to the network device, where the random access preamble is located on the RO corresponding to the target beam. Correspondingly, the network device receives the random access preamble. In other words, the terminal device sends a random access preamble to the network device at the RO corresponding to the target beam.
[0132] Based on the above description of S1002, after determining the target beam, the terminal device can send a random access preamble on the RO corresponding to the target beam for random access (i.e., perform PRACH transmission on the RO corresponding to the target beam), and the network device can detect multiple beams in sequence to receive the random access preamble. Because the terminal device sends the random access preamble on the RO corresponding to the target beam, that is, the random access preamble is located on the RO corresponding to the target beam among the multiple beams, the network device can detect the random access preamble on the target beam. Afterwards, the network device and the terminal device can transmit messages through the target beam to complete the random access process, thereby realizing the transmission of service data.
[0133] Fig.13 is a schematic diagram of a random access phase provided by an embodiment of the present application. Fig.13 As shown, the random access phase includes: the network device uses the SSB wide beam to send the SSB. The terminal device receives SIB1 according to the SSB, and obtains the RO resource configuration information from SIB1, wherein the RO resource configuration information can indicate the mapping relationship between the SSB wide beam and the RO, the SSB corresponding to multiple narrow beams (i.e., multiple SSB narrow beams), and the mapping relationship between each SSB narrow beam and the RO. At the same time, the terminal device also obtains the coverage information of at least one SSB narrow beam. Exemplarily, the coverage information of the at least one SSB narrow beam can be obtained from SIB1. After the terminal device receives the RO resource configuration information and the coverage information of the at least one SSB narrow beam, it determines the target beam in combination with its own position, and performs PRACH transmission on the RO corresponding to the target beam to make a random access request. The terminal device can send subsequent messages 3, 5, etc. through the target beam. Accordingly, the network device sends RAR, message 4, etc. on the downlink beam corresponding to the target beam.
[0134] In the scenario where a SSB wide beam covers multiple terminal devices, different terminal devices may be within the coverage of different SSB narrow beams. When different terminal devices select different SSB narrow beams as target beams, since different SSB narrow beams correspond to different ROs, collisions between different terminal devices when sending random access preambles can be avoided, thereby improving the access capacity within this SSB wide beam. And since the gain of the SSB narrow beam is higher, it is beneficial to improve the transmission performance of the PRACH.
[0135] Fig.14 FIG. 1 is a schematic diagram of another random access phase provided in an embodiment of the present application. Fig.14 As shown, the random access phase includes: the network device divides the system information into cell-level system information (MIB-E) and regional-level system information (SIB-R), wherein MIB-E carries the configuration necessary for initiating access to the terminal device, for example, RO resource configuration information and coverage information of at least one SSB narrow beam, and the RO resource configuration information is used to indicate the mapping relationship between the SSB wide beam and the RO, the SSB corresponding to multiple narrow beams (i.e., multiple SSB narrow beams), and the mapping relationship between each SSB narrow beam and the RO. SIB-R carries specific information for a certain area. The network device uses the SSB wide beam to send the synchronization sequence and MIB-E. After receiving the synchronization sequence and MIB-E, the terminal device obtains the RO resource configuration information and the coverage information of at least one SSB narrow beam from MIB-E, determines the target beam in combination with its own position, and performs PRACH transmission on the RO corresponding to the target beam to make a random access request. After receiving the PRACH on the target beam, the network device sends subsequent SIB-R, RAR and message 4 to the terminal device through the target beam to improve the transmission performance of the channel. The terminal device opens the receiving window and receives SIB-R, RAR and message 4 in the receiving window.
[0136] Combine the following Figures 15 to 19 , specifically introduces the implementation process of the terminal device determining the coverage range of the multiple beams, and determining the target beam according to the coverage range of the multiple beams.
[0137] Fig.15 It is a schematic flow chart of another random access method 1500 provided in an embodiment of the present application. The multiple beams in the method 1500 refer to multiple SSB narrow beams corresponding to one SSB wide beam, and at least one beam refers to at least one SSB narrow beam in multiple SSB narrow beams corresponding to one SSB wide beam.
[0138] Method 1500 includes S1501 to S1506. The specific steps are as follows:
[0139] S1501, a network device sends configuration information to a terminal device, where the configuration information is used to indicate that an SSB corresponds to multiple beams, and each of the multiple beams corresponds to one or more ROs. Correspondingly, the terminal device receives the configuration information.
[0140] For the introduction of S1501, please refer to the description of S1001 above, which will not be repeated here.
[0141] S1502: The network device sends first information and beam pattern information to the terminal device. Correspondingly, the terminal device receives the first information and beam pattern information.
[0142] Optionally, the network device is a satellite base station, and the first information is ephemeris information of the satellite base station, and the ephemeris information may indicate the coverage range of the satellite base station.
[0143] Optionally, the network device carries the beam coverage information in system information for broadcasting. The system information may include, for example, SIB1, MIB, or MIB-E.
[0144] S1503: The terminal device determines the coverage range of the multiple beams according to the first information and the beam pattern information.
[0145] Optionally, S1503 specifically includes: the terminal device determines the coverage range of the at least one SSB according to the distribution of the at least one SSB in the coverage range of the network device; and determines the coverage range of the multiple beams according to the distribution of the multiple beams in the coverage range of the corresponding SSB.
[0146] Among them, the first information is used to indicate the coverage range of the network device, and the beam pattern information is used to indicate the distribution of at least one SSB within the coverage range of the network device, the multiple beams corresponding to each SSB in the at least one SSB, and the distribution of the multiple beams within the coverage range of the corresponding SSB.
[0147] The above-mentioned beam pattern information can indicate the distribution / coverage of the SSB within the coverage range of the network device, and the distribution / coverage of multiple beams within the coverage range of the SSB. The coverage of the SSB within the coverage range of the network device can also be deduced based on the distribution of the SSB within the coverage range of the network device. In one possible implementation, the terminal device can determine the distribution of the SSB within the coverage range of the network device and the distribution of multiple beams within the coverage range of the SSB based on the above-mentioned beam pattern information, and then determine the coverage range of the SSB based on the distribution of the SSB within the coverage range of the network device, and determine the coverage range of the multiple beams based on the distribution of multiple beams within the coverage range of the SSB. In another possible implementation, the terminal device can determine the coverage of the SSB within the coverage range of the network device and the coverage of multiple beams within the coverage range of the SSB based on the above-mentioned beam pattern information.
[0148] Before sending the first information and the beam coverage pattern information to the terminal device, the network device may send multiple SSBs (or multiple downlink beams) to the terminal device to complete a beam scan so that the synchronization signal covers the service range of the entire cell. Each of the multiple SSBs corresponds to a direction / area of beam scanning, and eventually there will be one SSB for each direction / area.
[0149] For the SSB in a direction / area, the beam pattern information in S1503 is used to indicate the distribution of the at least one SSB within the coverage range of the network device, including: the beam pattern information is used to indicate the distribution of the SSB in the direction / area within the coverage range of the network device, that is, only indicating the distribution of the local SSB within the coverage range of the network device; or, the beam pattern information is used to indicate the distribution of the multiple SSBs within the coverage range of the network device, that is, indicating the distribution of the global SSB within the coverage range of the network device.
[0150] The following first introduces the situation where beam pattern information is used to indicate the distribution / coverage of global SSB within the coverage range of network devices.
[0151] For a direction / area, the network device can send the beam pattern information of the multiple SSBs, and the terminal device in a certain direction / area can receive the beam pattern information of the multiple SSBs. That is, the beam pattern information is used to indicate the distribution / coverage of the multiple SSBs within the coverage range of the network device, the multiple beams (SSB narrow beams) corresponding to each SSB in the multiple SSBs, and the distribution / coverage of the multiple beams (SSB narrow beams) within the coverage range of their corresponding SSBs. Among them, the distribution / coverage of multiple SSBs within the coverage range of the network device refers to: the distribution / coverage of multiple SSB wide beams within the coverage range of the network device. The distribution / coverage of multiple beams (SSB narrow beams) within the coverage range of their corresponding SSBs refers to: the distribution / coverage of multiple SSB narrow beams within the coverage range of their corresponding SSB wide beams.
[0152] Optionally, the beam coverage pattern information may include parameters such as P, Q, L, M, the numbering order of multiple SSB wide beams, and the numbering order of multiple SSB narrow beams corresponding to each SSB wide beam. Among them, P is the number of rows of multiple SSB wide beams distributed within the coverage range of the network device, Q is the number of columns of multiple SSB wide beams distributed within the coverage range of the network device, L is the number of rows of SSB narrow beams distributed within the coverage range of one SSB wide beam, and M is the number of columns of SSB narrow beams distributed within the coverage range of one SSB wide beam.
[0153] After receiving parameters such as P, Q, L, M, the numbering sequence of multiple SSB wide beams, and the numbering sequence of the SSB narrow beams corresponding to each SSB wide beam, the terminal device can determine the following: Fig.16 Beam coverage pattern shown.
[0154] Fig.16 FIG. 1 is a schematic diagram of a beam coverage pattern provided for the above-mentioned multiple SSB situation. Fig.16 In the beam pattern shown, within the coverage range of the network device, multiple SSB wide beams are numbered in sequence along the movement direction of the network device, and eight SSB wide beams are distributed in an arrangement of P=2, Q=4 (i.e., 2×4), from bottom to top and from left to right, they are SSB wide beam 0, SSB wide beam 1, SSB wide beam 2, SSB wide beam 3, SSB wide beam 4, SSB wide beam 5, SSB wide beam 6 and SSB wide beam 7.
[0155] Within the coverage of each SSB wide beam, multiple SSB narrow beams are numbered in sequence along the movement direction of the network device, and four SSB narrow beams are distributed in the arrangement of L=2, M=2 (i.e., 2×2). Taking SSB wide beam 6 as an example, from bottom to top and from left to right, they are SSB narrow beam 0, SSB narrow beam 1, SSB narrow beam 2, and SSB narrow beam 3.
[0156] Fig.17 It is a schematic diagram of another beam coverage pattern provided for the above-mentioned multiple SSB situation. Fig.17 The beam coverage pattern shown shows the distribution of multiple SSB wide beams. Fig.16 The same as shown, the difference is that within the coverage of a SSB wide beam, multiple SSB narrow beams are numbered in sequence along the movement direction of the network device, and four SSB narrow beams are distributed in the arrangement of L=1, M=4 (i.e., 1×4). From left to right, they are SSB narrow beam 0, SSB narrow beam 1, SSB narrow beam 2, and SSB narrow beam 3.
[0157] The above-mentioned numbering sequence, arrangement of multiple SSB wide beams, and arrangement of multiple SSB narrow beams are only examples. The embodiments of the present application do not limit the values of the numbering direction, P, Q, L, and M. The value of L×M is equal to the number of multiple SSB narrow beams, and the value of P×Q is equal to the number of multiple SSB wide beams.
[0158] The following describes how beam pattern information is used to indicate the distribution / coverage of local SSB within the coverage area of a network device.
[0159] For a direction / area, the network device only sends the beam pattern information of the SSB in that direction / area, so the terminal device in a certain direction / area only receives the beam pattern information of the SSB in that direction / area. That is, the beam pattern information is used to indicate the distribution / coverage of an SSB within the coverage range of the network device, the multiple beams (SSB narrow beams) corresponding to the SSB, and the distribution / coverage of these multiple beams (SSB narrow beams) within the coverage range of the SSB. Among them, the distribution / coverage of an SSB within the coverage range of the network device refers to: the distribution / coverage of an SSB wide beam within the coverage range of the network device. The distribution / coverage of multiple beams within the coverage range of the SSB refers to: the distribution / coverage of multiple SSB narrow beams within the coverage range of their corresponding SSB wide beams.
[0160] In this case, the network device can carry parameters such as the center point coordinates and coverage radius of the SSB wide beam in the direction / area in the beam pattern information to indicate the distribution or coverage of the SSB wide beam corresponding to the direction / area within the coverage range of the network device.
[0161] The terminal device determines the distribution / coverage of the SSB wide beam corresponding to the direction / area within the coverage of the network device based on the center point coordinates of the SSB wide beam corresponding to the direction / area, the coverage radius of the SSB wide beam corresponding to the direction / area, and the coverage of the network device. Furthermore, the terminal device determines the coverage of each of the multiple SSB narrow beams according to the distribution / coverage of the multiple SSB narrow beams indicated in the beam pattern information within the coverage of the SSB wide beam in the direction / area. The specific method for determining the coverage of each of the multiple SSB narrow beams in combination with the beam pattern information can be referred to the above description for Fig.16 The description is not repeated here.
[0162] The beam pattern information in S1503 is used to indicate the distribution / coverage of the multiple beams within the coverage range of the corresponding SSB, including: directly indicating the distribution / coverage of the multiple beams within the coverage range of the corresponding SSB; or indicating the distribution / coverage of some beams among the multiple beams within the coverage range of the corresponding SSB, and inferring the distribution / coverage of other beams among the multiple beams within the coverage range of the corresponding SSB based on the distribution / coverage of the some beams within the coverage range of the corresponding SSB, that is, the beam pattern information indirectly indicates the distribution / coverage of the multiple beams within the coverage range of the corresponding SSB.
[0163] For the direct indication method, the terminal device can determine the distribution / coverage of the multiple SSB narrow beams within the coverage range of the corresponding SSB wide beam based on the numbering order, arrangement method and other information of the multiple SSB narrow beams, and then determine the coverage range of each SSB narrow beam in the multiple SSB narrow beams.
[0164] For the indirect indication method, illustratively, SSB wide beam 0 corresponds to SSB narrow beam 0 and SSB narrow beam 1, and the network device can indicate the distribution of SSB narrow beam 0 within the coverage range of SSB wide beam 0 in the beam coverage pattern information, for example, indicating the center point coordinates of SSB narrow beam 0, the coverage radius of SSB narrow beam 0 and other information. The terminal device can determine the distribution / coverage of SSB narrow beam 0 within the coverage range of SSB wide beam 0 based on the center point coordinates of narrow beam 0, the coverage radius of SSB narrow beam 0 and the coverage range of SSB wide beam 0. The network device can also indicate the distance between the center points of SSB narrow beam 0 and SSB narrow beam 1 in the beam coverage pattern. Combined with the numbering order, arrangement method and other information of the multiple SSB narrow beams described above, the terminal device can determine the distribution / coverage of SSB narrow beam 1 within the coverage range of SSB wide beam 0. In this way, the terminal device determines the distribution / coverage of SSB narrow beam 0 and SSB narrow beam 1 within the coverage range of the SSB wide beam according to the beam pattern information, and then can determine the coverage range of SSB narrow beam 0 and SSB narrow beam 1.
[0165] S1504: Obtain the coverage of at least one beam among the multiple beams.
[0166] The at least one beam refers to at least one SSB narrow beam, the target beam is one of multiple SSB narrow beams, and the location of the terminal device is within the coverage of the target beam. The number of the at least one beam is less than or equal to the number of the multiple beams.
[0167] In this step, the terminal device obtains the coverage of at least one of the multiple beams, which means that when determining the target beam, the terminal device can obtain the coverage of one SSB narrow beam among the multiple SSB narrow beams each time in a traversal manner, and judge whether the position of the terminal device is within the coverage of the SSB narrow beam. When the terminal device determines that its position is within the coverage of the SSB narrow beam, the terminal device stops detecting. When stopping detection, the terminal device may have traversed all the SSB narrow beams among the multiple SSB narrow beams before determining the target beam, or may have only detected part of the SSB narrow beams to determine the target beam. Therefore, the terminal device obtains the coverage of at least one of the multiple beams.
[0168] S1505: Determine the target beam from the at least one beam according to the location of the terminal device and the coverage of the at least one beam.
[0169] The at least one beam refers to at least one SSB narrow beam. In combination with the description in S1504, when the terminal device determines that its location is within the coverage of a certain SSB narrow beam, the terminal device determines the SSB narrow beam as the target beam.
[0170] For example, the multiple SSB narrow beams corresponding to one SSB wide beam include SSB narrow beam 0, SSB narrow beam 1, and SSB narrow beam 2. When the terminal device determines the target beam, it first obtains the coverage of SSB narrow beam 0. When the terminal device determines that its position is within the coverage of SSB narrow beam 0, the terminal device no longer obtains the coverage of SSB narrow beam 1 and the coverage of SSB narrow beam 2, and determines SSB narrow beam 0 as the target beam. In this case, the number of the at least one beam is less than the number of the multiple beams, which is conducive to simplifying the execution steps of the terminal device.
[0171] For another example, the multiple SSB narrow beams corresponding to one SSB wide beam include SSB narrow beam 0, SSB narrow beam 1 and SSB narrow beam 2. When the terminal device determines the target beam, it first obtains the coverage information of SSB narrow beam 0. When the terminal device determines that its position is not within the coverage of SSB narrow beam 0, the terminal device continues to obtain the coverage information of SSB narrow beam 1. When the terminal device determines that its position is not within the coverage of SSB narrow beam 1, the terminal device continues to obtain the coverage information of SSB narrow beam 2. When the terminal device determines that its position is within the coverage of SSB narrow beam 2, the terminal device determines SSB narrow beam 2 as the target beam. In this case, the number of the at least one beam is equal to the number of the multiple beams.
[0172] S1506, the terminal device sends a random access preamble to the network device, where the random access preamble is located on the RO corresponding to the target beam. Correspondingly, the network device receives the random access preamble. In other words, the terminal device sends a random access preamble to the network device at the RO corresponding to the target beam.
[0173] For the introduction of S1506, please refer to the description of S1003 above, which will not be repeated here.
[0174] In an embodiment of the present application, after receiving the configuration information indicating that the SSB wide beam corresponds to multiple SSB narrow beams, the terminal device receives the first information and beam pattern information. The terminal device can determine the coverage of each of the multiple SSB narrow beams based on the first information and the beam pattern information, and then the terminal device can determine the target beam based on its own position, and the position of the terminal device is within the coverage of the target beam. Afterwards, the terminal device can choose to send a random access preamble on the RO corresponding to the target beam, reduce the collision probability of sending the random access preamble during the random access process, and improve the access capacity.
[0175] Combine the following Fig.18 Another terminal device is introduced to determine the coverage range of the multiple beams, and an implementation process of determining the target beam according to the coverage range of the multiple beams.
[0176] Fig.18 It is a schematic flow chart of another random access method 1800 provided in an embodiment of the present application. The multiple beams in the method 1800 refer to multiple SSB narrow beams corresponding to one SSB wide beam, and at least one beam refers to at least one SSB narrow beam in multiple SSB narrow beams corresponding to one SSB wide beam.
[0177] The method 1800 includes S1801 to S1806, and the specific steps are as follows:
[0178] S1801, a network device sends configuration information to a terminal device, where the configuration information is used to indicate that an SSB corresponds to multiple beams, and each of the multiple beams corresponds to one or more ROs. Correspondingly, the terminal device receives the configuration information.
[0179] For the introduction of S1801, please refer to the description of S1001 above, which will not be repeated here.
[0180] S1802: The network device sends the second information and the coverage angle information of the beam to the terminal device. Correspondingly, the terminal device receives the second information and the coverage angle information of the beam.
[0181] The second information is used to indicate the location of the network device, and the coverage angle information of the beam is used to indicate the coverage angle of each beam in the multiple beams.
[0182] Optionally, the network device is a satellite base station, and the second information is ephemeris information of the satellite base station, and the ephemeris information may indicate the location of the satellite base station.
[0183] For example, if the coverage angle of an SSB narrow beam is 16 degrees and the indication accuracy is 0.1 degrees, the network device needs 16 bits to indicate the coverage angle of the SSB narrow beam, of which 8 bits represent the positive range and 8 bits represent the negative range. On this basis, if you want to reduce the bit overhead, you can consider reducing the indication accuracy by half, and the network device needs 14 bits to indicate the coverage angle of the SSB narrow beam.
[0184] In this step, the coverage angle information of the beam is used to indicate the coverage angle of each beam in the multiple beams, including the following two situations: directly indicating the coverage angle of each beam in the multiple beams; or indicating the coverage angle of some beams in the multiple beams, and the coverage angles of other beams in the multiple beams can be deduced based on the coverage angles of the some beams. This is a way in which the coverage angle information of the beam indirectly indicates the coverage angle of each beam in the multiple beams.
[0185] For the coverage angle information of the beam indirectly indicating the coverage angle of each of the multiple beams, exemplarily, SSB wide beam 0 corresponds to SSB narrow beam 0 and SSB narrow beam 1, and the network device includes the coverage angle of SSB narrow beam 0 as α through the coverage angle information of the beam, and the coverage angle information of the beam also includes the difference β between the coverage angles of SSB narrow beam 1 and SSB narrow beam 0. In this way, the terminal device can determine the coverage angle of SSB narrow beam 1 based on α and β, which is conducive to saving signaling overhead.
[0186] In another possible implementation, the coverage angle information of the beam may include the coverage angle of the SSB wide beam and the difference in coverage angle between the SSB wide beam and each SSB narrow beam in its corresponding multiple SSB narrow beams. This can also indirectly indicate the coverage angle of each SSB narrow beam in the multiple SSB narrow beams, which is conducive to saving signaling overhead.
[0187] In another possible implementation, the coverage angle information of the beam may include the coverage angle of the SSB wide beam and the angle design rule of multiple SSB narrow beams corresponding to the SSB wide beam. For example, the angle design rule is to divide the coverage angle of the SSB wide beam equally, which can also indirectly indicate the coverage angle of each SSB narrow beam in the multiple SSB narrow beams, which is conducive to saving signaling overhead.
[0188] S1803, the terminal device determines the coverage range of the multiple beams according to the second information and the coverage angle information of the beams.
[0189] Combined with the above description of S1802, after the terminal device knows the location of the network device and the coverage angle of each of the multiple beams, it can determine the coverage range of each of the multiple beams. The coverage angle of the beam is the angle between the line from the network device to the center point of the coverage area and the line from the network device to the edge of the coverage area.
[0190] S1804: Obtain the coverage of at least one beam among the multiple beams.
[0191] For the introduction of S1804, please refer to the above description of S1504, which will not be repeated here.
[0192] S1805: Determine the target beam from the at least one beam according to the location of the terminal device and the coverage of the at least one beam.
[0193] For the introduction of S1805, please refer to the above description of S1505, which will not be repeated here.
[0194] S1806, the terminal device sends a random access preamble to the network device, where the random access preamble is located on the RO corresponding to the target beam. Correspondingly, the network device receives the random access preamble. In other words, the terminal device sends a random access preamble to the network device at the RO corresponding to the target beam.
[0195] For the introduction of S1806, please refer to the description of S1003 above, which will not be repeated here.
[0196] In an embodiment of the present application, after receiving the configuration information indicating that the SSB wide beam corresponds to multiple SSB narrow beams, the terminal device receives the second information and the coverage angle information of the beam. The terminal device can determine the coverage of each SSB narrow beam in the multiple SSB narrow beams based on the second information and the coverage angle information of the beam. Furthermore, the terminal device can determine the target beam based on its own position, and the position of the terminal device is within the coverage of the target beam. Afterwards, the terminal device can choose to send a random access preamble on the RO corresponding to the target beam, thereby reducing the collision probability of sending the random access preamble during the random access process and improving the access capacity.
[0197] Combine the following Fig.19 Another terminal device is introduced to determine the coverage range of the multiple beams, and an implementation process of determining the target beam according to the coverage range of the multiple beams.
[0198] Fig.19It is a schematic flow chart of another random access method 1900 provided in an embodiment of the present application. The multiple beams in the method 1900 refer to multiple SSB narrow beams corresponding to one SSB wide beam, and at least one beam refers to at least one SSB narrow beam in multiple SSB narrow beams corresponding to one SSB wide beam.
[0199] Method 1900 includes S1901 to S1906, and the specific steps are as follows:
[0200] S1901, the network device sends configuration information to the terminal device, the configuration information is used to indicate that the SSB corresponds to multiple beams, each of the multiple beams corresponds to one or more ROs. Correspondingly, the terminal device receives the configuration information.
[0201] For the introduction of S1901, please refer to the description of S1001 above, which will not be repeated here.
[0202] S1902: The network device sends third information to the terminal device. Correspondingly, the terminal device receives the third information.
[0203] The third information is used to indicate the coordinates of the center point of each of the multiple beams; or, to indicate the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams.
[0204] Optionally, the reference point may be a point under the satellite, or may be another preset point on the ground of the network device.
[0205] In this step, the third information is used to indicate the center point coordinates of each of the multiple beams, including the following two situations: directly indicating the center point coordinates of each of the multiple beams; or indicating the center point coordinates of some of the multiple beams, and the center point coordinates of other beams in the multiple beams can be deduced based on the center point coordinates of the some of the beams. This is a way in which the third information indirectly indicates the center point coordinates of each of the multiple beams.
[0206] S1903: The terminal device determines the coordinates of the center point of each of the multiple beams based on the third information.
[0207] When the third information is used to indicate the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams, the terminal device determines the center point coordinates of each of the multiple beams based on the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams, with the reference point coordinates as the center.
[0208] For example, if the maximum distance is 128 km and the distance indication accuracy is 1 km, the network device needs 8 bits to indicate the distance; if the angle indication is 360 degrees and the angle indication accuracy is 0.5 degrees, the network device needs 10 bits to indicate the angle. In this way, the terminal device needs 18 bits to indicate the distance and angle. If you want to reduce the bit overhead, you can reduce the angle indication accuracy. For example, if the angle indication accuracy is reduced by half, the network device needs 9 bits to indicate the angle, so the distance and angle need 17 bits in total.
[0209] S1904: Obtain the coordinates of a center point of at least one beam among the multiple beams.
[0210] The description of S1903 is similar to the description of S1504 above. After determining the center point coordinates of each beam in the multiple beams, the terminal device obtains the center point coordinates of one beam in the multiple beams each time in a traversal manner, and calculates whether the distance between the terminal device and the beam meets the preset conditions. If satisfied, the terminal device stops detecting. When stopping detection, the terminal device may obtain the center point coordinates of all beams in the multiple beams before determining the target beam, or may only obtain the center point coordinates of some beams in the multiple beams to determine the target beam. Therefore, the terminal device obtains the center point coordinates of at least one beam in the multiple beams.
[0211] S1905: Determine a target beam from the at least one beam according to the position of the terminal device and the center point coordinates of the at least one beam.
[0212] Optionally, S1905 specifically includes: determining the distance between the terminal device and each beam in the at least one beam based on the position of the terminal device and the center point coordinates of the at least one beam; and determining the beam in the at least one beam whose distance to the terminal device meets a preset condition as the target beam.
[0213] Combined with the description of S1904, the terminal device obtains the center point coordinates of one of the multiple beams each time in a traversal manner, and calculates the distance between the beam and the terminal device based on the center point coordinates of the beam. If the distance between the terminal device and the beam meets the preset conditions, the terminal device determines the beam as the target beam. The preset condition may be less than or equal to a preset threshold, that is, the distance between the terminal device and the beam is less than or equal to the preset threshold. Alternatively, the preset condition may be the shortest distance, that is, the distance between the terminal device and the beam is the shortest.
[0214] It should be understood that there may be more than one beam among the multiple beams whose distance to the terminal device is less than or equal to a preset threshold. The terminal device will determine the first beam whose distance to the terminal device is less than or equal to the preset threshold as the target beam.
[0215] It should be understood that when the preset condition is the shortest distance, the terminal device needs to obtain the coordinates of the center points of all beams in the multiple beams, so as to determine the beam with the shortest distance to the terminal device.
[0216] S1906, the terminal device sends a random access preamble to the network device, where the random access preamble is located on the RO corresponding to the target beam. Correspondingly, the network device receives the random access preamble. In other words, the terminal device sends a random access preamble to the network device at the RO corresponding to the target beam.
[0217] For the introduction of S1906, please refer to the description of S1003 above, which will not be repeated here.
[0218] In an embodiment of the present application, after receiving the configuration information indicating that the SSB wide beam corresponds to multiple SSB narrow beams, the terminal device receives the third information. The terminal device can determine the coverage of each SSB narrow beam in the multiple SSB narrow beams based on the third information. Furthermore, the terminal device can determine the target beam based on its own position, and the position of the terminal device is within the coverage of the target beam. Afterwards, the terminal device can choose to send a random access preamble on the RO corresponding to the target beam, reduce the collision probability of sending the random access preamble during the random access process, and improve the access capacity.
[0219] It should be noted that other embodiments obtained by combining the steps in the implementation methods described above are all within the protection scope of this application.
[0220] It should be understood that the sequence numbers of the above processes do not mean the order of execution. The execution order of each process should be determined by its function and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0221] Combined with the above Figures 10 to 19 , describes in detail the random access method according to the embodiment of the present application, and will be combined with Figure 20 to Figure 22 , a communication device according to an embodiment of the present application is described in detail.
[0222] Fig. 20 It is a schematic block diagram of a communication device 2000 provided in an embodiment of the present application. The device 2000 includes: a receiving module 2010, a processing module 2020 and a sending module 2030.
[0223] Among them, the receiving module 2010 is used to: receive configuration information from the network device, the configuration information is used to indicate that the SSB corresponds to multiple beams, each of the multiple beams corresponds to one or more ROs; the processing module 2020 is used to: determine the target beam from the multiple beams; the sending module 2030 is used to: send a random access preamble code to the network device at the RO corresponding to the target beam.
[0224] Optionally, the processing module 2020 is used to: obtain the coverage of at least one beam among the multiple beams; and determine a target beam from the at least one beam according to the location of the terminal device and the coverage of the at least one beam.
[0225] Optionally, the receiving module 2010 is used to: receive first information and beam pattern information from a network device, the first information is used to indicate the coverage of the network device, and the beam pattern information is used to indicate the distribution of at least one SSB within the coverage of the network device, multiple beams corresponding to each SSB in at least one SSB, and the distribution of the multiple beams within the coverage of the corresponding SSB. The processing module 2020 is used to: determine the coverage of the at least one SSB according to the distribution of the at least one SSB within the coverage of the network device; and determine the coverage of the multiple beams according to the distribution of the multiple beams within the coverage of the corresponding SSB.
[0226] Optionally, the receiving module 2010 is used to: receive second information and coverage angle information of the beam, the second information is used to indicate the location of the network device, and the coverage angle information of the beam is used to indicate the coverage angle of each beam in the multiple beams. The processing module 2020 is used to: determine the coverage range of the multiple beams according to the location of the network device and the coverage angle information of the beam.
[0227] Optionally, the processing module 2020 is used to: obtain the center point coordinates of at least one beam among the multiple beams; determine the distance between the terminal device and each beam among the at least one beam based on the position of the terminal device and the center point coordinates of the at least one beam; and determine the beam among the at least one beam whose distance to the terminal device meets a preset condition as the target beam.
[0228] Optionally, the preset condition includes: less than or equal to a preset threshold; or, the distance is the shortest.
[0229] Optionally, the receiving module 2010 is used to: receive third information from a network device, the third information being used to indicate the coordinates of the center point of each of the multiple beams, or being used to indicate the distance between a reference point and each of the multiple beams and the coverage angle of each of the multiple beams. The processing module 2020 is used to: determine the coordinates of the center point of each of the multiple beams according to the third information.
[0230] In an optional example, those skilled in the art can understand that the device 2000 can be specifically the terminal device in the above embodiment, or the functions of the terminal device in the above embodiment can be integrated in the device 2000. The above functions can be implemented by hardware, or can be implemented by hardware executing corresponding software. The hardware or software includes one or more modules corresponding to the above functions. For example, the above receiving module 2010 can be a communication interface, such as a transceiver interface. The device 2000 can be used to execute the various processes and / or steps corresponding to the terminal device in the above method embodiment.
[0231] Fig.21 It is a schematic block diagram of another communication device 2100 provided in an embodiment of the present application. The device 2100 includes: a sending module 2110 and a receiving module 2120.
[0232] Among them, the sending module 2110 is used to: send configuration information to the terminal device, the configuration information is used to indicate that the SSB corresponds to multiple beams, each of the multiple beams corresponds to one or more ROs; the receiving module 2120 is used to: receive a random access preamble code from the terminal device, and the random access preamble code is located on the RO corresponding to the target beam among the multiple beams.
[0233] Optionally, the sending module 2110 is used to: send first information and beam pattern information to the terminal device, the first information is used to indicate the coverage range of the network device, and the beam pattern information is used to indicate the distribution of at least one SSB within the coverage range of the network device, multiple beams corresponding to each SSB in the at least one SSB, and the distribution of the multiple beams within the coverage range of the corresponding SSB.
[0234] Optionally, the sending module 2110 is used to: send second information and coverage angle information of the beam to the terminal device, the second information is used to indicate the location of the network device, and the coverage angle information of the beam is used to indicate the coverage angle of each beam in the multiple beams.
[0235] Optionally, the sending module 2110 is used to: send third information to the terminal device, the third information is used to indicate the coordinates of the center point of each of the multiple beams; or, to indicate the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams.
[0236] In an optional example, those skilled in the art can understand that the device 2100 can be specifically the network device in the above embodiment, or the function of the network device in the above embodiment can be integrated in the device 2100. The above functions can be implemented by hardware, or can be implemented by hardware executing corresponding software. The hardware or software includes one or more modules corresponding to the above functions. For example, the sending module 2110 can be a communication interface, such as a transceiver interface. The device 2100 can be used to execute each process and / or step corresponding to the network device in the above method embodiment.
[0237] It should be understood that the apparatus 2000 and the apparatus 2100 herein are embodied in the form of functional modules. The term "module" herein may refer to an application specific integrated circuit (ASIC), an electronic circuit, a processor (e.g., a shared processor, a dedicated processor, or a group processor, etc.) and a memory for executing one or more software or firmware programs, a combined logic circuit, and / or other suitable components that support the described functions.
[0238] In the embodiment of the present application, the apparatus 2000 and the apparatus 2100 may also be a chip or a chip system, such as a system on chip (SoC). Correspondingly, the transceiver module may be a transceiver circuit of the chip, which is not limited here.
[0239] Fig. 22 2 is a schematic block diagram of another communication device 2200 provided in an embodiment of the present application. The device 2200 includes a processor 2210, a transceiver 2220, and a memory 2230. The processor 2210, the transceiver 2220, and the memory 2230 communicate with each other through an internal connection path, the memory 2230 is used to store instructions, and the processor 2210 is used to execute the instructions stored in the memory 2230 to control the transceiver 2220 to send signals and / or receive signals.
[0240] It should be understood that the device 2200 can be specifically a terminal device or a network device in the above embodiment, or the functions of the terminal device or the network device in the above embodiment can be integrated in the device 2200, and the device 2200 can be used to execute the various steps and / or processes corresponding to the terminal device or the network device in the above method embodiment. Optionally, the memory 2230 may include a read-only memory and a random access memory, and provide instructions and data to the processor. A part of the memory may also include a non-volatile random access memory. For example, the memory may also store information about the device type. The processor 2210 may be used to execute instructions stored in the memory, and when the processor executes the instruction, the processor 2210 may execute the various steps and / or processes corresponding to the terminal device or the network device in the above method embodiment.
[0241] It should be understood that in the embodiments of the present application, the processor may be a central processing unit (CPU), or other general-purpose processors, digital signal processors (DSP), application-specific integrated circuits (ASIC), field programmable gate arrays (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. A general-purpose processor may be a microprocessor or the processor may be any conventional processor, etc.
[0242] In the implementation process, each step of the above method can be completed by an integrated logic circuit of hardware in a processor or an instruction in the form of software. The steps of the method disclosed in conjunction with the embodiment of the present application can be directly embodied as a hardware processor for execution, or a combination of hardware and software modules in a processor for execution. The software module can be located in a storage medium mature in the art such as a random access memory, a flash memory, a read-only memory, a programmable read-only memory or an electrically erasable programmable memory, a register, etc. The storage medium is located in a memory, and the processor executes the instructions in the memory, and completes the steps of the above method in conjunction with its hardware. To avoid repetition, it is not described in detail here.
[0243] Those of ordinary skill in the art will appreciate that the modules and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered to be beyond the scope of this application.
[0244] Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices and modules described above can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.
[0245] In the several embodiments provided in the present application, it should be understood that the disclosed systems, devices and methods can be implemented in other ways. For example, the device embodiments described above are only schematic. For example, the division of the modules is only a logical function division. There may be other division methods in actual implementation, such as multiple modules or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or modules, which can be electrical, mechanical or other forms.
[0246] The modules described as separate components may or may not be physically separated, and the components shown as modules may or may not be physical modules, that is, they may be located in one place or distributed on multiple network modules. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0247] In addition, each functional module in each embodiment of the present application may be integrated into one processing module, or each module may exist physically separately, or two or more modules may be integrated into one module.
[0248] If the functions are implemented in the form of software function modules and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application can be essentially or partly embodied in the form of a software product that contributes to the prior art. The computer software product is stored in a storage medium and includes several instructions for a computer device (which can be a personal computer, a server, or a network device, etc.) to perform all or part of the steps of the methods described in each embodiment of the present application. The aforementioned storage medium includes: various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk.
[0249] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art who is familiar with the present technical field can easily think of changes or substitutions within the technical scope disclosed in the present application, which should be included in the protection scope of the present application. Therefore, the protection scope of the present application should be based on the protection scope of the claims.
Claims
1. A random access method, characterized in that: The method is applied to a terminal device or a chip in the terminal device, and comprises: Receiving configuration information from a network device, where the configuration information is used to indicate that a synchronization signal block SSB corresponds to a plurality of beams, and each of the plurality of beams corresponds to one or more random access opportunities RO; determining a target beam from the plurality of beams; A random access preamble is sent to the network device at the RO corresponding to the target beam.
2. The method according to claim 1, characterized in that The determining a target beam from the multiple beams comprises: Acquire the coverage of at least one beam among the multiple beams; The target beam is determined from the at least one beam according to the location of the terminal device and the coverage of the at least one beam.
3. The method according to claim 2, characterized in that Before acquiring the coverage of at least one beam among the multiple beams, the method further includes: Receiving first information and beam pattern information from the network device, the first information being used to indicate a coverage range of the network device, the beam pattern information being used to indicate distribution of at least one SSB within the coverage range of the network device, a plurality of beams corresponding to each SSB in the at least one SSB, and distribution of the plurality of beams within the coverage range of the corresponding SSB; Determining a coverage range of the at least one SSB according to distribution of the at least one SSB within a coverage range of the network device; The coverage range of the multiple beams is determined according to the distribution of the multiple beams within the coverage range of the corresponding SSB.
4. The method according to claim 2, characterized in that: Before acquiring the coverage of at least one beam among the multiple beams, the method further includes: receiving second information and coverage angle information of a beam, wherein the second information is used to indicate a location of the network device, and the coverage angle information of the beam is used to indicate a coverage angle of each beam in the multiple beams; The coverage ranges of the multiple beams are determined according to the locations of the network devices and the coverage angle information of the beams.
5. The method according to claim 2, characterized in that: The obtaining of the coverage of at least one beam among the multiple beams includes: Acquire the coordinates of a center point of at least one of the multiple beams; The determining the target beam from the at least one beam according to the position of the terminal device and the coverage of the at least one beam comprises: Determine, according to the position of the terminal device and the coordinates of the center point of the at least one beam, a distance between the terminal device and each of the at least one beam; A beam among the at least one beam whose distance from the terminal device meets a preset condition is determined as the target beam.
6. The method according to claim 5, characterized in that The preset conditions include: Less than or equal to a preset threshold; or, The shortest distance.
7. The method according to claim 5 or 6, characterized in that: Before acquiring the coordinates of the center point of at least one of the multiple beams, the method further includes: receiving third information from the network device, wherein the third information is used to indicate the coordinates of a center point of each of the multiple beams, or is used to indicate a distance between a reference point and each of the multiple beams and a coverage angle of each of the multiple beams; The coordinates of the center point of each of the multiple beams are determined according to the third information.
8. A random access method, characterized in that: Applied to a network device, the method comprises: Sending configuration information to a terminal device, where the configuration information is used to indicate that a synchronization signal block SSB corresponds to multiple beams, and each of the multiple beams corresponds to one or more random access opportunities RO; A random access preamble is received from the terminal device, where the random access preamble is located on an RO corresponding to a target beam among the multiple beams.
9. The method according to claim 8, characterized in that The method further comprises: Send first information and beam pattern information to the terminal device, wherein the first information is used to indicate the coverage of the network device, and the beam pattern information is used to indicate the distribution of at least one SSB within the coverage of the network device, multiple beams corresponding to each SSB in the at least one SSB, and the distribution of the multiple beams within the coverage of the corresponding SSB.
10. The method according to claim 8, characterized in that The method further comprises: Send second information and coverage angle information of the beam to the terminal device, where the second information is used to indicate the location of the network device, and the coverage angle information of the beam is used to indicate the coverage angle of each beam in the multiple beams.
11. The method according to claim 8, characterized in that The method further comprises: Sending third information to the terminal device, wherein the third information is used to indicate the coordinates of the center point of each of the multiple beams; or, to indicate the distance between the reference point and each of the multiple beams and the coverage angle of each of the multiple beams.
12. A communication device, characterized in that: The method comprises a module for implementing the method according to any one of claims 1 to 7, or a module for implementing the method according to any one of claims 8 to 11.
13. A communication device, characterized in that: The method comprises a processor coupled to a memory, wherein the memory is used to store programs or instructions. When the programs or instructions are executed by the processor, the method according to any one of claims 1 to 7 is executed, or the method according to any one of claims 8 to 11 is executed.
14. A computer-readable storage medium, characterized in that: Used to store a computer program, which, when executed on a computer, causes the method according to any one of claims 1 to 7 to be executed, or causes the method according to any one of claims 8 to 11 to be executed.
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