Communication method and device
By using different scrambling identifiers and time-frequency resources to distinguish paging messages in the new air interface technology, the problem of terminal equipment interference caused by the sharing of paging resources in the same area is solved, and accurate reception and demodulation of paging messages are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HUAWEI TECH CO LTD
- Filing Date
- 2024-10-31
- Publication Date
- 2026-05-01
AI Technical Summary
In New Radio technology, paging messages within the same area use the same paging resources, which can cause interference when terminal devices receive different paging messages, affecting paging accuracy.
By scrambling downlink control information using different scrambling identifiers within the same area, terminal devices can distinguish scheduling information from different paging messages, thereby avoiding interference. Specific methods include using physical cell identifiers and area identifiers for granular differentiation or sending paging messages on different time-frequency resources.
This effectively avoids paging interference to terminal devices within a certain area, ensuring accurate reception and demodulation of paging messages.
Smart Images

Figure CN121968291A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of communication technology, and in particular to a communication method and apparatus. Background Technology
[0002] In New Radio (NR) technology, when a user equipment (UE) receives a cell's synchronization signal block (SSB), it obtains the cell's physical cell identifier (PCI) from the SSB. Then, it can use the PCI to receive and decode the cell's paging messages.
[0003] To prevent paging signaling storms, paging is considered to begin from the last base station that released the UE. If the UE is not paged, the paging range is expanded to the single-frequency network (SFN) area. In the paging optimization scenario, assuming the same paging resources are used in the same area, optimized paging messages and normal paging messages may be carried simultaneously on the same paging resources, and the two types of paging messages carry different terminal identifiers. The terminal will detect two types of paging messages with different terminal identifiers on the same paging resources, which will cause interference to the terminal. Summary of the Invention
[0004] This application provides a communication method and apparatus that can avoid interference to terminals caused by paging within a certain area.
[0005] Firstly, a communication method is provided. This method can be executed by a first communication device, for example, by the first communication device itself, or by a module applied to the first communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the first communication device. For ease of description, the following description uses the execution of the method by the first communication device as an example. The method includes: detecting a first downlink control information (DCI) and a second DCI on a first paging occasion (PO), wherein the first DCI is used to schedule a first paging message of a first cell, and the second DCI is used to schedule a second paging message of at least one cell, wherein the first cell and at least one cell belong to the same area; the first DCI and the second DCI are information scrambled using different scrambling identifiers. Demodulating the first DCI.
[0006] Based on the method described in the first aspect, within the same area, the first communication device can simultaneously detect a first DCI for a first paging message used to schedule a first cell, and a second DCI for a second paging message used to schedule at least one cell. The first DCI and the second DCI are scrambled using different scrambling identifiers, such as scrambling identifiers with different granularities, enabling the first communication device to distinguish between the first DCI and the second DCI. In this case, the first communication device only receives / demodulates the first DCI for the first paging message used to schedule the first cell, ignoring the second DCI, thereby preventing paging from at least one cell within the area from interfering with paging of the first cell.
[0007] Optionally, the first DCI is information scrambled by the physical cell identifier (PCI), and the second DCI is information scrambled by the area identifier, wherein the area includes at least one cell and the first cell.
[0008] The region may include one or more physical cells. That is, the first DCI is scrambled at the granularity of physical cells, and the second DCI is scrambled at the granularity of the region. In this way, the first communication device can distinguish between the first DCI and the second DCI, thereby avoiding confusion of the information indicated by the DCI, and can also accurately receive / demodulate the first DCI used to schedule the first paging message of the first cell.
[0009] Optionally, the value range of the area identifier may differ from that of the PCI. The area identifier and PCI can be distinguished at the granularity of area and cell, and also at the value range. The value range can be used to differentiate between the area identifier and PCI, avoiding confusion between them.
[0010] In one possible implementation, detecting the first downlink control information (DCI) and the second DCI on the first post-output (PO) may include: detecting the first DCI using PCI on the first PO and detecting the second DCI using the area identifier. That is, the first communication device detects the DCI on the first PO using the PCI and area identifier of the first cell. If both the PCI-scrambled first DCI and the area identifier-scrambled second DCI are detected simultaneously, only the PCI-scrambled first DCI is demodulated, thereby preventing paging from at least one cell within the area from interfering with paging in the first cell.
[0011] Optionally, before detecting the first downlink control information (DCI) and the second DCI on the first resource, the communication method may further include receiving the area identifier and PCI from the first cell.
[0012] It is understandable that when the first communication device camps in the first cell or accesses the first communication device, it can obtain the area identifier and PCI through system information block 1 (SIB1) so that the DCI can be detected on the first PO according to the area identifier and PCI.
[0013] Optionally, the first paging message is used to page terminals within a first cell, and the second paging message is used to page terminals within at least one cell. The terminals within the first cell may include a first communication device. The first communication device only receives the first paging message and ignores the second paging message used to page terminals within at least one cell, thereby preventing paging from at least one cell within the area from interfering with paging in the first cell.
[0014] Secondly, a communication method is provided. This method can be executed by a second communication device, for example, by the second communication device itself, or by a module applied to the second communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the second communication device. For ease of description, the following description uses the execution of the method by a second communication device as an example. The method includes: transmitting a first DCI on a first resource, the first DCI being used to schedule a first paging message for a first cell; transmitting a second DCI on a second resource, the second DCI being used to schedule a second paging message for at least one cell, the first cell and at least one cell belonging to the same area; the first DCI and the second DCI are information scrambled using different scrambling identifiers.
[0015] Based on the second aspect of the method, within the same area, the second communication device can send DCI messages for scheduling paging messages at different granularities on different time-frequency resources, thereby paging terminals within the first cell at the cell level, and paging terminals within at least one cell at the at least cell level. Here, the at least one cell level can also be the granularity of the area. This allows the receiving end (such as the first communication device) to distinguish between the first paging message and the second paging message, thereby preventing paging from at least one cell within the area from interfering with paging from the first cell.
[0016] Optionally, the first DCI is information scrambled by the PCI of the first cell, and the second DCI is information scrambled by the area identifier, wherein the area includes at least one cell and the first cell.
[0017] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0018] Optionally, the first paging message is used to page terminals in the first cell, and the second paging message is used to page terminals in at least one cell.
[0019] The technical effects of the method described in the second aspect above can also be found in the description of the first aspect above, and will not be repeated here.
[0020] Thirdly, a communication method is provided. This method can be executed by a first communication device, for example, by the first communication device itself, or by a module applied to the first communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the first communication device. For ease of description, the following description uses the execution of the method by the first communication device as an example. The method includes: detecting a first DCI on a first resource, the first DCI being used to schedule a first paging message for a first cell; detecting a second DCI on a second resource, the second DCI being used to schedule a second paging message for at least one cell, the first cell and at least one cell belonging to the same area; the first resource and the second resource include different time-frequency resources.
[0021] Based on the third aspect of the method, since the first DCI and the second DCI are carried on different time and frequency resources and are associated with different paging messages, in the paging optimization scenario, the first communication device can distinguish between the first DCI and the second DCI, and thus distinguish the paging messages carried by the first DCI and the second DCI, thereby avoiding the paging of at least one cell in the area from interfering with the paging of the first cell.
[0022] Optionally, the time-frequency resource is a PO resource. Different PO resources can distinguish between the first DCI and the second DCI, preventing the first communication device from confusing the information indicated by the first DCI and the second DCI.
[0023] Optionally, the first DCI and the second DCI are information scrambled with a region identifier, and the region includes at least one cell and the first cell.
[0024] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0025] The technical effects of the method described in the third aspect can be referenced from the descriptions of either the first or second aspect, and will not be repeated here.
[0026] Fourthly, a communication method is provided, which can be executed by a second communication device. For example, it can be executed by the second communication device itself, or by a module applied to the second communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the second communication device. For ease of description, the following description uses the execution of the method by a second communication device as an example. The method includes: transmitting a first DCI on a first resource, the first DCI being used to schedule a first paging message for a first cell; transmitting a second DCI on a second resource, the second DCI being used to schedule a second paging message for at least one cell, the first cell and at least one cell belonging to the same area. The first resource and the second resource include different time-frequency resources.
[0027] Based on the method in the fourth aspect, within the same area, the second communication device can perform paging at different granularities on different time-frequency resources. Specifically, it can paging terminals within the first cell at the cell level, or paging terminals within at least one cell at the level of at least one cell. Here, "at least one cell" can also be the granularity of the entire area. This allows the receiving end (such as the first communication device) to distinguish between the first paging message and the second paging message, thereby preventing paging from at least one cell within the area from interfering with paging from the first cell.
[0028] Optionally, time-frequency resources are PO resources.
[0029] Optionally, the first DCI and the second DCI are information scrambled with a region identifier, and the region includes at least one cell and the first cell.
[0030] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0031] The technical effects of the method in the fourth aspect mentioned above can also be found in the descriptions of any of the first to third aspects mentioned above, and will not be repeated here.
[0032] Fifthly, a communication method is provided. This method can be executed by a first communication device, for example, by the first communication device itself, or by a module applied to the first communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the first communication device. For ease of description, the following description uses the execution of the method by the first communication device as an example. The method includes: receiving first information, the first information indicating first resources and second resources, the first resources being used to carry a first paging message for a first cell, the second resources being used to carry a second paging message for at least one cell, the first resources and the second resources including different time-frequency resources; the first cell and at least one cell belonging to the same area. Based on a first DCI, the first paging message is detected on the first resource, and the second paging message is detected on the second resource.
[0033] Based on the method in the fifth aspect, by carrying the first paging message of the first cell and the second paging message of at least one cell on different time-frequency resources, the first communication device can distinguish between the first paging message and the second paging message in the paging optimization scenario, thereby avoiding interference from paging of at least one cell in the area to paging of the first cell.
[0034] Optionally, time-frequency resources are PO resources.
[0035] Optionally, the first information includes a first DCI, which is used to schedule paging messages. The first DCI is information scrambled with an area identifier, and the area includes at least one cell and a first cell.
[0036] Optionally, the first paging message is a message scrambled using the PCI of the first cell, and the second paging message is a message scrambled using the area identifier.
[0037] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0038] The technical effects of the method in the fifth aspect mentioned above can also be found in the descriptions of any of the first to fourth aspects mentioned above, and will not be repeated here.
[0039] Sixthly, a communication method is provided. This method can be executed by a first communication device, for example, by the entire second communication device itself, or by a module applied to the second communication device (e.g., a processor, chip, or chip system), or by a logic node, logic module, or software capable of implementing all or part of the functions of the second communication device. For ease of description, the following description uses the execution of the method by the second communication device as an example. The method includes: sending first information, the first information indicating first resources and second resources, the first resources being used to carry a first paging message for a first cell, the second resources being used to carry a second paging message for at least one cell, the first resources and the second resources including different time-frequency resources; the first cell and at least one cell belong to the same area.
[0040] Based on the method in the sixth aspect, the second communication device can send the configuration of the first and second resources to the first communication device, thereby enabling paging at different granularities on different time-frequency resources. Specifically, it can paging terminals within the first cell at the cell level, or paging terminals within at least one cell at the granularity of at least one cell. Here, "at least one cell" can also be the granularity of an area. This allows the receiving end (such as the first communication device) to distinguish between the first and second paging messages, thereby preventing paging from at least one cell within the area from interfering with paging from the first cell.
[0041] Optionally, time-frequency resources are PO resources.
[0042] Optionally, the first information includes a first DCI, which is used to schedule paging messages. The first DCI is information scrambled with an area identifier, and the area includes at least one cell and a first cell.
[0043] Optionally, the first paging message is a message scrambled using the PCI of the first cell, and the second paging message is a message scrambled using the area identifier.
[0044] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0045] The technical effects of the method in the sixth aspect mentioned above can also be found in the descriptions of any of the first to fifth aspects mentioned above, and will not be repeated here.
[0046] A seventh aspect provides a communication device. The communication device includes a processor configured to perform the method according to any one of the embodiments of the first to sixth aspects.
[0047] In one possible implementation, the communication device of the seventh aspect may further include a transceiver. This transceiver may be a transceiver circuit or an interface circuit. The transceiver can be used by the communication device of the seventh aspect to communicate with other communication devices.
[0048] In one possible implementation, the communication device of the seventh aspect may further include a memory. This memory may be integrated with the processor or disposed separately. The memory may be used to store computer programs and / or data relating to the methods of any of the embodiments of the first to sixth aspects.
[0049] In the embodiments of this application, the communication device of the seventh aspect can be a terminal device or network device of either the first aspect or the fourth aspect, or a chip (system) or other component or assembly disposed in the terminal device or network device, or a device containing the terminal device or network device.
[0050] Furthermore, the technical effects of the communication device in the seventh aspect can be referred to the technical effects of any of the embodiments in the first to sixth aspects, and will not be repeated here.
[0051] Eighthly, a communication device is provided. The communication device includes a processor coupled to a memory, the processor being configured to execute a computer program or instructions stored in the memory, such that the communication device performs the method of any one of the embodiments of the first to sixth aspects.
[0052] In one possible implementation, the communication device may further include a transceiver. The transceiver may be a transceiver circuit or an interface circuit. The transceiver can be used for communication between the communication device described in the eighth aspect and other communication devices.
[0053] In one possible implementation, the communication device further includes the memory for storing the aforementioned computer program or instructions. Optionally, the memory and processor are integrated together.
[0054] In the embodiments of this application, the communication device described in the eighth aspect may be a terminal device or network device described in any one of the first to sixth aspects, or a chip (system) or other component or assembly disposed in the terminal device or network device, or a device containing the terminal device or network device.
[0055] Furthermore, the technical effects of the communication device described in the eighth aspect can be referred to the technical effects of any of the embodiments in the first to sixth aspects, and will not be repeated here.
[0056] A ninth aspect provides a communication system. The communication system includes: a first communication device for performing the method described in any one of the embodiments of the first, third, and fifth aspects; and a second communication device for performing the method described in any one of the embodiments of the second, fourth, and sixth aspects.
[0057] A tenth aspect provides a computer-readable storage medium comprising: a computer program or instructions; wherein, when the computer program or instructions are executed, the method described in any of the embodiments of the first to sixth aspects is implemented.
[0058] Eleventhly, a computer program product is provided, comprising a computer program or instructions that, when executed, cause the method as described in any of the first to sixth aspects above to be implemented.
[0059] In a twelfth aspect, a chip is provided, including a processor connected to a memory for storing a computer program, the processor for executing the computer program stored in the memory, such that the method described in any of the first to sixth aspects above is implemented. Attached Figure Description
[0060] Figure 1 This is a diagram illustrating a paging scenario.
[0061] Figure 2 A diagram showing the location of the PO resource. Figure 1 ;
[0062] Figure 3 A schematic diagram of the architecture of a communication system to which the method provided in the embodiments of this application is applicable. Figure 1 ;
[0063] Figure 4 A schematic diagram of the architecture of a communication system to which the method provided in the embodiments of this application is applicable. Figure 2 ;
[0064] Figure 5 This is a schematic diagram of the architecture of an access network device.
[0065] Figure 6 This is a schematic diagram of a RAN chip architecture provided in an embodiment of this application;
[0066] Figure 7 A schematic diagram of the communication method provided in the embodiments of this application Figure 1 ;
[0067] Figure 8 A schematic diagram of the communication method provided in the embodiments of this application Figure 2 ;
[0068] Figure 9 A schematic diagram of the communication method provided in the embodiments of this application Figure 3 ;
[0069] Figure 10 A schematic diagram of the PO resource location provided in the embodiments of this application. Figure 2 ;
[0070] Figure 11 A schematic diagram of the communication method provided in the embodiments of this application Figure 4 ;
[0071] Figure 12 A schematic flowchart illustrating the chip architecture provided in an embodiment of this application;
[0072] Figure 13 Schematic diagram of the communication device provided in the embodiments of this application Figure 1 ;
[0073] Figure 14 Schematic diagram of the communication device provided in the embodiments of this application Figure 2 . Detailed Implementation
[0074] The technical solutions of this application embodiment can be applied to various communication systems, such as Wireless Fidelity (Wi-Fi) systems, vehicle-to-everything (V2X) communication systems, device-to-device (D2D) communication systems, vehicle-to-everything (V2X) communication systems, fourth-generation (4G) mobile communication systems, such as Long Term Evolution (LTE) systems, Worldwide Interoperability for Microwave Access (WiMAX) communication systems, fifth-generation (5G) mobile communication systems, such as New Radio (NR) systems, and future communication systems.
[0075] For ease of understanding, the technical terms involved in the embodiments of this application will be introduced below.
[0076] 1. Paging-related resource configuration:
[0077] In NR technology, if a user equipment (UE) receives complete system information for a cell, the UE can receive paging messages from that cell and also actively initiate random access within that cell, meaning the UE has successfully camped on that cell. The complete system information primarily refers to System Information Block 1 (SIB1). The UE camping process can be divided into the following two steps:
[0078] (1) UE receives synchronization signal block (SSB): The base station or cell sends SSB at a period of 20ms. The UE receives SSB to obtain downlink synchronization and at the same time obtains the time and frequency resources for receiving SIB1.
[0079] (2) UE receives SIB1: The base station or cell sends SIB1 at a period of 160ms. After receiving SIB1, the UE can obtain the necessary information for accessing or camping on the cell from SIB1. The necessary information includes paging-related configuration information.
[0080] Paging-related resource configurations mainly include the paging physical downlink control channel (PDCCH) configuration and the paging physical downlink shared channel (PDSCH) configuration. The PDCCH configuration primarily indicates the time-frequency location at which the UE receives paging messages, while the PDSCH configuration is mainly used to carry the paging messages. After the UE completes cell camping, it obtains the paging-related configuration information, enabling it to listen for paging messages at the corresponding time-frequency location, i.e., to receive paging messages within that cell.
[0081] Furthermore, paging-related resources are configured at the cell level, meaning that the paging-related configuration information differs between cells. If a UE moves from one cell to another, it needs to re-receive the SSB and SIB1 of the new cell and obtain the latest paging-related configuration information—that is, the paging-related configuration information of the new cell—before the UE can receive paging messages in the new cell.
[0082] 2. Physical Cell Identifier (PCI):
[0083] Each cell corresponds to a PCI, which is used by the terminal (UE, user equipment) to distinguish the radio signals of different cells.
[0084] Since each cell corresponds to a different PCI, the common signals / channels transmitted by the cell can be scrambled using the PCI to ensure that the UE can identify the common signals / channels transmitted by the currently camped cell, such as SIB1 and paging messages. Specifically, the signals / channels scrambled using PCI can include: uplink physical signals, such as the demodulation reference signal for the physical uplink shared channel (DMRS for PUSCH) and the demodulation reference signal for the physical uplink control channel (DMRS for PUCCH); downlink physical signals, such as the demodulation reference signal for the physical downlink shared channel (DMRS for PDSCH), the demodulation reference signal for the physical downlink control channel (DMRS for PDCCH), and the demodulation reference signal for the physical broadcast channel (DMRS for PBCH); uplink physical channels, such as PUSCH and PUCCH; and downlink physical channels, such as PDSCH and PDCCH.
[0085] When a UE receives a cell's Service Block (SSB), it obtains the cell's PCI from the SSB. The UE then uses the cell's PCI to decode all common signals transmitted by that cell. If the UE moves to another cell, it needs to reacquire the PCI of that cell and then use the PCI to receive common signals.
[0086] Currently, the SSB transmission period is 20ms, resulting in high base station energy consumption. To reduce base station energy consumption, the SSB period could be lengthened, for example to 320ms, 640ms, or 1280ms, which would effectively reduce base station power consumption. However, when the base station chooses to use a longer SSB transmission period, if the UE moves too quickly, it may move to another cell within the time frame of two SSB transmissions. In this case, if the UE does not receive the SSB and SIB1 from the other cell, and the other cell pagees the UE, the UE will not receive the paging, resulting in a missed paging detection. To solve this problem, in future communication scenarios, a paging zone could be set up. Within this paging zone, all base stations would transmit the same paging DCI and paging PDSCH, while ensuring that the paging resources of each base station within the zone are the same, ensuring that the UE can still receive paging messages under each base station even without receiving an SSB.
[0087] Currently, to prevent paging signaling storms, paging is considered to begin from the last base station that released the UE. If the UE is not paged, the paging range will be expanded to the single-frequency network (SFN) area. For example, Figure 1 This is a diagram illustrating a paging scenario, such as... Figure 1 As shown, in the paging optimization scenario, assuming UE1, UE2, and UE3 are in the same area, UE1 is in the first paging (core network paging), and UE2 and UE3 are in SFN paging (core network paging). For paging optimization, the paging message sent by gNB1 for UE1 only includes UE1's identifier. For UE2 and UE3, the SFN paging message sent by gNB2 only includes UE2 and UE3's identifiers. It is assumed that in future communication scenarios, these two paging methods will be located in the same PO, for example, as... Figure 2 As shown, the paging cycle includes PO1, PO2, PO3, ..., POn, where n is a positive integer. UE1, UE2, and UE3 are in the same PO (i.e., PO2) and use the same DCI and demodulation reference signal (DMRS), but their physical downlink shared channel (PDSCH) content is different, meaning their paging messages and paging targets are different. Since SFN paging is area-wide, when UE1 receives a paging message from gNB1, it may simultaneously receive an SFN paging message from gNB2. This could cause the SFN paging message from gNB2 to interfere with the paging message from gNB1, making it impossible for UE1 to determine whether there is a paging message.
[0088] To address the aforementioned technical problems, this application proposes that within the same area, a first communication device can simultaneously detect a first DCI (Distributed Citation Information) for scheduling a first paging message for a first cell, and a second DCI for scheduling at least one cell. The first DCI and the second DCI are scrambled using different scrambling identifiers, such as scrambling identifiers with different granularities, enabling the first communication device to distinguish between them. In this case, the first communication device only receives / demodulates the first DCI for scheduling the first paging message for the first cell, ignoring the second DCI, thereby preventing paging from at least one cell within the area from interfering with paging of the first cell. This is described in detail below.
[0089] The technical solutions in this application will now be described with reference to the accompanying drawings.
[0090] In the embodiments of this application, "instruction" can include direct and indirect instructions, as well as explicit and implicit instructions. The information indicated by a certain piece of information is called the information to be instructed. In the specific implementation process, there are many ways to instruct the information to be instructed, such as, but not limited to, directly instructing the information to be instructed, such as the information to be instructed itself or its index. It can also indirectly instruct the information to be instructed by instructing other information, where there is a correlation between the other information and the information to be instructed. It can also instruct only a part of the information to be instructed, while the other parts are known or pre-agreed upon. For example, the instruction of specific information can be achieved by using a pre-agreed (e.g., protocol-defined) arrangement of various pieces of information, thereby reducing instruction overhead to some extent. At the same time, common parts of various pieces of information can be identified and uniformly indicated to reduce the instruction overhead caused by individually indicating the same information.
[0091] Furthermore, the specific instruction method can also be any existing instruction method, such as, but not limited to, the above-mentioned instruction methods and their various combinations. As described above, for example, when multiple pieces of information of the same type need to be indicated, the instruction methods for different pieces of information may differ. In the specific implementation process, the required instruction method can be selected according to specific needs. This application embodiment does not limit the selected instruction method. Therefore, the instruction methods involved in this application embodiment should be understood to cover various methods that enable the party to be instructed to obtain the information to be indicated.
[0092] The information to be instructed can be sent as a whole or divided into multiple sub-information messages, and the sending period and / or timing of these sub-information messages can be the same or different. The specific sending method is not limited in this application embodiment. The sending period and / or timing of these sub-information messages can be predefined, for example, according to a protocol, or configured by the sending node device by sending configuration information to the receiving node device.
[0093] In this application, "sending information" can be understood as one device sending information to another device, or it can also be understood as one logical module within a device sending information to another logical module. For example, "network device sending information" can be understood as a network device sending information to another device (such as a terminal device or other network devices), or it can be understood as logical module 1 in the network device sending information to logical module 2 in the network device.
[0094] In this application, "receiving information" can be understood as one device receiving information from another device, or it can also be understood as a logical module within a device receiving information from another logical module. For example, "network device receiving information" can be understood as a network device receiving information from another device (such as a terminal device or other network devices), or it can be understood as logical module 1 in the network device receiving information from logical module 2 in the network device.
[0095] In this application, the phrase "sending information to... (e.g., a terminal device)" or the related illustrations in the accompanying drawings can be understood as the destination of the information being the terminal device. This can include sending information directly or indirectly to the terminal device. Similarly, "receiving information from... (e.g., a terminal device)," "receiving information from... (e.g., a terminal device)," or "receiving information sent (e.g., by a terminal device)," or the related illustrations in the accompanying drawings, can be understood as the source of the information being the terminal device. This can include receiving information directly or indirectly from the terminal device. Information may undergo necessary processing between the source and destination, such as format changes, but the destination can understand the valid information from the source. Similar expressions in this application can be interpreted similarly, and will not be elaborated further here.
[0096] "Predefined" or "pre-configured" can be achieved by pre-saving corresponding codes, tables, or other means that can be used to indicate relevant information in the device. This application does not limit the specific implementation method. "Saving" can refer to saving in one or more memories. These memories can be separate installations or integrated into the encoder, decoder, processor, or communication device. Alternatively, some memories can be separately installed, while others are integrated into the decoder, processor, or communication device. The type of memory can be any form of storage medium, and this application does not limit this.
[0097] The “protocol” mentioned in the embodiments of this application may refer to a protocol family in the field of communication, a standard protocol with a similar protocol family frame structure, or a related protocol applied to future communication systems. The embodiments of this application do not specifically limit this.
[0098] In the embodiments of this application, descriptions such as "when," "under the circumstances," "if," and "if" all refer to the device making corresponding processing under certain objective circumstances, and are not limited to a specific time. They do not require the device to make a judgment action during implementation, nor do they imply any other limitations.
[0099] In the description of the embodiments of this application, unless otherwise stated, " / " indicates that the objects before and after are in an "or" relationship. For example, A / B can represent A or B. "And / or" in the embodiments of this application is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A alone, A and B simultaneously, and B alone, where A and B can be singular or plural. Furthermore, in the description of the embodiments of this application, unless otherwise stated, "multiple" refers to two or more. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or plural items. For example, at least one of a, b, or c can represent: a, b, c, ab, ac, bc, or abc, where a, b, and c can be single or multiple. Additionally, to facilitate a clear description of the technical solutions of the embodiments of this application, the terms "first" and "second" are used in the embodiments of this application to distinguish identical or similar items with essentially the same function and effect. Those skilled in the art will understand that the terms "first," "second," etc., do not limit the quantity or order of execution, and that "first," "second," etc., are not necessarily different. Furthermore, in the embodiments of this application, words such as "exemplary" or "for example" are used to indicate that something is being used as an example, illustration, or description. Any embodiment or implementation described as "exemplary" or "for example" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or implementations. Specifically, the use of words such as "exemplary" or "for example" is intended to present the relevant concepts in a concrete manner for ease of understanding.
[0100] The network architecture and business scenarios described in the embodiments of this application are for the purpose of more clearly illustrating the technical solutions of the embodiments of this application, and do not constitute a limitation on the technical solutions provided in the embodiments of this application. As those skilled in the art will know, with the evolution of network architecture and the emergence of new business scenarios, the technical solutions provided in the embodiments of this application are also applicable to similar technical problems.
[0101] To facilitate understanding of the embodiments of this application, let's first take... Figure 3 The communication system illustrated herein is used as an example to illustrate a communication system applicable to embodiments of this application. For example, Figure 3 A schematic diagram of the architecture of a communication system to which the method provided in the embodiments of this application is applicable. Figure 1 .
[0102] like Figure 3 As shown, the communication system mainly includes a first communication device and a second communication device. The first communication device can be a terminal device, and the second communication device can be a network device.
[0103] It is understood that, in the embodiments of this application, based on Figure 3 The communication system may include two or more network devices (such as a first network device, a second network device), and multiple terminal devices, without limitation. It is understood that... Figure 3 This is a simplified diagram for ease of understanding; other devices may also be included in this communication system. Figure 3 It was not drawn.
[0104] In one possible scenario, this communication system could be applied to 5G or future communication systems, for example... Figure 4 As shown, the communication system 10 includes a RAN 100, a core network (CN) 200, and an Internet 300. The RAN 100 includes at least one RAN node (e.g., Figure 4 110a and 110b (collectively referred to as 110) and at least one terminal device (such as Figure 4 RAN 100, denoted as RAN 120a-120j, is collectively referred to as RAN 120. RAN 100 may also include other RAN nodes, such as wireless relay equipment and / or wireless backhaul equipment. Figure 4 (Not shown in the image). Terminal device 120 is connected to RAN node 110 wirelessly. RAN node 110 is connected to core network 200 wirelessly or via wired connection. The core network equipment in core network 200 and RAN node 110 in RAN 100 can be different physical devices, or they can be the same physical device integrating core network logical functions and radio access network logical functions.
[0105] RAN 100 can be a 3GPP-related cellular system, such as a 4G or 5G mobile communication system, or a future-oriented evolution system (such as a future mobile communication system). RAN 100 can also be an open access network (open RAN, O-RAN, or ORAN), a cloud radio access network (CRAN), or a Wi-Fi system. RAN 100 can also be a communication system that integrates two or more of the above systems.
[0106] RAN node 110, sometimes also referred to as access network equipment, RAN entity, or access node, constitutes part of the communication system and assists terminal equipment in achieving wireless access. Multiple RAN nodes 110 in communication system 10 can be of the same type or different types. In some scenarios, the roles of RAN node 110 and terminal equipment 120 are relative, for example... Figure 4Network element 120i can be a helicopter or a drone, and it can be configured as a mobile base station. For terminal devices 120j that access RAN 100 through network element 120i, network element 120i is a base station; however, for base station 110a, network element 120i is a terminal device. RAN node 110 and terminal device 120 are sometimes referred to as communication devices, for example... Figure 4 Network elements 110a and 110b can be understood as communication devices with base station functions, while network elements 120a-120j can be understood as communication devices with terminal equipment functions.
[0107] In one possible scenario, a RAN node can be a base station, an evolved NodeB (eNodeB), a transmission reception point (TRP), a next-generation NodeB (gNB), a next-generation base station in a future mobile communication system, a base station in a future mobile communication system, or an access point (AP) in a Wi-Fi system, etc. A RAN node can also be a macro base station (such as...) Figure 4 110a), micro base stations or indoor stations (such as Figure 4 The RAN node can be a relay node or donor node (as described in section 110b), or a wireless controller in a CRAN scenario. Optionally, the RAN node can also be a server, wearable device, vehicle, or in-vehicle equipment. For example, the access network equipment in vehicle-to-everything (V2X) technology can be a roadside unit (RSU). All or part of the functions of the RAN node in this application can also be implemented through software functions running on hardware, or through virtualization functions instantiated on a platform (e.g., a cloud platform). The RAN node in this application can also be a logical node, logical module, or software capable of implementing all or part of the RAN node functions.
[0108] In another possible scenario, multiple RAN nodes collaborate to assist terminal devices in achieving wireless access, with different RAN nodes each implementing a portion of the base station's functions. For example, RAN nodes can be CUs, DUs, CUs (control plane, CP), CUs (user plane, UP), or radio units (RUs). CUs and DUs can be configured separately or included in the same network element, such as a baseband unit (BBU). RUs can be included in radio frequency equipment or radio frequency units, such as RRUs, active antenna units (AAUs), or remote radio heads (RRHs).
[0109] Figure 5 This is a schematic diagram of the architecture of an access network device, such as... Figure 5 As shown, the access network device includes one or more functional modules for signal processing. Taking physical layer functions as an example, the access network device may include one or more of the following functions: coding, rate matching, scrambling, modulation, layer mapping, precoding, resource element (RE) mapping, digital beamforming (BF), inverse fast fourier transform (IFFT) / adding cyclic prefix (CP), decoding, rate matching de-matching, descrambling, demodulation, inverse discrete fourier transform (IDFT), channel equalization (or channel estimation), RE demapper (or RE demapping), digital BF, fast Fourier transform (FFT) / CP removal, digital to analog (DA) conversion, analog BF, analog to digital (AD) conversion, or analog BF, etc.
[0110] The above-mentioned one or more functional modules can be implemented through software, hardware, or a combination of software and hardware. Physically, they can be discrete or integrated. It is understood that the above functional modules are merely examples, and the access network device may include, or exclude, other modules (e.g., scheduling module, power control module, hybrid automatic repeat request (HARQ) module, flow control module, mobility management module, or artificial intelligence (AI) module, depending on the design). Figure 5 The diagram shows a functional module (excluding the digital BF module). The access network equipment also includes a fronthaul (FH) interface between the DU and RU for communication between them. This fronthaul interface includes, but is not limited to, CPRI or eCPRI. In one possible implementation, the DU is located in the BBU, and the RU is located in the RRU / AAU / RRH; the interface between the BBU and the RRU / AAU / RRH can also be called the fronthaul interface. To implement the fronthaul interface, the BBU and RRU / AAU / RRH can be connected via a fronthaul network, or the DU and RU can be connected via a fronthaul network. For example, fronthaul networks include, but are not limited to, direct fiber optic connections and wavelength division multiplexing (WDM) networks.
[0111] Access network equipment can support one or more types of fronthaul interfaces. Different fronthaul interfaces correspond to DUs and RUs with different functions. For example... Figure 5 As shown, if the fronthaul interface between the DU and RU is CPRI, the DU is configured to implement one or more baseband functions, and the RU is configured to implement one or more radio frequency functions. If the fronthaul interface between the DU and RU is eCPRI, then, relative to CPRI, some downlink and / or uplink baseband functions are moved from the DU to the RU for implementation. Different splitting methods between the DU and RU correspond to different types (category, abbreviated as Cat) of eCPRI. Figure 5 The document provides eight examples of eCPRI. For downlink transmission, Cat A (corresponding to segmentation mode a), Cat B (corresponding to segmentation mode b), Cat C (corresponding to segmentation mode c), and Cat D (corresponding to segmentation mode d) are used as examples; for uplink transmission, Cat E (corresponding to segmentation mode e), Cat F (corresponding to segmentation mode f), Cat G (corresponding to segmentation mode g), and Cat H (corresponding to segmentation mode h) are used as examples (these can also be represented as option A to H, option 1 to 8, or other methods, without limitation). It can be understood that other segmentation methods may exist between DU and RU, i.e., other types of eCPRI may also exist.
[0112] For downlink transmission, for eCPRI Cat A, scrambling is the dividing line, and the DU is configured to implement one or more functions before and after scrambling (e.g., coding, rate matching, or one or more of scrambling), while other functions after scrambling (e.g., modulation, layer mapping, precoding, RE mapping, digital BF, or IFFT / CP addition) are implemented in the RU; for eCPRI Cat B, layer mapping is the dividing line, and the DU is configured to implement one or more functions before and after layer mapping (e.g., precoding, RE mapping, rate matching, scrambling, modulation, or one or more of layer mapping), while other functions after layer mapping (e.g., precoding, RE mapping, digital BF, or IFFT / CP addition) are implemented in the RU; for eCPRI Cat For C, with precoding as the dividing point, DU is configured to implement one or more functions preceding layer mapping (e.g., encoding, RE mapping, rate matching, scrambling, modulation, layer mapping, or precoding), while other functions following precoding (e.g., RE mapping, digital BF, or IFFT / addition CP) are implemented in RU; for eCPRI Cat D, with RE mapping as the dividing point, DU is configured to implement one or more functions preceding layer mapping (e.g., encoding, RE mapping, rate matching, scrambling, modulation, layer mapping, precoding, or RE mapping), while other functions following precoding (e.g., digital BF, or IFFT / addition CP) are implemented in RU.
[0113] For uplink transmission, for eCPRI Cat E, the de-RE mapping is used as the partitioning method. The DU is configured to implement one or more functions before and after de-mapping (e.g., decoding, de-rate matching, descrambling, demodulation, IDFT, channel equalization, or one or more of de-RE mapping), while other functions after de-mapping (e.g., digital BF, or one or more of FFT / CP removal) are implemented in the RU. For eCPRI Cat F, the channel equalization is used as the partitioning method. The DU is configured to implement one or more functions before and after de-mapping (e.g., decoding, de-rate matching, descrambling, demodulation, IDFT, or one or more of channel equalization), while other functions after de-mapping (e.g., de-RE mapping, digital BF, or one or more of FFT / CP removal) are implemented in the RU. For eCPRI Cat... For G, with IDFT as the dividing line, DU is configured to implement one or more functions before and after demapping (e.g., decoding, derate matching, descrambling, demodulation, or IDFT), while other functions after demapping (e.g., channel equalization, deRE mapping, digital BF, or FFT / CP removal) are moved to RU for implementation; for eCPRI Cat H, with demodulation as the dividing line, DU is configured to implement one or more functions before and after demapping (e.g., decoding, derate matching, descrambling, or demodulation), while other functions after demapping (e.g., IDFT, channel equalization, deRE mapping, digital BF, or FFT / CP removal) are moved to RU for implementation.
[0114] The eCPRI segmentation method can be symmetrical for uplink and downlink, or it can be asymmetrical for uplink and downlink, without restriction. Optionally, different segmentation methods can be configured for different channels or different channel groups for uplink and / or downlink, i.e., different types of eCPRI can be configured. A channel group can include one or more channels.
[0115] In one possible design, the DU is located in the BBU, and the RU is located in the RRU / AAU / RRH. The processing unit in the BBU that implements baseband functions is called the baseband high (BBH) unit, and the processing unit in the RRU / AAU / remoteradio head (RRH) that implements baseband functions is called the baseband low (BBL) unit.
[0116] In different systems, CU (or CU-CP and CU-UP), DU, or RU may have different names, but those skilled in the art will understand their meaning. For example, in an ORAN system, CU can also be called O-CU (open CU), DU can also be called O-DU, CU-CP can also be called O-CU-CP, CU-UP can also be called O-CU-UP, and RU can also be called O-RU. For ease of description, this application uses CU, CU-CP, CU-UP, DU, and RU as examples. Any of the units among CU (or CU-CP, CU-UP), DU, and RU in this application can be implemented through software modules, hardware modules, or a combination of software and hardware modules.
[0117] It is understood that the RAN node mentioned above can be a newly defined name, and RAN nodes can also be described in different ways, such as access node, network device, wireless access node, etc., without limitation. Unless otherwise specified in this application, network device will be used as the term.
[0118] Terminal devices can also be called terminals, user equipment (UE), mobile stations, mobile terminal devices, etc. Terminal devices can be widely used in various scenarios, such as device-to-device (D2D), V2X communication, machine-type communication (MTC), Internet of Things (IoT), point-of-sale (POS) machines, customer-premises equipment (CPE), virtual reality, augmented reality, industrial control, autonomous driving, telemedicine, smart grids, smart furniture, smart offices, smart wearables (e.g., smartwatches, smart bracelets, pedometers, smart glasses), smart transportation, smart cities, etc. Terminal devices can be mobile phones, tablets, computers with wireless transceiver capabilities, wearable devices, vehicle devices (e.g., vehicle units, in-vehicle modules, in-vehicle chips, on-board units (OBUs) or telematics boxes (T-BOXs)), drones, helicopters, airplanes, ships, robots, robotic arms, smart home devices, satellite terminal devices, etc. The embodiments of this application do not limit the device form of the terminal device.
[0119] Figure 6 This is a schematic diagram of a RAN chip architecture provided in an embodiment of this application, such as... Figure 6As shown, the system is divided into CU, DU, and RU. The CU is a platform that performs upper-layer functions, such as Layer 2 and Layer 3. Midhaul and backhaul interfaces carry traffic between the CU and DU, and between the CU and CN. The DU performs Layer 1 and some Layer 2 functions, while the RU performs Layer 1 computation and radio frequency (RF) digital functions; fronthaul and midhaul interfaces carry traffic between the RU and DU, and between the CU and DU. An integrated DU includes the functions of both the DU and RU. The RU can be connected to an antenna (ANT).
[0120] CU and DU can include: central processing unit (CPU) and field programmable gate array (FPGA) / graphics processing unit (GPU) / other accelerators. The CPU and FPGA / GPU / other accelerators are connected via the peripheral component interconnect express (PCIe) standard.
[0121] The CU / DU hardware includes a chassis platform, motherboard, peripherals, and cooling system. The motherboard contains processing units, memory, internal I / O interfaces, and external connection ports. Its hardware accelerator is designed with interfaces, and hardware functional components include: storage for software, hardware, and system debugging interfaces, and a single-board management controller.
[0122] DU systems are typically implemented using multi-core processors and one or more hardware accelerators. Parts of the DU protocol stack can be implemented in software running on the multi-core processor, while computationally intensive L1 and L2 functions can be offloaded to FPGA / GPU-based hardware accelerators; alternatively, all L1 functions can be offloaded to FPGA / GPU-based hardware accelerators, while other protocol stack components are implemented in software running on the processor; or the entire protocol stack can be implemented in software running on the processor. Hardware accelerators support interconnection with both x86 and non-x86 processors. Similarly, accelerators have multi-channel PCIe interfaces pointing to the CPU and external connections via gigabit Ethernet (GbE) connectivity.
[0123] The RU comprises three parts: the O-RAN processing unit (OPU), the O-RU's digital processing unit (DPU), and the RF processing unit. The O-RAN processing unit receives Enhanced Common Public Radio Interface (eCPRI) frames from the O-RAN fronthaul and performs fronthaul interface operations, the lowest level L1 (coding, scrambling, modulation, layer mapping, precoding), synchronization, beamforming, and resource unit mapping. The OPU can be implemented as a CPU, FPGA, or application-specific integrated circuit (ASIC). The O-RU's digital processing unit (DPU) performs synchronous digital downconversion (DDC), digital upconversion (DUC), crest factor reduction (CFR), and digital pre-distortion (DPD). It improves power amplifier efficiency by reducing the peak-to-average power ratio (PAPR) / adjacent channel leakage ratio (ACLR) of the RF front-end. The DPU can be implemented as an FPGA or ASIC. The O-RU's RF processing unit includes a transceiver module, up / down converters, power amplifiers (PA), low-noise amplifiers (LNA), and transmit (Tx) / receive (Rx) filters. All conversions between the analog and digital domains (such as digital-to-analog converters (DACs) and analog-to-digital converters (ADCs), for example, RF sampling, the use of RF in up-conversion and down-conversion, and frequency conversion by mixing intermediate frequency (IF) and local oscillator (LO) frequencies) are performed within the transceiver module. It should be understood that physical and logical partitioning within the RF processing unit does not require specific boundaries.
[0124] In this communication system, different DCIs are used to schedule / indicate system message updates and paging messages. The first DCI, used to indicate system message updates, uses different time-frequency resources than the second DCI, which is used to schedule paging messages, thus decoupling the scheduling / indication methods of the two functions. The first communication device (such as a terminal device) distinguishes the function of detecting / receiving information through the first and second resources. Therefore, compared to the current method where both paging message and system message update indication functions are issued within the paging DCI, this system can achieve scheduling / indication functions at different granularities. For example, system message updates can be indicated at the base station / cell level, while paging messages can be scheduled at the region level. This supports the needs of diverse communication scenarios and can be applied to future communication applications.
[0125] The following will combine Figures 7-9 This application provides a detailed description of the interaction process between various network elements / devices in the aforementioned communication system through method embodiments. The communication method provided in this application can be applied to the aforementioned communication system and specifically to various scenarios / processes mentioned in the aforementioned communication system, which will be described in detail below.
[0126] Figure 7 Flowchart of the communication method provided in the embodiments of this application Figure 1 This communication method is applicable to the aforementioned communication system and mainly involves the interaction between the first communication device and the second communication device.
[0127] like Figure 7 As shown, the flow of this communication method is as follows:
[0128] S701, the second communication device transmits the first DCI on the first resource, and the first communication device detects the first DCI and the second DCI on the first PO.
[0129] The first DCI is used to schedule the first paging message of the first cell, and the second DCI is used to schedule the second paging message of at least one cell.
[0130] The first resource here can be a first PO, or the first resource includes the first PO. At least one cell may not include a first cell, and the first cell and at least one cell belong to the same area. The cell can also be replaced with a physical cell, without limitation. In the embodiments of this application, in future communication systems, the first PO can also be replaced with other possible expressions, such as the first resource, the first time-frequency resource, etc., without limitation.
[0131] The area here can be used to represent a group of physically close or geographically adjacent cells that together cover a large geographical area. Terminal devices may move randomly within this large geographical area, possibly moving from one cell to another.
[0132] In some examples, the area mentioned above can be a tracking area (TA) or a radio access network notification area (RNA), or any other possible area, such as a predefined physical area, without limitation.
[0133] A Location Area (TA) is a geographical area in a mobile communication network, consisting of one or more cells, used to manage the mobility and location updates of terminal devices. Within a TA, terminal devices may not need to perform area updates. Random access configuration information can be identical across different cells within a TA.
[0134] An RNA (Radio Area) is a specific geographic region used for mobility management of terminal devices. Generally, an RNA can be a smaller area than a TA (Traffic Availability) region, but its function is similar. Paging-related configuration information can be identical across different cells within an RNA.
[0135] The first paging message for the first cell can be a paging message sent from the first network device (i.e., the second communication device) serving the first cell to the first communication device, such as the first paging terminal #1 (i.e., the first communication device) in the core network, where the first network device is the base station that last released terminal #1. The second paging message for at least one cell can be a paging message sent by the second network device serving at least one cell, where the paging target of the second paging message is not the first communication device, such as the second network device paging terminal #2 for the second or nth time. The second network device can be one or more.
[0136] In other words, the first paging message corresponds to the first paging in the core network, and the second paging message corresponds to the second or nth paging in the core network, where n is greater than or equal to 1. The second paging message can also be an SFN paging message, representing a paging message within a specific area. It can be understood that the area corresponding to the second paging message is larger than the area corresponding to the first paging message, and the second paging message and the first paging message represent two different stages of core network paging. Normally, the first communication device will not simultaneously receive paging messages from both stages of the same cell. At least one cell's second paging message may not paging the first communication device, but because the first and second paging messages reside on the same PO resource, the first communication device can detect the second paging message.
[0137] The first PO can be used to carry the first DCI and the second DCI, and the first DCI and the second DCI can be used to schedule paging messages. If the first DCI carries information for scheduling paging messages, it indicates whether to schedule paging messages through bit 0 or 1.
[0138] The first DCI and the second DCI are information scrambled using different scrambling identifiers. Therefore, the first communication device can distinguish between the first DCI and the second DCI.
[0139] Optionally, the first communication device periodically and continuously detects the DCI on the first PO, and the first communication device uses different scrambling identifiers when detecting the first DCI and the second DCI.
[0140] Optionally, the first DCI is information scrambled by the PCI of the first cell, and the second DCI is information scrambled by the area identifier, wherein the area includes at least one cell and the first cell.
[0141] Among them, the area identifier can uniquely identify an area, such as the single frequency network (SFN) identifier, or other possible identifiers, without restriction.
[0142] Optionally, the area identifier can also be used to scramble paging-related messages in the aforementioned area, such as DMRS for PDSCH, DMRS for PDCCH, PDSCH, PDCCH channel / signal, etc.
[0143] The first DCI scrambles at the physical cell level, while the second DCI scrambles at the region level. This can also be understood as the second communication device scheduling the core network's second or nth paging message at the region level, and scheduling the core network's first paging message at the cell level.
[0144] In other words, both the first DCI and the second DCI are used to schedule paging messages, and they can achieve different granularities of scheduling. For example, the first DCI is for cell-level scheduling, and the second DCI is for area-level scheduling.
[0145] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0146] The area identifier and the PCI can be distinguished in terms of granularity (area or cell) and value range. For example, the PCI value range is 0 to 1007, while the area identifier value range can be 1008 to 65535 without restriction.
[0147] Optionally, S701 may include: the first communication device using the PCI of the first cell to detect the first DCI on the first PO, and using the area identifier to detect the second DCI.
[0148] The first DCI is scrambled via the PCI of the first cell. Therefore, when the first communication device receives the first DCI, it receives and descrambles the first DCI via the PCI of the first cell. When the first communication device detects the first DCI, it can determine that it is a DCI related to the physical cell corresponding to that PCI.
[0149] The second DCI can be information scrambled by a region identifier, and the first communication device detects the second DCI by the region identifier.
[0150] The first communication device continuously detects DCI on the first PO. After detecting DCI, it determines whether the detected DCI is a first DCI used to schedule a first paging message for the first cell or a second DCI used to schedule a second paging message for at least one cell by using different scrambling identifiers.
[0151] Optionally, prior to S701, the communication method may further include: the first communication device receiving the area identifier and PCI from the first cell.
[0152] It is understandable that when the first communication device camps in the first cell or accesses the first communication device, it can obtain the area identifier and PCI through SIB1, so as to detect DCI on the first PO according to the area identifier and PCI.
[0153] Optionally, the scrambling sequences of DMRS for PDCCH, PDCCH, DMRS for PDCCH, and PDCCH of the first cell are all scrambled using the PCI of the first cell. The scrambling sequences of DMRS for PDCCH, PDCCH, DMRS for PDCCH, and PDCCH of at least one cell are all scrambled using the area identifier.
[0154] Optionally, the first paging message is used to page terminals within a first cell, and the second paging message is used to page terminals within at least one cell. Terminals within the first cell may include a first communication device. The second paging message in at least one cell may not page the first communication device; for example, it may include other terminals within the at least one cell.
[0155] In the embodiments of this application, the first resource can be replaced with other possible expressions, such as first time-frequency resource, first resource location, first time-frequency resource location, etc., without limitation. The second resource is similar to the first resource and will not be described in detail.
[0156] It is understood that in future communication scenarios, the first DCI and the second DCI in the embodiments of this application can be replaced with any other possible expressions, such as first control information, second control information, etc., without limitation. There is no restriction on the order in which the first communication device detects the first DCI and the second DCI. For example, the first communication device can detect the first DCI first and then the second DCI, or the first communication device can detect the second DCI first and then the first DCI.
[0157] S702, the first communication device demodulates the first DCI.
[0158] The first communication device continuously detects DCI on the first PO. After detecting a DCI, it determines whether the detected DCI is a first DCI used to schedule a first paging message for the first cell, or a second DCI used to schedule a second paging message for at least one cell, by using different scrambling identifiers. The first communication device only receives and demodulates the first DCI, thereby avoiding interference from paging messages of at least one cell within the area to paging messages of the first cell.
[0159] S703, the second communication device transmits the second DCI on the second resource.
[0160] S703 is an optional step. The second resource and the first resource include different time-frequency resources. The second DCI is used to schedule a second paging message for at least one cell. The target of the second paging message may not be the first communication device. For example, the second communication device may send a first DCI on the first resource to schedule a first paging message for the core network to page the first communication device for the first time; or it may send a second DCI on the second resource to schedule a second or nth paging message for the core network to page other communication devices for the second or nth time.
[0161] The following combination Figure 8 The specific process of the communication method provided in the embodiments of this application is described in detail.
[0162] Figure 8 Flowchart of the communication method provided in the embodiments of this application Figure 2 . Figure 8 The process shown mainly involves the interaction between UE1 (such as the first communication device mentioned above), gNB1 (such as the first network device / second communication device mentioned above), UE2, gNB2 (such as the second network device mentioned above) and the access and mobility management function (AMF).
[0163] like Figure 8 As shown, the flow of this communication method is as follows:
[0164] S801, AMF sends paging DCI#1 to gNB1.
[0165] Paging DCI#1 corresponds to the first DCI mentioned above and is used to schedule paging message #1 (as described in the first paging message). Existing signaling can be reused, or new signaling can be used for transmission. This paging is the first time the core network has paging UE1. gNB1 is the base station that last released UE1.
[0166] S802, gNB1 sends paging DCI#1 to UE1.
[0167] Paging DCI#1 and paging message #1 are scrambled using the PCI corresponding to gNB1. That is, the DMRS for PDSCH and PDSCH scrambling sequences are scrambled using the PCI of gNB1, and the DMRS for PDCCH and PDCCH scrambling sequences are also scrambled using the PCI of gNB1.
[0168] S803, AMF sends paging DCI#2 to gNB2.
[0169] Paging DCI #2 corresponds to the second DCI mentioned above and is used to schedule paging message #2 (as described in the second paging message above). Paging message #2 can be an SFN paging message, which is the second or nth paging of UE2 by the core network, where n is greater than or equal to 1. S804, gNB1 sends paging message #1 to UE1.
[0170] S804, gNB2 sends paging DCI#2 to UE1 and UE2.
[0171] Paging DCI#2 and paging message #2 are scrambled using a region identifier. All paging-related messages within this region are scrambled using the same region identifier. This region includes gNB1 and gNB2. Similarly, DMRS for PDSCH and PDSCH scrambling sequences are scrambled using region identifiers. Furthermore, DMRS for PDCCH and PDCCH scrambling sequences are also scrambled using region identifiers.
[0172] S805, after UE1 detects both paging DCI#1 and paging DCI#2 simultaneously, it demodulates paging DCI#1.
[0173] UE1 uses gNB1's PCI and area identifier to detect DCI at the PO location carrying paging DCI#1 and paging DCI#2. If paging DCI#1 and paging DCI#2 are detected at the same time, UE1 only demodulates the PCI scrambled paging DCI#1.
[0174] The PCI is obtained by UE1 when it camps on gNB1 or accesses gNB1 by retrieving the SSB. The area identifier is obtained by UE1 when it camps on gNB1 or accesses gNB1 by the SIB1 system message.
[0175] In summary, within the same area, the second communication device can transmit DCI messages for scheduling paging messages at different granularities on different time-frequency resources. This allows paging of terminals within the first cell at the cell level, and paging of terminals within at least one cell at the granularity of at least one cell. Here, "at least one cell" can also be the granularity of an entire region. This enables the receiving end (such as the first communication device) to distinguish between the first paging message and the second paging message, thereby preventing paging from at least one cell within the region from interfering with paging in the first cell.
[0176] Figure 9 Flowchart of the communication method provided in the embodiments of this application Figure 3 This communication method is applicable to the aforementioned communication system and mainly involves the interaction between a first communication device and a second communication device. It is understood that "first," "second," etc., can be expressions at the granularity of an embodiment, such as... Figure 9 In the corresponding embodiment, "first DCI" and Figure 7 The content indicated by "first DCI" in the corresponding embodiments may be different. Figure 9 The "first resource" in the corresponding embodiment and Figure 7 The content indicated by "first resource" in the corresponding embodiments may be different.
[0177] like Figure 9 As shown, the flow of this communication method is as follows:
[0178] S901, the second communication device transmits the first DCI on the first resource, and correspondingly, the first communication device detects the first DCI on the first resource.
[0179] The first DCI is used to schedule the first paging message of the first cell.
[0180] S902, the second communication device transmits the second DCI on the second resource, and correspondingly, the first communication device detects the second DCI on the second resource.
[0181] The second DCI is used to schedule the second paging message for at least one cell, where the first cell and at least one cell belong to the same area. The first resource and the second resource include different time-frequency resources.
[0182] The description of the first cell and at least one cell in S701 is provided below and will not be repeated here. The description of the area in S701 is provided below and will not be repeated here. The description of the first paging message and the second paging message in S701 is provided below and will not be repeated here.
[0183] Let's introduce S901 and S902 together.
[0184] The first resource can reuse existing protocol configuration paging resources, such as using an existing PO configuration. The second resource can use new paging resource configurations, such as those located next to an existing / legacy PO. For example, ... Figure 10 As shown, the paging cycle includes PO1, PO2, PO3, ..., POn, where n is greater than or equal to 1. PO1', PO2', PO3', ..., POn' are added next to PO1, PO2, PO3, ..., POn respectively. When the first resource and the second resource include multiple time-frequency resources, the first resource includes PO1, PO2, PO3, ..., POn, and the second resource includes PO1', PO2', PO3', ..., POn'.
[0185] Understandable. Figure 10 As an example only, the first communication device may detect the DCI carried by the first resource first, and then detect the DCI carried by the second resource, or it may detect the DCI carried by the second resource first, and then detect the DCI carried by the first resource, without limitation.
[0186] Optionally, the time-frequency resource is a PO resource. Different PO resources can distinguish between the first DCI and the second DCI, preventing the first communication device from confusing the information indicated by the first DCI and the second DCI.
[0187] Optionally, the first DCI and the second DCI are information scrambled with a region identifier, and the region includes at least one cell and the first cell.
[0188] In other words, both the first DCI and the second DCI are scrambled with area identifiers. In addition, the first paging message and the second paging message can also be scrambled with area identifiers. That is, all paging-related messages within the area can be scrambled with area identifiers.
[0189] The description of area identifiers in S801 can be referenced and will not be repeated here.
[0190] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0191] The specific implementations of S901-S902 can also refer to the specific implementations of S701-S703, which will not be elaborated further.
[0192] In summary, by having the first DCI and the second DCI carried on different time-frequency resources and associated with different paging messages, the first communication device can distinguish between the first DCI and the second DCI in the paging optimization scenario, and thus distinguish the paging messages carried by the first DCI and the second DCI, thereby avoiding interference from paging of at least one cell in the area to paging of the first cell.
[0193] Figure 11 Flowchart of the communication method provided in the embodiments of this application Figure 4 This communication method is applicable to the aforementioned communication system and mainly involves the interaction between a first communication device and a second communication device. It is understood that "first," "second," etc., can be expressions at the granularity of an embodiment, such as... Figure 11 In the corresponding embodiment, "first DCI" and Figure 7 , Figure 9 The content indicated by "first DCI" in the corresponding embodiments may be different. Figure 11 The "first resource" in the corresponding embodiment and Figure 7 , Figure 9 The content indicated by "first resource" in the corresponding embodiments may be different.
[0194] like Figure 11 As shown, the flow of this communication method is as follows:
[0195] S1101, the second communication device sends the first information, and correspondingly, the first communication device receives the first information.
[0196] The first information indicates the first resource and the second resource, wherein the first resource is used to carry the first paging message of the first cell, and the second resource is used to carry the second paging message of at least one cell.
[0197] The first and second resources include different time-frequency resources. For example, the first and second resources can be multiplexed using time division multiplexing or frequency division multiplexing; this application does not impose any restrictions. Optionally, the time-frequency resource is a PO resource.
[0198] The first cell and at least one cell belong to the same area. The description of the first cell and at least one cell in S701 is provided below and will not be repeated here. The area description is provided below. The first paging message and the second paging message are provided below.
[0199] The first paging message may include the PDSCH of the first paging in the core network, and the second paging message may include the PDSCH of the second / nth paging in the core network. For example, the first DCI indicates the PDSCH of the first paging in the core network and the PDSCH of the second / nth paging (also known as SFN paging), and the two PDSCHs are located in different time-frequency resource locations.
[0200] Optionally, the first information includes a first DCI, which is used to schedule paging messages. The first DCI is information scrambled with an area identifier, and the area includes at least one cell and a first cell.
[0201] In other words, the first paging message and the second paging message can use the same first DCI scheduling and are scrambled with the area identifier.
[0202] The description of area identifiers in S801 can be referenced and will not be repeated here.
[0203] Optionally, the first paging message is a message scrambled using the PCI of the first cell, and the second paging message is a message scrambled using the area identifier.
[0204] In other words, the first paging message and the second paging message are scrambled using different scrambling identifiers, and the scrambling identifiers used for demodulating the first paging message and the second paging message are different. For example, the DMRS initialization sequence used by the PDSCH in the first paging message is scrambled using the PCI of the first cell, while the DMRS initialization sequence used by the PDSCH in the second paging message is scrambled using the area identifier.
[0205] It is understandable that the first paging message is decoupled from the first DCI used to schedule the first paging message, and scrambled using different scrambling identifiers. That is, the first DCI is information scrambled with the area identifier, and the first paging message is a message scrambled with the PCI of the first cell.
[0206] Optionally, the range of values for the region identifier may differ from the range of values for the PCI.
[0207] S1102, the first communication device detects the first paging message on the first resource and the second paging message on the second resource according to the first DCI.
[0208] The first communication device detects the first DCI (i.e., the first information) on the same PO, and according to the instruction of the first information, detects two paging messages scrambled by two scrambling identifiers at different time-frequency resource locations, namely the first paging message and the second paging message, which mainly include DMRS sequences.
[0209] The specific implementations of S1101-S1102 can also refer to the specific implementations of S701-S703, which will not be elaborated further.
[0210] In summary, by carrying the first paging message of the first cell and the second paging message of at least one cell on different time-frequency resources, the first communication device can distinguish between the first paging message and the second paging message in the paging optimization scenario, thereby avoiding interference from paging of at least one cell in the area to paging of the first cell.
[0211] The various implementation methods in this application embodiment can be used in combination, and the combination form of the various implementation methods in the above embodiments is not limited.
[0212] The following is combined Figure 12 The process of the method in the chip architecture of the embodiments of this application will be described. For example... Figure 12 As shown, the process specifically includes S1201-S1205.
[0213] S1201, RU sends PUSCH / PDSCH / PDCCH / PUCCH channel processing capabilities and conversion rules to DU.
[0214] During system startup or reconfiguration, the RU reports the PUSCH / PDSCH / PDCCH / PUCCH channel processing capabilities and conversion rules to the DU via the eCPRI interface.
[0215] S1202, DU assigns the appropriate PDSCH / PDCCH channel processing task for the next cycle.
[0216] The DU side calculates the RU processing capacity margin based on the scheduling results of the PUSCH / PDSCH / PDCCH / PUCCH channels in the current processing cycle, and allocates appropriate PDSCH / PDCCH channel processing tasks for the next cycle based on the processing capacity margin, such as DCI and paging messages to be sent.
[0217] S1203, DU sends PDSCH / PDCCH channel processing task to RU.
[0218] The DU notifies the RU of the PDSCH and / or PDCCH channel processing tasks allocated by S1202 through the eCPRI interface. The eCPRI interface signaling involved is newly added signaling, and the signaling definition contains information required for PDCCH / PDSCH channel processing, such as: PDCCH / PDSCH channel slot number, symbol position, DCI comb distribution information, frequency domain position, etc.
[0219] S1204: After receiving the dynamic PDCCH / PDSCH channel processing signaling, the RU updates the channel configuration according to the signaling requirements.
[0220] S1205, RU sends the PDCCH / PDSCH channel processing results to DU.
[0221] When a DCI or paging signal arrives, the RU completes the PDCCH / PDSCH channel processing according to the channel configuration received in S1204, and sends the DCI or paging information processing results required by the DU under the current configuration to the DU through the eCPRI interface. The content of the processing results can vary depending on the current segmentation options and may include channel information or weighting information, etc.
[0222] This application embodiment features a flexible RAN architecture design, suitable for O-RAN fronthaul interfaces. By splitting the RAN architecture, this application embodiment achieves flexible signal processing.
[0223] The above combination Figures 7-12 The methods provided in the embodiments of this application are described in detail below. Figures 13-14 This document describes in detail the communication apparatus used to perform the communication method provided in the embodiments of this application.
[0224] Figure 13 This is a schematic diagram of the structure of the communication device provided in the embodiments of this application. Figure 1 For example, such as Figure 13 As shown, the communication device 1300 includes a transceiver module 1301 and a processing module 1302. For ease of explanation, Figure 13 Only the main components of the communication device are shown.
[0225] The transceiver module 1301 is used to perform the above. Figure 7 The sending and receiving functions of the method shown are executed by the processing module 1302. Figure 7 The method shown includes functions other than sending and receiving.
[0226] Optionally, the transceiver module 1301 may include a transmitting module. Figure 13 (not shown in the image) and receiving module ( Figure 13 (Not shown in the image). The transmitting module is used to implement the transmitting function of the communication device 1300, and the receiving module is used to implement the receiving function of the communication device 1300.
[0227] Optionally, the communication device 1300 may also include a storage module. Figure 13 (Not shown in the image), the storage module stores programs or instructions. When the processing module 1302 executes the program or instructions, the communication device 1300 can perform the above-described method. Figure 7 The method shown describes the functions of the terminal device or network device.
[0228] It is understood that the communication device 1300 may be a terminal device or a network device, or a chip (system) or other component or assembly that can be disposed in a terminal device or a network device, or a device that includes a terminal device or a network device. This application does not limit this.
[0229] In addition, the technical effects of the communication device 1300 can be referenced. Figure 7 The technical effects of the communication method shown will not be elaborated here.
[0230] Figure 14 Schematic diagram of the communication device provided in the embodiments of this application Figure 2 For example, the communication device can be a terminal device, or a chip (system) or other component or assembly that can be disposed in the terminal device. Figure 14 As shown, the communication device 1400 may include a processor 1401. Optionally, the communication device 1400 may also include a memory 1402 and / or a transceiver 1403. The processor 1401 is coupled to the memory 1402 and / or the transceiver 1403, for example, by means of a communication bus, an on-chip interface, or other communication lines. Optionally, the memory 1402 may be integrated with the processor 1401.
[0231] The following is combined Figure 14 A detailed description of each component of the communication device 1400 is provided below:
[0232] The processor 1401 is the control center of the communication device 1400. It can be a single processor or a collective term for multiple processing elements. For example, the processor 1401 can be one or more central processing units (CPUs), application-specific integrated circuits (ASICs), or one or more integrated circuits configured to implement the embodiments of this application, such as one or more digital signal processors (DSPs), or one or more field-programmable gate arrays (FPGAs).
[0233] Optionally, the processor 1401 can perform various functions of the communication device 1400, such as the functions described above, by running or executing software programs stored in the memory 1402 and calling data stored in the memory 1402. Figure 7 The communication method shown.
[0234] In a specific implementation, as one example, the processor 1401 may include one or more CPUs, for example... Figure 14 CPU0 and CPU1 are shown in the diagram.
[0235] In a specific implementation, as one example, the communication device 1400 may also include multiple processors, for example... Figure 14 The processors 1401 and 1404 are shown. Each of these processors can be a single-core processor or a multi-core processor. A processor here can refer to one or more devices, circuits, and / or processing cores used to process data (e.g., computer program instructions).
[0236] The memory 1402 is used to store the software program that executes the solution of this application, and is controlled by the processor 1401 to execute it. The specific implementation method can be referred to the above method embodiment, and will not be repeated here.
[0237] Optionally, the memory 1402 may be a read-only memory (ROM) or other type of static storage device capable of storing static information and instructions, random access memory (RAM) or other type of dynamic storage device capable of storing information and instructions, or electrically erasable programmable read-only memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, optical disc storage (including compressed optical discs, laser discs, optical discs, digital universal optical discs, Blu-ray discs, etc.), magnetic disk storage media or other magnetic storage devices, or any other medium capable of carrying or storing desired program code in the form of instructions or data structures and accessible by a computer, but not limited thereto. The memory 1402 may be integrated with the processor 1401 or may exist independently, and may be connected via the interface circuit of the communication device 1400. Figure 14 (Not shown in the image) is coupled to processor 1401, and this embodiment of the application does not specifically limit this.
[0238] Transceiver 1403 is used for communication with other communication devices. For example, if communication device 1400 is a terminal device, transceiver 1403 can be used to communicate with a network device or with another terminal device. As another example, if communication device 1400 is a network device, transceiver 1403 can be used to communicate with a terminal device or with another network device.
[0239] Alternatively, transceiver 1403 may include a receiver and a transmitter. Figure 14 (Not shown separately). The receiver is used to implement the receiving function, and the transmitter is used to implement the sending function.
[0240] Alternatively, the transceiver 1403 can be integrated with the processor 1401, or it can exist independently and be connected via the interface circuit of the communication device 1400. Figure 14 (Not shown in the image) is coupled to processor 1401, and this embodiment of the application does not specifically limit this.
[0241] Understandable Figure 14 The structure of the communication device 1400 shown does not constitute a limitation on the communication device. Actual communication devices may include more or fewer components than shown, or combine certain components, or have different component arrangements.
[0242] Furthermore, the technical effects of the communication device 1400 can be referred to the technical effects of the method described in the above method embodiments, and will not be repeated here.
[0243] It should be understood that the processor in the embodiments of this application can be a central processing unit (CPU), or it can be other general-purpose processors, DSPs, ASICs, FPGAs, or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or any conventional processor, etc.
[0244] It should also be understood that the memory in the embodiments of this application can be volatile memory or non-volatile memory, or may include both volatile and non-volatile memory. Non-volatile memory can be ROM, programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), EEPROM, or flash memory. Volatile memory can be random access memory (RAM), which is used as an external cache. By way of example, but not limitation, many forms of RAM are available, such as static RAM (SRAM), dynamic random access memory (DRAM), synchronous dynamic random access memory (SDRAM), double data rate synchronous dynamic random access memory (DDRSDRAM), enhanced synchronous dynamic random access memory (ESDRAM), synchronous linked dynamic random access memory (SLDRAM), and direct rambus RAM (DR RAM).
[0245] The above embodiments can be implemented, in whole or in part, by software, hardware (such as circuits), firmware, or any other combination thereof. When implemented using software, the above embodiments can be implemented, in whole or in part, in the form of a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or executed on a computer, all or part of the processes or functions described in the embodiments of this application are generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device. The computer instructions can be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center via wired (e.g., infrared, wireless, microwave, etc.) means. The computer-readable storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more sets of available media. The available medium can be a magnetic medium (e.g., floppy disk, hard disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium. A semiconductor medium can be a solid-state drive.
[0246] It should be understood that the term "and / or" in this article is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can represent: A existing alone, A and B existing simultaneously, or B existing alone. A and B can be singular or plural. Additionally, the character " / " in this article generally indicates an "or" relationship between the preceding and following related objects, but it can also represent an "and / or" relationship. Please refer to the context for a more accurate understanding.
[0247] In this application, "at least one" means one or more, and "more than one" means two or more. "At least one of the following" or similar expressions refer to any combination of these items, including any combination of single or multiple items. For example, at least one of a, b, or c can mean: a, b, c, ab, ac, bc, or abc, where a, b, and c can be single or multiple.
[0248] It should be understood that in the various embodiments of this application, the order of the above-mentioned processes does not imply 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 this application.
[0249] Those skilled in the art will recognize that the units and algorithm steps of the various examples 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 implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.
[0250] Those skilled in the art will understand that, for the sake of convenience and brevity, the specific working processes of the systems, devices, and units described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here.
[0251] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.
[0252] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.
[0253] In addition, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.
[0254] If the aforementioned functions are implemented as software functional units 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 this application, in essence, or the part that contributes to the prior art, or a portion of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes all the various possible memories described above.
Claims
1. A communication method, characterized in that, include: On the first paging time PO, a first downlink control information (DCI) and a second DCI are detected. The first DCI is used to schedule a first paging message for a first cell, and the second DCI is used to schedule a second paging message for at least one cell. The first cell and the at least one cell belong to the same area. The first DCI and the second DCI are information scrambled using different scrambling identifiers. Demodulate the first DCI.
2. The method according to claim 1, characterized in that, The first DCI is information scrambled with the Physical Cell Identifier (PCI) of the first cell, and the second DCI is information scrambled with the Area Identifier (AIA), wherein the area includes the at least one cell and the first cell.
3. The method according to claim 2, characterized in that, The range of values for the region identifier is different from the range of values for PCI.
4. The method according to claim 2 or 3, characterized in that, The detection of the first downlink control information (DCI) and the second DCI on the first PO includes: The first DCI is detected using the PCI on the first PO, and the second DCI is detected using the region identifier.
5. The method according to any one of claims 2 to 4, characterized in that, Before detecting the first downlink control information (DCI) and the second DCI on the first PO, the method further includes: Receive the area identifier and the PCI from the first cell.
6. The method according to any one of claims 1 to 5, characterized in that, The first paging message is used to page a terminal in the first cell, and the second paging message is used to page a terminal in the at least one cell.
7. A communication method, characterized in that, include: Send a first DCI on the first resource, the first DCI being used to schedule a first paging message for the first cell; A second DCI is transmitted on a second resource. The second DCI is used to schedule a second paging message for at least one cell, and the first cell and the at least one cell belong to the same area. The first DCI and the second DCI are information scrambled using different scrambling identifiers.
8. The method according to claim 7, characterized in that, The first DCI is information scrambled by the PCI of the first cell, and the second DCI is information scrambled by the area identifier, wherein the area includes the at least one cell and the first cell.
9. The method according to claim 8, characterized in that, The range of values for the region identifier is different from the range of values for PCI.
10. The method according to any one of claims 7 to 9, characterized in that, The first paging message is used to page a terminal in the first cell, and the second paging message is used to page a terminal in the at least one cell.
11. A communication method, characterized in that, include: The first DCI is detected on the first resource, and the first DCI is used to schedule the first paging message of the first cell. A second DCI is detected on a second resource, the second DCI being used to schedule a second paging message for at least one cell, the first cell and the at least one cell belonging to the same area; the first resource and the second resource include different time-frequency resources.
12. A communication method, characterized in that, include: Send a first DCI on the first resource, the first DCI being used to schedule a first paging message for the first cell; A second DCI is transmitted on a second resource, the second DCI being used to schedule a second paging message for at least one cell, the first cell and the at least one cell belonging to the same area; the first resource and the second resource include different time-frequency resources.
13. The method according to claim 11 or 12, characterized in that, The time-frequency resource is a PO resource.
14. The method according to claim 11 or any one of 13, characterized in that, The first DCI and the second DCI are information scrambled with a region identifier, and the region includes the at least one cell and the first cell.
15. The method according to claim 14, characterized in that, The range of values for the region identifier is different from the range of values for PCI.
16. A communication method, characterized in that, include: The system receives first information, which indicates first and second resources. The first resource is used to carry a first paging message for a first cell, and the second resource is used to carry a second paging message for at least one cell. The first and second resources include different time-frequency resources. The first cell and the at least one cell belong to the same area. Based on the first DCI, the first paging message is detected on the first resource, and the second paging message is detected on the second resource.
17. A communication method, characterized in that, include: Send a first message, the first message indicating a first resource and a second resource, the first resource being used to carry a first paging message for a first cell, the second resource being used to carry a second paging message for at least one cell, the first resource and the second resource including different time-frequency resources; the first cell and the at least one cell belong to the same area.
18. The method according to claim 16 or 17, characterized in that, The time-frequency resource is a PO resource.
19. The method according to claim 16 to 18, characterized in that, The first information includes a first DCI, which is used to schedule paging messages. The first DCI is information scrambled with a region identifier, and the region includes the at least one cell and the first cell.
20. The method according to claim 19, characterized in that, The first paging message is a message scrambled using the PCI of the first cell, and the second paging message is a message scrambled using the area identifier.
21. The method according to claim 19 or 20, characterized in that, The range of values for the region identifier is different from the range of values for PCI.
22. A communication device, characterized in that, The apparatus includes: a module for performing the method as described in any one of claims 1-6, or a module for performing the method as described in any one of claims 7-10, or a module for performing the method as described in any one of claims 11, 13-15, or a module for performing the method as described in any one of claims 12-15, or a module for performing the method as described in any one of claims 16, 18-21, or a module for performing the method as described in any one of claims 17-21.
23. A communication device, characterized in that, The communication device includes a processing unit and a storage unit; the storage unit is used to store computer instructions, which, when executed by the processing unit, cause the method as described in any one of claims 1-6 to be executed, or cause the method as described in any one of claims 7-10 to be executed, or cause the method as described in any one of claims 11, 13-15 to be executed, or cause the method as described in any one of claims 12-15 to be executed, or cause the method as described in any one of claims 16, 18-21 to be executed, or cause the method as described in any one of claims 17-21 to be executed.
24. A computer-readable storage medium, characterized in that, The computer-readable storage medium includes a computer program or instructions that, when executed on a computer, cause the computer to perform the method as claimed in any one of claims 1-6, or the method as claimed in any one of claims 7-10, or the method as claimed in any one of claims 11, 13-15, or the method as claimed in any one of claims 12-15, or the method as claimed in any one of claims 16, 18-21, or the method as claimed in any one of claims 17-21.
25. A computer program product, characterized in that, The computer program product includes a computer program or instructions that, when executed on a computer, cause the method as described in any one of claims 1-6 to be performed, or the method as described in any one of claims 7-10 to be performed, or the method as described in any one of claims 11, 13-15 to be performed, or the method as described in any one of claims 12-15 to be performed, or the method as described in any one of claims 16, 18-21 to be performed, or the method as described in any one of claims 17-21 to be performed.