WO2017117819A1 - 数据传输方法及装置 - Google Patents
数据传输方法及装置 Download PDFInfo
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- WO2017117819A1 WO2017117819A1 PCT/CN2016/070527 CN2016070527W WO2017117819A1 WO 2017117819 A1 WO2017117819 A1 WO 2017117819A1 CN 2016070527 W CN2016070527 W CN 2016070527W WO 2017117819 A1 WO2017117819 A1 WO 2017117819A1
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Definitions
- the present invention relates to the field of communications technologies, and in particular, to a data transmission method and apparatus.
- the user equipment UE detects the downlink control information DCI in the downlink subframe, where the DCI includes scheduling information of the UE transmitting the physical uplink shared channel (PUSCH) and scheduling information of the UE receiving the physical downlink shared channel (PDSCH), for example, in the frequency domain.
- the PUSCH channel mainly carries the uplink data sent by the terminal, and is transmitted in a single carrier frequency division multiple access SC-FDMA format.
- the minimum scheduling granularity in the frequency domain is one physical resource block PRB, and one PRB is included in the frequency domain. 12 orthogonal subcarriers, wherein the interval between subcarriers is 15 kHz, therefore, 1 PRB contains a frequency resource of 180 kHz.
- the terminal supports the first type of terminal capability, which means that the terminal supports a single subcarrier SC with an orthogonal subcarrier spacing of 3.75 kHz.
- terminal support for the second type of terminal capability means that the uplink supports a single subcarrier SC-FDMA transmission with an orthogonal subcarrier spacing of 15 kHz
- the terminal supports the second type of terminal Capability refers to the uplink transmission of multiple subcarriers SC-FDMA supporting orthogonal subcarrier spacing of 15 kHz.
- the downlinks of the terminals supporting the three types of terminal capabilities support the orthogonal frequency division multiple access OFDMA technology, and the subcarrier spacing is 15 kHz.
- the terminal can support any one or more of the three types of terminal capability terminals.
- the minimum scheduling granularity of the LTE system is 1 PRB, that is, a frequency resource of 180 kHz, scheduling of a single subcarrier or multiple subcarrier granularity is not supported, and a terminal of the first type and a terminal supporting the second type of terminal are supported.
- the RF bandwidth is 180 kHz or as small as 3.75 kHz. Therefore, it cannot receive the information in the synchronization channel and the broadcast channel of the existing LTE system, and thus cannot enter normal communication. Therefore, a data transmission method and apparatus are needed.
- embodiments of the present invention provide a data processing method and apparatus.
- a data transmission method comprising:
- the first indication information of the uplink resource includes information for indicating that the uplink resource is a first type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, where When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one of the SC-FDMA symbols; or the first type of uplink resource frequency Included in the at least one subchannel, each subchannel has a width of 3.75 kHz, and includes at least one frequency division multiple access FDMA symbol in the time domain; the second type uplink resource frequency includes at least one subcarrier on the subcarrier. When the number is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz; the time domain includes at least 1 single carrier frequency division multiple access SC-FDMA symbol;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the terminal acquires first indication information of an uplink resource used for sending uplink data or uplink control information, specifically:
- system information sent by the base station, where the system information includes information of the first type of uplink resource in a time domain and/or a frequency domain, and/or the second type of uplink resource is in a time domain and/or Information on the frequency domain.
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the method also includes:
- the terminal If the terminal supports the first type of terminal capability, the terminal sends uplink data or uplink control information on the first type of uplink resource;
- the terminal If the terminal supports the second type of terminal capability or the third type of terminal capability, the terminal sends uplink data or uplink control information on the second type of uplink resource;
- the terminal If the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal capability, the terminal is on the first type of uplink resource or The uplink data or uplink control information is sent on the second type of uplink resource.
- the method further includes:
- the second indication information includes, when the terminal sends the uplink data, using the first type of uplink resource or using the second type of uplink resource, Subcarrier information or subchannel information;
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the terminal obtains the second indication information of the uplink resource used for sending the uplink data, specifically:
- the terminal receives the downlink control information DCI or the random access response RAR sent by the base station, where the DCI or RAR includes the second indication information.
- the method further includes include:
- the terminal If the terminal supports the first type of terminal capability, the terminal sends uplink data on the first type of uplink resource;
- the terminal If the terminal supports the second type of terminal capability or the third type of terminal capability, the terminal sends uplink data on the second type of uplink resource;
- the terminal If the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal capability, the terminal is on the first type of uplink resource or The uplink data is sent on the second type of uplink resource.
- the terminal sends uplink data on the first type of uplink resource, specifically:
- the method further includes:
- the terminal After the terminal sends the uplink data scheduled by the scheduling information, the terminal receives the response feedback information sent by the base station on the first type of downlink resource according to the second timing relationship corresponding to the first type of uplink resource,
- the second timing relationship corresponding to the uplink resource of the first type is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the terminal sends uplink data on the second type of uplink resource, specifically:
- the timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or RAR and uplink data scheduled by the scheduling information.
- the method further includes:
- the terminal After the terminal sends the uplink data scheduled by the scheduling information, the terminal follows the The second timing relationship corresponding to the second type of uplink resource, the acknowledgment feedback information sent by the base station is received on the second type of downlink resource, and the second timing relationship corresponding to the second type of uplink resource is used to indicate the a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the terminal When the terminal supports the first type of terminal capability, the terminal receives the DCI or the RAR sent by the base station, where the terminal detects the DCI or RAR on the first type of downlink resource, where the DCI or RAR And further comprising scheduling information for scheduling the terminal to send uplink data;
- the terminal When the terminal supports the second type of terminal capability and the third type of terminal capability, the terminal receives the DCI or the RAR sent by the base station, where the terminal detects the DCI or the RAR on the second type of downlink resource, where The DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the terminal When the terminal supports the first type of terminal capability and the second type of terminal capability or when the terminal supports the first type of terminal capability and the third type of terminal capability, the terminal receives the DCI or RAR sent by the base station, specifically: The terminal detects the DCI or the RAR on the first type of downlink resource and/or the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the terminal When the first type of terminal capability and the second type of terminal capability are supported, or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or RAR further includes The uplink resource used is the third indication information of the first type of uplink resource or the second type of uplink resource.
- the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the first type of uplink resource, if the received DCI is the first In the second DCI format, the third indication information indicates subcarrier information or subchannel information when the terminal sends uplink data using the second type of uplink resource; or
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the method further includes:
- the terminal sends random access information on the physical random access channel PRACH, and the bandwidth occupied by each of the PRACH channels in the frequency domain is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz, and the random access information is Random preamble or orthogonal sequence code or modulation symbol.
- the method before the terminal sends the random access information on the PRACH, the method further includes:
- the terminal receives system information sent by the base station, where the system information includes configuration information of the PRACH channel, and the configuration information of the PRACH channel includes information of a first type of PRACH channel and/or information of a second type of PRACH channel;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the terminal is in each random access Sending, by the information transmission opportunity, a randomly selected one of a random preamble or an orthogonal sequence code to the base station on a randomly selected one of the PRACH channels;
- the terminal sends a random preamble or an orthogonal sequence code to the base station, and the terminal occupies one of the PRACH channels to send the random preamble or orthogonal sequence on each random access information transmission opportunity.
- the terminal when the terminal supports the first type of terminal The capability and/or the second type of terminal capability, the terminal transmitting the random access information to the base station on the first type of PRACH channel;
- the terminal When the terminal supports the first type of terminal capability and/or the third type of terminal capability, the terminal sends the random access information to the base station on the second type of PRACH channel.
- the method further includes:
- the method further includes:
- a data transmission method comprising:
- the base station sends the system information to the terminal, where the system information includes first indication information used to indicate that the terminal sends the uplink resource or the uplink resource used by the uplink control information;
- the first indication information of the uplink resource is used to indicate that the uplink resource is the first Information about a type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, and when the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarriers
- the interval is 3.75 kHz, and the time domain includes at least one single carrier frequency division multiple access SC-FDMA symbol; or the first type of uplink resource frequency includes at least one subchannel, and each subchannel has a width of 3.75 kHz.
- the domain includes at least one frequency division multiple access FDMA symbol;
- the second type of uplink resource frequency includes at least one subcarrier, and when the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarriers
- the interval is 15 kHz; at least one of the SC-FDMA symbols is included in the time domain;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the method further includes:
- the base station sends a downlink control information DCI or a random access response (RAR) to the terminal, where the DCI or RAR includes second indication information for indicating, by the terminal, the uplink resource used for sending the uplink data.
- DCI or RAR random access response
- the second indication information includes subcarrier information or subchannel information when the terminal sends the uplink data to use the first type of uplink resource or uses the second type of uplink resource.
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the DCI or the RAR further includes scheduling information for scheduling the terminal to send uplink data, and after the base station sends the DCI or the RAR to the terminal, the method further includes:
- the base station on the first type of uplink resource, is sent by the receiving terminal on the first type of uplink resource.
- Upstream data specifically:
- the first timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or RAR and uplink data scheduled by the scheduling information.
- the method further includes:
- the base station After receiving the uplink data scheduled by the scheduling information sent by the terminal on the first type of uplink resource, the base station is in the first type of downlink according to a second timing relationship corresponding to the first type of uplink resource. Sending the response feedback information to the terminal, where the second timing relationship corresponding to the first type of uplink resource is used to indicate that the uplink data sent by the terminal and the response feedback information corresponding to the uplink data are Timing relationship.
- the base station on the second type of uplink resource, the receiving terminal sends the second type of uplink resource Upstream data, specifically:
- the base station Receiving, by the base station, the uplink data scheduled by the scheduling information sent by the terminal, according to the first timing relationship corresponding to the second type of uplink resource, where the second type of uplink
- the first timing relationship corresponding to the resource is used to indicate DCI or RAR A timing relationship between the included scheduling information and the uplink data scheduled by the scheduling information.
- the method further includes:
- the base station After receiving the uplink data scheduled by the scheduling information sent by the terminal on the second type of uplink resource, the base station is in the second type of downlink according to the second timing relationship corresponding to the second type of uplink resource. Sending the response feedback information to the terminal, where the second timing relationship corresponding to the second type of uplink resource is used to indicate between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data. Timing relationship.
- the base station when the terminal supports the In a terminal capability, the base station sends a DCI or a RAR to the terminal, where the base station sends the DCI or RAR on the first type of downlink resource, where the DCI or RAR further includes scheduling the terminal to send. Scheduling information of uplink data;
- the base station When the terminal supports the second type of terminal capability and the third type of terminal capability, the base station sends the DCI or the RAR to the terminal, where the base station sends the DCI or RAR on the second type of downlink resource, where The DCI or RAR includes scheduling information for scheduling the terminal to send uplink data;
- the base station sends a DCI or a RAR to the terminal, specifically: The base station sends the DCI or RAR on the first type of downlink resource and/or the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR when the DCI or RAR When the second indication information is included, and the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or The RAR further includes third indication information that is used to indicate that the uplink resource used by the terminal to send uplink data is a first type of uplink resource or a second type of uplink resource.
- the third indication information indicates The sub-carrier information or the sub-channel information when the terminal sends the uplink data using the first type of uplink resource, and if the DCI is in the second DCI format, the third indication information indicates that the terminal sends the uplink data to use the second type of uplink. Subcarrier information or subchannel information at the time of resource; or,
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the method further includes:
- the base station Receiving, by the base station, random access information that is sent by the terminal on a physical random access channel PRACH, where each of the PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz.
- the random access information is a random preamble or an orthogonal sequence code or a modulation symbol.
- the method before the base station receives the random access information sent by the terminal on the PRACH, the method also includes:
- the base station sends system information to the terminal, where the system information includes configuration information of the PRACH channel, and configuration information of the PRACH channel includes information of a first type of PRACH channel and/or information of a second type of PRACH channel;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the base station receives the random access information that is sent by the terminal on the PRACH, specifically:
- a random preamble or an orthogonal sequence code that is sent by the terminal in n times, where the terminal occupies one of the PRACH channels and sends the random preamble or orthogonal sequence on each random access information transmission opportunity A segment of the code, wherein the n is an integer greater than or equal to 1.
- the fourteenth possible implementation manner of the second aspect when the terminal supports the first class Receiving, by the terminal capability and/or the second type of terminal capability, the random access information sent by the terminal on the first type of PRACH channel;
- the random access information sent by the terminal is received on the second type of PRACH channel.
- the method After receiving the random access information sent by the terminal on the first type of PRACH channel, the method further includes:
- the base station sends the RAR to the terminal according to the timing relationship corresponding to the first type of PRACH channel, and the timing relationship corresponding to the first type of PRACH channel is used by the downlink resource corresponding to the first type of PRACH channel. And indicating a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- the method further includes:
- the timing relationship corresponding to the PRACH channel is used to indicate a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- a terminal where the terminal includes:
- An obtaining unit configured to acquire first indication information of an uplink resource used for sending uplink data or uplink control information
- the first indication information of the uplink resource includes information for indicating that the uplink resource is a first type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, where When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one of the SC-FDMA symbols; or the first type of uplink resource frequency Included in the at least one subchannel, each subchannel has a width of 3.75 kHz, and includes at least one frequency division multiple access FDMA symbol in the time domain; the second type uplink resource frequency includes at least one subcarrier on the subcarrier. When the number is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz; the time domain includes at least 1 single carrier frequency division multiple access SC-FDMA symbol;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the acquiring unit is specifically configured to:
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the terminal further includes:
- a sending unit configured to send uplink data or uplink control information on the first type of uplink resource, if the terminal supports the first type of terminal capability
- the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal capability, on the first type of uplink resource or the second type
- the uplink data or the uplink control information is sent on the uplink resource.
- the acquiring unit is further configured to acquire, use, The second indication information of the uplink resource, where the second indication information includes subcarrier information or subchannel information when the terminal sends the uplink data to use the first type of uplink resource or uses the second type of uplink resource;
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the second indication information that is used by the acquiring unit to obtain an uplink resource used for sending uplink data is specifically:
- the sending unit is further configured to:
- the uplink data is sent on the second type of uplink resource
- the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal support The first type of terminal capability and the third type of terminal capability are used to send uplink data on the first type of uplink resource or the second type of uplink resource.
- the sending, by the sending unit, the sending the uplink data on the first type of uplink resource is specifically:
- the acquiring unit is further configured to: after the sending unit sends the uplink data scheduled by the scheduling information And receiving, according to the second timing relationship corresponding to the uplink resource of the first type, the response feedback information sent by the base station, where the second timing relationship corresponding to the first type of uplink resource is used. And a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the sending, by the sending unit, the sending the uplink data on the second type of uplink resource is specifically:
- the acquiring unit is further configured to: after the sending unit sends the uplink data scheduled by the scheduling information And receiving the response feedback information sent by the base station on the second type of downlink resource according to the second timing relationship corresponding to the second type of uplink resource, where the second timing relationship corresponding to the second type of uplink resource is used. And a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the receiving unit is configured to receive the DCI or RAR sent by the base station, specifically:
- the acquiring unit detects the DCI or the RAR on the first type of downlink resource, where the DCI or RAR further includes scheduling information for scheduling the terminal to send uplink data.
- the acquiring unit detects the DCI or RAR on the second type of downlink resource, where the DCI or RAR includes scheduling the terminal to send an uplink. Scheduling information of the data;
- the acquiring unit is in the first type of downlink resource and/or The DCI or the RAR is detected on the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR when the terminal When the first type of terminal capability and the second type of terminal capability are supported, or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or RAR further includes The uplink resource used is the third indication information of the first type of uplink resource or the second type of uplink resource.
- the third indication information indicates the If the received DCI is in the second DCI format, the third indication information indicates that the terminal sends the uplink data to use the second type, if the terminal sends the uplink data to use the first type of the uplink resource.
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the sending unit is further configured to send random access information on the physical random access channel PRACH, where each of the PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz.
- the incoming information is a random preamble or an orthogonal sequence code or a modulation symbol.
- the acquiring unit is further configured to receive system information sent by the base station, where the system information includes Configuration information of the PRACH channel, where the configuration information of the PRACH channel includes information of a first type of PRACH channel and/or information of a second type of PRACH channel;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the sending unit is used on the PRACH
- the random access information is specifically:
- n is an integer greater than or equal to 1.
- the sending unit is used on the PRACH
- the random access information is specifically:
- the random access information is sent to the base station on a second type of PRACH channel.
- the acquisition unit is also used to:
- the RAR sent by the base station on a downlink resource corresponding to the first type of PRACH channel, and a timing relationship corresponding to the first type of PRACH channel is used to indicate And the timing relationship between the random access information sent by the terminal and the base station to send the RAR.
- the acquisition unit is also used to:
- the RAR sent by the base station on a downlink resource corresponding to the second type of PRACH channel, and the timing relationship corresponding to the second type of PRACH channel is used to indicate And the timing relationship between the random access information sent by the terminal and the base station to send the RAR.
- a base station where the base station includes:
- a sending unit configured to send system information to the terminal, where the system information includes first indication information for indicating, by the terminal, an uplink resource used for sending uplink data or uplink control information;
- the first indication information of the uplink resource includes information for indicating that the uplink resource is a first type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, where When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one single carrier frequency division multiple access SC-FDMA symbol; or, the first The uplink resource frequency includes at least one subchannel, each subchannel has a width of 3.75 kHz, and the time domain includes at least one frequency division multiple access FDMA symbol; the second type uplink resource frequency includes at least one subcarrier, When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz; the time domain includes at least one of the SC-FDMA symbols;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the sending unit is further configured to send a DCI or a RAR to the terminal, where the DCI or The RAR includes second indication information for indicating, by the terminal, an uplink resource used for sending uplink data.
- the second indication information includes subcarrier information or subchannel information when the terminal sends the uplink data to use the first type of uplink resource or uses the second type of uplink resource.
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the base station further includes:
- a receiving unit configured to receive, on the first type of uplink resource, uplink data that is sent by the terminal that supports the first type of terminal capability on the first type of uplink resource;
- the receiving unit on the first type of uplink resource, receives, by the terminal, the uplink resource in the first type
- the uplink data sent on the specific is:
- the timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or RAR and uplink data scheduled by the scheduling information.
- the sending unit is further configured to receive, by using the terminal, After the uplink data of the scheduling information is scheduled, the acknowledgment feedback information is sent to the terminal on the first type of downlink resource according to the second timing relationship corresponding to the first type of uplink resource, where the first type The second timing relationship corresponding to the uplink resource is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the receiving unit on the second type of uplink resource, receives, by the terminal, the uplink resource in the second type
- the uplink data sent on the specific is:
- the first timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or the RAR and uplink data scheduled by the scheduling information.
- the sending unit is further configured to receive, by using the terminal, After the uplink data of the scheduling information is scheduled, the second feedback message is sent to the terminal according to the second timing relationship corresponding to the second type of uplink resource, where the second type The second timing relationship corresponding to the uplink resource is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the sending unit is used Sending DCI or RAR to the terminal is specifically as follows:
- the DCI or the RAR is sent on the first type of downlink resource, where the DCI or RAR further includes scheduling information for scheduling the terminal to send uplink data.
- the terminal When the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the first type of downlink resources and/or the first The DCI or the RAR is sent on the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR when the DCI or RAR When the second indication information is included, and the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or The RAR further includes third indication information that is used to indicate that the uplink resource used by the terminal to send uplink data is a first type of uplink resource or a second type of uplink resource.
- the third indication information indicates that the terminal sends subcarrier information or subchannel information when the uplink data uses the first type of uplink resource, and if the DCI is the second DCI format, And the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the second type of uplink resource; or
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the receiving unit further And receiving, by the terminal, the random access information sent by the terminal on the PRACH, where the bandwidth occupied by each of the PRACH channels in the frequency domain is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz, and the random access information is Random preamble or orthogonal sequence code or modulation symbol.
- the sending unit is further configured to: send system information to the terminal, where the system information includes configuration information of the PRACH channel, and configuration information of the PRACH channel includes information of a first type of PRACH channel. And/or information of the second type of PRACH channel;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the receiving unit is configured to receive the The random access information sent by the terminal on the PRACH is specifically:
- a random preamble or an orthogonal sequence code sent by the n times where the terminal occupies one of the PRACH channels and sends the random preamble or the orthogonal sequence code in each random access information transmission opportunity.
- the receiving unit is configured to receive the The random access information sent by the terminal on the PRACH is specifically:
- the random access information sent by the terminal is received on the second type of PRACH channel.
- the sending unit is configured to receive, by using the terminal, the sending by the terminal on the first type of PRACH channel
- the random access information is specifically, according to the timing relationship corresponding to the first type of PRACH channel, to the terminal on the downlink resource corresponding to the first type of PRACH channel.
- Sending the RAR the timing relationship corresponding to the first type of PRACH channel is used to indicate a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- the sending unit is configured to receive, by using the terminal, the terminal, Specifically, the random access information is that, according to the timing relationship corresponding to the second type of PRACH channel, the RAR is sent to the terminal on a downlink resource corresponding to the second type of PRACH channel, and the second type of PRACH is used.
- the timing relationship corresponding to the channel is used to indicate a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- a fifth aspect provides a terminal, where the terminal includes: a processor, a memory, a system bus, and a communication interface;
- the memory is configured to store a computer to execute instructions
- the processor is coupled to the memory via the system bus, and when the base station is in operation, the processor executes the computer-executed instructions stored in the memory to enable
- the terminal performs the data transmission method according to any one of the above-mentioned first aspect to the nineteenth possible implementation manner of the first aspect.
- a base station in a sixth aspect, includes: a processor, a memory, a system bus, and a communication interface;
- the memory is configured to store a computer to execute instructions
- the processor is coupled to the memory via the system bus, and when the base station is in operation, the processor executes the computer-executed instructions stored in the memory to enable
- the base station performs the data transmission method according to any one of the above-mentioned second aspect to the sixteenth possible implementation manner of the second aspect.
- the base station sends the system information to the terminal, where the system information includes first indication information, which is used to instruct the terminal to send uplink data or uplink control information, and the first indication, the first indication
- the information includes information for indicating that the uplink resource is the first type of uplink resource or the second type of uplink resource, and information for indicating the first type of uplink resource or the second type of uplink resource in the time domain and/or the frequency domain;
- the terminal obtains the first indication information of the uplink resource used for sending the uplink data or the uplink control information, and sends and receives the uplink and downlink data on the corresponding uplink and downlink resources based on the first indication information, so that the terminal can be used in the existing LTE system.
- the base station can enable the base station to transmit uplink and downlink data with the terminal supporting any one, two, or three types of terminal capabilities, the second type of terminal capability, and the third type of terminal capability, thereby improving the LTE system and Base station utilization.
- FIG. 1 is a system architecture diagram of a communication system according to an embodiment of the present invention.
- FIG. 2 is a schematic flowchart of a first data transmission method according to an embodiment of the present invention.
- FIG. 3 is a schematic flowchart of a second data transmission method according to an embodiment of the present invention.
- FIG. 4 is a schematic flowchart of a third data transmission method according to an embodiment of the present invention.
- 4A is a schematic diagram of a first timing relationship of a first type of uplink resource according to an embodiment of the present invention
- FIG. 5 is a schematic flowchart diagram of a fourth data transmission method according to an embodiment of the present disclosure.
- FIG. 5 is a schematic diagram of a second timing relationship of a first type of uplink resource according to an embodiment of the present disclosure
- FIG. 5B is a schematic diagram of a first timing relationship of a second type of uplink resource according to an embodiment of the present disclosure
- FIG. 5C is a schematic diagram of a second timing relationship of a second type of uplink resource according to an embodiment of the present disclosure
- FIG. 6 is a schematic flowchart diagram of a fifth data transmission method according to an embodiment of the present disclosure.
- FIG. 7 is a schematic diagram of a format of a transmitting preamble according to an embodiment of the present invention.
- FIG. 8 is a schematic diagram of another format of a transmitting preamble according to an embodiment of the present invention.
- FIG. 9 is a schematic diagram of another format of a transmitting preamble according to an embodiment of the present invention.
- FIG. 10 is a schematic flowchart diagram of a sixth data transmission method according to an embodiment of the present disclosure.
- 10A is a schematic diagram of a timing relationship corresponding to a first type of PRACH channel according to an embodiment of the present invention
- FIG. 10B is a schematic diagram of a timing relationship corresponding to a second type of PRACH channel according to an embodiment of the present disclosure
- FIG. 11 is a schematic structural diagram of a terminal according to an embodiment of the present disclosure.
- FIG. 12 is a schematic structural diagram of another terminal according to an embodiment of the present disclosure.
- FIG. 13 is a schematic structural diagram of a base station according to an embodiment of the present disclosure.
- FIG. 14 is a schematic structural diagram of another base station according to an embodiment of the present disclosure.
- FIG. 15 is a schematic structural diagram of still another terminal according to an embodiment of the present disclosure.
- FIG. 16 is a schematic structural diagram of still another base station according to an embodiment of the present invention.
- One or three types of terminal capabilities (collectively referred to as new terminal capabilities).
- the three types of terminal capabilities are differentiated according to the uplink orthogonal subcarrier spacing supported by the terminal and/or the number of supported subcarriers or subchannels, specifically:
- the first type of terminal capability uplink supports single subcarrier SC-FDMA transmission with an orthogonal subcarrier spacing of 3.75 kHz or FDMA transmission of a single subchannel with a subchannel bandwidth of 3.75 kHz.
- the second type of terminal capability uplink supports a single subcarrier SC-FDMA transmission with an orthogonal subcarrier spacing of 15 kHz.
- the third type of terminal capability uplink supports transmission of multiple subcarriers SC-FDMA with orthogonal subcarrier spacing of 15 kHz.
- the user terminal in the embodiment of the present invention may be an existing LTE terminal, or may be a terminal (hereinafter referred to as a new terminal) having one or more of the foregoing terminal capabilities.
- the existing LTE terminal supports the transmission of the orthogonal subcarrier SC-FDMA with the subcarrier spacing of 15 kHz.
- the minimum scheduling granularity is 1 PRB, including 12 orthogonal subcarriers, that is, 180 kHz, and does not support a single subcarrier or Scheduling of multiple subcarrier granularities.
- the terminal capability and the terminal type do not have a corresponding correspondence relationship.
- the terminal type is differentiated according to the terminal capability supported by the terminal, there may be multiple methods.
- the foregoing three types of terminal capabilities may correspond to three different types.
- Terminal type that is, the end of supporting a terminal capability
- the terminal is called a terminal type.
- a terminal that supports both the first type terminal capability and the second type terminal capability can be classified into one terminal type, and the first type terminal capability and the third type terminal capability are simultaneously supported.
- the terminal is classified as another terminal type.
- the above is only an exemplary description, and the specific part may be divided according to the actual situation, which is not limited by the embodiment of the present invention.
- the new terminal in the embodiment of the present invention is mainly used for IoT communication, and thus the system supporting the new terminal may be referred to as a narrowband Internet of Things NBIOT system.
- the two types of uplink resources are respectively referred to as the first type of uplink resources and the second type of uplink resources
- the two types of downlink resources are respectively referred to as the first type of downlink resources and the second type of downlink resources, which are specifically described below.
- the first type of uplink resources includes at least one subcarrier, and when the number of subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least 1 Single carrier frequency division multiple access SC-FDMA symbols; or, the first type of uplink resource frequency includes at least one subchannel, each subchannel has a width of 3.75 kHz, and the time domain includes at least one frequency division multiple access FDMA symbol.
- the second type of uplink resource includes at least one subcarrier, and when the number of subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz, and the time domain includes at least 1 SC-FDMA symbols.
- the first type of downlink resources and the second type of downlink resources correspond to the first type of uplink resources, and the second type of downlink resources correspond to the second type of uplink resources, where the correspondence refers to the correspondence of the uplink and downlink resource categories. It does not represent the corresponding number of uplink and downlink resources.
- the first type of downlink resource is 1 physical resource block PRB, that is, 180 kHz, and the first type of uplink resource includes 30 kHz.
- the first type of downlink resource 180 kHz can correspond to at least one first.
- the uplink resource of the class is 30 kHz, wherein the specific correspondence may be set in advance, for example, the correspondence relationship is related to the frequency band used by the system and is explicitly stated in the standard specification, or the corresponding relationship is obtained according to the downlink synchronization signal or the reference signal sent by the system, or The notification is not limited in the embodiment of the present invention.
- the first type of downlink resources and the second type of downlink resources may be the same or different in the time domain and the frequency domain. When the first type of downlink resources and the second type of downlink resources are the same in the time domain and the frequency domain, the first type of downlink resources and the second type of downlink resources indicate the same downlink resource.
- the same downlink resource can be simultaneously Corresponding to the first type of uplink resources and the second type of uplink resources;
- the downlink resources of the class and the downlink resources of the second type are different in the time domain, or different in the frequency domain, or different in the time domain and the frequency domain, and the downlink resources in the time domain include at least one of the following: different time starting points Different periods have different durations;
- the downlink resources in the frequency domain include at least one of the following: occupying different frequency ranges, occupying different frequency starting points, occupying different numbers of subcarriers, and the like;
- orthogonal frequency division multiplexing OFDM symbols are transmitted on the second type of downlink resources, and the subcarrier spacing is 15 kHz.
- the first type of PRACH channel occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of the following: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain.
- the second type of PRACH channel the bandwidth of the second type of PRACH channel occupied by the frequency domain is greater than 15 kHz and less than or equal to 180 kHz, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channel in the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the application scenarios in the embodiments of the present invention may be roughly classified into three scenarios according to different frequency resources used.
- the first scenario that is, the independent deployment scenario, the dedicated frequency resource networking supports the new terminal capability, and the used frequency resource may be a frequency band that is recovered and reused from the GSM system, or is used in a 3G system or an LTE system. Band resources.
- the second scenario the protection band deployment scenario, the frequency resources used by the system are located in the protection band of the frequency band used by the LTE system.
- the third scenario that is, the in-band deployment scenario, uses a frequency resource located in a standard carrier of the LTE system, such as a bandwidth of 10 MHz or 20 MHz, that is, a standard carrier of the LTE system supports both the normal LTE terminal and the new one.
- a frequency resource located in a standard carrier of the LTE system such as a bandwidth of 10 MHz or 20 MHz, that is, a standard carrier of the LTE system supports both the normal LTE terminal and the new one.
- a frequency resource located in a standard carrier of the LTE system such as a bandwidth of 10 MHz or 20 MHz
- a standard carrier of the LTE system supports both the normal LTE terminal and the new one.
- One or more new terminal capabilities therefore, in order to not affect the normal communication of the normal LTE terminal, the maximum transmission power that the NBIOT system can use to transmit the downlink channel in the third scenario may be smaller.
- the system architecture of the communication system to which the embodiments of the present invention are applied is as shown in FIG. 1.
- the system architecture diagram includes a base station 101, a user terminal 102, and a communication channel 103.
- the base station 101 has a scheduling function of a shared channel, and is based on being sent to a user terminal.
- the history of the packet data of 102 is used to establish a schedule.
- a mechanism is needed to efficiently allocate the physical layer resources to obtain a statistical multiplexing gain.
- the user terminal 102 may be a plurality of user terminals, and the user terminal 102 has a function of transmitting and receiving data through a communication channel 103 established with the base station 101.
- the user terminal 102 performs transmission or reception processing of the shared channel based on the information transmitted through the scheduling control channel.
- the user terminal 102 may be a mobile station, a mobile phone, a computer, a portable terminal, or the like, and the types of the user terminals 102 may be the same or different.
- the base station 101 and the user terminal 102 perform data reception and transmission through the communication channel 103.
- the communication channel 103 may be a wireless communication channel, and in the wireless communication channel, at least a shared channel and a scheduling control channel exist, and the shared channel is for transmitting. And receiving the packet and sharing between the plurality of user terminals 102, the scheduling control channel is used to transmit the allocation of the shared channel, the corresponding scheduling result, and the like.
- FIG. 2 is a schematic flowchart of a data transmission method according to an embodiment of the present invention. Referring to FIG. 2, the method includes the following steps.
- Step 201 The base station sends system information to the terminal, where the system information includes first indication information for indicating that the terminal sends uplink data or uplink resource used for uplink control information.
- the first indication information of the uplink resource includes information for indicating that the uplink resource is the first type of uplink resource or the second type of uplink resource: the first type of uplink resource frequency includes at least one subcarrier, and the number of the subcarriers is greater than When the value is equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one single carrier frequency division multiple access SC-FDMA symbol; or the first type of uplink resource frequency includes at least one subcarrier.
- each subchannel has a width of 3.75 kHz, and includes at least one frequency division multiple access FDMA symbol in the time domain;
- the second type of uplink resource frequency includes at least one subcarrier, and when the number of subcarriers is greater than or equal to 2, the subcarrier The two are orthogonal to each other and the subcarrier spacing is 15 kHz, and the time domain includes at least one SC-FDMA symbol.
- the first indication information of the uplink resource further includes information used to indicate that the first type of uplink resource or the second type of uplink resource is in a time domain and/or a frequency domain.
- the information indicating that the first indication information is different according to different indications of the terminal support capability is different. Specifically, if the terminal supports the first type of terminal capability, the first indication information is used to indicate that the uplink resource is the first type of uplink resource. If the terminal supports the second type of terminal capability or the third type of terminal The first indication information is used to indicate that the uplink resource is the second type of uplink resource; if the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal The first indication information is used to indicate that the uplink resource is the first type of uplink resource or the second type of uplink resource.
- the system information sent by the base station to the terminal is at least one of the following: system information carried on a physical broadcast channel, such as a PBCH, or a system information block that is scheduled to be sent by using downlink control information, or sent by using a non-scheduled manner.
- Information block, non-scheduled mode transmission means that the resource mapping mode of the information block on the time-frequency two-dimensional resource is a preset manner. For example, a preset manner is explicitly stated in the standard specification.
- the base station when the base station sends the system information to the terminal, the base station may send the system information to all the terminals in the cell, and if the base station determines the terminal capabilities supported by all the terminals in the cell before transmitting the system information, the system The information may also include information of the first type of uplink resource information and the second type of uplink resource.
- the information of the first type of uplink resources is used for a terminal supporting the first type of terminal capability or a terminal supporting the first type of terminal capability and the second type of terminal capability or the first type of terminal capability and the third type of terminal capability;
- the information of the uplink resource is used for a terminal supporting the second type terminal capability or the third type terminal capability or a terminal supporting the first type terminal capability and the second type terminal capability or the first type terminal capability and the third type terminal capability.
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on the time domain and/or the frequency domain.
- the information in the time domain includes at least one of the following: the radio frame in which the first type of uplink resource or the second type of uplink resource appears, and the subframe in which the first type of uplink resource or the second type of uplink resource appears, and the first type of uplink.
- the period, the start point, and the duration of the resource or the second type of uplink resource; the information in the frequency domain includes at least one of the following: the number of subcarriers included in the first type of uplink resource or the second type of uplink resource, and the first type Subcarrier index or location information of the uplink resource or the second type of uplink resource in the frequency domain, subcarrier index or location information of the first type of uplink resource or the second type of uplink resource reference subcarrier in the frequency domain.
- Step 202 The terminal receives system information sent by the base station, where the system information includes information of a first type of uplink resource in a time domain and/or a frequency domain, and/or a second type of uplink resource in a time domain and/or a frequency domain. information.
- the first type of uplink resource may adopt time division multiplexing (TDM), and the system information may include information of a first type of uplink resource in a time domain, and information of a second type of uplink resource in a time domain; and the first type of uplink resource and The second type of uplink resource may also adopt frequency division multiplexing (FDM), and the system information may include information of a first type of uplink resource in a frequency domain, and information of a second type of uplink resource in a frequency domain;
- the second type of uplink resources may also be multiplexed by using a combination of TDM and FDM.
- the system information may include information of the first type of uplink resources in the time domain and the frequency domain, and the second type of uplink resources in the time domain and the frequency domain. information.
- the information in the time domain includes at least one of the following: which radio frames are present in the first type of uplink resources or the second type of uplink resources, and in which subframes the first type of uplink resources or the second type of uplink resources are present.
- the information in the frequency domain includes at least one of the following: a first type of uplink resource or a second type of uplink resource includes a subcarrier Number, subcarrier index or location information of the first type of uplink resource or the second type of uplink resource in the frequency domain, subcarrier index or location information of the first type of uplink resource or the second type of uplink resource reference subcarrier in the frequency domain .
- the system information is used to indicate the information in the time domain corresponding to the first type of uplink resource and the time corresponding to the second type of uplink resource.
- the information on the domain is mutually exclusive. That is, the second type of uplink resource does not appear in the time when the first type of uplink resource occurs, or the first type of uplink resource does not exist when the second type of uplink resource occurs.
- the system information is used to indicate that the information in the frequency domain corresponding to the first type of uplink resource and the frequency domain information corresponding to the second type of uplink resource are mutually exclusive, that is, in the first The second type of uplink resource does not appear on the frequency of the type of uplink resource or the first type of uplink resource does not occur on the frequency of the second type of uplink resource; when the first type of uplink resource and the second type of uplink resource adopt TDM and FDM In the case of hybrid multiplexing, the system information is used to indicate information in the time domain corresponding to the first type of uplink resource and information in the frequency domain, or information and frequency domain in the time domain corresponding to the second type of uplink resource.
- the information in the time domain corresponding to the first type of uplink resource and the information in the time domain corresponding to the second type of uplink resource are mutually exclusive, and the first type of uplink resource is indicated in another period of time.
- the information on the corresponding frequency domain and the frequency domain information corresponding to the second type of uplink resources are mutually exclusive.
- the terminal when the terminal supports the first type of terminal capability, the terminal may obtain information from the system. Obtaining information of the first type of uplink resource when the terminal supports the second type of terminal capability and/or the third type of terminal capability, the terminal may obtain information of the second type of uplink resource from the system information; when the terminal supports The terminal may obtain at least one of the first type of uplink resource information and the second type of uplink resource information from the system information, where the first type of terminal capability, and the second type of terminal capability and the third type of terminal capability are at least one of One.
- the terminal obtains the first indication information of the uplink resource, and the terminal may obtain the first indication information of the uplink resource according to the preset information, that is, the preset information includes the first indication.
- the information content indicated by the information, and the preset information may be set in advance, and the preset information includes a relationship between the frequency band information used in the system deployment or the synchronization signal sent by the system, as clearly stated in the standard specification.
- the reference signal has a corresponding relationship, and the corresponding relationship may be explicitly stated in the standard specification, and the like, which is not limited by the embodiment of the present invention.
- step 201 the method further includes:
- Step 203 The base station sends a DCI or a RAR to the terminal, where the DCI or RAR includes second indication information for indicating, by the terminal, the uplink resource used for sending the uplink data.
- the second indication information includes subcarrier information or subchannel information when the terminal sends the uplink data using the first type of uplink resource or uses the second type of uplink resource;
- the subcarrier information includes at least one of the following information: The number of carriers, the index of the subcarriers, the information indicating the position or index of the subcarriers on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, the index of the subchannel, and the indication subchannel in the frequency domain. Information on the location or index.
- the terminal can support one or two of the first type of terminal capability, the second type of terminal capability, and the third type of terminal capability, or three types simultaneously, when the terminal capability supported by the terminal is different, the base station
- the method of transmitting DCI or RAR to the terminal is also different, as described below.
- the base station When the terminal supports the first type of terminal capability, the base station sends the DCI or the RAR to the terminal, where the base station sends the DCI or the RAR on the first type of downlink resource, where the DCI or the RAR further includes the scheduling that the scheduling terminal sends the uplink data. information.
- the base station When the terminal supports the second type of terminal capability and the third type of terminal capability, the base station sends the DCI or the RAR to the terminal, where the base station sends the DCI or the RAR on the second type of downlink resource, where The DCI or RAR includes scheduling information that the scheduling terminal sends uplink data.
- the base station sends a DCI or a RAR to the terminal, specifically: the base station is in the first type of downlink resource and/or Or transmitting DCI or RAR on the second type of downlink resource; where the DCI or RAR includes scheduling information that the scheduling terminal sends uplink data.
- the DCI or the RAR when the DCI or the RAR includes the second indication information, and the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or RAR further includes The uplink resource used by the terminal to send the uplink data is the third type of uplink resource or the third type of uplink resource; or the terminal supports the first type of terminal capability, the second type of terminal capability, and the third type of terminal capability.
- the DCI or the RAR includes third indication information that is used to indicate that the uplink resource used by the terminal to send uplink data is the first type of uplink resource or the second type of uplink resource.
- the DCI or the RAR includes an indication domain information
- the indication domain indicates, by using different values, that the uplink resource used by the terminal to send the uplink data is the first type of uplink resource or the second type of uplink resource, and the indication domain simultaneously indicates the terminal. Transmitting subcarrier information or subchannel information when the uplink data is transmitted using the first type of uplink resource; or
- the DCI or RAR includes two indication domain information, and one indication domain indicates that the uplink resource used by the terminal to send uplink data is a first type of uplink resource or a second type of uplink resource by using different values, and another indication field indicates that the terminal sends the uplink. Subcarrier information or subchannel information when the data uses the first type of uplink resource; or
- the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the first type of uplink resource
- the third indication information indicates The subcarrier information or the subchannel information when the terminal sends the uplink data using the second type of uplink resource
- the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the first type of uplink resource, if the DCI The CRC is scrambled by the second scrambling code, and the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the first type of downlink resources corresponds to the first type of uplink resources, and the second type of downlink resources.
- the resource corresponds to the second type of uplink resource.
- the correspondence here refers to the correspondence between the uplink and downlink resource categories, and does not represent the correspondence between the uplink and downlink resources.
- the first type of downlink resource is a physical resource block PRB, that is, 180 kHz.
- the first type of uplink resource includes 30 kHz, and the first type of downlink resource 180 kHz can correspond to at least one first type uplink resource of 30 kHz, wherein the specific correspondence can be set in advance, for example, the correspondence relationship is related to the frequency band used by the system and is in the standard specification.
- the corresponding relationship is obtained according to the downlink synchronization signal or the reference signal sent by the system, and the notification may also be performed in the system information, which is not limited in the embodiment of the present invention.
- the first type of downlink resources and the second type of downlink resources may be the same or different in the time domain and the frequency domain.
- the first type of downlink resources and the second type of downlink resources indicate the same downlink resource.
- the same downlink resource can be simultaneously Corresponding to the first type of uplink resource and the second type of uplink resource; when the first type of downlink resource and the second type of downlink resource are different in time domain, or different in frequency domain, or in time domain and in frequency domain,
- the downlink resources in the time domain include at least one of the following: different time starting points, different periods, and different durations; the downlink resources in the frequency domain include at least one of the following: occupying different frequency ranges, occupying different frequency starting points, and occupying
- the number of subcarriers is different.
- orthogonal OFDM symbols are transmitted on the first type of downlink resources and the second type of downlink resources, and the subcarrier spacing is 15 kHz.
- the DCI or the RAR includes the scheduling information that the scheduling terminal sends the uplink data, and refers to the format for transmitting the uplink data, including at least one of the following: the number of subcarriers used in the frequency domain, the modulation mode used, and the resources used in the time domain.
- the number of subcarriers used in the frequency domain is fixed to 1, and the number of subcarriers may not be included in the DCI or RAR;
- the number of subcarriers used in the frequency domain is at least one and at most twelve.
- the uplink data sent by the terminal is mapped on the physical uplink shared channel. If the uplink control information needs to be sent at the same time, the uplink control information and the uplink data may be simultaneously mapped on the physical uplink control channel.
- the uplink control information includes acknowledgment information for correct reception of downlink data or information reflecting channel state information CSI.
- time-frequency resources may be used, or the number of bits included in the first DCI format and the second DCI format is different. Or the time-frequency resources used in the first DCI format and the second DCI format are different, and the number of bits included in the DCI in the first DCI format and the second DCI format is different, or the first DCI format and the second DCI format are sent.
- the time-frequency resources used are the same and the number of bits included in the DCI in the first DCI format and the second DCI format is also the same.
- Step 204 The terminal receives a DCI or a RAR sent by the base station, where the DCI or RAR includes second indication information.
- the terminal when the terminal supports the first type of terminal capability, the terminal receives the DCI or the RAR sent by the base station on the first type of downlink resource, where the DCI or the RAR further includes scheduling information that the scheduling terminal sends the uplink data.
- the terminal When the terminal supports the second type of terminal capability and the third type of terminal capability, the terminal receives the DCI or the RAR sent by the base station on the second type of downlink resource, where the DCI or the RAR includes scheduling information that the scheduling terminal sends the uplink data.
- the terminal When the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the terminal may receive the base station on the first type of downlink resource and/or the second type of downlink resource.
- the transmitted DCI or RAR wherein the DCI or RAR includes scheduling information that the scheduling terminal sends uplink data.
- the high layer signaling such as radio resource control RRC signaling or RRC reconfiguration signaling Or the medium access control MAC signaling indicates whether the uplink resource is used by the terminal as the first type or the second type of uplink resource.
- the terminal may be in the first type of downlink resource and the second type of downlink resource. Both detect DCI or RAR. In the detection of the DCI, the terminal may detect the indication field included in the DCI or the RAR, or the format of the DCI, or the different scrambling code of the CRC in the DCI. For details, refer to the foregoing step 203, which is not described herein again. .
- the DCI or the RAR when the DCI or the RAR includes the second indication information, and the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the DCI or RAR further includes The uplink resource used by the terminal to send the uplink data is the third type of uplink resource or the third type of uplink resource; or the terminal supports the first type of terminal capability, the second type of terminal capability, and the third type of terminal capability.
- the DCI or RAR includes an uplink resource for indicating that the terminal sends uplink data usage is the first The third indication information of the uplink resource of the class or the uplink resource of the second type.
- the third indication information and the scheduling information in the step 204 are similar to the third indication information and the scheduling information in the foregoing step 203, and details are not repeatedly described herein.
- the method further includes:
- Step 205a If the terminal supports the first type of terminal capability, the terminal sends uplink data or uplink control information on the first type of uplink resource.
- the method further comprises:
- Step 206a The base station receives, on the first type of uplink resource, uplink data or uplink control information that is sent by the terminal supporting the first type of terminal capability on the first type of uplink resource.
- the method further includes:
- Step 205b If the terminal supports the second type of terminal capability or the third type of terminal capability, the terminal sends uplink data or uplink control information on the second type of uplink resource.
- the method further comprises:
- Step 206b The base station receives, on the second type of uplink resource, uplink data or uplink control information that is sent by the terminal that supports the second type of terminal capability or the third type of terminal capability on the second type of uplink resource.
- the method further includes:
- Step 205c If the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal capability, the terminal is on the first type of uplink resource or the second type of uplink resource. Send uplink data or uplink control information.
- the method further comprises:
- Step 206c The base station receives uplink data sent by the terminal supporting the first type of terminal capability and the second type of terminal capability on the first type of uplink resource on the first type of uplink resource, or receives the support on the second type of uplink resource.
- steps 205a and 206a, step 205b and step 206b, step 205c and step 206c are in no particular order, and the three groups of steps are in a side-by-side relationship, and which specific base station and terminal are executed. Group steps or groups of steps, depending on the terminal capabilities supported by the terminal.
- the terminal in step 205a and step 205c sends uplink data on the first type of uplink resource, where the terminal sends the scheduling information on the first type of uplink resource according to the first timing relationship corresponding to the first type of uplink resource.
- the scheduled uplink data, the first type of uplink resource subcarrier spacing is 3.75 kHz or each subchannel is 3.75 kHz.
- the first timing relationship corresponding to the uplink resource of the first type is used to indicate a timing relationship between the scheduling information included in the DCI or the RAR and the uplink data scheduled by the scheduling information.
- the base station in the step 206a and the step 206c receives the uplink data sent by the terminal on the uplink resource of the first type on the uplink resource of the first type, specifically: the first timing relationship corresponding to the uplink resource of the first type of the base station,
- the uplink data scheduled by the scheduling information sent by the terminal is received on the first type of uplink resource, and the first type of uplink resource subcarrier spacing is 3.75 kHz or each subchannel is 3.75 kHz.
- timing relationship between the scheduling information included in the DCI or the RAR and the uplink data scheduled by the scheduling information refers to the subframe number of the DCI or RAR end subframe and the initiator of the uplink data.
- the time difference between the subframe numbers of the frame in units of the number of frames or the number of subframes or the number of scheduling time intervals TTI.
- the timing relationship may also refer to a time difference between a subframe number of the DCI or RAR start subframe and a subframe label of the start subframe in which the uplink data is sent, or Refers to the time difference between the subframe number of the subframe in which the DCI or RAR is transmitted when the terminal correctly receives the DCI or RAR and the subframe label of the initial subframe in which the uplink data is transmitted.
- the present invention is exemplified by a time difference T11 between a subframe number of a DCI or RAR end subframe and a subframe number of a start subframe in which uplink data is transmitted, as shown in FIG. 4A.
- the method further includes:
- Step 207a The base station sends the response feedback information to the terminal on the first type of downlink resource according to the second timing relationship corresponding to the uplink resource of the first type.
- the second timing relationship corresponding to the uplink resource of the first type is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data refers to the subframe number of the terminal that transmits the uplink data end subframe and the response feedback information corresponding to the uplink data. Between the subframe numbers of the starting subframe The difference is in units of the number of frames or the number of subframes or the number of scheduling intervals TTI.
- the timing relationship may also refer to the subframe number of the start subframe in which the terminal sends the uplink data and the subframe of the start subframe of the response feedback information corresponding to the uplink data.
- the present invention takes the time difference T12 between the subframe number of the end subframe in which the terminal transmits the uplink data and the subframe number of the start subframe of the response feedback information corresponding to the uplink data, as shown in FIG. 5A.
- first timing relationship T11 corresponding to the first type of uplink resources and the second timing relationship T12 corresponding to the first type of uplink resources may be set in advance or included in the DCI or RAR or included in the system information, and the embodiment of the present invention This is not specifically limited. Among them, the prior setting means that it is clearly stated in the standard specification.
- the acknowledgment feedback information sent by the base station to the terminal on the first type of downlink resource may be ACK/NACK, when it is ACK, the base station correctly receives the uplink data sent by the terminal; when it is the NACK, it refers to the base station receiving Uplink data sent to the terminal but decoded incorrectly.
- the ACK/NACK may be carried on a dedicated physical channel, and the resource mapping manner of the physical channel is preset, such as explicitly stated in the standard specification, or the ACK/NACK may also be the downlink control included in the next transmission.
- the DCI includes an indication field for indicating the ACK/NACK, which is not limited by the embodiment of the present invention.
- step 205b and step 205c sends uplink data on the second type of uplink resource, where the terminal sends the scheduling information on the second type of uplink resource according to the first timing relationship corresponding to the second type of uplink resource.
- the uplink data of the scheduling, the second type of uplink resource subcarrier spacing is 15 kHz.
- the first timing relationship corresponding to the uplink resource of the second type is used to indicate a timing relationship between the scheduling information included in the DCI or the RAR and the uplink data scheduled by the scheduling information.
- the timing relationship between the scheduling information included in the DCI or the RAR and the uplink data scheduled by the scheduling information refers to the subframe number of the DCI or RAR end subframe and the initiator of the uplink data.
- the timing relationship may also refer to a sub-frame in which a DCI or RAR start subframe is transmitted.
- the present invention takes the time difference T21 between the subframe number of the DCI or RAR end subframe and the subframe number of the start subframe in which the uplink data is transmitted as an example, as shown in FIG. 5B.
- the base station in the step 206b and the step 206c receives the uplink data sent by the terminal on the second type of uplink resource on the second type of uplink resource, specifically: the first timing relationship corresponding to the second type of uplink resource by the base station,
- the uplink data scheduled by the scheduling information sent by the terminal is received on the second type of uplink resource, and the second type of uplink resource subcarrier spacing is 15 kHz.
- the method further includes:
- Step 207b The base station sends the response feedback information to the terminal on the second type of downlink resource according to the second timing relationship corresponding to the second type of uplink resource.
- the second timing relationship corresponding to the uplink resource of the second type is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data refers to the subframe number of the terminal that transmits the uplink data end subframe and the response feedback information corresponding to the uplink data.
- the timing relationship may also refer to the subframe number of the start subframe in which the terminal sends the uplink data and the subframe of the start subframe of the response feedback information corresponding to the uplink data.
- the present invention takes the time difference T22 between the subframe number of the end subframe in which the terminal transmits the uplink data and the subframe number of the start subframe of the response feedback information corresponding to the uplink data, as shown in FIG. 5C.
- first timing relationship T21 corresponding to the second type of uplink resources and the second timing relationship T22 corresponding to the second type of uplink resources may be set in advance or included in the DCI or RAR or included in the system information, and the embodiment of the present invention This is not specifically limited. Among them, the prior setting means that it is clearly stated in the standard specification.
- the acknowledgment feedback information sent by the base station to the terminal on the second type of downlink resource may be ACK/NACK, when it is ACK, the base station correctly receives the uplink data sent by the terminal; when it is the NACK, it refers to the base station receiving Uplink data sent to the terminal but decoded incorrectly.
- the ACK/NACK may be carried on a dedicated physical channel, and the resource mapping manner of the physical channel is preset, such as explicitly stated in the standard specification, or the ACK/NACK may also be the downlink control included in the next transmission.
- the DCI includes an indication field for indicating the ACK/NACK, which is not limited by the embodiment of the present invention.
- first timing relationship T11 corresponding to the first type of uplink resources and the first timing relationship T21 corresponding to the second type of uplink resources may be the same or different;
- second timing relationship T12 and the second type corresponding to the uplink resources of the first type The second timing relationship T22 corresponding to the uplink resource may be the same or different.
- steps 207a and 207b are in no particular order, and the two steps are in a side-by-side relationship, and the base station is based on which uplink resource type is used by the terminal.
- the method further includes:
- Step 208 The terminal sends random access information on the physical random access channel PRACH.
- the bandwidth occupied by each PRACH channel in the frequency domain is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz.
- the random access information is a random preamble. Code or orthogonal sequence code or modulation symbol.
- each PRACH channel occupies a bandwidth greater than 0 but less than 3.75 kHz in the frequency domain.
- each PRACH channel occupies 1.25 kHz or 2.5 kHz in the frequency domain, and only one is sent on each PRACH channel.
- Single carrier random access information is only one.
- the random preamble consists of a cyclic prefix CP and a sequence SEQ, and the random preamble is generated by a Zadoff-Chu sequence having a zero correlation zone, and is generated by one or more ZC root sequences.
- the terminal uses a random preamble sequence set configured on the network side. The number of random preambles available in each cell may be configured by the network side or explicitly stated in the standard specifications.
- the random preamble sequence is first obtained by cyclically shifting a certain root ZC sequence.
- the other random preamble sequences are generated by the root ZC sequence corresponding to the subsequent logical index, and the logical index is cyclically continuous. Values range from 0 to 837.
- the uth root ZC sequence x u (n) is as shown in the formula (1), wherein N ZC is a length of the ZC sequence such as a length of 139 or 251 or 839, and the u number is according to formula (2)
- the root ZC sequence x u (n) is a multiple of the loop N CS to obtain a random access preamble.
- N CS is the cyclic shift length
- the cell coverage radius depends on the cyclic shift N CS
- C v is the cyclic shift value
- v is the number of cycles
- mod is the sign of the remainder function.
- the random preamble available in each cell is obtained by cyclically shifting the number of spreading sequences by different u and generating sequences, and the terminal randomly selects one of the random preambles available in each cell for transmission.
- the random access information is an orthogonal sequence code
- the orthogonal sequence code is not generated by the ZC sequence, but the orthogonal sequence codes satisfy orthogonality, for example, generated by a Hadamard matrix.
- Orthogonal code The number of orthogonal sequence codes available in each cell may be configured by the network side or explicitly stated in the standard specifications.
- the set of orthogonal sequence codes available in each cell is configured by the network side or according to a preset rule.
- the terminal randomly selects one of the orthogonal sequence codes available in each cell for transmission; when the random access information is a modulation symbol, when the terminal has uplink data to be transmitted, the terminal directly transmits the uplink data on the PRACH channel after being modulated.
- the symbol, or the terminal transmits a specific modulation symbol on the PRACH channel, and the information carried by the modulation symbol is used to request the base station to send the resource of the uplink data.
- the terminal may perform the sending by using different methods, as follows.
- the first type the terminal sends a randomly selected random preamble or orthogonal sequence code to the base station on a randomly selected one of the PRACH channels on each random access information transmission opportunity;
- the format of the random preamble or the orthogonal sequence code used by the terminal is the same, and the sequence set of the random preamble or the orthogonal sequence code used is the same, and the sequence set may be set in advance or configured by system information, and the terminal is configured.
- a random preamble or an orthogonal sequence code is randomly selected in the sequence set to be transmitted.
- the bandwidth occupied by each PRACH channel on the frequency is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz or greater than 0 and less than 3.75 kHz.
- the terminal randomly selects a PRACH. Channel and transmitting a randomly selected random preamble or positive on the PRACH channel Cross the serial code.
- a random preamble or an orthogonal sequence code is transmitted within 3.75 kHz, and the random preamble subcarrier spacing is 1.25 kHz or 312.5 Hz or less.
- One PRB contains 48 3.75 kHz subcarriers or 12 15 kHz subcarriers. All or part of these subcarriers can be configured by the base station to transmit a random preamble or an orthogonal sequence code.
- the bandwidth of each PRACH channel is 3.75.
- all of the 48 subcarriers in one PRB are configured as PRACH channels.
- the terminal may randomly select one of the sequence set of the random preamble or the orthogonal sequence code and randomly select one of the 48 PRACH channels to send the random preamble or the orthogonal sequence code according to the configuration information of the system information.
- the second type the terminal sends a random preamble or an orthogonal sequence code to the base station in n times, and the terminal occupies one PRACH channel on each random access information transmission opportunity to send one of the random preamble or the orthogonal sequence code.
- n is an integer greater than or equal to 1.
- the format of the random preamble or the orthogonal sequence code used by the terminal is the same, and the sequence set of the random preamble or the orthogonal sequence code used is the same, and the sequence set may be set in advance or configured by system information, and the terminal is configured.
- a random preamble or an orthogonal sequence code is randomly selected in the sequence set to be transmitted. Each random preamble is not sent once, but sent in segments. For example, for a random preamble or orthogonal sequence code of length 139 or 571,
- the terminal transmits 3 symbols of a random preamble or an orthogonal sequence code and occupies 3 subcarriers in the frequency domain, and occupies the next 3 subcarriers in the next transmission, and so on, the preamble transmission format in the time domain.
- the transmission is a random preamble
- the subcarrier spacing used when transmitting the random preamble on the PRACH channel is 1.25 kHz; for a random preamble of length 571, the random is transmitted on the PRACH channel.
- the subcarrier spacing used in the preamble is 312.5 Hz.
- each random access information transmission opportunity refers to a transmission moment of a PRACH channel, that is, in which radio frames, and/or on which subframes the PRACH channel is allowed to be transmitted, or further includes transmitting a PRACH channel at a corresponding moment.
- the frequency resource information occupied by the PRACH channel and the information about the random access information transmission opportunity may be configured by system information and/or specified in a standard specification.
- the method further includes:
- the base station sends system information to the terminal, where the system information includes configuration information of the PRACH channel,
- the configuration information of the PRACH channel includes information of the first type of PRACH channel and/or information of the second type of PRACH channel.
- the first type of PRACH channel occupies a bandwidth of 3.75 kHz or 15 kHz or greater than 0 and less than 3.75 kHz.
- the information of the first type of PRACH channel includes at least one of the following: the number of the first type of PRACH channels.
- the information on the time domain includes which frames or subframes are allowed to transmit, the number of the first type of PRACH channels in the frequency domain, the index or location information of the first type of PRACH channel on the frequency domain.
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz.
- the information of the second type of PRACH channel includes at least one of the following: the information of the number of the second type of PRACH channels in the time domain includes: On which frames or subframes are allowed to transmit, the number of the second type of PRACH channels in the frequency domain, the index or location information of the second type of PRACH channel in the frequency domain.
- the first type of PRACH channel and the second type of PRACH channel may be multiplexed in a TDM manner or an FDM manner, that is, when the first type of PRACH channel and the second type of PRACH channel adopt TDM, the system information is used.
- the information on the time domain corresponding to the first type of PRACH channel and the information in the time domain corresponding to the second type of PRACH channel are mutually exclusive, that is, the second type does not appear in the time when the first type of PRACH channel occurs.
- the PRACH channel does not have a first type of PRACH channel in the time when the second type of PRACH channel occurs; when the first type of PRACH channel and the second type of PRACH channel adopt FDM, the system information is used to indicate that the first type of PRACH channel corresponds to
- the information on the frequency domain and the frequency domain information corresponding to the second type of PRACH channel are mutually exclusive, that is, the second type of PRACH channel does not appear on the frequency of occurrence of the first type of PRACH channel or appears on the second type of PRACH channel. There is no first type of PRACH channel in frequency.
- the time-frequency resource location occupied by the first type of PRACH channel may be the same as or different from the time-frequency resource location occupied by the first type of uplink resource; the time-frequency resource location occupied by the second type of PRACH channel may be occupied by the second type of uplink resource.
- the time-frequency resources are the same or different.
- the base station After the base station sends the system information to the terminal, when the terminal supports the first type of terminal capability and/or the second type of terminal capability, the terminal sends random access information to the base station on the first type of PRACH channel; when the terminal supports the first type of terminal The capability and/or the third type of terminal capability, the terminal transmits random access information to the base station on the second type of PRACH channel.
- the PRACH channel includes a first type of PRACH channel and a second type of PRACH channel
- the first type of PRACH channel is used for the terminal to transmit random access information when supporting the first type of terminal capability
- the second type of PRACH channel is used for the terminal. Random access information is transmitted when the second type of terminal capability and/or the third type of terminal capability is supported.
- the base station in the frequency domain of the first type of PRACH channel may be configured to include multiple 3.75 kHz subcarriers or subchannels or multiple 15 kHz subcarriers, each of which occupies one 3.75 kHz subcarrier or subchannel or one in the frequency domain. 15 kHz subcarrier.
- the second type of PRACH channel is less than or equal to 180 kHz in the frequency domain. Each PRACH channel occupies 139 subcarriers or 251 or 571 equal-numbered subcarriers in the frequency domain. When 139 subcarriers are occupied, random subcarrier spacing is 1.25 kHz.
- the preamble or the orthogonal sequence code is transmitted.
- the random preamble or the orthogonal sequence code with the subcarrier spacing of 312.5 Hz is used for transmission.
- the process of transmitting the random access information on the first type of PRACH channel and the second type of PRACH channel is similar to the first method, and is further described herein.
- the terminal when the terminal sends the random access information to the base station on the first type of PRACH channel, the terminal may use any one of the foregoing first or second methods, which is not specifically limited in the present invention;
- the random access information is sent to the base station on the second type of PRACH channel, any one of the foregoing first or second methods may be used, or may be sent by using a transmission format of a random access code defined in the LTE system, and the present invention There is no specific limit in it.
- the method further comprises:
- Step 209 The base station receives the random access information sent by the terminal on the PRACH.
- the base station receives the random access information sent by the terminal on the PRACH, which may be: when the terminal supports the first type of terminal capability and/or the second type. In the terminal capability, the base station receives the random access information sent by the terminal on the first type of PRACH channel; or, when the terminal supports the third type of terminal capability, receives the random access information sent by the terminal on the second type of PRACH channel.
- the method is different after the base station receives the random access information sent by the terminal, specifically:
- the method further includes:
- Step 210a The base station according to the timing relationship corresponding to the first type of PRACH channel, in the first class The RAR is transmitted to the terminal on the downlink resource corresponding to the PRACH channel.
- the timing relationship corresponding to the first type of PRACH channel is used to indicate a timing relationship between the terminal transmitting the random access information and the base station transmitting the RAR.
- the timing relationship between the terminal transmitting the random access information and the base station transmitting the RAR is that the terminal sends the subframe number of the random access information ending subframe and the base station sends the starting subframe of the RAR.
- the timing relationship may also refer to the subframe number of the starting subframe in which the terminal sends the random access information and the subframe label of the starting subframe in which the base station sends the RAR.
- the present invention takes the time difference T31 between the subframe number of the end subframe in which the terminal transmits the random access information and the subframe number of the starting subframe in which the base station transmits the RAR, as shown in FIG. 10A, where the RAI represents random. Access information.
- timing relationship corresponding to the first type of PRACH channel may be set in advance or included in the system information, which is not specifically limited in this embodiment of the present invention. Among them, the prior setting is clearly stated in the standard specification.
- the method further comprises:
- Step 211a The terminal receives the RAR sent by the base station on the downlink resource corresponding to the first type of PRACH channel according to the timing relationship corresponding to the first type of PRACH channel.
- the method further includes:
- Step 210b The base station sends the RAR to the terminal on the downlink resource corresponding to the second type of PRACH channel according to the timing relationship corresponding to the second type of PRACH channel.
- the timing relationship corresponding to the second type of PRACH channel is used to indicate a timing relationship between the terminal transmitting the random access information and the base station transmitting the RAR.
- the timing relationship between the terminal transmitting the random access information and the base station transmitting the RAR is that the terminal sends the subframe number of the random access information ending subframe and the base station sends the starting subframe of the RAR.
- the time difference between subframe numbers in units of the number of frames or the number of subframes or the number of scheduling intervals TTI.
- the timing relationship may also refer to a time difference between a subframe number of a start subframe in which the terminal transmits random access information and a subframe label of a start subframe in which the base station transmits the RAR, or The time difference between the subframe number of the subframe in which the random access information is transmitted and the subframe identifier of the initial subframe in which the base station transmits the RAR when the base station correctly receives the random access information sent by the terminal.
- the present invention takes the time difference T32 between the subframe number of the end subframe in which the terminal transmits the random access information and the subframe number of the starting subframe in which the base station transmits the RAR as an example, as shown in FIG. 10B.
- timing relationship corresponding to the second type of PRACH channel may be set in advance or included in the system information, which is not specifically limited in the embodiment of the present invention. Among them, the prior setting is clearly stated in the standard specification.
- timing relationship T31 corresponding to the first type of PRACH channel and the timing relationship T32 corresponding to the second type of PRACH channel may be the same or different.
- the method further comprises:
- Step 211b The terminal receives the RAR sent by the base station on the downlink resource corresponding to the second type of PRACH channel according to the timing relationship corresponding to the second type of PRACH channel.
- the downlink resource corresponding to the first type of PRACH channel and the downlink resource corresponding to the second type of PRACH channel does not represent the correspondence between the number of uplink and downlink resources, for example,
- the first type of downlink resource is a physical resource block PRB, that is, 180 kHz, and the bandwidth of the first type of PRACH channel frequency is 3.75 kHz.
- the first type of downlink resource 180 kHz can correspond to at least one first type of PRACH channel, where
- the corresponding relationship may be set in advance, for example, the correspondence relationship is related to the frequency band used by the system and is explicitly stated in the standard specification, or the corresponding relationship is obtained according to the downlink synchronization signal or the reference signal sent by the system, and may also be notified in the system information, and the present invention is implemented. This example does not limit this.
- the downlink resource corresponding to the first type of PRACH channel and the downlink resource corresponding to the second type of PRACH channel may be the same or different in the time domain and the frequency domain.
- the downlink resource corresponding to the first type of PRACH channel and the downlink resource corresponding to the second type of PRACH channel are the same in the time domain and the frequency domain, the downlink resource corresponding to the first type of PRACH channel and the downlink resource corresponding to the second type of PRACH channel
- the same downlink resource in this case, the same downlink resource can simultaneously correspond to the first type of PRACH channel and the second type of PRACH channel; when the downlink resource corresponding to the first type of PRACH channel and the downlink resource corresponding to the second type of PRACH channel can Different in time domain, or different in frequency domain, or different in time domain and frequency domain, downlink resources are in time domain
- the difference includes at least one of the following: different starting points of time, different periods, and different durations; the downlink resources in the frequency domain include at least one of the following: occupying different frequency ranges, occupying different frequency starting points, and occupying the number of subcarriers.
- the OFDM symbols are transmitted on the downlink resources corresponding to the first type of
- the two steps of the foregoing steps 210a and 211a, and the steps 210b and 211b are in no particular order, and the two sets of steps are in a side-by-side relationship, and the set of steps performed by the base station and the terminal specifically depends on the terminal support. Terminal capabilities.
- the base station sends the system information to the terminal, where the system information includes first indication information, which is used to instruct the terminal to send uplink data or uplink control information, and the first indication, the first indication
- the information includes information for indicating that the uplink resource is the first type of uplink resource or the second type of uplink resource, and information for indicating the first type of uplink resource or the second type of uplink resource in the time domain and/or the frequency domain;
- the terminal obtains the first indication information of the uplink resource used for sending the uplink data or the uplink control information, and sends and receives the uplink and downlink data on the corresponding uplink and downlink resources based on the first indication information, and implements random access of the terminal, Therefore, the base station can perform uplink and downlink data with the terminal supporting any one, two, or three types of the first type terminal capability, the second type terminal capability, and the third type terminal capability on the basis of the existing LTE system. Transmission, which in turn increases the utilization of LTE systems
- an embodiment of the present invention provides a terminal, where the terminal is configured to perform the steps performed by the terminal in the foregoing method.
- the terminal may include a module corresponding to the corresponding step. Examples can include:
- the obtaining unit 301 is configured to acquire first indication information of an uplink resource used for sending uplink data or uplink control information.
- the first indication information of the uplink resource includes information for indicating that the uplink resource is a first type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, where When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one of the SC-FDMA symbols; or the first type of uplink resource frequency Included on the at least one subchannel, each subchannel has a width of 3.75 kHz, and includes at least one frequency division multiple access FDMA symbol in the time domain;
- the row resource frequency includes at least one subcarrier. When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz; and the time domain includes at least one single carrier frequency division multiple access. SC-FDMA symbol;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the obtaining unit 301 is specifically configured to:
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the terminal further includes:
- the sending unit 302 is configured to send uplink data or uplink control information on the first type of uplink resource, if the terminal supports the first type of terminal capability;
- the terminal supports the first type of terminal capability and the second type of terminal capability, or the terminal supports the first type of terminal capability and the third type of terminal capability, on the first type of uplink resource or the second type
- the uplink data or the uplink control information is sent on the uplink resource.
- the acquiring unit 301 is further configured to: acquire second indication information of an uplink resource used for sending uplink data, where the second indication information is used to indicate that the terminal sends an uplink. Subcarrier information or subchannel information when the data uses the first type of uplink resource or when the second type of uplink resource is used;
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the obtaining unit 301 may be specifically configured to:
- the sending unit 302 may be specifically configured to:
- the uplink data is sent on the second type of uplink resource
- the uplink data is sent on the uplink resource.
- the sending unit 302 is further configured to:
- the acquiring unit 301 is further configured to: after the sending unit 302 sends the uplink data scheduled by the scheduling information, according to the second timing relationship corresponding to the first type of uplink resources, in the first class And receiving, by the downlink resource, the response feedback information sent by the base station, where the second timing relationship corresponding to the first type of uplink resource is used to indicate a timing between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data. relationship.
- the sending unit 302 is further configured to:
- the obtaining unit 301 is further configured to: send, by the sending unit 302, the scheduling information scheduling After the uplink data, according to the second timing relationship corresponding to the second type of uplink resources, the acknowledgment feedback information sent by the base station is received on the second type of downlink resources, and the second timing corresponding to the second type of uplink resources is received.
- the relationship is used to indicate a timing relationship between the uplink data sent by the terminal and the response feedback information corresponding to the uplink data.
- the obtaining unit 301 is further configured to:
- the DCI or the RAR is detected on the first type of downlink resource, where the DCI or RAR further includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR is detected on the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data. ;
- the first type of downlink resource and/or the second The DCI or RAR is detected on a downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR further includes
- the uplink resource used for instructing the terminal to send uplink data is third indication information of the first type of uplink resource or the second type of uplink resource.
- the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the first type of uplink resource
- the third indication information indicates the subcarrier information or the subchannel information when the terminal sends the uplink data using the second type of uplink resource
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the sending unit 302 is further configured to perform physical random access. Random access information is transmitted on the inbound channel PRACH, and the bandwidth occupied by each of the PRACH channels in the frequency domain is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to 180 kHz, and the random access information is a random preamble or an orthogonal sequence. Code or modulation symbol.
- the acquiring unit 301 is further configured to: receive system information sent by the base station, where the system information includes configuration information of the PRACH channel, and the configuration information of the PRACH channel includes information of a first type of PRACH channel and/or Or information of the second type of PRACH channel;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the sending unit 302 is specifically configured to:
- the sending unit 302 is specifically configured to:
- the random access information is sent to the base station on the second type of PRACH channel.
- the acquiring unit 301 is further configured to: according to the timing relationship corresponding to the first type of PRACH channel, in the first And receiving, by the downlink resource corresponding to the PRACH channel, the RAR sent by the base station, where a timing relationship corresponding to the first type of PRACH channel is used to indicate that the terminal sends the random access information and the base station sends the RAR The timing relationship between.
- the sending unit 302 is further configured to: according to the timing relationship corresponding to the second type of PRACH channel, in the second Receiving, by the downlink resource corresponding to the PRACH channel, the RAR sent by the base station, and the timing relationship corresponding to the second type of PRACH channel is used to indicate that the terminal sends the random access information and the base station sends the RAR The timing relationship between.
- the terminal obtains the first indication information of the uplink resource used for sending the uplink data or the uplink control information, where the first indication information is used to indicate that the uplink resource is the first type of uplink resource or the second type of uplink.
- Receiving uplink and downlink data so that the base station can be connected to any one of the first type of terminal capability, the second type of terminal capability, and the third type of terminal capability, or two or three types of terminals, based on the existing LTE system.
- the uplink and downlink data are transmitted, thereby improving the utilization of the LTE system and the base station.
- an embodiment of the present invention provides a base station, where the base station is configured to perform the steps performed by a base station in the foregoing method.
- the base station may include a module corresponding to the corresponding step. Examples include:
- the sending unit 401 is configured to send system information to the terminal, where the system information includes first indication information for indicating, by the terminal, an uplink resource used for sending uplink data or uplink control information;
- the first indication information of the uplink resource includes information for indicating that the uplink resource is a first type of uplink resource or a second type of uplink resource, where the first type of uplink resource frequency includes at least one subcarrier, where When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 3.75 kHz, and the time domain includes at least one single carrier frequency division multiple access SC-FDMA symbol; or, the first The uplink resource frequency includes at least one subchannel, each subchannel has a width of 3.75 kHz, and the time domain includes at least one frequency division multiple access FDMA symbol; the second type uplink resource frequency includes at least one subcarrier, When the number of the subcarriers is greater than or equal to 2, the subcarriers are orthogonal to each other and the subcarrier spacing is 15 kHz; the time domain includes at least one of the SC-FDMA symbols;
- the first indication information of the uplink resource further includes information for indicating the first type of uplink resource or the second type of uplink resource on a time domain and/or a frequency domain.
- the first indication information is used to indicate that the uplink resource is a first type of uplink resource
- the first indication information is used to indicate that the uplink resource is a second type of uplink resource
- the first indication information is used to indicate that the uplink resource is the first One type of uplink resource or the second type of uplink resource.
- the sending unit 401 is further configured to: send a DCI or a RAR to the terminal, where the DCI or RAR includes second indication information for indicating, by the terminal, an uplink resource used for sending uplink data.
- the second indication information includes subcarrier information or subchannel information when the terminal sends the uplink data to use the first type of uplink resource or uses the second type of uplink resource.
- the subcarrier information includes at least one of the following information: a number of subcarriers, an index of a subcarrier, and information indicating a location or an index of the subcarrier on the frequency domain;
- the subchannel information includes at least one of the following information: the number of subchannels, an index of the subchannel, and information indicating a position or an index of the subchannel on the frequency domain.
- the receiving unit 401 is further configured to: receive uplink data sent by the terminal supporting the first type of terminal capability on the first type of uplink resource, on the first type of uplink resource; or
- the receiving unit 402 is further configured to:
- the timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or RAR and uplink data scheduled by the scheduling information.
- the sending unit 401 is further configured to: after receiving the uplink data scheduled by the scheduling information sent by the terminal, on the first type of uplink resource, according to the second timing corresponding to the first type of uplink resource a relationship, the acknowledgment feedback information is sent to the terminal on the first type of downlink resource, where the second timing relationship corresponding to the first type of uplink resource is used to indicate uplink data sent by the terminal and the The timing relationship between the response feedback information corresponding to the uplink data.
- the receiving unit 401 is further configured to:
- the first timing relationship is used to indicate a timing relationship between scheduling information included in the DCI or the RAR and uplink data scheduled by the scheduling information.
- the sending unit 402 is further configured to: after receiving the uplink data scheduled by the scheduling information sent by the terminal on the second type of uplink resource, according to the second timing corresponding to the second type uplink resource a relationship, the acknowledgment feedback information is sent to the terminal on the second type of downlink resource, where the second timing relationship corresponding to the second type of uplink resource is used to indicate the uplink data sent by the terminal and the The timing relationship between the response feedback information corresponding to the uplink data.
- sending unit 402 is further configured to:
- the DCI or the RAR is sent on the first type of downlink resource, where the DCI or RAR further includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR is sent on the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the terminal When the terminal supports the first type of terminal capability and the second type of terminal capability or the terminal supports the first type of terminal capability and the third type of terminal capability, the first type of downlink resources and/or the first The DCI or the RAR is sent on the second type of downlink resource, where the DCI or RAR includes scheduling information for scheduling the terminal to send uplink data.
- the DCI or RAR when the DCI or RAR includes the second indication information, and the terminal supports the first type terminal capability and the second type terminal capability or the terminal branch
- the DCI or the RAR when the first type of terminal capability and the third type of uplink capability are used, the DCI or the RAR further includes an uplink resource that is used by the terminal to send uplink data to be used as the first type of uplink resource or the second type of uplink resource.
- the third indication information indicates subcarrier information or subchannel information when the terminal sends uplink data using the first type of uplink resource
- the DCI is the second In the DCI format
- the third indication information indicates subcarrier information or subchannel information when the terminal sends uplink data using the second type of uplink resource
- the third indication information indicates the subcarrier information or the subchannel when the terminal sends the uplink data using the first type of uplink resource.
- the information indicates that if the CRC in the DCI is scrambled by the second scrambling code, the third indication information indicates subcarrier information or subchannel information when the terminal sends the uplink data using the second type of uplink resource.
- the receiving unit 401 is further configured to receive random access information that is sent by the terminal on the physical random access channel PRACH, and the bandwidth occupied by each of the PRACH channels in the frequency domain is 3.75 kHz or 15 kHz or greater than 15 kHz and less than or equal to At 180 kHz, the random access information is a random preamble or an orthogonal sequence code or a modulation symbol.
- the sending unit 401 is further configured to: send system information to the terminal, where the system information includes configuration information of the PRACH channel, and configuration information of the PRACH channel includes information of a first type of PRACH channel and/or a second type of PRACH Channel information;
- Each of the first type of PRACH channels occupies a bandwidth of 3.75 kHz or 15 kHz in the frequency domain, and the information of the first type of PRACH channel includes at least one of: the number of the first type of PRACH channels in the frequency domain, Index or location information of the first type of PRACH channel on the frequency domain;
- Each of the second type of PRACH channels occupies a bandwidth greater than 15 kHz and less than or equal to 180 kHz in the frequency domain, and the information of the second type of PRACH channel includes at least one of: the second type of PRACH channels on the frequency domain The number, index or location information of the second type of PRACH channel on the frequency domain.
- the receiving unit 402 is specifically configured to:
- the receiving unit 402 is further configured to:
- the random access information sent by the terminal is received on the second type of PRACH channel.
- the sending unit 401 is further configured to: send, according to the timing relationship corresponding to the first type of PRACH channel, the RAR to the terminal on a downlink resource corresponding to the first type of PRACH channel, where the first type of PRACH channel corresponds to
- the timing relationship is used to indicate a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- the sending unit 401 is further configured to: send, according to the timing relationship corresponding to the second type of PRACH channel, the RAR to the terminal on a downlink resource corresponding to the second type of PRACH channel, where the The timing relationship corresponding to the second type of PRACH channel is used to indicate a timing relationship between the sending of the random access information by the terminal and the sending of the RAR by the base station.
- the base station sends system information, where the system information includes first indication information, which is used to indicate that the terminal sends uplink data or uplink control information, and the first indication information includes The information indicating that the uplink resource is the first type of uplink resource or the second type of uplink resource, and information for indicating the first type of uplink resource or the second type of uplink resource in the time domain and/or the frequency domain; Acquiring the first indication information of the uplink resource used for sending the uplink data or the uplink control information, and transmitting and receiving the uplink and downlink data on the corresponding uplink and downlink resources based on the first indication information, so that, on the basis of the existing LTE system,
- the base station can enable uplink and downlink data transmission with terminals supporting any one, two or three types of terminal capabilities, second terminal capabilities, and third terminal capabilities, thereby improving utilization of the LTE system and the base station. rate.
- FIG. 15 is a schematic structural diagram of a terminal according to the present invention. As shown in FIG. The processor 51, the memory 52, the system bus 53, and the communication interface 54 are included.
- FIG. 15 is merely illustrative and does not limit the structure of the terminal.
- the terminal may also include more or less components than those shown in FIG. 15, or have a different configuration than that shown in FIG.
- the memory 52 is configured to store computer execution instructions
- the processor 51 is coupled to the memory 52 via the system bus 53, and when the terminal is running, the processor 51 executes the memory stored in the memory 52
- the computer executes instructions to cause the terminal to perform the steps of the terminal in the method flow shown in any of the above-described FIGS. 2, 3, 4, 5, 6, and 10.
- FIGS. 2, 3, 4, 5, 6, and 10 For a specific method, refer to the related description in the embodiment shown in any one of FIG. 2, FIG. 3, FIG. 4, FIG. 5, FIG. 6, and FIG. 10, and details are not described herein again.
- the embodiment further provides a storage medium, which may include the memory 52.
- the processor 51 can be a central processing unit (English: central processing unit, abbreviation: CPU).
- the processor 51 can also be other general-purpose processors, digital signal processing (DSP), application specific integrated circuit (ASIC), field programmable gate array (English) : field-programmable gate array (FPGA) or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc.
- DSP digital signal processing
- ASIC application specific integrated circuit
- FPGA field-programmable gate array
- the general purpose processor may be a microprocessor or the processor or any conventional processor or the like.
- the processor 51 may be a dedicated processor, and the dedicated processor may include at least one of a baseband processing chip, a radio frequency processing chip, and the like. Further, the dedicated processor may also include a chip having other dedicated processing functions of the terminal.
- the memory 52 may include a volatile memory (English: volatile memory), such as random-access memory (abbreviation: RAM); the memory 52 may also include a non-volatile memory (English: Non-volatile memory, such as read-only memory (English: read-only memory, abbreviation: ROM), flash memory (English: flash memory), hard disk (English: hard disk drive, abbreviation: HDD) or solid state drive (English) : solid-state drive, abbreviated: SSD); the memory 52 may also include a combination of the above types of memory.
- ROM read-only memory
- flash memory English: flash memory
- HDD hard disk drive
- SSD solid state drive
- the system bus 53 can include a data bus, a power bus, a control bus, and a signal State bus, etc. For the sake of clarity in the present embodiment, various buses are illustrated as the system bus 53 in FIG.
- the communication interface 54 may specifically be a transceiver on the terminal.
- the transceiver can be a wireless transceiver.
- the wireless transceiver can be an antenna of the terminal or the like.
- the processor 51 transmits and receives data to and from other devices, such as a base station, through the communication interface 54.
- each step of the terminal in the method flow shown in any one of the foregoing FIG. 2, FIG. 3, FIG. 4, FIG. 5, FIG. 6, and FIG. 10 may execute the memory by the processor 51 in the hardware form.
- the computer-executed instructions in software form stored in 52 are implemented. To avoid repetition, we will not repeat them here.
- the terminal obtains the first indication information of the uplink resource used for sending the uplink data or the uplink control information, where the first indication information is used to indicate that the uplink resource is the first type of uplink resource or the second type of uplink.
- Receiving uplink and downlink data so that the base station can be connected to any one of the first type of terminal capability, the second type of terminal capability, and the third type of terminal capability, or two or three types of terminals, based on the existing LTE system.
- the uplink and downlink data are transmitted, thereby improving the utilization of the LTE system and the base station.
- FIG. 16 is a schematic structural diagram of a base station according to an embodiment of the present invention.
- the base station includes: a processor 61, a memory 62, a system bus 63, and a communication interface 64.
- FIG. 16 is merely illustrative, and does not limit the structure of the base station.
- the base station may also include more or fewer components than those shown in FIG. 16, or have a different configuration than that shown in FIG.
- the memory 62 is configured to store computer execution instructions
- the processor 62 is coupled to the memory 62 via the system bus 63, and when the base station is running, the processor 61 executes the memory stored by the memory 62
- the computer executes instructions to cause the base station to perform the steps of the base station in the method illustrated in Figures 2, 3, 4, 5, 6, and 10 above.
- Figures 2, 3, 4, 5, 6, and 10 For a specific method, refer to the related description in the embodiment shown in any one of FIG. 2, FIG. 3, FIG. 4, FIG. 5, FIG. 6, and FIG. 10, and details are not described herein again.
- the embodiment further provides a storage medium, which may include the memory 62.
- the processor 61 can be a CPU.
- the processor 61 can also be other general purpose processors, DSPs, ASICs, FPGAs or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
- the general purpose processor may be a microprocessor or the processor or any conventional processor or the like.
- the processor 61 may be a dedicated processor, and the dedicated processor may include at least one of a baseband processing chip, a radio frequency processing chip, and the like. Further, the dedicated processor may also include a chip having other dedicated processing functions of the base station.
- the memory 62 can include volatile memory, such as random access memory RAM; the memory 62 can also include non-volatile memory, such as read only memory ROM, flash memory, HDD or SSD; A combination of memories of the above kind may be included.
- volatile memory such as random access memory RAM
- non-volatile memory such as read only memory ROM, flash memory, HDD or SSD
- the system bus 63 can include a data bus, a power bus, a control bus, a signal status bus, and the like. For the sake of clarity in the present embodiment, various buses are illustrated as the system bus 63 in FIG.
- the communication interface 64 may specifically be a transceiver on a base station.
- the transceiver can be a wireless transceiver.
- the wireless transceiver can be an antenna of a base station or the like.
- the processor 61 performs data transmission and reception with the other device, such as the terminal, through the communication interface 66.
- each step of the base station in the method flow shown in any one of the foregoing FIG. 2, FIG. 3, FIG. 4, FIG. 5, FIG. 6, and FIG. 10 may execute the memory by the processor 61 in hardware form.
- the computer-executed instructions in software form stored in 62 are implemented. To avoid repetition, we will not repeat them here.
- the base station sends system information, where the system information includes first indication information, which is used to indicate that the terminal sends uplink data or uplink control information, and the first indication information includes The information indicating that the uplink resource is the first type of uplink resource or the second type of uplink resource, and information for indicating the first type of uplink resource or the second type of uplink resource in the time domain and/or the frequency domain; Acquiring the first indication information of the uplink resource used for sending the uplink data or the uplink control information, and transmitting and receiving the uplink and downlink data on the corresponding uplink and downlink resources based on the first indication information, so that, on the basis of the existing LTE system,
- the base station can enable uplink and downlink data transmission with terminals supporting any one, two or three types of terminal capabilities, second terminal capabilities, and third terminal capabilities. The utilization rate of the LTE system and the base station is improved.
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Abstract
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Claims (39)
- 一种数据传输方法,其特征在于,所述方法包括:终端获取发送上行数据或上行控制信息使用的上行资源的第一指示信息;其中,所述上行资源的第一指示信息包括用于指示所述上行资源是第一类上行资源或第二类上行资源的信息,所述第一类上行资源频率上包含至少1个子载波,在所述子载波的数量大于等于2时,子载波之间相互正交且子载波间隔为3.75kHz,时域上包含至少1个所述SC-FDMA符号;或者,所述第一类上行资源频率上包含至少1个子信道,每个子信道的宽度为3.75kHz,时域上包含至少1个频分多址FDMA符号;所述第二类上行资源频率上包含至少1个子载波,在所述子载波的数量大于等于2时,子载波之间相互正交且子载波的间隔为15kHz;时域上包含至少1个单载波频分多址SC-FDMA符号;所述上行资源的第一指示信息还包括用于指示所述第一类上行资源或所述第二类上行资源在时间域和/或频率域上的信息。
- 根据权利要求1所述的方法,其特征在于,所述终端获取发送上行数据或上行控制信息使用的上行资源的第一指示信息,具体为:所述终端接收基站发送的系统信息,所述系统信息包含所述第一类上行资源在时间域和/或频率域上的信息,和/或所述第二类上行资源在时间域和/或频率域上的信息。
- 根据权利要求1或2所述的方法,其特征在于,若所述终端支持第一类终端能力,则所述第一指示信息用于指示所述上行资源是第一类上行资源;若所述终端支持第二类终端能力或者第三类终端能力,则所述第一指示信息用于指示所述上行资源是第二类上行资源;若所述终端支持第一类终端能力和第二类终端能力,或者所述终端支持第一类终端能力和第三类终端能力,则所述第一指示信息用于指示所述上行资源是第一类上行资源或第二类上行资源。
- 根据权利要求1-3任一项所述的方法,其特征在于,所述终端在获取第一指示信息之后,所述方法还包括:若所述终端支持第一类终端能力,则所述终端在所述第一类上行资源上发送上行数据或上行控制信息;若所述终端支持第二类终端能力或者第三类终端能力,则所述终端在所述第二类上行资源上发送上行数据或上行控制信息;若所述终端支持第一类终端能力和第二类终端能力,或者所述终端支持第一类终端能力和第三类终端能力,则所述终端在所述第一类上行资源上或所述第二类上行资源上发送上行数据或上行控制信息。
- 根据权利要求1-4任一项所述的方法,其特征在于,所述方法还包括:所述终端获取发送上行数据使用的上行资源的第二指示信息;其中,所述第二指示信息包括用于指示所述终端发送上行数据使用第一类上行资源或者使用第二类上行资源时的子载波信息或子信道信息;所述子载波信息包含以下信息中至少一个:子载波的数量、子载波的索引、指示子载波在频率域上的位置或索引的信息;所述子信道信息包含以下信息中至少一个:子信道的数量、子信道的索引、指示子信道在频率域上的位置或索引的信息。
- 根据权利要求5所述的方法,其特征在于,所述终端获取发送上行数据使用的上行资源的第二指示信息,具体为:所述终端接收基站发送的下行控制信息DCI或随机接入响应RAR,所述DCI或RAR包括所述第二指示信息。
- 根据权利要求6所述的方法,其特征在于,在所述DCI或RAR还包含调度所述终端发送上行数据的调度信息时,在所述终端接收基站发送的DCI或RAR之后,所述方法还包括:若所述终端支持第一类终端能力,则所述终端在所述第一类上行资源上发送上行数据;若所述终端支持第二类终端能力或者第三类终端能力,则所述终端在所述第二类上行资源上发送上行数据;若所述终端支持第一类终端能力和第二类终端能力,或者所述终端支持第一类终端能力和第三类终端能力,则所述终端在所述第一类上行资源上或所述第二类上行资源上发送上行数据。
- 根据权利要求7所述的方法,其特征在于,所述终端在所述第一类上行资源上发送上行数据,具体为:所述终端根据所述第一类上行资源对应的第一定时关系,在所述第一类上行资源上发送所述调度信息调度的上行数据,所述第一类上行资源对应的第一定时关系用于指示所述DCI或者RAR中包含的调度信息与所述调度信息调度的上行数据之间的定时关系。
- 根据权利要求8所述的方法,其特征在于,所述方法还包括:在所述终端发送所述调度信息调度的上行数据之后,所述终端按照所述第一类上行资源对应的第二定时关系,在所述第一类下行资源上接收基站发送的应答反馈信息,所述第一类上行资源对应的所述第二定时关系用于指示所述终端发送的上行数据与所述上行数据对应的应答反馈信息之间的定时关系。
- 根据权利要求7所述的方法,其特征在于,所述终端在所述第二类上行资源上发送上行数据,具体为:所述终端根据所述第二类上行资源对应的第一定时关系,在所述第二类上行资源上发送所述调度信息调度的上行数据,所述第二类上行资源对应的所述第一定时关系用于指示DCI或者RAR中包含的调度信息与所述调度信息调度的上行数据之间的定时关系。
- 根据权利要求10所述的方法,其特征在于,所述方法还包括:在所述终端发送所述调度信息调度的上行数据之后,所述终端按照所述第二类上行资源对应的第二定时关系,在所述第二类下行资源上接收基站发送的应答反馈信息,所述第二类上行资源对应的所述第二定时关系用于指示所述终端发送的上行数据与所述上行数据对应的应答反馈信息之间的定时关系。
- 根据权利要求6-11任一项所述的方法,其特征在于,当所述终端支持第一类终端能力时,所述终端接收基站发送的DCI或RAR,具体为:所述终端在第一类下行资源上检测所述DCI或RAR,其中,所述DCI或RAR还包含调度所述终端发送上行数据的调度信息;当所述终端支持第二类终端能力和第三类终端能力时,所述终端接收基站发送的DCI或RAR,具体为:所述终端在第二类下行资源上检测所述 DCI或RAR,其中,所述DCI或RAR包含调度所述终端发送上行数据的调度信息;当所述终端支持第一类终端能力和第二类终端能力或当所述终端支持第一类终端能力和第三类终端能力,所述终端接收基站发送的DCI或RAR,具体为:所述终端在所述第一类下行资源和/或所述第二类下行资源上检测所述DCI或RAR,其中,所述DCI或RAR包含调度所述终端发送上行数据的调度信息。
- 根据权利要求6-12任一项所述的方法,其特征在于,当所述终端支持所述第一类终端能力和第二类终端能力或所述终端支持所述第一类终端能力和第三类终端能力时,所述DCI或RAR还包括用于指示所述终端发送上行数据使用的上行资源是第一类上行资源或者第二类上行资源的第三指示信息。
- 根据权利要求13所述的方法,其特征在于,若接收的所述DCI为第一DCI格式,则所述第三指示信息指示所述终端发送上行数据使用第一类上行资源时的子载波信息或子信道信息,若接收的所述DCI为第二DCI格式,则所述第三指示信息指示所述终端发送上行数据使用第二类上行资源时的子载波信息或子信道信息;或者,若所述DCI中的循环冗余校验CRC通过第一加扰码进行加扰,则所述第三指示信息指示所述终端发送上行数据使用第一类上行资源时的子载波信息或子信道信息,若所述DCI中的CRC通过第二加扰码进行加扰,则所述第三指示信息指示所述终端发送上行数据使用第二类上行资源时的子载波信息或子信道信息。
- 根据权利要求5-14任一项所述的方法,其特征在于,在所述终端接收基站发送的DCI或RAR之前,所述方法还包括:所述终端在物理随机接入信道PRACH上发送随机接入信息,每个所述PRACH信道在频率域上占用的带宽为3.75kHz或15kHz或大于15kHz且小于等于180kHz,所述随机接入信息为随机前导码或正交序列码或调制符号。
- 根据权利要求15所述的方法,其特征在于,所述终端在PRACH上发送随机接入信息之前,所述方法还包括:所述终端接收基站发送的系统信息,所述系统信息包含所述PRACH信道的配置信息,所述PRACH信道的配置信息包括第一类PRACH信道的信息和/或第二类PRACH信道的信息;每个所述第一类PRACH信道在频率域上占用的带宽为3.75kHz或15kHz,所述第一类PRACH信道的信息包括以下至少一个:在频率域上所述第一类PRACH信道的数量、所述第一类PRACH信道在频率域上的索引或位置信息;每个所述第二类PRACH信道在频率域上占用的带宽为大于15kHz且小于等于180kHz,所述第二类PRACH信道的信息包括以下至少一个:在频率域上所述第二类PRACH信道的数量、所述第二类PRACH信道在频率域上的索引或位置信息。
- 根据权利要求15或16所述的方法,其特征在于,所述终端在每个随机接入信息发送机会上在随机选择的一个所述PRACH信道上向所述基站发送随机选择的一个随机前导码或正交序列码;或者所述终端分n次向所述基站发送随机前导码或正交序列码,所述终端在每个随机接入信息发送机会上占用一个所述PRACH信道发送所述随机前导码或正交序列码的其中的一段,其中,所述n为大于等于1的整数。
- 根据权利要求15或16所述的方法,其特征在于,当所述终端支持第一类终端能力和/或第二类终端能力时,所述终端在所述第一类PRACH信道上向所述基站发送所述随机接入信息;当所述终端支持第一类终端能力和/或第三类终端能力时,所述终端在所述第二类PRACH信道上向所述基站发送所述随机接入信息。
- 根据权利要求18所述的方法,其特征在于,当所述终端支持第一类终端能力和/或第二类终端能力时,在所述终端在所述第一类PRACH信道上向所述基站发送所述随机接入信息之后,所述方法还包括:所述终端根据所述第一类PRACH信道对应的定时关系,在所述第一类PRACH信道对应的下行资源上接收所述基站发送的所述RAR,所述第一类PRACH信道对应的定时关系用于指示所述终端发送所述随机接入信 息与所述基站发送所述RAR之间的定时关系。
- 根据权利要求18所述的方法,其特征在于,当所述终端支持第一类终端能力和/或第三类终端能力时,在所述终端在所述第二类PRACH信道上向所述基站发送所述随机接入信息之后,所述方法还包括:所述终端根据所述第二类PRACH信道对应的定时关系,在所述第二类PRACH信道对应的下行资源上接收所述基站发送的所述RAR,所述第二类PRACH信道对应的定时关系用于指示所述终端发送所述随机接入信息与所述基站发送所述RAR之间的定时关系。
- 一种数据传输方法,其特征在于,所述方法包括:基站向终端发送系统信息,所述系统信息包括用于指示所述终端发送上行数据或上行控制信息使用的上行资源的第一指示信息;其中,所述上行资源的第一指示信息包括用于指示所述上行资源是第一类上行资源或第二类上行资源的信息,所述第一类上行资源频率上包含至少1个子载波,在所述子载波的数量大于等于2时,子载波之间相互正交且子载波间隔为3.75kHz,时域上包含至少1个单载波频分多址SC-FDMA符号;或者,所述第一类上行资源频率上包含至少1个子信道,每个子信道的宽度为3.75kHz,时域上包含至少1个频分多址FDMA符号;所述第二类上行资源频率上包含至少1个子载波,在所述子载波的数量大于等于2时,子载波之间相互正交且子载波的间隔为15kHz;时域上包含至少1个所述SC-FDMA符号;所述上行资源的第一指示信息还包括用于指示所述第一类上行资源或所述第二类上行资源在时间域和/或频率域上的信息。
- 根据权利要求21所述的方法,其特征在于,若所述终端支持第一类终端能力,则所述第一指示信息用于指示所述上行资源是第一类上行资源;若所述终端支持第二类终端能力或者第三类终端能力,则所述第一指示信息用于指示所述上行资源是第二类上行资源;若所述终端支持第一类终端能力和第二类终端能力,或者所述终端支持第一类终端能力和第三类终端能力,则所述第一指示信息用于指示所述 上行资源是第一类上行资源或第二类上行资源。
- 根据权利要求21或22所述的方法,其特征在于,所述方法还包括:基站向终端发送下行控制信息DCI或随机接入响应RAR,所述DCI或RAR包含用于指示终端发送上行数据使用的上行资源的第二指示信息;其中,所述第二指示信息包括用于指示所述终端发送上行数据使用第一类上行资源或者使用第二类上行资源时的子载波信息或子信道信息;所述子载波信息包含以下信息中至少一个:子载波的数量、子载波的索引、指示子载波在频率域上的位置或索引的信息;所述子信道信息包含以下信息中至少一个:子信道的数量、子信道的索引、指示子信道在频率域上的位置或索引的信息。
- 根据权利要求23所述的方法,其特征在于,所述DCI或RAR还包含调度所述终端发送上行数据的调度信息,在所述基站向终端发送DCI或RAR之后,所述方法还包括:在所述第一类上行资源上接收支持第一类终端能力的终端在所述第一类上行资源上发送的上行数据;或者,在所述第二类上行资源上接收支持第二类终端能力或者第三类终端能力的终端在所述第二类上行资源上发送的上行数据;或者,在所述第一类上行资源上接收支持第一类终端能力和第二类终端能力的终端在所述第一类上行资源上发送的上行数据;或者在所述第二类上行资源上接收支持第一类终端能力和第二类终端能力的终端在所述第二类上行资源上发送的上行数据。
- 根据权利要求24所述的方法,其特征在于,所述基站在所述第一类上行资源上接收终端在第一类上行资源上发送的上行数据,具体为:所述基站根据所述第一类上行资源对应的第一定时关系,在所述第一类上行资源上接收所述终端发送的所述调度信息调度的上行数据,所述第一类上行资源对应的第一定时关系用于指示所述DCI或者RAR中包含的调度信息与所述调度信息调度的上行数据之间的定时关系。
- 根据权利要求25所述的方法,其特征在于,所述方法还包括:在所述第一类上行资源上接收所述终端发送的所述调度信息调度的上行数据之后,所述基站按照所述第一类上行资源对应的第二定时关系,在所述第一类下行资源上向所述终端发送应答反馈信息,其中,所述第一类上行资源对应的所述第二定时关系用于指示所述终端发送的上行数据与所述上行数据对应的应答反馈信息之间的定时关系。
- 根据权利要求24所述的方法,其特征在于,所述基站在所述第二类上行资源上接收终端在第二类上行资源上发送的上行数据,具体为:所述基站根据所述第二类上行资源对应的第一定时关系,在所述第二类上行资源上接收所述终端发送的所述调度信息调度的上行数据,其中,所述第二类上行资源对应的所述第一定时关系用于指示DCI或者RAR中包含的调度信息与所述调度信息调度的上行数据之间的定时关系。
- 根据权利要求27所述的方法,其特征在于,所述方法还包括:在所述第二类上行资源上接收所述终端发送的所述调度信息调度的上行数据之后,所述基站按照所述第二类上行资源对应的第二定时关系,在所述第二类下行资源上向所述终端发送应答反馈信息,其中,所述第二类上行资源对应的所述第二定时关系用于指示所述终端发送的上行数据与所述上行数据对应的应答反馈信息之间的定时关系。
- 根据权利要求23-28任一项所述的方法,其特征在于,当所述终端支持第一类终端能力时,所述基站向终端发送DCI或RAR,具体为:所述基站在第一类下行资源上发送所述DCI或RAR,其中,所述DCI或RAR还包含调度所述终端发送上行数据的调度信息;当所述终端支持第二类终端能力和第三类终端能力时,所述基站向终端发送DCI或RAR,具体为:所述基站在第二类下行资源上发送所述DCI或RAR,其中,所述DCI或RAR包含调度所述终端发送上行数据的调度信息;当所述终端支持第一类终端能力和第二类终端能力或所述终端支持所述第一类终端能力和第三类终端能力时,所述基站向终端发送DCI或RAR,具体为:所述基站在所述第一类下行资源和/或所述第二类下行资源上发送所述DCI或RAR,其中,所述DCI或RAR包含调度所述终端发送上行数 据的调度信息。
- 根据权利要求22-29任一项所述的方法,其特征在于,当所述DCI或RAR包含所述第二指示信息,且所述终端支持所述第一类终端能力和第二类终端能力或所述终端支持所述第一类终端能力和第三类终端能力时,所述DCI或RAR还包括用于指示所述终端发送上行数据使用的上行资源是第一类上行资源或者第二类上行资源的第三指示信息。
- 根据权利要求30所述的方法,其特征在于,若所述DCI为第一DCI格式,则所述第三指示信息指示所述终端发送上行数据使用第一类上行资源时的子载波信息或子信道信息,若所述DCI为第二DCI格式,则所述第三指示信息指示所述终端发送上行数据使用第二类上行资源时的子载波信息或子信道信息;或者,若所述DCI中的循环冗余校验CRC通过第一加扰码进行加扰,则所述第三指示信息指示所述终端发送上行数据使用第一类上行资源时的子载波信息或子信道信息,若所述DCI中的CRC通过第二加扰码进行加扰,则所述第三指示信息指示所述终端发送上行数据使用第二类上行资源时的子载波信息或子信道信息。
- 根据权利要求22-31任一项所述的方法,其特征在于,在所述基站向终端发送DCI或RAR之前,所述方法还包括:所述基站接收所述终端在物理随机接入信道PRACH上发送的随机接入信息,每个所述PRACH信道在频率域上占用的带宽为3.75kHz或15kHz或大于15kHz且小于等于180kHz,所述随机接入信息为随机前导码或正交序列码或调制符号。
- 根据权利要求32所述的方法,其特征在于,所述基站接收所述终端在PRACH上发送的随机接入信息之前,所述方法还包括:所述基站向所述终端发送系统信息,所述系统信息包含所述PRACH信道的配置信息,所述PRACH信道的配置信息包括第一类PRACH信道的信息和/或第二类PRACH信道的信息;每个所述第一类PRACH信道在频率域上占用的带宽为3.75kHz或15kHz,所述第一类PRACH信道的信息包括以下至少一个:在频率域上所述第一类PRACH信道的数量、所述第一类PRACH信道在频率域上的索引 或位置信息;每个所述第二类PRACH信道在频率域上占用的带宽为大于15kHz且小于等于180kHz,所述第二类PRACH信道的信息包括以下至少一个:在频率域上所述第二类PRACH信道的数量、所述第二类PRACH信道在频率域上的索引或位置信息。
- 根据权利要求32或33所述的方法,其特征在于,所述基站接收所述终端在PRACH上发送的随机接入信息,具体为:所述基站接收所述终端在每个随机接入信息发送机会上在随机选择的一个所述PRACH信道上发送的随机选择的一个随机前导码或正交序列码;或者,所述基站接收所述终端分n次发送的随机前导码或正交序列码,所述终端在每个随机接入信息发送机会上占用一个所述PRACH信道发送所述随机前导码或正交序列码的其中的一段,其中,所述n为大于等于1的整数。
- 根据权利要求32或33所述的方法,其特征在于,当所述终端支持第一类终端能力和/或第二类终端能力时,在所述第一类PRACH信道上接收所述终端发送的所述随机接入信息;当所述终端支持第三类终端能力时,在所述第二类PRACH信道上接收所述终端发送的所述随机接入信息。
- 根据权利要求35所述的方法,其特征在于,当所述终端支持第一类终端能力和/或第二类终端能力时,在所述第一类PRACH信道上接收所述终端发送的所述随机接入信息之后,所述方法还包括:所述基站根据所述第一类PRACH信道对应的定时关系,在所述第一类PRACH信道对应的下行资源上向所述终端发送所述RAR,所述第一类PRACH信道对应的定时关系用于指示所述终端发送所述随机接入信息与所述基站发送所述RAR之间的定时关系。
- 根据权利要求35所述的方法,其特征在于,当所述终端支持第三类终端能力时,在所述第二类PRACH信道上接收所述终端发送的所述随机接入信息 之后,所述方法还包括:所述基站根据所述第二类PRACH信道对应的定时关系,在所述第二类PRACH信道对应的下行资源上向所述终端发送所述RAR,所述第二类PRACH信道对应的定时关系用于指示所述终端发送所述随机接入信息与所述基站发送所述RAR之间的定时关系。
- 一种终端,其特征在于,所述终端包括:处理器、存储器、系统总线和通信接口;所述存储器用于存储计算机执行指令,所述处理器与所述存储器通过所述系统总线连接,当所述基站运行时,所述处理器执行所述存储器存储的所述计算机执行指令,以使所述终端执行如权利要求1-20任一项所述的数据传输方法。
- 一种基站,其特征在于,所述基站包括:处理器、存储器、系统总线和通信接口;所述存储器用于存储计算机执行指令,所述处理器与所述存储器通过所述系统总线连接,当所述基站运行时,所述处理器执行所述存储器存储的所述计算机执行指令,以使所述基站执行如权利要求21-37任一项所述的数据传输方法。
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