Control channel reception and transmission method and device, communication device and storage medium

By determining time-domain symbols occupied by CRS and adjusting NR PDCCH transmission, the method addresses interference issues in DSS scenarios, improving NR PDCCH demodulation performance and resource efficiency.

JP7760079B2Active Publication Date: 2025-10-24BEIJING XIAOMI MOBILE SOFTWARE CO LTD
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Patent Information

Application Number
JP2024563598
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-04-29
Publication Date
2025-10-24
Estimated Expiration
2042-04-29

AI Technical Summary

Technical Problem

In the DSS scenario where LTE and NR systems share the same spectrum resources, interference between LTE's cell-specific reference signals (CRS) and NR's physical downlink control channel (PDCCH) occurs, leading to degradation of NR PDCCH demodulation performance, especially at the cell edge where multiple CRSs are received, causing excessive puncturing and loss of information.

Method used

A method and device for a terminal to determine time-domain symbols occupied by CRS and decide whether to receive NR PDCCH based on CRS configuration information, and for the network device to adjust NR PDCCH transmission accordingly, avoiding symbols with insufficient REs for NR PDCCH.

Benefits of technology

This approach reduces unnecessary consumption and improves NR PDCCH demodulation performance by optimizing NR PDCCH reception and transmission based on CRS interference, thereby enhancing resource utilization and reducing overhead.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present disclosure relates to a control channel receiving and transmitting method and apparatus, a communication device, and a storage medium. The control channel receiving method includes determining a first time domain symbol corresponding to a cell-specific reference signal (CRS), and determining whether to receive a new radio physical downlink control channel (NR PDCCH) in the first time domain symbol based on at least the configuration information of the CRS. According to the present disclosure, a terminal can determine a first time domain symbol corresponding to a resource occupied by the CRS, and determine whether to receive the NR PDCCH in the first time domain symbol based on the configuration information of the CRS. When it is determined that the number of resource elements (REs) occupied by the CRS in the first time domain symbol is relatively large, the terminal may not desire to receive the NR PDCCH in the first time domain symbol, and the network device also does not transmit the NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption generated when the terminal receives the NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.
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Description

[Technical Field]

[0001] The present disclosure relates to the field of communications technology, and in particular to a control channel receiving method, a control channel transmitting method, a control channel receiving device, a control channel transmitting device, a communication device, and a computer-readable storage medium. [Background technology]

[0002] Currently, in the DSS (Dynamic Spectrum Sharing) scenario, LTE (Long Term Evolution) systems and NR (New Radio) systems can coexist in the same spectrum resources, resulting in some information transmitted by the LTE system interfering with the NR system.

[0003] For example, when a resource element (RE) corresponding to a cell-specific reference signal (CRS) transmitted by an LTE system conflicts with an RE corresponding to an NR physical downlink control channel (PDCCH), the corresponding NR PDCCH is punctured, and the terminal cannot receive the NR PDCCH in the conflicting RE, resulting in degradation of demodulation performance of the NR PDCCH.

[0004] In addition, in some scenarios, for example, when a terminal is located at the edge of a cell, it receives CRSs corresponding to multiple cells, resulting in stronger interference with the NR PDCCH. Summary of the Invention [Problem to be solved by the invention]

[0005] In view of this, the embodiments of the present disclosure provide a control channel receiving method, a control channel transmitting method, a control channel receiving device, a control channel transmitting device, a communication device, and a computer-readable storage medium, thereby solving the technical problems in the related art. [Means for solving the problem]

[0006] According to a first aspect of an embodiment of the present disclosure, there is provided a control channel reception method applied to a terminal, the method including: determining a first time-domain symbol corresponding to a cell-specific reference signal (CRS), where the first time-domain symbol is some or all of the time-domain symbols in a time-domain resource in which the CRS is located; and determining, based on at least configuration information of the CRS, whether to desire to receive a new radio physical downlink control channel (NR PDCCH) on the first time-domain symbol.

[0007] According to a second aspect of an embodiment of the present disclosure, there is provided a control channel transmission method applicable to a network device, the method including: determining a first time-domain symbol corresponding to a cell-specific reference signal (CRS) configured for a terminal, the first time-domain symbol being some or all of the time-domain symbols in a time-domain resource in which the CRS is located; and determining whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal using the first time-domain symbol based on at least configuration information of the CRS.

[0008] According to a third aspect of an embodiment of the present disclosure, there is provided a control channel receiving device applicable to a terminal, the device including: a processing module configured to determine a first time-domain symbol corresponding to a cell-specific reference signal (CRS), the first time-domain symbol being some or all of the time-domain symbols in a time-domain resource in which the CRS is located, and to determine, based on at least configuration information of the CRS, whether the terminal desires to receive a new radio physical downlink control channel (NR PDCCH) on the first time-domain symbol.

[0009] According to a fourth aspect of the embodiment of the present disclosure, there is provided a control channel transmission method for a network device. Device providing the Device The information processing unit includes a processing module configured to determine a first time-domain symbol corresponding to a cell-specific reference signal (CRS) configured for a terminal, the first time-domain symbol being some or all of the time-domain symbols in a time-domain resource in which the CRS is located, and to determine whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal using the first time-domain symbol based on at least configuration information of the CRS.

[0010] According to a fifth aspect of an embodiment of the present disclosure, there is provided a communication device, the communication device including a processor and a memory for storing a computer program, which, when executed by the processor, realizes the above-mentioned control channel receiving method.

[0011] According to a sixth aspect of an embodiment of the present disclosure, there is provided a communication device, the communication device including a processor and a memory for storing a computer program, the computer program realizing the above-mentioned control channel transmission method when executed by the processor.

[0012] According to a seventh aspect of the present disclosure, there is provided a computer-readable storage medium having a computer program stored thereon, the computer program implementing the steps of the above-described control channel receiving method when executed by a processor.

[0013] According to an eighth aspect of the present disclosure, there is provided a computer-readable storage medium having a computer program stored thereon, the computer program implementing the steps of the control channel transmission method when executed by a processor. [Effects of the Invention]

[0014] According to an embodiment of the present disclosure, a terminal may determine a first time domain symbol corresponding to a resource occupied by the CRS, thereby determining whether it wishes to receive an NR PDCCH in the first time domain symbol based on the configuration information of the CRS. If it is determined based on the configuration information of the CRS that a relatively large number of REs are occupied by the CRS in the first time domain symbol, the terminal may not wish to receive an NR PDCCH in the first time domain symbol, and the network device also does not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH. [Brief explanation of the drawings]

[0015] In order to more clearly explain the technical solutions in the embodiments of the present disclosure, the following will briefly introduce the drawings that need to be used in the description of the embodiments. Obviously, the drawings in the following description are only some embodiments of the present disclosure, and those skilled in the art can derive other drawings based on these drawings without any creative ingenuity. [Figure 1] 1 is a schematic flowchart of a control channel receiving method according to an embodiment of the present disclosure. [Figure 2] FIG. 2 is a schematic diagram of resources occupied by a CRS according to an embodiment of the present disclosure. [Figure 3] FIG. 10 is a schematic diagram of resources occupied by another CRS according to an embodiment of the present disclosure. [Figure 4] 10 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. [Figure 5] FIG. 1 is a schematic diagram illustrating receiving an NR PDCCH according to an embodiment of the present disclosure. [Figure 6] 10 is a schematic flowchart of a further control channel receiving method according to an embodiment of the present disclosure; [Figure 7] 10 is a schematic flowchart of a further control channel receiving method according to an embodiment of the present disclosure; [Figure 8] FIG. 10 is a schematic diagram illustrating a CRS determining whether it wants to receive an NR PDCCH in a first time domain symbol based on the number of REs that the CRS occupies in the first time domain symbol, according to an embodiment of the present disclosure. [Figure 9] 10 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. [Figure 10] 10 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. [Figure 11] 1 is a schematic flowchart of a control channel transmission method according to an embodiment of the present disclosure. [Figure 12] 10 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. [Figure 13] 10 is a schematic flowchart of a further control channel transmission method according to an embodiment of the present disclosure; [Figure 14] 10 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. [Figure 15] 10 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. [Figure 16] 10 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. [Figure 17] 1 is a schematic block diagram of a control channel receiving device according to an embodiment of the present disclosure. [Figure 18] 1 is a schematic flowchart of a control channel transmission device according to an embodiment of the present disclosure. [Figure 19] 1 is a schematic block diagram of an apparatus for control channel transmission according to an embodiment of the present disclosure. [Figure 20] 1 is a schematic block diagram of an apparatus for receiving a control channel according to an embodiment of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0016] The following provides a clear and complete description of the technical solutions in the embodiments of the present disclosure in combination with the drawings in the embodiments of the present disclosure, and it is obvious that the described embodiments are only some of the embodiments of the present disclosure, and do not represent all of the embodiments, and all other embodiments that can be obtained by those skilled in the art based on the embodiments of the present disclosure without creative ingenuity fall within the scope of protection of the present disclosure.

[0017] The terms used in the embodiments of the present disclosure are intended to describe particular embodiments and are not intended to limit the embodiments of the present disclosure. Unless the context clearly indicates otherwise, the singular forms "a" and "the" used in the embodiments of the present disclosure and the appended claims include the plural forms. Furthermore, the term "and / or" as used herein refers to and includes any and all possible combinations of one or more of the associated listed items.

[0018] Although various pieces of information are described using terms such as first, second, and third in the embodiments of the present disclosure, these pieces of information should not be limited to these terms. These terms are used to distinguish between pieces of information of the same type. For example, first information may be referred to as second information, and similarly, second information may be referred to as first information, without departing from the scope of the embodiments of the present disclosure. Depending on the context, the term "when" as used herein may be understood as "when" or "during" or "in response to a determination."

[0019] For simplicity and ease of understanding, the terms used herein when characterizing magnitude relationships are "greater than" or "smaller," "higher" or "lower." As would be understood by one of ordinary skill in the art, the term "greater than" includes the meaning of "greater than or equal to," the term "smaller" includes the meaning of "less than or equal to," the term "higher" includes the meaning of "more than or equal to," and the term "lower" includes the meaning of "less than or equal to."

[0020] 1 is a schematic flowchart of a control channel reception method according to an embodiment of the present disclosure. The control channel reception method shown in this embodiment is applicable to a terminal, which includes, but is not limited to, communication devices such as mobile phones, tablets, wearable devices, sensors, and Internet of Things devices. The terminal can communicate with a network device, which includes, but is not limited to, network devices in communication systems such as 4G, 5G, and 6G, such as base stations and core networks.

[0021] As shown in FIG. 1, the control channel receiving method may include the following steps S101 to S102.

[0022] In step S101, a first time-domain symbol (orthogonal frequency division multiplexing (OFDM) symbol) corresponding to a cell-specific reference signal (CRS) is determined, and the first time-domain symbol is some or all of the time-domain symbols in the time-domain resource where the CRS is located.

[0023] In step S102, it is determined whether it is desired to receive a new radio physical downlink control channel (NR PDCCH) in the first time domain symbol based on at least the configuration information of the CRS.

[0024] Receiving an NR PDCCH in the first time domain symbol may refer to detecting a PDCCH candidate in the first time domain symbol. For example, determining that receiving an NR PDCCH in the first time domain symbol is not desired may refer to not detecting a PDCCH candidate in the first time domain symbol, and determining that receiving an NR PDCCH in the first time domain symbol is desired may refer to detecting a PDCCH candidate in the first time domain symbol.

[0025] FIG. 2 is a schematic diagram of resources occupied by a CRS according to an embodiment of the present disclosure.

[0026] In one embodiment, the LTE cell identifier (Cell ID) is 0, and the LTE CRS supports four ports, which are antenna port 0, antenna port 1, antenna port 2, and antenna port 3. The LTE CRS corresponding to each antenna port occupies different resources, and the resources occupied by the LTE CRS corresponding to the four antenna ports are overlapped to form a first resource.

[0027] As shown in Fig. 2, one RB (Resource Block) includes 14 symbols (e.g., Orthogonal Frequency Division Multiplexing (OFDM) symbols) in the time domain and 12 REs (Resource Elements) in the frequency domain. For example, in one symbol, REs are numbered RE#0 to RE#11 from bottom to top, and as shown in Fig. 2, the CRS occupies REs numbered RE#0, RE#3, RE#6, and RE#9 in the first, second, fifth, eighth, ninth, and twelfth symbols.

[0028] The resources occupied by the CRS can be determined based on the pattern of the CRS. The CRS pattern indicates the resources occupied by the CRS, and the PDSCH (Physical Downlink Shared CHannel) can perform rate matching based on the resources of the CRS, so it is also called a CRS Rate Matching pattern (CRS RM pattern).

[0029] In addition, the LTE CRS may be transmitted by an LTE network device, and the NR PDCCH may be transmitted by an NR network device, and the NR network device may determine the resources occupied by the CRS, for example, by communicating with the LTE network device or based on a protocol agreement.

[0030] In addition, the terminal can determine the resources occupied by the CRS based on the CRS pattern (which may be determined by the instruction of the network device or by a predefined rule), and determine the resources occupied by the NR PDCCH based on the configuration of the NR network device.

[0031] In a DSS scenario, the LTE system and the NR system can coexist in the same spectrum, so the CRS transmitted by the LTE system will interfere with the NR PDCCH. For example, a network device in the NR system can puncture the NR PDCCH based on the CRS pattern, and the terminal receives the NR PDCCH according to the punctured NR PDCCH.

[0032] In some scenarios, for example, when a terminal is at the boundary of multiple LTE cells, it receives CRS corresponding to multiple LTE cells, and therefore there are multiple corresponding CRS patterns. Since the resources occupied by each CRS pattern are different, the multiple CRS patterns occupy REs intensively, and therefore collide with the NR PDCCH on multiple REs.

[0033] If a network device punctures an NR PDCCH based on multiple CRS patterns, a large amount of information carried by the NR PDCCH will be lost, affecting the decoding effect. In addition, because there are a large number of CRS patterns that need to be considered, when a terminal receives an NR PDCCH, the REs corresponding to the NR PDCCH will be excessively punctured, preventing the terminal from accurately analyzing the PDCCH, which will affect PDCCH demodulation performance and subsequent resource scheduling.

[0034] FIG. 3 is a schematic diagram of resources occupied by another CRS according to an embodiment of the present disclosure.

[0035] As shown in Figure 3, for example, when a terminal is located at the boundary of two LTE cells, the network device needs to puncture the NR PDCCH according to two CRS patterns, where the first CRS pattern is as shown in Figure 2, and the second CRS pattern occupies REs numbered RE#1, RE#4, RE#7, and RE#10 at the 1st, 2nd, 5th, 8th, 9th, and 12th symbols in one RB.

[0036] For example, the control resource set (CORESET) corresponding to a terminal corresponds to the first, second, and third symbols in the time domain resources, and in one RB range, the CRS occupies eight REs in each of the first and second symbols, so the NR PDCCH corresponding to eight REs needs to be punctured, resulting in the NR PDCCH occupying only four REs in each of the first and second symbols. In this case, to receive the NR PDCCH in the first and second symbols, the terminal needs to consider the case where the network device punctures the NR PDCCH based on two CRS patterns, which increases overhead and results in very little information being receivable in the NR PDCCH.

[0037] In an embodiment of the present disclosure, the terminal may determine some or all of the time domain symbols corresponding to the resources occupied by the CRS, which may be referred to as first time domain symbols, and the first time domain symbols may be time domain symbols that overlap with some or all of the CORESET (e.g., the CORESET configured for the terminal by the network device). Furthermore, based on the CRS configuration information, such as the number of CRS patterns and the status of the resources occupied by the CRS (e.g., the number of REs occupied, the occupancy rate, etc.), the terminal may comprehensively determine whether it wants to receive the NR PDCCH in the first time domain symbol.

[0038] For example, if it is determined based on the CRS configuration information that the CRS occupies a relatively large number of REs in the first time domain symbol, the terminal may not want to receive the NR PDCCH in the first time domain symbol, and the network device will not transmit the NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving the NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH.

[0039] In one embodiment, the configuration information for the CRS is: The CRS includes at least one of the number of CRS patterns, the number of ports corresponding to the CRS patterns, and the time-frequency resources occupied by the CRS (e.g., REs, based on which the number of REs occupied by the CRS in the first time-domain symbol and the first resource occupancy rate of the CRS in the first time-domain symbol can be determined). Considering that the CRSs occupy the same number of REs in different RB ranges, the number of occupied REs can be evaluated by the number of REs occupied by the CRS in one RB range.

[0040] In one embodiment, the method further includes, if the configuration information of the CRS satisfies a target configuration, transmitting capability information to a network device to indicate whether the terminal supports receiving an NR PDCCH in the first time domain symbol.

[0041] By reporting capability information to the network device, the terminal can inform the network device whether the terminal supports receiving the NR PDCCH in the first time domain symbol if the CRS configuration information meets the target configuration.

[0042] The target setting includes, but is not limited to, the number of CRS patterns being equal to or greater than a pattern count threshold, the number of resource elements (REs) occupied by the CRS in one RB corresponding to the first time domain symbol being equal to or greater than a RE count threshold, a first resource occupancy rate at which the CRS occupies resource elements in one RB corresponding to the first time domain symbol being equal to or greater than a first occupancy rate threshold, and a second resource occupancy rate of the CRS in the CORESET of the NR PDCCH being equal to or greater than a second occupancy rate threshold.

[0043] For example, if the configuration information includes the number of CRS patterns, the target configuration may be that the number of CRS patterns is 2 or greater. Thus, the network device can determine, based on the capability information, whether the terminal supports receiving an NR PDCCH in the first time domain symbol when the number of CRS patterns is 2 or greater. If the terminal does not support receiving an NR PDCCH in the first time domain symbol, the network device may not transmit an NR PDCCH to the terminal in the first time domain symbol in the target configuration scenario. If the terminal supports receiving an NR PDCCH in the first time domain symbol, the network device can transmit an NR PDCCH to the terminal in the first time domain symbol in the target configuration scenario.

[0044] In one embodiment, the network device can puncture the NR PDCCH based on a CRS pattern, and if multiple CRS patterns exist, the network device can puncture the NR PDCCH based on one or more specific CRS patterns.

[0045] In this case, the terminal may determine a specific CRS pattern based on an instruction from the network, or may determine the CRS pattern based on a predefined rule. For example, multiple lists including specific CRS patterns may be indicated to the terminal. For example, the indication signaling may be lte-CRS-PatternList1-r18 and lte-CRS-PatternList2-r18. When the terminal determines that a specific CRS pattern is configured by lte-CRS-PatternList1-r18 and the other CRS patterns are configured by lte-CRS-PatternList2-r18, the terminal may determine that the network device will puncture the NR PDCCH based only on the specific CRS pattern and will not puncture the NR PDCCH based on the other CRS patterns. The terminal may receive the NR PDCCH based on this puncturing scheme.

[0046] In addition, the embodiments of the present disclosure determine whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on at least CRS configuration information, i.e., the basis for determining whether or not it is desired to receive an NR PDCCH in the first time domain symbol may include, in addition to CRS configuration information, other information such as NR PDCCH configuration information, as will be specifically described in the following embodiments.

[0047] 4 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. As shown in FIG. 4, the step of determining whether to receive an NR PDCCH in the first time domain symbol based on the CRS configuration information includes the following steps S401 to S402.

[0048] In step S401, the number of patterns of the set CRS is determined.

[0049] In step S402, if the number of patterns of the CRS is equal to or greater than the pattern number threshold, it is not desired to receive the NR PDCCH in the first time domain symbol.

[0050] In one embodiment, when the number of CRS patterns is relatively large, for example, when the number of CRS patterns is equal to or greater than a pattern number threshold, it can be determined that the number of REs occupied by CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0051] When the number of CRS patterns is relatively small, for example, when the number of CRS patterns is smaller than a pattern number threshold, it can be determined that the number of REs occupied by CRS in the first time domain symbol is relatively small, the terminal may desire to receive an NR PDCCH in the first time domain symbol, and the network device can transmit an NR PDCCH to the terminal in the first time domain symbol.

[0052] FIG. 5 is a schematic diagram of receiving an NR PDCCH according to an embodiment of the present disclosure.

[0053] As shown in Figure 5, the first CRS pattern and the second CRS pattern are the same as those shown in Figure 3. For example, the time domain resources of CORESET correspond to the first to third time domain symbols. In the time domain resources corresponding to CRS, the first and second time domain symbols overlap. Therefore, the first and second time domain symbols can be determined as the first time domain symbols, and it is further determined whether to receive the NR PDCCH in the first time domain symbol.

[0054] For example, if the pattern count threshold is set to 2, in the case shown in FIG. 4, the number of CRS patterns is 2, which is the same as the pattern count threshold. Therefore, the terminal does not want to receive the NR PDCCH in the first time domain symbol, and therefore the network device does not transmit the NR PDCCH to the terminal in the first time domain symbol. For example, the base station can transmit the NR PDCCH to the terminal in symbols other than the first time domain symbol. Thus, as shown in FIG. 4, the network device does not transmit the NR PDCCH to the terminal in the first and second time domain symbols, but transmits the NR PDCCH to the terminal only in the third time domain symbol, and the terminal does not want to receive the NR PDCCH in the first and second time domain symbols, but wants to receive the NR PDCCH only in the third time domain symbol. This avoids unnecessary consumption caused by the terminal receiving the NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH.

[0055] If there is only one CRS pattern, the number of CRS patterns is 1, which is less than the pattern number threshold, and therefore the terminal may wish to receive an NR PDCCH in the first time domain symbol, and the network device may transmit an NR PDCCH to the terminal in the first time domain symbol.

[0056] In addition, the pattern number threshold may be determined based on signaling transmitted from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the capability to analyze the NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0057] 6 is a schematic flowchart of a further control channel receiving method according to an embodiment of the present disclosure. As shown in FIG. 6, determining whether to receive an NR PDCCH in the first time domain symbol based on at least the CRS configuration information includes the following steps S601 to S602.

[0058] In step S601, the number of patterns of the set CRS and the number of ports corresponding to the CRS patterns are determined.

[0059] In step S602, if the number of CRS patterns is greater than or equal to the pattern number threshold, when the number of ports corresponding to at least one CRS pattern is greater than or equal to the port number threshold, it is not desired to receive NR PDCCH in the first time domain symbol.

[0060] In one embodiment, when the number of CRS patterns is relatively large, for example, when the number of CRS patterns is equal to or greater than a pattern number threshold, or when the number of ports corresponding to a CRS pattern is relatively large, for example, when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0061] In addition, it may be determined whether or not it is desired to receive an NR PDCCH in the first time domain symbol based only on the number of ports corresponding to the CRS pattern. For example, if the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, it may be determined that it is not desired to receive an NR PDCCH in the first time domain symbol.

[0062] Furthermore, the port number threshold may be determined based on signaling sent from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the ability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0063] 7 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. As shown in FIG. 7, determining whether to receive an NR PDCCH in the first time domain symbol based on at least the CRS configuration information includes the following steps S701 to S702.

[0064] In step S701, the number of resource elements (REs) that the CRS occupies in one resource block (RB) corresponding to the first time domain symbol and / or a first resource occupancy ratio is determined based on the configuration information of the CRS.

[0065] In step S702, if the number of resource elements (REs) is equal to or greater than a RE number threshold and / or the first resource occupancy rate is equal to or greater than a first occupancy rate threshold, it is not desired to receive an NR PDCCH in the first time domain symbol.

[0066] In one embodiment, when the number of REs occupied by the CRS in one RB corresponding to the first time domain symbol is relatively large, for example, equal to or greater than a threshold number of REs, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0067] In one embodiment, when the first resource occupancy rate of the CRS in one RB corresponding to the first time domain symbol is relatively large, for example, greater than or equal to a first occupancy rate threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large.

[0068] The first resource occupancy rate refers to the ratio of REs occupied by the CRS in one RB corresponding to the first time domain symbol to all REs in one RB corresponding to the first time domain symbol. For example, in the embodiment shown in FIG. 4, the first time domain symbol is the first and second time domain symbols. Within one RB, one time domain symbol corresponds to 12 REs, and the first and second time domain symbols together correspond to 24 REs. The CRS occupies 16 REs in the first and second time domain symbols. Therefore, the first resource occupancy rate can be calculated as 16 / 24, which is approximately 66.7%. For example, if the first occupancy rate threshold is 50%, it can be determined that the first resource occupancy rate is greater than the first occupancy rate threshold, and the terminal does not want to receive the NR PDCCH in the first time domain symbol.

[0069] If the first resource occupancy is greater than or equal to the first occupancy threshold, the terminal may not want to receive the NR PDCCH in the first time domain symbol, and the network device will not transmit the NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving the NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH.

[0070] Here, the number of REs that the CRS occupies in the first time domain symbol may be for one RB, and similarly, the first resource occupancy rate of the CRS in the first time domain symbol may also be for one RB.

[0071] In addition, the RE number threshold and the first occupancy rate threshold may be determined based on signaling transmitted from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the capability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0072] FIG. 8 is a schematic diagram of a CRS determining whether it wants to receive an NR PDCCH in a first time domain symbol based on the number of REs occupied in the first time domain symbol, according to an embodiment of the present disclosure.

[0073] In this embodiment, two CRS patterns are used as an example, but the number of ports corresponding to the CRS patterns is not limited to four and can be set as needed.

[0074] For example, for the two CRS patterns in this embodiment, one CRS pattern corresponds to four ports as shown in Figure 2, and the other CRS pattern corresponds to two ports, and in one RB, they occupy REs numbered RE#1, RE#4, RE#7, and RE#10 on the first, fifth, eighth, and twelfth symbols.

[0075] Then, as shown in FIG. 8, taking the first and second time domain symbols as the first time domain symbol as an example, if the RE number threshold is 5, the number of REs occupied by the CRS in the first time domain symbol is 8, which is greater than the RE number threshold, and the number of REs occupied by the CRS in the second time domain symbol is 4, which is less than the RE number threshold. Therefore, in the first time domain symbol, the terminal does not want to receive the NR PDCCH, but in the second time domain symbol, the terminal may want to receive the NR PDCCH.

[0076] When CRS patterns correspond to different numbers of ports, there is a certain rule for the number of REs they occupy, so a relationship table may be set for different thresholds of the number of REs, which includes the relationship between the CRS patterns corresponding to different numbers of ports and the symbols that the terminal desires to receive the NR PDCCH in the first time domain symbol. For example, when the threshold of the number of REs is 4, the relationship table may be as shown in Table 1 below. [Table 1]

[0077] As shown in Table 1, for example, the embodiment shown in Figure 8 is for a 4-port CRS + 2-port CRS, where the terminal does not want to receive the NR PDCCH in the first time-domain symbol (corresponding symbol identifier is 0), wants to receive the NR PDCCH in the second time-domain symbol (corresponding symbol identifier is 1), and may want to receive the NR PDCCH in the third time-domain symbol (corresponding symbol identifier is 2) because there is no CRS in the third time-domain symbol, resulting in reception in the second and third time-domain symbols, i.e., wants to receive the NR PDCCH in the time-domain symbols with symbol identifiers 1 and 2.

[0078] Based on this, when the RE number threshold is determined, a relationship table corresponding to the RE number threshold can be determined, and the corresponding symbol identifiers in the relationship table for ports corresponding to multiple CRS patterns that wish to receive NR PDCCH are determined, thereby wishing to receive NR PDCCH at the time domain symbol corresponding to the symbol identifier.

[0079] In one embodiment, the RE number threshold and / or the first occupancy ratio threshold are related to an aggregation level (AL) of the NR PDCCH and / or a format of downlink control information (DCI) in the NR PDCCH.

[0080] The RE number threshold can be determined based on the AL of the NR PDCCH, for example, the larger the AL, the larger the RE number threshold. For example, a level threshold may be set, and when the AL is greater than the level threshold, the RE number threshold is 6, and when the AL is equal to or less than the level threshold, the RE number threshold is 4.

[0081] In addition, the level threshold may be determined based on signaling sent from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the ability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0082] In addition to determining the RE count threshold based on the AL of the NR PDCCH, it may also be determined based on the format of the DCI in the NR PDCCH. For example, the larger the number of bits occupied by the DCI format, the smaller the RE count threshold. For example, for DCI format 1_1, since it occupies a relatively large number of bits, the corresponding allowable count threshold is relatively small, for example, the count threshold is 3. format For 1_2, the number of bits it occupies is relatively small, and the corresponding allowable number threshold is relatively large, for example, the number threshold is 5.

[0083] Similarly, the first occupancy threshold can be determined based on the AL of the NR PDCCH, for example, the larger the AL, the smaller the first occupancy threshold. Except for being able to determine the first occupancy threshold based on the AL of the NR PDCCH, it can also be determined based on the format of the DCI in the NR PDCCH, for example, the larger the number of bits occupied by the DCI format, the smaller the first occupancy threshold.

[0084] In one embodiment, the step of determining whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on at least the CRS configuration information determines whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information.

[0085] Based on the CRS configuration information, determining whether it is desired to receive the NR PDCCH in the first time domain symbol may further take other information into consideration, for example, the NR PDCCH configuration information, thereby comprehensively determining whether it is desired to receive the NR PDCCH in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information.

[0086] 9 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. As shown in FIG. 9, the step of determining whether to receive the NR PDCCH in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information includes the following steps S901 to S902.

[0087] In step S901, the number of configured CRS patterns and the aggregation level of the NR PDCCH are determined.

[0088] In step S902, if the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold, it is not desired to receive an NR PDCCH in the first time domain symbol.

[0089] In one embodiment, if the number of CRS patterns is equal to or greater than a threshold number, the aggregation level AL of the NR PDCCH may be further considered.

[0090] When the number of CRS patterns is equal to or greater than a number threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large. However, when the AL of the NR PDCCH is relatively large, for example, greater than a level threshold, the REs occupied by the NR PDCCH are relatively large, and even if the NR PDCCH is punctured based on multiple CRS patterns, the NR PDCCH can still retain a lot of information. Therefore, in this case, it may still be desirable to receive the NR PDCCH in the first time domain symbol.

[0091] When the AL of the NR PDCCH is relatively small, for example, below a level threshold, the RE occupied by the NR PDCCH is relatively small, the NR PDCCH is punctured based on multiple CRS patterns, and the remaining information of the NR PDCCH is small. In this case, it may not be desirable to receive the NR PDCCH in the first time domain symbol.

[0092] 10 is a schematic flowchart of another control channel receiving method according to an embodiment of the present disclosure. As shown in FIG. 10, the step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the CRS configuration information includes the following steps S1001 to S1002.

[0093] In step S1001, a second resource occupancy rate of the CRS in a control resource set (CORESET) of the NR PDCCH (e.g., a CORESET configured by a network device for a terminal) is determined, and a second time domain symbol in the CORESET overlaps with the first time domain symbol.

[0094] In step S1002, if the second resource occupancy rate is equal to or greater than a second occupancy rate threshold, it is not desired to receive an NR PDCCH in the first time domain symbol.

[0095] In one embodiment, a resource occupancy rate of the CRS in the CORESET of the NR PDCCH can be determined, e.g., referred to as a second resource occupancy rate. If the second resource occupancy rate is relatively large, e.g., equal to or greater than a second occupancy rate threshold, it can be determined that the number of REs occupied by the CRS in the second time domain symbol corresponding to the CORESET, i.e., in the first time domain symbol, is relatively large.

[0096] The second resource occupancy rate refers to the ratio of REs occupied by the CRS in the CORESET of the NR PDCCH to all REs in the CORESET. For example, in the embodiment shown in FIG. 4, within one RB range, the CORESET occupies the first, second, and third time domain symbols of the RB. One time domain symbol within one RB range corresponds to 12 REs, and the three time domain symbols correspond to a total of 36 REs. The CRS occupies a total of 16 REs in the first and second time domain symbols of the three time domain symbols. Therefore, the second resource occupancy rate can be calculated as 16 / 36, which is approximately 44.4%. For example, if the second occupancy rate threshold is 20%, it can be determined that the second resource occupancy rate is greater than the second occupancy rate threshold, and therefore the terminal does not want to receive the NR PDCCH in the first time domain symbol.

[0097] In this case, when transmitting the NR PDCCH in the first time domain symbol, many REs corresponding to the NR PDCCH are punctured. Therefore, the network device does not need to transmit the NR PDCCH in the first time domain resource. In this case, the time domain symbol occupied by the transmission of the NR PDCCH is CORESE. T (e.g., in FIG. 4, the NR PDCCH is transmitted in only the third time domain symbol.) The terminal may not want to receive the NR PDCCH in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving the NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0098] On the other hand, if the second resource occupancy is relatively large, e.g., greater than the second occupancy threshold, it may be determined that the number of REs occupied by the CRS in the second time domain symbol of the CORESET, i.e., in the first time domain symbol, is relatively small. In this case, the network device may transmit the NR PDCCH on the first time domain resource, and the terminal may desire to receive the NR PDCCH in the first time domain symbol.

[0099] In addition, the second occupancy rate threshold may be determined based on signaling sent from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the ability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0100] Furthermore, except that it is possible to determine whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on the resource occupancy rate of the CRS in CORESET, it may also be possible to determine whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on the resource occupancy rate of the NR PDCCH in CORESET.

[0101] In one embodiment, taking into account several reference signals in a network device, for example, if an SSB is currently being transmitted on a slot, the NR PDCCH may be scheduled to be transmitted in a time-domain symbol where a CRS is located to avoid collision between the NR PDCCH and the SSB signal. Specifically, the time-domain symbol occupied by the NR PDCCH transmission may be determined based on the second resource occupancy rate. In the next slot, if an SSB is not transmitted in the corresponding slot, the corresponding PDCCH may be transmitted in a time-domain symbol not occupied by a CRS. Here, the specific time-domain symbol occupied by the NR PDCCH transmission within the CORESET range may be determined dynamically, eliminating the need to reconfigure the CORESET and the corresponding search space through RRC signaling. This reduces the delay of the PDCCH transmission and realizes more flexible resource scheduling.

[0102] In one embodiment, the terminal may not want the second resource occupancy rate corresponding to the set CORESET to be equal to or greater than the second resource occupancy rate threshold.

[0103] 11 is a schematic flowchart of a control channel transmission method according to an embodiment of the present disclosure. The control channel transmission method shown in this embodiment is applicable to a network device, which can communicate with a terminal, including, but not limited to, a base station in a communication system, such as a 4G base station, a 5G base station, or a 6G base station. The terminal includes, but is not limited to, a mobile phone, a tablet, a wearable device, a sensor, an Internet of Things device, or other communication device.

[0104] As shown in FIG. 11, the control channel transmission method may include the following steps S1101 to S1102.

[0105] In step S1101, a first time-domain symbol (orthogonal frequency division multiplexing (OFDM) symbol) corresponding to a cell-specific reference signal (CRS) configured for a terminal is determined, and the first time-domain symbol is some or all of the time-domain symbols in the time-domain resource where the CRS is located.

[0106] In step S1102, it is determined whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal using the first time domain symbol based on at least the configuration information of the CRS.

[0107] As shown in Fig. 2, one RB (Resource Block) includes 14 symbols (e.g., Orthogonal Frequency Division Multiplexing (OFDM) symbols) in the time domain and 12 REs (Resource Elements) in the frequency domain. For example, in one symbol, REs are numbered RE#0 to RE#11 from bottom to top, and as shown in Fig. 2, the CRS occupies REs numbered RE#0, RE#3, RE#6, and RE#9 in the first, second, fifth, eighth, ninth, and twelfth symbols.

[0108] The resources occupied by the CRS can be determined based on the pattern of the CRS. The CRS pattern indicates the resources occupied by the CRS, and the PDSCH (Physical Downlink Shared CHannel) can perform rate matching based on the resources of the CRS, so it is also called a CRS Rate Matching pattern (CRS RM pattern).

[0109] In addition, the LTE CRS may be transmitted by an LTE network device, and the NR PDCCH may be transmitted by an NR network device, and the NR network device may determine the resources occupied by the CRS, for example, by communicating with the LTE network device or based on a protocol agreement.

[0110] In addition, the terminal can determine the resources occupied by the CRS based on the CRS pattern (which may be determined by instructions from the network device or by a predefined rule), and determine the resources occupied by the NR PDCCH based on the configuration of the NR network device.

[0111] In a DSS scenario, since the LTE system and the NR system can coexist in the same spectrum, the CRS transmitted by the LTE system will interfere with the NR PDCCH. For example, a network device in the NR system can puncture the NR PDCCH based on the CRS pattern, and the terminal receives the NR PDCCH according to the punctured NR PDCCH.

[0112] In some scenarios, for example, when a terminal is at the boundary of multiple LTE cells, it receives CRS corresponding to multiple LTE cells, and therefore there are multiple corresponding CRS patterns. Since the resources occupied by each CRS pattern are different, the multiple CRS patterns occupy REs intensively, and therefore collide with the NR PDCCH in more REs.

[0113] If a network device punctures an NR PDCCH based on multiple CRS patterns, a large amount of information carried by the NR PDCCH will be lost, affecting the decoding effect. Furthermore, because there are a large number of CRS patterns that need to be considered, when a terminal receives an NR PDCCH, the REs corresponding to the NR PDCCH will be punctured excessively, causing the terminal to be unable to accurately analyze the PDCCH, which will affect the demodulation performance of the PDCCH and subsequent resource scheduling.

[0114] As shown in Figure 3, for example, when a terminal is located at the boundary of two LTE cells, the network device needs to puncture the NR PDCCH according to two CRS patterns, where the first CRS pattern is as shown in Figure 2, and the second CRS pattern occupies REs numbered RE#1, RE#4, RE#7, and RE#10 at the 1st, 2nd, 5th, 8th, 9th, and 12th symbols in one RB.

[0115] For example, the control resource set (CORESET) corresponding to a terminal corresponds to the first, second, and third symbols on the time domain resources, and in one RB range, the CRS occupies eight REs in each of the first and second symbols, so the NR PDCCH corresponding to eight REs needs to be punctured, resulting in the NR PDCCH occupying only four REs in each of the first and second symbols. In this case, to receive the NR PDCCH in the first and second symbols, the terminal needs to consider the case where the network device punctures the NR PDCCH based on two CRS patterns, which increases overhead and reduces the amount of information that can be received in the NR PDCCH.

[0116] In an embodiment of the present disclosure, the network device may determine some or all of the time domain symbols corresponding to the resources occupied by the CRS, which may be referred to as first time domain symbols, and the first time domain symbols may be time domain symbols that overlap some or all of the CORESET (e.g., the CORESET configured by the network device for the terminal). Therefore, based on the CRS configuration information, such as the number of CRS patterns and the status of the resources occupied by the CRS (e.g., the number of REs occupied, the occupancy rate, etc.), the network device comprehensively determines whether it wants to transmit the NR PDCCH in the first time domain symbol.

[0117] For example, if it is determined based on the CRS configuration information that the CRS occupies a relatively large number of REs in the first time domain symbol, the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the network device transmitting an NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH.

[0118] In one embodiment, the configuration information for the CRS is:

[0119] The CRS includes at least one of the number of CRS patterns, the number of ports corresponding to the CRS patterns, and the time-frequency resources occupied by the CRS (e.g., REs, based on which the number of REs occupied by the CRS in the first time-domain symbol and the first resource occupancy rate of the CRS in the first time-domain symbol can be determined). Considering that the CRSs occupy the same number of REs in different RB ranges, the number of REs occupied can be evaluated by the number of REs occupied by the CRS in one RB range.

[0120] In one embodiment, the method further includes receiving capability information transmitted from the terminal; and determining, based on the capability information, whether the terminal supports receiving an NR PDCCH in the first time domain symbol if the configuration information of the CRS satisfies a target configuration.

[0121] By reporting capability information to the network device, the terminal can inform the network device whether the terminal supports receiving the NR PDCCH in the first time domain symbol if the CRS configuration information meets the target configuration.

[0122] The target setting includes, but is not limited to, the number of CRS patterns being equal to or greater than a pattern count threshold, the number of resource elements (REs) occupied by the CRS in one RB corresponding to the first time domain symbol being equal to or greater than a RE count threshold, a first resource occupancy rate of the resource elements occupied by the CRS in one RB corresponding to the first time domain symbol being equal to or greater than a first occupancy rate threshold, and a second resource occupancy rate of the CRS in the CORESET of the NR PDCCH being equal to or greater than a second occupancy rate threshold.

[0123] For example, if the configuration information includes the number of CRS patterns, the target configuration may be that the number of CRS patterns is 2 or greater. Thus, the network device can determine, based on the capability information, whether the terminal supports receiving an NR PDCCH in the first time domain symbol when the number of CRS patterns is 2 or greater. If the terminal does not support receiving an NR PDCCH in the first time domain symbol, the network device may not transmit an NR PDCCH to the terminal in the first time domain symbol in the target configuration scenario. If the terminal supports receiving an NR PDCCH in the first time domain symbol, the network device can transmit an NR PDCCH to the terminal in the first time domain symbol in the target configuration scenario.

[0124] In one embodiment, the network device can puncture the NR PDCCH based on a CRS pattern, and if multiple CRS patterns exist, the network device can puncture the NR PDCCH based on one or more specific CRS patterns.

[0125] In this case, the terminal may determine a specific CRS pattern based on an instruction from the network, or may determine the CRS pattern based on a preset rule. For example, multiple lists including specific CRS patterns may be indicated to the terminal. For example, the indication signaling may be lte-CRS-PatternList1-r18 and lte-CRS-PatternList2-r18. When the terminal determines that a specific CRS pattern is configured by lte-CRS-PatternList1-r18 and the other CRS patterns are configured by lte-CRS-PatternList2-r18, the terminal may determine that the network device will puncture the NR PDCCH based only on the specific CRS pattern and will not puncture the NR PDCCH based on the other CRS patterns. The terminal may receive the NR PDCCH based on this puncturing scheme.

[0126] In addition, the embodiments of the present disclosure determine whether or not it is desired to receive an NR PDCCH in the first time domain symbol based on at least CRS configuration information, i.e., the basis for determining whether or not it is desired to receive an NR PDCCH in the first time domain symbol may include, in addition to CRS configuration information, other information such as NR PDCCH configuration information, as will be specifically described in the following embodiments.

[0127] 12 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. As shown in FIG. 12, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes the following steps S1201 to S1202.

[0128] In step S1201, the number of patterns of the set CRS is determined.

[0129] In step S1202, if the number of patterns of the CRS is equal to or greater than the pattern number threshold, the NR PDCCH is not transmitted to the terminal in the first time domain symbol.

[0130] In one embodiment, when the number of CRS patterns is relatively large, for example, when the number of CRS patterns is equal to or greater than a pattern number threshold, it can be determined that the number of REs occupied by CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0131] When the number of CRS patterns is relatively small, for example, when the number of CRS patterns is smaller than a pattern number threshold, it can be determined that the number of REs occupied by CRS in the first time domain symbol is relatively small, the terminal may desire to receive an NR PDCCH in the first time domain symbol, and the network device can transmit an NR PDCCH to the terminal in the first time domain symbol.

[0132] As shown in Figure 5, the first CRS pattern and the second CRS pattern are the same as those shown in Figure 3. For example, the time domain resources of CORESET correspond to the first to third time domain symbols, and in the time domain resources corresponding to CRS, the first and second time domain symbols overlap. Therefore, the first and second time domain symbols can be determined as the first time domain symbols, and whether to transmit NR PDCCH to the terminal using the first time domain symbol is further determined.

[0133] For example, if the pattern count threshold is set to 2, in the case shown in FIG. 4, the number of CRS patterns is 2, which is the same as the pattern count threshold. Therefore, since the terminal does not want to receive the NR PDCCH in the first time domain symbol, the network device does not transmit the NR PDCCH to the terminal in the first time domain symbol. For example, the base station can transmit the NR PDCCH to the terminal in symbols other than the first time domain symbol. Thus, as shown in FIG. 4, the network device does not transmit the NR PDCCH to the terminal in the first and second time domain symbols, but transmits the NR PDCCH to the terminal only in the third time domain symbol, and the network does not transmit the NR PDCCH to the terminal in the first and second time domain symbols, but transmits the NR PDCCH to the terminal only in the third time domain symbol. This avoids unnecessary consumption caused by the network device transmitting the NR PDCCH to the terminal in time domain symbols with relatively few REs corresponding to the NR PDCCH.

[0134] If there is only one CRS pattern, the number of CRS patterns is 1, which is less than the pattern number threshold, and therefore the terminal may wish to receive an NR PDCCH in the first time domain symbol, and the network device may transmit an NR PDCCH to the terminal in the first time domain symbol.

[0135] In addition, the pattern number threshold may be determined by a network device and instructed to the terminal by signaling, may be specified by a predefined rule, or may be set for the terminal by the network device based on capability information reported by the terminal (e.g., the ability to analyze NR PDCCH).

[0136] 13 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. As shown in FIG. 13, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes the following steps S1301 to S1302.

[0137] In step S1301, the number of CRS patterns and the number of ports corresponding to the CRS patterns are determined.

[0138] In step S1302, if the number of CRS patterns is greater than or equal to the pattern number threshold, when the number of ports corresponding to at least one of the CRS patterns is greater than or equal to the port number threshold, no NR PDCCH is transmitted to the terminal in the first time domain symbol.

[0139] In one embodiment, when the number of CRS patterns is relatively large, for example, when the number of CRS patterns is equal to or greater than a pattern number threshold, and when the number of ports corresponding to the CRS patterns is relatively large, for example, when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device will not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving an NR PDCCH in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0140] In addition, it may be determined whether or not it is desired to receive an NR PDCCH in the first time domain symbol based only on the number of ports corresponding to the CRS pattern. For example, if the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, it may be determined not to transmit an NR PDCCH to the terminal in the first time domain symbol.

[0141] Furthermore, the port number threshold may be determined by a network device and instructed to the terminal by signaling, may be specified by a predefined rule, or may be set for the terminal by the network device based on capability information reported by the terminal (e.g., the ability to analyze NR PDCCH).

[0142] 14 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. As shown in FIG. 14, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the CRS configuration information includes the following steps S1401 to S1402.

[0143] In step S1401, based on the configuration information of the CRS, the number of resource elements (REs) that the CRS occupies in one resource block (RB) corresponding to the first time domain symbol and / or a first resource occupancy ratio is determined.

[0144] In step S1402, if the number of resource elements (REs) is equal to or greater than a threshold number of REs and / or the first resource occupancy rate is equal to or greater than a first occupancy rate threshold, an NR PDCCH is not transmitted to the terminal in the first time domain symbol.

[0145] In one embodiment, when the number of REs occupied by the CRS in one RB corresponding to the first time domain symbol is relatively large, for example, equal to or greater than a RE number threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large, and the terminal may not want to receive an NR PDCCH in the first time domain symbol, and the network device does not transmit an NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the network device transmitting an NR PDCCH to the terminal in a time domain symbol with relatively few REs corresponding to the NR PDCCH.

[0146] In one embodiment, when the first resource occupancy rate of the CRS in one RB corresponding to the first time domain symbol is relatively large, for example, greater than or equal to a first occupancy rate threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large.

[0147] The first resource occupancy rate refers to the ratio of REs occupied by the CRS in one RB corresponding to the first time domain symbol to all REs in one RB corresponding to the first time domain symbol. For example, in the embodiment shown in FIG. 4, the first time domain symbol is the first and second time domain symbols, and one time domain symbol within one RB corresponds to 12 REs. Therefore, the first and second time domain symbols correspond to a total of 24 REs. The CRS occupies 16 REs in the first and second time domain symbols. Therefore, the first resource occupancy rate can be calculated as 16 / 24, which is approximately 66.7%. For example, if the first occupancy rate threshold is 50%, it can be determined that the first resource occupancy rate is greater than the first occupancy rate threshold. Therefore, the terminal does not want to receive the NR PDCCH in the first time domain symbol, and the network device does not transmit the NR PDCCH to the terminal in the first time domain symbol.

[0148] If the first resource occupancy rate is greater than or equal to the first occupancy rate threshold, the terminal may not want to receive the NR PDCCH in the first time domain symbol, and the network device also does not transmit the NR PDCCH to the terminal in the first time domain symbol, thereby avoiding unnecessary consumption caused by the terminal receiving the NR PDCCH in a time domain symbol with a relatively small number of REs corresponding to the NR PDCCH.

[0149] Here, the number of REs that the CRS occupies in the first time domain symbol may be for one RB, and similarly, the first resource occupancy rate of the CRS in the first time domain symbol may also be for one RB.

[0150] In addition, the RE number threshold and the first occupancy rate threshold may be determined by the network device and instructed to the terminal by signaling, may be specified by a predefined rule, or may be set for the terminal by the network device based on capability information reported by the terminal (e.g., the ability to analyze NR PDCCH).

[0151] As shown in Figure 8, taking the first and second time domain symbols as the first time domain symbols as an example, when the RE number threshold is 5, the number of REs occupied by the CRS in the first time domain symbol is 8, which is greater than the RE number threshold, and the number of REs occupied by the CRS in the second time domain symbol is 4, which is less than the RE number threshold. Therefore, in the first time domain symbol, the terminal does not want to receive an NR PDCCH, but in the second time domain symbol, the terminal may want to receive an NR PDCCH, and the network device may transmit an NR PDCCH to the terminal in the second time domain symbol.

[0152] When CRS patterns correspond to different numbers of ports, there is a certain rule for the number of REs to be occupied, so a relationship table may be set for different thresholds of the number of REs, which includes the relationship between the CRS patterns corresponding to different numbers of ports and the symbols that the terminal desires to receive the NR PDCCH in the first time-domain symbol. For example, when the threshold of the number of REs is 4, the relationship table may be as shown in Table 1.

[0153] As shown in Table 1, for example, the embodiment shown in Figure 8 is for a 4-port CRS + 2-port CRS, where the terminal does not want to receive an NR PDCCH in the first time-domain symbol (corresponding symbol identifier is 0), transmits an NR PDCCH in the second time-domain symbol (corresponding symbol identifier is 1), and may transmit an NR PDCCH in the third time-domain symbol (corresponding symbol identifier is 2) because there is no CRS in the third time-domain symbol, and as a result, transmission is performed in the second and third time-domain symbols, that is, the NR PDCCH is transmitted to the terminal in the time-domain symbols with symbol identifiers 1 and 2.

[0154] Based on this, when the RE number threshold is determined, a relationship table corresponding to the RE number threshold can be determined, and the corresponding symbol identifiers in the relationship table for ports corresponding to multiple CRS patterns that wish to receive NR PDCCH are determined, thereby wishing to receive NR PDCCH at the time domain symbol corresponding to the symbol identifier.

[0155] In one embodiment, the RE number threshold and / or the first occupancy ratio threshold are related to an aggregation level (AL) of the NR PDCCH and / or a format of downlink control information (DCI) in the NR PDCCH.

[0156] The RE number threshold can be determined based on the AL of the NR PDCCH, for example, the larger the AL, the larger the RE number threshold. For example, a level threshold may be set, and when the AL is greater than the level threshold, the RE number threshold is 6, and when the AL is equal to or less than the level threshold, the RE number threshold is 4.

[0157] In addition, the level threshold may be determined based on signaling sent from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the ability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0158] In addition to determining the RE count threshold based on the AL of the NR PDCCH, it may also be determined based on the format of the DCI in the NR PDCCH. For example, the larger the number of bits occupied by the DCI format, the smaller the RE count threshold. For example, for DCI format 1_1, the number of bits it occupies is relatively large, so the corresponding allowable number threshold is relatively small, for example, the number threshold is 3. For DCI 1_2, the number of bits it occupies is relatively small, so the corresponding allowable number threshold is relatively large, for example, the number threshold is 5.

[0159] Similarly, the first occupancy threshold can be determined based on the AL of the NR PDCCH, for example, the larger the AL, the smaller the first occupancy threshold. In addition to being able to determine the first occupancy threshold based on the AL of the NR PDCCH, it can also be determined based on the format of DCI in the NR PDCCH, for example, the larger the number of bits occupied by the DCI format, the smaller the first occupancy threshold.

[0160] In one embodiment, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the CRS configuration information includes the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information.

[0161] Based on the CRS configuration information, the NR PDCCH is transmitted in the first time domain symbol. send Based on the determination of whether or not it is desired to transmit an NR PDCCH to the terminal, other information may be taken into consideration, for example, NR PDCCH configuration information. Thus, based on the CRS configuration information and the NR PDCCH configuration information, a comprehensive determination is made as to whether or not to transmit an NR PDCCH to the terminal in the first time domain symbol.

[0162] 15 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. As shown in FIG. 15, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information includes the following steps S1501 to S1502.

[0163] In step S1501, the number of CRS patterns and the aggregation level of the NR PDCCH are determined.

[0164] In step S1502, if the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold, the NR PDCCH is not transmitted to the terminal in the first time domain symbol.

[0165] In one embodiment, if the number of CRS patterns is equal to or greater than a threshold number, the aggregation level (AL) of the NR PDCCH may be further considered.

[0166] When the number of CRS patterns is equal to or greater than a number threshold, it can be determined that the number of REs occupied by the CRS in the first time domain symbol is relatively large. However, when the AL of the NR PDCCH is relatively large, for example, greater than a level threshold, the REs occupied by the NR PDCCH are relatively large, and even if the NR PDCCH is punctured based on multiple CRS patterns, the NR PDCCH can still retain a lot of information. Therefore, in this case, the NR PDCCH can still be transmitted to the terminal in the first time domain symbol.

[0167] When the AL of the NR PDCCH is relatively small, for example, below a level threshold, the RE occupied by the NR PDCCH is relatively small, and the NR PDCCH is punctured based on multiple CRS patterns, leaving little remaining information in the NR PDCCH. In this case, the NR PDCCH can be transmitted to the terminal in the first time domain symbol.

[0168] 16 is a schematic flowchart of another control channel transmission method according to an embodiment of the present disclosure. As shown in FIG. 16, the step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes the following steps S1601 to S1602.

[0169] In step S1601, a second resource occupancy rate of the NR PDCCH in a control resource set (CORESET) is determined, and a second time domain symbol in the CORESET overlaps with the first time domain symbol.

[0170] In step S1602, if the second resource occupancy rate is less than or equal to a second occupancy rate threshold, the network device determines whether to support transmitting an NR PDCCH to the terminal in the first time domain symbol.

[0171] In one embodiment, a resource occupancy rate of the CRS in the CORESET of the NR PDCCH can be determined, e.g., referred to as a second resource occupancy rate. If the second resource occupancy rate is relatively large, e.g., equal to or greater than a second occupancy rate threshold, it can be determined that the number of REs occupied by the CRS in the second time domain symbol corresponding to the CORESET, i.e., in the first time domain symbol, is relatively large.

[0172] The second resource occupancy rate refers to the ratio of REs occupied by the CRS in the CORESET of the NR PDCCH to all REs in the CORESET. For example, in the embodiment shown in FIG. 4, within one RB range, the CORESET occupies the first, second, and third time domain symbols of the RB, and one time domain symbol within one RB range corresponds to 12 REs. Thus, the three time domain symbols correspond to a total of 36 REs. The CRS occupies a total of 16 REs in the first and second time domain symbols of the three time domain symbols. Thus, the second resource occupancy rate can be calculated as 16 / 36, which is approximately 44.4%. For example, if the second occupancy rate threshold is 20%, it can be determined that the second resource occupancy rate is greater than the second occupancy rate threshold. Therefore, the terminal does not want to receive the NR PDCCH in the first time domain symbol, and the network device does not transmit the NR PDCCH to the terminal in the first time domain symbol.

[0173] In this case, when transmitting the NR PDCCH in the first time domain symbol, many REs corresponding to the NR PDCCH are punctured. Therefore, the network device does not need to transmit the NR PDCCH on the first time domain resource. In this case, the time domain symbol occupied by the transmission of the NR PDCCH is CORESE. T The RE corresponding to the NR PDCCH is a subset of the time domain symbols (e.g., in FIG. 4, the NR PDCCH is transmitted in only the third time domain symbol). The network device may not transmit the NR PDCCH to the terminal in the first time domain symbol, thereby allowing the RE corresponding to the NR PDCCH to be transmitted in a time domain symbol with relatively few REs. Network DevicesThis avoids unnecessary consumption caused by transmitting an NR PDCCH to the terminal.

[0174] On the other hand, if the second resource occupancy is relatively large, e.g., greater than the second occupancy threshold, it may be determined that the number of REs occupied by the CRS in the second time domain symbol of the CORESET, i.e., in the first time domain symbol, is relatively small. In this case, the network device may transmit the NR PDCCH on the first time domain resource, and the terminal may desire to receive the NR PDCCH in the first time domain symbol.

[0175] In addition, the second occupancy rate threshold may be determined based on signaling sent from the network device, may be specified by a predefined rule, or may be set for the terminal by the network device based on the capability information (e.g., the ability to analyze NR PDCCH) of the terminal after the terminal reports the capability information to the network device.

[0176] In one embodiment, taking into account several reference signals in a network device, for example, if an SSB is currently being transmitted on a slot, the NR PDCCH may be scheduled to be transmitted in a time-domain symbol where a CRS is located to avoid collision between the NR PDCCH and the SSB signal. Specifically, the time-domain symbol occupied by the NR PDCCH transmission may be determined based on the second resource occupancy rate. In the next slot, if an SSB is not transmitted in the corresponding slot, the corresponding PDCCH may be transmitted in a time-domain symbol not occupied by a CRS. Here, the specific time-domain symbol occupied by the NR PDCCH transmission within the CORESET range may be determined dynamically, eliminating the need to reconfigure the CORESET and the corresponding search space through RRC signaling. This reduces the delay of the PDCCH transmission and realizes more flexible resource scheduling.

[0177] Corresponding to the above-mentioned embodiments of the control channel receiving method and the control channel transmitting method, the present disclosure further provides embodiments of a control channel receiving device and a control channel transmitting device.

[0178] 17 is a schematic block diagram of a control channel receiving device according to an embodiment of the present disclosure. The control channel receiving device shown in this embodiment is applicable to a terminal, which includes, but is not limited to, communication devices such as mobile phones, tablets, wearable devices, sensors, and Internet of Things devices. The terminal can communicate with a network device, which includes, but is not limited to, network devices in communication systems such as 4G, 5G, and 6G, such as base stations and core networks.

[0179] As shown in FIG. 17, the control channel receiving device The mobile station may include a processing module 1701 configured to determine a first time domain symbol corresponding to a cell-specific reference signal (CRS), the first time domain symbol being some or all of the time domain symbols in a time domain resource in which the CRS is located, and to determine whether to receive a new radio physical downlink control channel (NR PDCCH) on the first time domain symbol based on at least configuration information of the CRS.

[0180] In one embodiment, the processing module is configured to determine the number of patterns of the configured CRS, and if the number of patterns of the CRS is equal to or greater than a pattern number threshold, not to want to receive an NR PDCCH in the first time domain symbol.

[0181] In one embodiment, the processing module is configured to determine the number of CRS patterns set and the number of ports corresponding to the CRS patterns, and when the number of CRS patterns is equal to or greater than a pattern number threshold, not to want to receive an NR PDCCH in the first time domain symbol when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold.

[0182] In one embodiment, based on the configuration information of the CRS, the CRS determines the number of resource elements (REs) and / or a first resource occupancy rate to be occupied by the CRS in one resource block (RB) corresponding to the first time domain symbol, and is configured not to want to receive an NR PDCCH in the first time domain symbol if the number of resource elements (REs) is equal to or greater than a threshold number of REs and / or if the first resource occupancy rate is equal to or greater than a first occupancy rate threshold.

[0183] In one embodiment, the RE number threshold and / or the first occupancy ratio threshold are related to an aggregation level of the NR PDCCH and / or a format of downlink control information (DCI) in the NR PDCCH.

[0184] In one embodiment, the processing module is configured to determine whether to desire to receive an NR PDCCH in the first time domain symbol based on configuration information of the CRS and configuration information of an NR PDCCH.

[0185] In one embodiment, the processing module is configured to determine the number of CRS patterns set and an aggregation level of an NR PDCCH, and not want to receive an NR PDCCH in the first time domain symbol if the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold.

[0186] In one embodiment, the processing module is configured to determine a second resource occupancy ratio of an NR PDCCH in a control resource set (CORESET), and not want to receive the NR PDCCH in the first time domain symbol if a second time domain symbol in the CORESET overlaps with the first time domain symbol and the second resource occupancy ratio is less than or equal to a second occupancy ratio threshold.

[0187] In one embodiment, the device further includes a transmitting module configured to transmit capability information to a network device, the capability information indicating whether the terminal supports receiving an NR PDCCH in the first time domain symbol, if the configuration information of the CRS satisfies a target configuration.

[0188] 18 is a schematic flowchart of a control channel transmission device according to an embodiment of the present disclosure. The control channel transmission device shown in this embodiment is applicable to a network device, which can communicate with a terminal, and the network device includes, but is not limited to, a base station in a communication system such as a 4G base station, a 5G base station, or a 6G base station, and the terminal includes, but is not limited to, a communication device such as a mobile phone, a tablet, a wearable device, a sensor, or an Internet of Things device.

[0189] As shown in FIG. 18, the control channel transmitting device The mobile station may include a processing module 1801 configured to determine a first time-domain symbol corresponding to a cell-specific reference signal (CRS) configured for a terminal, the first time-domain symbol being some or all of the time-domain symbols in a time-domain resource in which the CRS is located, and to determine whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal using the first time-domain symbol based on at least configuration information of the CRS.

[0190] In one embodiment, the processing module is configured to determine the number of patterns of the configured CRS, and if the number of patterns of the CRS is equal to or greater than a pattern number threshold, not transmit an NR PDCCH to the terminal in the first time domain symbol.

[0191] In one embodiment, the processing module is configured to determine the number of CRS patterns and the number of ports corresponding to the CRS patterns, and when the number of CRS patterns is equal to or greater than a pattern number threshold, not transmit an NR PDCCH to the terminal in the first time domain symbol when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold.

[0192] In one embodiment, the processing module is configured to determine, based on the configuration information of the CRS, the number of resource elements (REs) that the CRS occupies in one resource block (RB) corresponding to the first time domain symbol and / or a first resource occupancy rate, and not transmit an NR PDCCH to the terminal in the first time domain symbol if the number of resource elements (REs) is equal to or greater than a RE number threshold and / or if the first resource occupancy rate is equal to a first occupancy rate threshold.

[0193] In one embodiment, the RE number threshold and / or the first occupancy ratio threshold are related to an aggregation level of the NR PDCCH and / or a format of downlink control information (DCI) in the NR PDCCH.

[0194] In one embodiment, the processing module is configured to determine whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on configuration information of the CRS and configuration information of an NR PDCCH.

[0195] In one embodiment, the processing module determines the number of CRS patterns and the aggregation level of the NR PDCCH, and if the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold, does not transmit the NR PDCCH to the terminal in the first time domain symbol.

[0196] In one embodiment, the processing module is configured to determine a second resource occupancy rate of an NR PDCCH in a control resource set (CORESET), and not transmit an NR PDCCH to the terminal in the first time domain symbol if a second time domain symbol in the CORESET overlaps with the first time domain symbol and the second resource occupancy rate is less than or equal to a second occupancy rate threshold.

[0197] In one embodiment, the apparatus further includes a receiving module configured to receive capability information transmitted from the terminal and, based on the capability information, determine whether the network device supports transmitting an NR PDCCH to the terminal in the first time domain symbol if configuration information of the CRS satisfies a target configuration.

[0198] The specific manner in which each module of the apparatus in the above embodiment performs the operations is described in detail in the embodiment relating to the method, and therefore, detailed description thereof will be omitted here.

[0199] The device embodiments basically correspond to the method embodiments, so please refer to the description of the method embodiments for relevant parts. The device embodiments described above are merely illustrative, and the modules described as separate components may or may not be physically separate, and the components represented as modules may or may not be physical modules, i.e., they may be located in one place or distributed across multiple network modules. Depending on actual needs, some or all of the modules may be selected to achieve the objectives of the solutions of the present embodiments. Those skilled in the art can understand and implement the present embodiments without any creative ingenuity.

[0200] An embodiment of the present disclosure further provides a communication device, which includes a processor and a memory for storing a computer program, and when the computer program is executed by the processor, the control channel receiving method described in any one of the above embodiments is realized.

[0201] An embodiment of the present disclosure further provides a communication device, which includes a processor and a memory for storing a computer program, and when the computer program is executed by the processor, the control channel transmission method described in any one of the above embodiments is realized.

[0202] An embodiment of the present disclosure further provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, realizes the steps of the control channel receiving method described in any one of the above embodiments.

[0203] An embodiment of the present disclosure further provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, realizes the steps of the control channel transmission method described in any one of the above embodiments.

[0204] 19, which is a schematic block diagram of an apparatus 1900 for transmitting a control channel according to an embodiment of the present disclosure. The apparatus 1900 may be provided as a base station. Referring to FIG. 19, the apparatus 1900 includes a processing component 1922, a radio transmit / receive component 1924, an antenna component 1926, and a radio interface-specific signal processing part, and the processing component 1922 may further include one or more processors. One processor in the processing component 1922 may be configured to implement the control channel transmission method described in any one of the above embodiments.

[0205] 20 is a schematic block diagram of an apparatus 2000 for receiving a control channel according to an embodiment of the present disclosure. For example, the apparatus 2000 may be a mobile phone, a computer, a digital broadcast terminal, a messaging machine, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, etc.

[0206] Referring to FIG. 20 , device 2000 may include one or more of a processing component 2002, a memory 2004, a power component 2006, a multimedia component 2008, an audio component 2010, an input / output (I / O) interface 2012, a sensor component 2014, and a communication component 2016.

[0207] The processing component 2002 typically controls the overall operation of the device 2000, such as operations related to display, phone calls, data communications, camera operation, and recording operations. The processing component 2002 includes one or more processors 2020 for executing instructions to complete all or some of the steps of the control channel transmission method described above. The processing component 2002 may also include one or more modules to facilitate interaction between the processing component 2002 and other components. For example, the processing component 2002 may include a multimedia module to facilitate interaction between the processing component 2002 and a multimedia component 2008.

[0208] Memory 2004 is configured to store various types of data to support operation on device 2000. Examples of this data include instructions for any application programs or methods operating on device 2000, contact data, phone book data, messages, images, videos, etc. Memory 2004 can be implemented with any type of volatile or non-volatile storage device, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk, or optical disk, or a combination thereof.

[0209] The power component 2006 provides power for the various components of the device 2000. The power component 2006 can include a power management system, one or more power sources, and other components associated with generating, managing, and distributing power for the device 2000.

[0210] The multimedia component 2008 includes a screen that provides an output interface between the device 2000 and a user. In some embodiments, the screen can include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen can be implemented as a touch screen to receive input signals from a user. The touch panel includes one or more touch sensors to detect touches, slides, and gestures on the touch panel. The touch sensors can detect not only the boundaries of a touch or slide action, but also the duration and pressure associated with the touch or slide action. In some embodiments, the multimedia component 2008 includes a front camera and / or a rear camera. When the device 2000 is in an operational mode, such as a photo mode or a video mode, the front camera and / or the rear camera can receive external multimedia data. Each front camera and rear camera can have a fixed optical lens system or can have a focal length and optical zoom capability.

[0211] The audio component 2010 is configured to output and / or input audio signals. For example, the audio component 2010 includes a microphone (MIC) configured to receive external audio signals when the device 2000 is in an operational mode, such as a call mode, a record mode, or a voice recognition mode. The received audio signals may be further stored in the memory 2004 or transmitted via the communication component 2016. In some embodiments, the audio component 2010 further includes a speaker for outputting audio signals.

[0212] The I / O interface 2012 provides an interface between the processing component 2002 and a peripheral interface module, which may be a keyboard, a click wheel, buttons, etc. These buttons may include, but are not limited to, a home button, volume buttons, a start button, and a lock button.

[0213] The sensor component 2014 includes one or more sensors to provide status assessments of various aspects of the device 2000. For example, the sensor component 2014 can detect the on / off state of the device 2000, the relative position of a component such as the monitor or keypad of the device 2000, changes in the position of the device 2000 or one of its components, the presence or absence of user contact with the device 2000, the orientation or acceleration / deceleration of the device 2000, and changes in the temperature of the device 2000. The sensor component 2014 can include a proximity sensor configured to detect the presence or absence of an object in the vicinity in the absence of any physical contact. The sensor component 2014 can further include an optical sensor, such as a CMOS or CCD image sensor used in imaging applications. In some embodiments, the sensor component 2014 can further include an acceleration sensor, a gyro sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.

[0214] The communication component 2016 is configured to facilitate wired or wireless communication between the device 2000 and other devices. The device 2000 can access a wireless network based on a communication standard, such as WiFi, 2G, 3G, 4G LTE, 5G NR, or a combination thereof. In an exemplary embodiment, the communication component 2016 receives broadcast signals or broadcast-related information from an external broadcast management system via a broadcast channel. In an exemplary embodiment, the communication component 2016 further includes a near-field communication (NFC) module to facilitate short-range communication. For example, the NFC module can be implemented with radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology, and other technologies.

[0215] In an exemplary embodiment, the apparatus 2000 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processors (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors, or other electronic components to perform the above-described control channel transmission method.

[0216] In an exemplary embodiment, a non-transitory computer-readable storage medium containing instructions is provided, such as a memory 2004 containing instructions, which are executable by a processor 2020 of the device 2000 to complete the control channel transmission method. For example, the non-transitory computer-readable storage medium may be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, an optical data storage device, etc.

[0217] Other embodiments of the present disclosure will be readily apparent to those skilled in the art after considering the specification and practicing the present disclosure. This disclosure is intended to cover any modifications, uses, or adaptations of the present disclosure that follow the general principles of the present disclosure and include common general knowledge or customary technical means in the art that are not disclosed in the present disclosure. It is intended that the specification and examples be considered as exemplary only, with the true scope and spirit of the present disclosure being provided by the following claims.

[0218] It should be understood that the present disclosure is not limited to the exact construction described above and shown in the drawings, and various modifications and changes can be made without departing from the scope of the present disclosure, which is limited only by the appended claims.

[0219] It should be noted that, in this specification, relational terms such as "first" and "second" are used to distinguish one entity or operation from another, and do not necessarily require or imply an actual relationship or order between those entities or operations. The terms "comprises," "comprises," or any other variations thereof are intended to cover non-exclusive inclusions, such that a process, method, article, or apparatus comprising a set of elements not only includes those elements, but also other elements not expressly listed, or includes the inherent elements of the process, method, article, or apparatus. Unless further limited, an element defined by "comprises a ..." does not exclude other similar elements from being present within the process, method, article, or apparatus comprising that element.

[0220] The above describes in detail the methods and devices provided by the embodiments of the present disclosure, and the present specification uses specific examples to explain the principles and embodiments of the present disclosure, and the description of the above examples is only intended to facilitate understanding of the method and core idea of ​​the present disclosure. At the same time, those skilled in the art will understand that specific embodiments and application scopes may be modified according to the idea of ​​the present disclosure, and therefore the contents of this specification should not be construed as limitations on the present disclosure.

Claims

1. A control channel receiving method applied to a terminal, comprising: determining a first time domain symbol corresponding to a cell-specific reference signal (CRS), the first time domain symbol being some or all of the time domain symbols in a time domain resource in which the CRS is located; and determining whether or not to receive a new radio physical downlink control channel (NR PDCCH) in the first time domain symbol based on at least configuration information of the CRS.

2. A control channel receiving method comprising:

2. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the configuration information of the CRS includes: Determining the number of patterns of the CRS that have been set; If the number of patterns of the CRS is equal to or greater than a pattern number threshold, not wanting to receive an NR PDCCH in the first time domain symbol.

2. The control channel receiving method according to claim 1.

3. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the configuration information of the CRS includes: determining the number of patterns of the CRS set and the number of ports corresponding to the CRS patterns; When the number of patterns of the CRS is equal to or greater than a pattern number threshold, when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, not wanting to receive an NR PDCCH in the first time domain symbol.

2. The control channel receiving method according to claim 1.

4. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the configuration information of the CRS includes: determining a number of resource elements (REs) that the CRS occupies in the first time domain symbol and / or a first resource occupancy ratio based on configuration information of the CRS; If the number of resource elements (REs) is equal to or greater than a RE number threshold and / or the first resource occupancy rate is equal to or greater than a first occupancy rate threshold, not wanting to receive an NR PDCCH in the first time domain symbol.

2. The control channel receiving method according to claim 1.

5. The RE number threshold and / or the first occupancy rate threshold are associated with the aggregation level of the NR PDCCH and / or the format of downlink control information (DCI) in the NR PDCCH, 5. The control channel receiving method according to claim 4.

6. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the configuration information of the CRS includes: The method includes determining whether to receive an NR PDCCH in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information.

2. The control channel receiving method according to claim 1.

7. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information includes: Determining the number of patterns of the configured CRS and an aggregation level of NR PDCCH; If the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold, not wanting to receive an NR PDCCH in the first time domain symbol.

7. The control channel receiving method according to claim 6.

8. The step of determining whether to receive an NR PDCCH in the first time domain symbol based on at least the configuration information of the CRS includes: Determining a second resource occupancy rate of the CRS in a control resource set (CORESET) of the NR PDCCH, wherein a second time domain symbol in the CORESET overlaps with the first time domain symbol; If the second resource occupancy rate is equal to or greater than a second occupancy rate threshold, not wanting to receive an NR PDCCH in the first time domain symbol.

7. The control channel receiving method according to claim 6.

9. transmitting the capability information to the network device; The capability information is for indicating whether the terminal supports receiving NR PDCCH in the first time domain symbol when the CRS configuration information meets the target configuration.

2. The control channel receiving method according to claim 1.

10. A control channel transmission method applied to a network device, comprising: determining a first time domain symbol corresponding to a cell-specific reference signal (CRS) configured for a terminal, the first time domain symbol being some or all of the time domain symbols in a time domain resource in which the CRS is located; and determining whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal in the first time domain symbol based on at least configuration information of the CRS.

2. A control channel transmission method comprising:

11. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes: Determining the number of patterns of the CRS that have been set; If the number of patterns of the CRS is equal to or greater than a pattern number threshold, not transmitting an NR PDCCH to the terminal in the first time domain symbol.

11. The control channel transmission method according to claim 10.

12. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes: determining the number of patterns of the CRS and the number of ports corresponding to the patterns of the CRS; When the number of patterns of the CRS is equal to or greater than a pattern number threshold, when the number of ports corresponding to at least one of the CRS patterns is equal to or greater than a port number threshold, not transmitting an NR PDCCH to the terminal in the first time domain symbol.

11. The control channel transmission method according to claim 10.

13. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes: determining a number of resource elements (REs) that the CRS occupies in the first time domain symbol and / or a first resource occupancy ratio based on configuration information of the CRS; If the number of resource elements (REs) is equal to or greater than a RE number threshold and / or the first resource occupancy rate is equal to or greater than a first occupancy rate threshold, not transmitting an NR PDCCH to the terminal in the first time domain symbol.

11. The control channel transmission method according to claim 10.

14. The RE number threshold and / or the first occupancy rate threshold are associated with the aggregation level of the NR PDCCH and / or the format of downlink control information (DCI) in the NR PDCCH, 14. The control channel transmission method according to claim 13.

15. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes: The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information.

11. The control channel transmission method according to claim 10.

16. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on the CRS configuration information and the NR PDCCH configuration information includes: Determining the number of patterns of the CRS and an aggregation level of the NR PDCCH; If the number of CRS patterns is equal to or greater than a number threshold and the aggregation level is equal to or less than a level threshold, not transmitting an NR PDCCH to the terminal in the first time domain symbol.

16. The control channel transmission method according to claim 15.

17. The step of determining whether to transmit an NR PDCCH to the terminal in the first time domain symbol based on at least the configuration information of the CRS includes: determining a second resource occupancy rate of the CRS in a control resource set (CORESET), wherein a second time domain symbol in the CORESET overlaps with the first time domain symbol; If the second resource occupancy rate is equal to or greater than a second occupancy rate threshold, not transmitting an NR PDCCH to the terminal in the first time domain symbol.

16. The control channel transmission method according to claim 15.

18. receiving capability information transmitted from the terminal; Further comprising: determining whether to transmit an NR PDCCH in the first time domain symbol when the CRS configuration information meets the target configuration based on the capability information; 11. The control channel transmission method according to claim 10.

19. A control channel receiving device applied to a terminal, The method includes: determining a first time domain symbol corresponding to a cell-specific reference signal (CRS), the first time domain symbol being some or all of the time domain symbols in a time domain resource in which the CRS is located; and determining whether or not a new radio physical downlink control channel (NR PDCCH) is desired to be received in the first time domain symbol based on at least configuration information of the CRS. A control channel receiving device comprising:

20. A control channel transmission device applied to a network device, The method includes: determining a first time domain symbol corresponding to a cell-specific reference signal (CRS) configured for a terminal, the first time domain symbol being some or all of the time domain symbols in a time domain resource in which the CRS is located; and determining whether to transmit a new radio physical downlink control channel (NR PDCCH) to the terminal using the first time domain symbol based on at least configuration information of the CRS. A control channel transmitting device comprising:

21. A communication device, Processor and a memory for storing a computer program; The computer program, when executed by a processor, implements the control channel reception method according to any one of claims 1 to 9. A communication device comprising:

22. A communication device, Processor and a memory for storing a computer program; The computer program, when executed by a processor, implements the control channel transmission method according to any one of claims 10 to 18. A communication device comprising:

23. A computer-readable storage medium having a computer program stored thereon, the computer program implementing the steps of the control channel reception method according to any one of claims 1 to 9 when executed by a processor. A computer-readable storage medium comprising:

24. A computer-readable storage medium having a computer program stored thereon, the computer program implementing the steps of the control channel transmission method according to any one of claims 10 to 18 when executed by a processor. A computer-readable storage medium comprising:

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