WO2020134910A1 - 一种被用于无线通信的用户设备、基站中的方法和装置 - Google Patents
一种被用于无线通信的用户设备、基站中的方法和装置 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/50—Allocation or scheduling criteria for wireless resources
- H04W72/53—Allocation or scheduling criteria for wireless resources based on regulatory allocation policies
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/0001—Arrangements for dividing the transmission path
- H04L5/0003—Two-dimensional division
- H04L5/0005—Time-frequency
- H04L5/0007—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
- H04L5/001—Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT the frequencies being arranged in component carriers
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0044—Allocation of payload; Allocation of data channels, e.g. PDSCH or PUSCH
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
- H04L5/0051—Allocation of pilot signals, i.e. of signals known to the receiver of dedicated pilots, i.e. pilots destined for a single user or terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W16/00—Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
- H04W16/14—Spectrum sharing arrangements between different networks
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/14—Separate analysis of uplink or downlink
- H04W52/146—Uplink power control
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/04—Transmission power control [TPC]
- H04W52/06—TPC algorithms
- H04W52/16—Deriving transmission power values from another channel
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0473—Wireless resource allocation based on the type of the allocated resource the resource being transmission power
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L27/00—Modulated-carrier systems
- H04L27/26—Systems using multi-frequency codes
- H04L27/2601—Multicarrier modulation systems
- H04L27/2602—Signal structure
- H04L27/26025—Numerology, i.e. varying one or more of symbol duration, subcarrier spacing, Fourier transform size, sampling rate or down-clocking
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0453—Resources in frequency domain, e.g. a carrier in FDMA
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W74/00—Wireless channel access
- H04W74/08—Non-scheduled access, e.g. ALOHA
- H04W74/0808—Non-scheduled access, e.g. ALOHA using carrier sensing, e.g. carrier sense multiple access [CSMA]
Definitions
- This application relates to a transmission method and device in a wireless communication system, and in particular to a communication method and device that supports data transmission on an unlicensed spectrum (Unlicensed Spectrum).
- Unlicensed Spectrum an unlicensed spectrum
- LTE Long-term Evolution
- LBT Long Before Talk
- LAA Licensed Assisted Access
- 5G NR New Radio Access Technology Phase 1 (Phase 1) system can support UE (User Equipment) with different receiving bandwidth and transmitting bandwidth capability.
- UE User Equipment
- the UE can perform downlink reception or uplink transmission on a CC (Component Carrier) or BWP (Bandwidth Part, frequency band part) with a large bandwidth.
- CC Component Carrier
- BWP Bandwidth Part, frequency band part
- the inventor discovered through research that in uplink transmission on the unlicensed spectrum of the NR system, how to improve channel access opportunities and more effectively realize the sharing of unlicensed spectrum resources by multiple sending nodes is a key problem to be solved.
- the present application discloses a method for user equipment for wireless communication, which is characterized by comprising:
- the first information is used to indicate M frequency domain resource blocks in N sub-bands;
- the channel access detection is used to determine that N 1 of the N sub-bands are idle;
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resource blocks at least one of a frequency domain resource block; one of the M frequency domain resource block is a resource of the M frequency-domain blocks belonging to the M 1 N subbands in a frequency domain resource block; the N sub-bands Any two sub-bands in are orthogonal, any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine the first The transmission power of the wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1 and the M is greater than 1 positive integer, the N. 1 is a positive integer not greater than said N, said M 1 is not greater than the M is a positive integer.
- the problem to be solved in this application is: when the bandwidth of one CC (or BWP) in the NR system is large, if the broadband LBT of the LTE system is adopted, that is, the bandwidth of the LBT and the bandwidth of the CC (or BWP) Same, then the larger LBT bandwidth will lead to lower channel access opportunities.
- narrow-band LBT that is, the bandwidth is less than CC (or BWP ), or the bandwidth of the LBT can be smaller than the transmission bandwidth of the wireless signal
- the uplink transmission in the case of narrow-band LBT is a key problem that needs to be solved.
- narrow-band LBT that is, the bandwidth is less than CC (or BWP), or the LBT bandwidth may be less than the transmission bandwidth of the wireless signal
- narrow-band LBT can improve channel access opportunities.
- the UE may only allow uplink transmissions to be sent on partially scheduled narrowbands via narrowband LBT, while those that fail to pass LBT On the scheduled narrowband, the UE cannot send uplink transmission.
- the base station may not be able to accurately determine whether the transmission failure on these narrowbands is caused by poor channel conditions or due to the failure of the UE to send a wireless signal.
- the essence of the above method is that the N subbands are N narrowbands (BWP (or subbands)) in a CC (or BWP), respectively, and the user equipment performs narrowband LBT on the N narrowbands to determine N Only N 1 of the narrowband channels are idle; the user equipment sends an upstream wireless signal on only N 1 of the N narrowbands.
- the transmission power of the upstream wireless signal is related to the frequency domain resources occupied by the actual transmission. It is not related to the frequency domain resources being scheduled.
- narrowband LBT effectively improves channel access opportunities; because retransmission may only need to target wireless signals on narrowbands that do not pass LBT, narrowband LBT also improves upstream transmission efficiency;
- the transmission power of the uplink wireless signal in the proposed method is related to the frequency domain resources occupied by the actual transmission, considering the uncertainty of the base station's reasons for the transmission failure on some narrowbands, thus ensuring that the base station can continue to accurately uplink in the future Power Control.
- the above method is characterized by comprising:
- the second wireless signal is used to carry a second power value; the first power value and the N 1 are used together to determine the second power value, or the first power value and all The M 1 is commonly used to determine the second power value.
- a problem to be solved by the present application is that: in the existing LTE system, PHR (Power Headroom Report) is used by the base station to obtain the difference between the maximum transmission power of the UE and the actual transmission power.
- PHR Power Headroom Report
- the transmission power of the uplink wireless signal is related to the frequency domain resources occupied by the actual transmission. Due to the uncertainty of the base station for the transmission failure on some narrowbands, the calculation method of PHR needs to take into account that the narrowband LBT fails The result is that the uplink wireless signal cannot be sent on some narrowbands.
- the essence of the above method is that the second power value is PHR, and the first power value is actual transmission power.
- the second power value is PHR
- the first power value is actual transmission power.
- part of the scheduled narrowband may not be able to send uplink wireless signals because LBT fails.
- the power reserved for these narrowbands needs to be compensated in the calculation of PHR, or the calculation of PHR should be the transmission power on the scheduled resources rather than the actual transmission power.
- the advantage of using the above method is that the proposed PHR calculation method takes into account the uncertainty of the base station on the cause of transmission failure on some narrowbands, and ensures that the base station can continue to accurately perform uplink power control in the future.
- the above method is characterized in that the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component; or, the M 1 And the M are used to determine the first component; or, the subcarrier spacing of the subcarriers occupied by the M 1 and the first wireless signal is used to determine the first component.
- the above method is characterized in that the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N are used to determine the first Parameters, or the M 1 and the M are used to determine the first parameter.
- the above method is characterized by comprising:
- the measurement for the first reference signal group is used to determine a second component, and the first power value and the second component are linearly related.
- the above method is characterized by comprising:
- the second information is used to indicate the linear coefficient of the first power value and the second component.
- the above method is characterized by comprising:
- the R third information are used to indicate R first offsets, respectively, and the third component is linearly related to each of the R first offsets, the The first power value is linearly related to the third component, and R is a positive integer.
- This application discloses a method in a base station device for wireless communication, which is characterized by including:
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resource blocks at least one of a frequency domain resource block; one of the M frequency domain resource block is a resource of the M frequency-domain blocks belonging to the M 1 N subbands in a frequency domain resource block; the N sub-bands Any two sub-bands in are orthogonal, any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine the first The transmission power of the wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1 and the M is greater than 1 positive integer, the N. 1 is a positive integer not greater than said N, said M 1 is not greater than the M is a positive integer.
- the above method is characterized by comprising:
- the second wireless signal is used to carry a second power value; the first power value and the N 1 are used together to determine the second power value, or the first power value and all The M 1 is commonly used to determine the second power value.
- the above method is characterized in that the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component; or, the M 1 And the M are used to determine the first component; or, the subcarrier spacing of the subcarriers occupied by the M 1 and the first wireless signal is used to determine the first component.
- the above method is characterized in that the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N are used to determine the first Parameters, or the M 1 and the M are used to determine the first parameter.
- the above method is characterized by comprising:
- the measurement for the first reference signal group is used to determine a second component, and the first power value and the second component are linearly related.
- the above method is characterized by comprising:
- the second information is used to indicate the linear coefficient of the first power value and the second component.
- the above method is characterized by comprising:
- the R third information are used to indicate R first offsets, respectively, and the third component is linearly related to each of the R first offsets, the The first power value is linearly related to the third component, and R is a positive integer.
- This application discloses a user equipment for wireless communication, which is characterized by comprising:
- -A first receiver receiving first information used to indicate M frequency domain resource blocks in N sub-bands; performing channel access detection on the N sub-bands, the channel access The detection is used to determine that N 1 of the N sub-bands are idle;
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resource blocks at least one of a frequency domain resource block; one of the M frequency domain resource block is a resource of the M frequency-domain blocks belonging to the M 1 N subbands in a frequency domain resource block; the N sub-bands Any two sub-bands in are orthogonal, any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine the first The transmission power of the wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1 and the M is greater than 1 positive integer, the N. 1 is a positive integer not greater than said N, said M 1 is not greater than the M is a positive integer.
- This application discloses a base station device for wireless communication, which is characterized by including:
- first information which is used to indicate M frequency domain resource blocks in N sub-bands
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resource blocks at least one of a frequency domain resource block; one of the M frequency domain resource block is a resource of the M frequency-domain blocks belonging to the M 1 N subbands in a frequency domain resource block; the N sub-bands Any two sub-bands in are orthogonal, any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine the first The transmission power of the wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1 and the M is greater than 1 positive integer, the N. 1 is a positive integer not greater than said N, said M 1 is not greater than the M is a positive integer.
- this application has the following advantages:
- the bandwidth of one CC (or BWP) in the NR system is large, if the broadband LBT of the LTE system is adopted, that is, the bandwidth of the LBT is the same as the bandwidth of the CC (or BWP), then the larger LBT bandwidth will cause Low channel access opportunities.
- narrow-band LBT that is, the bandwidth is less than CC (or BWP ), or the LBT bandwidth can be less than the transmission bandwidth of the wireless signal
- This application proposes a transmission power method and PHR calculation method that support uplink transmission in the case of narrowband LBT.
- the UE may only allow uplink transmissions to be sent on part of the scheduled narrowband via narrowband LBT, while those LBTs are not On the scheduled narrowband that passes, the UE cannot send uplink transmissions.
- the base station may not be able to accurately determine whether the transmission failure on these narrowbands is caused by poor channel conditions or due to the failure of the UE to send a wireless signal.
- the transmission power method for uplink transmission proposed in this application takes into account this uncertainty of the base station, and ensures that the base station can continue to accurately perform uplink power control in the future.
- the transmission power of the uplink wireless signal is related to the frequency domain resources occupied by the actual transmission, taking into account the uncertainty of the base station under narrowband LBT for the transmission failure on some narrowbands , To ensure that the base station can continue to accurately perform uplink power control in the future.
- the frequency domain resource occupied by actual transmission is equal to the scheduled frequency domain resource (LBT succeeds), so the PHR calculation method proposed in this application is applicable to both wideband LBT and narrowband LBT.
- the PHR is used by the base station to obtain the difference between the maximum transmission power of the UE and the actual transmission power.
- the transmission power of the uplink wireless signal in this application is related to the frequency domain resources occupied by the actual transmission.
- some scheduled narrowbands may not be able to send uplink wireless signals due to the failure of LBT.
- the calculation of PHR proposed in this application The power reserved for these narrowbands is compensated in, or in other words, the calculation of the PHR in this application is actually the transmission power on the scheduled resources rather than the actual transmission power.
- the PHR calculation method proposed in this application takes into account the uncertainty of the base station regarding the cause of transmission failure on some narrowbands, and ensures that the base station can continue to accurately perform uplink power control in the future.
- the frequency domain resource occupied by actual transmission is equal to the scheduled frequency domain resource (LBT succeeds), so the PHR calculation method proposed in this application is applicable to both wideband LBT and narrowband LBT.
- FIG. 1 shows a flowchart of first information, channel access detection, and first wireless signal according to an embodiment of the present application
- FIG. 2 shows a schematic diagram of a network architecture according to an embodiment of the present application
- FIG. 3 shows a schematic diagram of an embodiment of a wireless protocol architecture of a user plane and a control plane according to an embodiment of the present application
- FIG. 4 shows a schematic diagram of an NR (New Radio) node and a UE according to an embodiment of the present application
- FIG. 6 shows a schematic diagram of a first power value related to N 1 according to an embodiment of the present application
- FIG. 7 shows a schematic diagram of a first power value related to M 1 according to an embodiment of the present application
- FIG. 8 shows a schematic diagram of a first power value related to M 1 according to another embodiment of the present application.
- FIG. 10 shows a schematic diagram of a first power value and M 1 used to determine a second power value according to an embodiment of the present application
- FIG. 11 shows a schematic diagram of a first power value according to an embodiment of the present application.
- FIG. 12 shows a schematic diagram of a first power value according to another embodiment of the present application.
- FIG. 13 shows a schematic diagram of a second power value according to an embodiment of the present application.
- FIG. 14 is a schematic diagram showing that a given access detection performed on a given stator frequency band is used to determine whether to start transmitting a wireless signal at a given time of the given stator frequency band according to an embodiment of the present application;
- 15 is a schematic diagram showing that a given access detection performed on a given stator frequency band is used to determine whether to start transmitting a wireless signal at a given time of the given stator frequency band according to another embodiment of the present application;
- FIG. 16 shows a structural block diagram of a processing device in a UE according to an embodiment of the present application
- FIG. 17 shows a structural block diagram of a processing device in a base station device according to an embodiment of the present application.
- Embodiment 1 illustrates a flow chart of first information, channel access detection, and first wireless signal, as shown in FIG. 1.
- the user equipment in this application receives first information, and the first information is used to indicate M frequency domain resource blocks in N subbands; channel connection is performed on the N subbands Detection, the channel access detection is used to determine that N 1 sub-bands of the N sub-bands are idle; send the first wireless signal on M 1 frequency-domain resource blocks in the N 1 sub-bands Wherein any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resources at least one block frequency domain resource block; 1 of the M frequency-domain resource block is the M 1 subbands frequency domain resource block belonging to the N of the M frequency-domain resource block 1; the N sub Any two sub-bands in the frequency band are orthogonal, any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine the first The transmission power of a wireless signal; the first power value is related to the N 1 , or the first power value is related
- the first information explicitly indicates M frequency domain resource blocks in N subbands.
- the first information implicitly indicates M frequency domain resource blocks in N subbands.
- any two frequency domain resource blocks in the M 0 frequency domain resource blocks respectively include the same number of subcarriers.
- any one of the M 0 frequency domain resource blocks includes positive integer PRBs (Physical Resource Blocks).
- any one of the M 0 frequency domain resource blocks includes a positive integer number of consecutive PRBs.
- any one of the M 0 frequency domain resource blocks includes one PRB.
- any one of the M 0 frequency domain resource blocks includes a positive integer number of RBs (Resource Blocks, resource blocks).
- any one of the M 0 frequency domain resource blocks includes a positive integer number of consecutive RBs.
- any one of the M 0 frequency domain resource blocks includes one RB.
- any one of the M 0 frequency-domain resource blocks includes a positive integer number of consecutive subcarriers.
- any one of the M 0 frequency-domain resource blocks includes one subcarrier.
- any one of the M 0 frequency domain resource blocks includes a number of subcarriers equal to a positive integer multiple of 12.
- the number of sub-carriers included in any one of the M 0 frequency-domain resource blocks is equal to 12.
- any one of the M 0 frequency domain resource blocks includes an RBG (Resource Block Group, resource block group).
- RBG Resource Block Group, resource block group
- the first information indicates the M frequency-domain resource blocks
- the first information indicates the M frequency-domain resource blocks
- the first information is semi-statically configured.
- the first information is carried by higher layer signaling.
- the first information is carried by RRC (Radio Resource Control) signaling.
- RRC Radio Resource Control
- the first information is carried by MAC CE signaling.
- the first information includes one or more IE (Information Elements) in an RRC signaling.
- IE Information Elements
- the first information includes all or part of an IE in an RRC signaling.
- the first information includes a partial field of an IE in an RRC signaling.
- the first information includes multiple IEs in one RRC signaling.
- the first information includes some or all fields of the ConfiguredGrantConfigIE in RRC signaling.
- the ConfiguredGrantConfigIE see section 6.3.2 in 3GPP TS38.331.
- the first information includes a frequencyDomainAllocation field in ConfiguredGrantConfigIE in an RRC signaling.
- ConfiguredGrantConfigIE and frequencyDomainAllocation field, refer to Chapter 6.3.2 in 3GPP TS38.331.
- the first information is dynamically configured.
- the first information is carried by physical layer signaling.
- the first information is carried by DCI (Downlink Control Information) signaling.
- DCI Downlink Control Information
- the first information is carried by DCI signaling of UpLink Grant.
- the first information includes the Frequency domain in the DCI signaling, and the assignment domain.
- the Frequency domain refer to Section 6.1.2.2. in 3GPP TS 38.214.
- the DCI signaling carrying the first information is DCI format 0_0
- the first information includes the frequency domain resource in the DCI format 0_0
- the DCI format 0_0 includes the frequency domain domain resource assignment domain
- the specific definition please refer to section 7.3.1.1.1 in 3GPP TS38.212.
- the DCI signaling carrying the first information is DCI format 0_1
- the first information includes the Frequency domain resource domain in DCI format 0_1, the DCI format 0_1 and the Frequency domain domain resource assignment domain
- the specific definition please refer to Section 7.3.1.1.2 in 3GPP TS38.212.
- the first information is transmitted on a downlink physical layer control channel (that is, a downlink channel that can only be used to carry physical layer signaling).
- a downlink physical layer control channel that is, a downlink channel that can only be used to carry physical layer signaling.
- the downlink physical layer control channel is a PDCCH (Physical Downlink Control Channel, physical downlink control channel).
- the downlink physical layer control channel is sPDCCH (short PDCCH, short PDCCH).
- the downlink physical layer control channel is NR-PDCCH (New Radio PDCCH, New Radio PDCCH).
- the downlink physical layer control channel is NB-PDCCH (Narrow Band PDCCH, narrowband PDCCH).
- NB-PDCCH Near Band PDCCH, narrowband PDCCH
- the first information is transmitted on a downlink physical layer data channel (that is, a downlink channel that can be used to carry physical layer data).
- the downlink physical layer data channel is a PDSCH (Physical Downlink Shared CHannel, physical downlink shared channel).
- PDSCH Physical Downlink Shared CHannel, physical downlink shared channel
- the downlink physical layer data channel is sPDSCH (short PDSCH, short PDSCH).
- the downlink physical layer data channel is NR-PDSCH (New Radio PDSCH, New Radio PDSCH).
- the downlink physical layer data channel is NB-PDSCH (Narrow Band PDSCH, narrowband PDSCH).
- the N sub-bands are predefined or configurable.
- the N sub-bands are predefined.
- the N sub-bands are configurable.
- the frequency domain resources included in any one of the N sub-bands are continuous.
- any one of the N sub-bands includes a positive integer number of sub-carriers.
- any one of the N sub-bands includes a positive integer number of consecutive sub-carriers.
- the bandwidth of any one of the N sub-bands is a positive integer multiple of 20 MHz.
- the bandwidth of any two of the N sub-bands is the same.
- two of the N sub-bands have different bandwidths.
- the bandwidth of any one of the N sub-bands is 20 MHz.
- the bandwidth of any one of the N sub-bands is 1 GHz.
- the bandwidth of any one of the N sub-bands is a positive integer multiple of 1 GHz.
- the N sub-bands belong to the same carrier (Carrier).
- the N sub-bands belong to the same BWP (Bandwidth Part).
- the N sub-bands are N carriers, respectively.
- any one of the N sub-bands includes a positive integer number of carriers.
- the N sub-bands are N BWPs, respectively.
- any one of the N sub-bands includes a positive integer number of BWP.
- the N sub-bands are N sub-bands (Subband).
- any one of the N sub-bands includes a positive integer number of sub-bands.
- the N sub-bands are deployed in unlicensed spectrum.
- any two frequency domain resource blocks of the M frequency domain resource blocks respectively include the same number of subcarriers.
- any one of the M frequency-domain resource blocks includes a positive integer number of PRBs (Physical Resource Block).
- any one of the M frequency-domain resource blocks includes a positive integer number of consecutive PRBs.
- any one of the M frequency-domain resource blocks includes one PRB.
- any one of the M frequency-domain resource blocks includes a positive integer number of RBs (Resource Blocks).
- any one of the M frequency-domain resource blocks includes a positive integer number of consecutive RBs.
- any one of the M frequency-domain resource blocks includes one RB.
- any one of the M frequency-domain resource blocks includes a positive integer number of consecutive subcarriers.
- any one of the M frequency-domain resource blocks includes one subcarrier.
- any one of the M frequency-domain resource blocks includes a number of subcarriers equal to a positive integer multiple of 12.
- any one of the M frequency-domain resource blocks includes 12 sub-carriers.
- any one of the M frequency-domain resource blocks includes an RBG (Resource, Block, Group).
- RBG Resource, Block, Group
- the M is not less than 3, and the M frequency domain resource blocks are distributed at equal intervals in the frequency domain.
- the M is not less than 3, and any two frequency domain resource blocks adjacent in the frequency domain of the M frequency domain resource blocks have the same frequency domain interval.
- the M is not less than 3, and the number of subcarriers between any two frequency domain resource blocks adjacent in the frequency domain among the M frequency domain resource blocks is the same.
- the M is not less than 3, and the M frequency-domain resource blocks are not equally spaced in the frequency domain.
- the M is not less than 3
- the first frequency domain interval is a frequency domain interval between two frequency domain resource blocks adjacent in the frequency domain among the M frequency domain resource blocks
- the second The frequency domain interval is the frequency domain interval between two frequency domain resource blocks adjacent in the frequency domain among the M frequency domain resource blocks
- the first frequency domain interval and the second frequency domain interval are not the same.
- the first number of subcarriers is the number of subcarriers between two frequency domain resource blocks adjacent in the frequency domain among the M frequency domain resource blocks
- the second number of subcarriers is the The number of subcarriers between two frequency domain resource blocks adjacent in the frequency domain among the M frequency domain resource blocks, the number of the first subcarriers and the number of the second subcarriers are different.
- the N 1 is smaller than the N
- the M 1 is smaller than the M
- the N 1 is equal to the N
- the M 1 is equal to the M
- any of the M 1 frequency-domain resource blocks in a frequency domain resource block belongs to a sub-band of the sub-band N 1, N 1 subbands the any sub-band includes the At least one frequency domain resource block among M 1 frequency domain resource blocks.
- any one of the N sub-bands that does not belong to the N 1 sub-bands does not include one of the M 1 frequency-domain resource blocks.
- the end time of the channel access detection is not later than the start sending time of the first wireless signal.
- the end time of the channel access detection is earlier than the start sending time of the first wireless signal.
- the M frequency-domain resource blocks are allocated to the user equipment to send wireless signals, and the user equipment transmits the M-frequency resource block on only M 1 frequency-domain resource blocks.
- the first wireless signal is described.
- the M frequency-domain resource blocks are allocated to the user equipment to send wireless signals, and the user equipment transmits the M-frequency resource block on only M 1 frequency-domain resource blocks.
- the user equipment gives up sending wireless signals on MM 1 frequency domain resource blocks except the M 1 frequency domain resource block among the M frequency domain resource blocks.
- the channel access detection is used to determine that any one of the N sub-bands other than the N 1 sub-bands is not idle.
- the channel access detection is LBT (Listen Before Talk, listen before send).
- the channel access detection is CCA (Clear Channel Assessment, idle channel assessment).
- the channel access detection is uplink access detection.
- the channel access detection is used to determine that the N 1 sub-bands can be used for uplink transmission by the user equipment.
- the channel access detection is used to determine that NN 1 sub-band cannot be used for uplink transmission by the user equipment, the NN 1 sub-band is the N sub-bands except the N 1 sub-band All sub-bands except.
- the channel access detection includes N access detections, the N access detections are respectively performed on the N sub-bands, and the N access detections are respectively on the N 1 N 1 access detections performed on each sub-band are used to determine that the N 1 sub-bands are idle.
- the end time of any one of the N access detections is not later than the start transmission time of the first wireless signal.
- the end time of any one of the N access detections is earlier than the start transmission time of the first wireless signal.
- the end time of any one of the N 1 access detections is not later than the start transmission time of the first wireless signal.
- the end time of any one of the N 1 access detections is earlier than the start transmission time of the first wireless signal.
- NN 1 access detections except for the N 1 access detections are respectively used to determine that NN 1 sub-bands are not idle, so
- the NN 1 subband is all subbands except the N 1 subband in the N subbands.
- a given access detection is any one of the N access detections, the given access detection is performed on a given stator frequency band, the given stator The frequency band is one of the N sub-bands, and the given access detection includes performing positive integer energy detection in positive integer time sub-pools on the given stator frequency band, respectively, to obtain positive integer detection values.
- a given access detection is any one of the N 1 access detections, the given access detection is performed on a given sub-band, the given The stator frequency band is one of the N 1 sub-frequency bands, and the given access detection includes performing Q energy detections in Q time sub-pools on the given stator frequency band, respectively, to obtain Q detection values.
- Q is a positive integer; Q1 of the Q detection values are all lower than the first reference threshold, and Q1 is a positive integer not greater than Q.
- any one of the N access detections is LBT.
- LBT For the specific definition and implementation of the LBT, see 3GPP TR36.889.
- any one of the N access detections is CCA (Clear Channel Assessment).
- CCA Carrier Channel Assessment
- any one of the N access detections is an uplink access detection.
- the N 1 access detections are respectively used to determine that the N 1 sub-bands can be used for uplink transmission by the user equipment.
- NN 1 access detections other than the N 1 access detections are respectively used to determine that NN 1 sub-bands cannot be used by the user
- the device is used for uplink transmission, and the NN 1 sub-band is all sub-bands of the N sub-bands except the N 1 sub-band.
- any one of the N access detections is implemented in the manner defined in Section 15.2 of 3GPP TS36.213.
- the first wireless signal includes N 1 sub-signals, and the N 1 sub-signals are respectively transmitted in the N 1 sub-bands.
- the frequency domain resources occupied by the M 1 frequency domain resource blocks include the frequency domain resources occupied by the first wireless signal.
- the first wireless signal includes at least one of data and a reference signal.
- the first wireless signal includes data.
- the first wireless signal includes a reference signal.
- the first wireless signal includes data and a reference signal.
- the data included in the first wireless signal is uplink data.
- the reference signals included in the first wireless signal include ⁇ DMRS (DeModulation, Reference, Demodulation Reference Signal), SRS (Sounding, Reference, Signaling Reference Signal), PTRS (Phase Error Tracking, Reference, Signals, One or more of the phase error tracking reference signal) ⁇ .
- DMRS DeModulation, Reference, Demodulation Reference Signal
- SRS Sounding, Reference, Signaling Reference Signal
- PTRS Phase Error Tracking, Reference, Signals, One or more of the phase error tracking reference signal
- the reference signal included in the first wireless signal includes an SRS.
- the reference signal included in the first wireless signal includes DMRS.
- the reference signal included in the first wireless signal includes PTRS.
- the first wireless signal is transmitted on an uplink random access channel.
- the uplink random access channel is a PRACH (Physical Random Access Channel, physical random access channel).
- PRACH Physical Random Access Channel, physical random access channel
- the transmission channel of the first wireless signal is UL-SCH (Uplink Shared Channel, uplink shared channel).
- UL-SCH Uplink Shared Channel, uplink shared channel
- the first wireless signal is transmitted on an uplink physical layer data channel (that is, an uplink channel that can be used to carry physical layer data).
- an uplink physical layer data channel that is, an uplink channel that can be used to carry physical layer data.
- the uplink physical layer data channel is PUSCH (Physical Uplink Shared CHannel, physical uplink shared channel).
- the uplink physical layer data channel is sPUSCH (short PUSCH, short PUSCH).
- the uplink physical layer data channel is NR-PUSCH (New Radio PUSCH, New Radio PUSCH).
- the uplink physical layer data channel is NB-PUSCH (Narrow Band PUSCH, narrowband PUSCH).
- the above method further includes:
- the fourth information is used to indicate the scheduling information of the first wireless signal.
- the scheduling information of the first wireless signal includes occupied time domain resources, MCS (Modulation and Coding Scheme, modulation and coding method), DMRS (DeModulation Reference Signals, demodulation reference signal) Configuration information, HARQ (Hybrid Automatic Repeat request) process ID, RV (Redundancy Version), NDI (New Data Indicator), sending antenna port, corresponding multiple antennas At least one of related transmission and corresponding multi-antenna related reception.
- MCS Modulation and Coding Scheme, modulation and coding method
- DMRS DeModulation Reference Signals, demodulation reference signal
- Configuration information HARQ (Hybrid Automatic Repeat request) process ID
- RV Redundancy Version
- NDI New Data Indicator
- the configuration information of the DMRS included in the scheduling information of the first wireless signal includes an RS (Reference Signal) sequence, a mapping method, a DMRS type, occupied time domain resources, and occupied At least one of frequency domain resources, occupied code domain resources, cyclic shift (cyclic shift), OCC (Orthogonal Cover Code, orthogonal mask).
- RS Reference Signal
- the fourth information and the first information belong to the same IE of one RRC signaling.
- the fourth information is carried by MAC CE signaling.
- the fourth information and the first information are carried by the same DCI signaling.
- the multi-antenna related reception is spatial reception parameters (Spatial Rx parameters).
- the multi-antenna related reception is a receive beam.
- the multi-antenna related reception is a receive beamforming matrix.
- the multi-antenna related reception is a reception analog beamforming matrix.
- the multi-antenna related reception is to receive an analog beamforming vector.
- the multi-antenna related reception is a receive beamforming vector.
- the multi-antenna related reception is spatial filtering.
- the multi-antenna related transmission is spatial transmission parameters (Spatial Tx parameters).
- the multi-antenna related transmission is a transmission beam.
- the multi-antenna related transmission is a transmission beamforming matrix.
- the multi-antenna related transmission is to transmit an analog beamforming matrix.
- the multi-antenna related transmission is to transmit an analog beamforming vector.
- the multi-antenna related transmission is a transmission beamforming vector.
- the multi-antenna related transmission is transmission spatial filtering.
- the spatial transmission parameters include a transmit antenna port, a transmit antenna port group, a transmit beam, a transmit analog beam forming matrix, a transmit analog beam forming vector, a transmit beam forming matrix, and a transmit beam One or more of the shaping vector and the spatial filtering.
- the spatial receiving parameters include a receiving beam, a receiving analog beam forming matrix, a receiving analog beam forming vector, a receiving beam forming matrix, a receiving beam forming vector, and a receiving spatial filter (spatial one or more of filtering).
- the first power value is used to determine the transmission power of the first wireless signal means that the transmission power of the first wireless signal is the comparison between the first limited power value and the first power value Small value.
- the first limited power value is greater than the first power value, and the transmission power of the first wireless signal is the first power value.
- the first limited power value is less than the first power value, and the transmission power of the first wireless signal is the first limited power value.
- the first limited power value is equal to the first power value
- the transmission power of the first wireless signal is the first limited power value or the first power value
- the unit of the transmission power of the first wireless signal is dBm (millimeter decibel).
- the transmission power of the first wireless signal is P PUSCH,b,f,c (i,j,q d ,l), and the P PUSCH,b,f,c (i,j,q d , l) for specific definitions, see section 7.1.1 in TS38.213.
- the unit of the first limited power value is dBm.
- the first limit power value is predefined.
- the first limit power value is configurable.
- the first limited power value is the maximum transmission power on the carrier corresponding to the first wireless signal, the transmission opportunity (Transmission Occasion), and the serving cell.
- the first limited power value is a carrier corresponding to the first wireless signal, a transmission opportunity (Transmission Occasion), and a maximum transmission power of the first wireless signal on the serving cell.
- the first limited power value is P CMAX,f,c (i), and the P CMAX,f,c (i) is the i-th PUSCH on the carrier f in the serving cell with index c
- f,c (i) please refer to Section 7.1.1 in TS38.213.
- the first limited power value is P CMAX,f,c (i), and the P CMAX,f,c (i) is the i-th transmission on the carrier f in the serving cell with index c
- f,c (i) please refer to Section 7.1.1 in TS38.213.
- the unit of the first power value is dBm.
- the first power value is related to the N 1 .
- the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component; or, the M 1 and the M are used to determine The first component; or, the subcarrier spacing of the subcarriers occupied by the M 1 and the first wireless signal is used to determine the first component.
- the first power value is related to the N 1 ; the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component.
- the first power value is related to the M 1 .
- the first power value is related to the M 1 ; the first power value is linearly related to the first component; the M 1 and the M are used to determine the first component.
- the first power value is related to the M 1 ; the first power value is linearly related to the first component; the M 1 and the sub-carrier of the sub-carrier occupied by the first wireless signal The interval is used to determine the first component.
- the unit of the first component is dB.
- the first component is equal to the base 10 logarithm of the linear value of the first component and multiplied by 10.
- Embodiment 2 illustrates a schematic diagram of a network architecture, as shown in FIG. 2.
- Embodiment 2 illustrates a schematic diagram of a network architecture according to the present application, as shown in FIG. 2.
- FIG. 2 is a diagram illustrating a network architecture 200 of NR 5G, LTE (Long-Term Evolution) and LTE-A (Long-Term Evolution) systems.
- the NR 5G or LTE network architecture 200 may be called EPS (Evolved Packet System) 200 or some other suitable term.
- EPS Evolved Packet System
- the EPS 200 may include one or more UEs (User Equipment) 201, NG-RAN (Next Generation Radio Access Network) 202, EPC (Evolved Packet Core, Evolved Packet Core)/5G-CN (5G-Core Network 5G core network) 210, HSS (Home Subscriber Server, home subscriber server) 220 and Internet service 230.
- EPS can be interconnected with other access networks, but these entities/interfaces are not shown for simplicity. As shown in the figure, EPS provides packet switching services, but those skilled in the art will readily understand that the various concepts presented throughout this application can be extended to networks that provide circuit-switched services or other cellular networks.
- NG-RAN includes NR Node B (gNB) 203 and other gNB 204.
- gNB203 provides UE201 user and control plane protocol termination.
- the gNB203 can be connected to other gNB204 via an Xn interface (eg, backhaul).
- gNB203 may also be called a base station, base transceiver station, radio base station, radio transceiver, transceiver function, basic service set (BSS), extended service set (ESS), TRP (transmit and receive point) or some other suitable terminology.
- gNB203 provides UE201 with an access point to EPC/5G-CN210.
- Examples of UE201 include cellular phones, smart phones, session initiation protocol (SIP) phones, laptop computers, personal digital assistants (PDAs), satellite radios, non-terrestrial base station communications, satellite mobile communications, global positioning systems, multimedia devices , Video devices, digital audio players (eg MP3 players), cameras, game consoles, drones, aircraft, narrow-band physical network equipment, machine type communication equipment, land vehicles, automobiles, wearable devices, or any Other similar functional devices.
- SIP session initiation protocol
- PDAs personal digital assistants
- satellite radios non-terrestrial base station communications
- satellite mobile communications global positioning systems
- multimedia devices Video devices
- digital audio players eg MP3 players
- cameras game consoles
- drones aircraft, narrow-band physical network equipment, machine type communication equipment, land vehicles, automobiles, wearable devices, or any Other similar functional devices.
- UE201 may also refer to UE201 as a mobile station, subscriber station, mobile unit, subscriber unit, wireless unit, remote unit, mobile device, wireless device, wireless communication device, remote device, mobile subscriber station, access terminal, Mobile terminal, wireless terminal, remote terminal, handset, user agent, mobile client, client or some other suitable term.
- gNB203 is connected to EPC/5G-CN210 through the S1/NG interface.
- EPC/5G-CN210 includes MME/AMF/UPF211, other MME (MobilityManagementEntity, Mobility Management Entity)/AMF (AuthenticationManagementField, authentication management domain)/UPF(User PlaneFunction, user plane function) 214, S-GW (Service Gateway) 212 and P-GW (Packet Date Network Gateway, packet data network gateway) 213.
- MME/AMF/UPF211 is a control node that handles signaling between UE201 and EPC/5G-CN210.
- MME/AMF/UPF211 provides bearer and connection management. All user IP (Internet Protocol) packets are transmitted via S-GW212, which is itself connected to P-GW213.
- P-GW213 provides UE IP address allocation and other functions.
- the P-GW213 is connected to the Internet service 230.
- the Internet service 230 includes an operator's corresponding Internet protocol service, which may specifically include the Internet, Intranet, IMS (IP Multimedia Subsystem) and PS Streaming Service
- the UE 201 corresponds to the user equipment in this application.
- the UE 201 supports wireless communication for data transmission on an unlicensed spectrum.
- the UE 201 supports wireless communication for data transmission on an authorized spectrum.
- the gNB203 supports wireless communication for data transmission on unlicensed spectrum.
- the gNB203 supports wireless communication for data transmission on the licensed spectrum.
- the UE 201 supports MIMO wireless communication.
- the gNB203 supports MIMO wireless communication.
- Embodiment 3 shows a schematic diagram of an embodiment of a wireless protocol architecture of a user plane and a control plane according to the present application, as shown in FIG. 3.
- FIG 3 is a schematic diagram illustrating an embodiment of a radio protocol architecture for the user plane and control plane.
- Figure 3 shows the radio protocol architecture for user equipment (UE) and base station equipment (gNB or eNB) with three layers: layers 1.
- Layer 1 (L1 layer) is the lowest layer and implements various PHY (physical layer) signal processing functions.
- the L1 layer will be referred to herein as PHY301.
- Layer 2 (L2 layer) 305 is above PHY 301 and is responsible for the link between the UE and gNB through PHY 301.
- the L2 layer 305 includes MAC (Medium Access Control) sub-layer 302, RLC (Radio Link Control, radio link layer control protocol) sub-layer 303, and PDCP (Packet Data Convergence Protocol), packet data Convergence protocol) sublayers 304, which terminate at gNB on the network side.
- MAC Medium Access Control
- RLC Radio Link Control, radio link layer control protocol
- PDCP Packet Data Convergence Protocol
- packet data Convergence protocol Packet Data Convergence Protocol
- the UE may have several upper layers above the L2 layer 305, including the network layer (eg, IP layer) terminating at the P-GW on the network side and the other end (eg, Application layer at the remote UE, server, etc.).
- the PDCP sublayer 304 provides multiplexing between different radio bearers and logical channels.
- the PDCP sublayer 304 also provides header compression for upper layer data packets to reduce radio transmission overhead, provide security by encrypting data packets, and provide handover support for UEs between gNBs.
- the RLC sublayer 303 provides segmentation and reassembly of upper layer data packets, retransmission of lost data packets, and reordering of data packets to compensate for out-of-order reception due to HARQ.
- the MAC sublayer 302 provides multiplexing between logic and transport channels. The MAC sublayer 302 is also responsible for allocating various radio resources (eg, resource blocks) in one cell between UEs. The MAC sublayer 302 is also responsible for HARQ operations.
- the radio protocol architecture for the UE and gNB is substantially the same for the physical layer 301 and the L2 layer 305, but there is no header compression function for the control plane.
- the control plane also includes an RRC (Radio Resource Control) sublayer 306 in layer 3 (L3 layer).
- the RRC sublayer 306 is responsible for obtaining radio resources (ie, radio bearers) and using RRC signaling between the gNB and the UE to configure the lower layer.
- the wireless protocol architecture in FIG. 3 is applicable to the user equipment in this application.
- the wireless protocol architecture in FIG. 3 is applicable to the base station in this application.
- the first information in this application is generated in the PHY301.
- the first information in this application is generated in the RRC sublayer 306.
- the first information in this application is generated in the MAC sublayer 302.
- the second information in this application is generated in the RRC sublayer 306.
- the second information in this application is generated in the MAC sublayer 302.
- the R third information in the present application is generated in the PHY301.
- the R third information in the present application is generated in the RRC sublayer 306.
- the R third information in the present application is generated in the MAC sublayer 302.
- the fourth information in the present application is generated in the PHY301.
- the fourth information in the present application is generated in the RRC sublayer 306.
- the fourth information in the present application is generated in the MAC sublayer 302.
- the first reference signal group in this application is generated in the PHY 301.
- the channel access detection in this application is generated in the PHY301.
- the first wireless signal in this application is generated in the PHY 301.
- the second wireless signal in this application is generated in the PHY 301.
- Embodiment 4 shows a schematic diagram of a base station device and user equipment according to the present application, as shown in FIG. 4.
- 4 is a block diagram of gNB410 communicating with UE 450 in an access network.
- the base station device (410) includes a controller/processor 440, a memory 430, a reception processor 412, a first processor 471, a transmission processor 415, a transmitter/receiver 416, and an antenna 420.
- the user equipment (450) includes a controller/processor 490, a memory 480, a data source 467, a first processor 441, a transmission processor 455, a reception processor 452, a transmitter/receiver 456, and an antenna 460.
- the processing related to the base station equipment (410) includes:
- controller/processor 440 provides packet header compression, encryption, packet segment connection and reordering, and multiplexing and demultiplexing between logical and transmission channels for implementation L2 layer protocol for user plane and control plane; upper layer packets can include data or control information, such as DL-SCH (Downlink Shared Channel, downlink shared channel);
- DL-SCH Downlink Shared Channel, downlink shared channel
- the memory 430 may be a computer-readable medium
- the controller/processor 440 including a scheduling unit to transmit demand, the scheduling unit is used to schedule air interface resources corresponding to the transmission demand;
- the first processor 471 determines the first information
- -Transmit processor 415 receiving the output bit stream of the controller/processor 440, implementing various signal transmission processing functions for the L1 layer (ie, physical layer) including coding, interleaving, scrambling, modulation, power control/distribution and Physical layer control signaling (including PBCH, PDCCH, PHICH, PCFICH, reference signal) generation, etc.;
- -Transmit processor 415 receiving the output bit stream of the controller/processor 440, implementing various signal transmission processing functions for the L1 layer (ie, physical layer) including multi-antenna transmission, spread spectrum, code division multiplexing, and precoding Wait;
- each transmitter 416 samples the respective input symbol stream to obtain a respective sampled signal stream.
- Each transmitter 416 further processes the respective sampled stream (such as digital-to-analog conversion, amplification, filtering, up-conversion, etc.) to obtain a downstream signal.
- the processing related to the user equipment (450) may include:
- -Receiver 456 which is used to convert the radio frequency signal received through the antenna 460 into a baseband signal and provide it to the receiving processor 452;
- the receiving processor 452 implements various signal receiving processing functions for the L1 layer (ie, physical layer) including decoding, deinterleaving, descrambling, demodulation, and physical layer control signaling extraction;
- -Receive processor 452 implementing various signal reception processing functions for the L1 layer (ie, physical layer) including multi-antenna reception, despreading, code division multiplexing, precoding, etc.;
- the first processor 441 determines the first information
- the controller/processor 490 receives the bit stream output by the receiving processor 452, provides packet header decompression, decryption, packet segment connection and reordering, and multiplexing and demultiplexing between logical and transmission channels to implement L2 layer protocol for user plane and control plane;
- the controller/processor 490 is associated with a memory 480 that stores program codes and data.
- the memory 480 may be a computer-readable medium.
- the processing related to the base station equipment (410) includes:
- the receiver 416 receives the radio frequency signal through its corresponding antenna 420, converts the received radio frequency signal into a baseband signal, and provides the baseband signal to the receiving processor 412;
- -Receive processor 412 implementing various signal reception processing functions for the L1 layer (ie, physical layer) including decoding, deinterleaving, descrambling, demodulation, and physical layer control signaling extraction;
- -Receive processor 412 implementing various signal reception processing functions for the L1 layer (ie, physical layer) including multi-antenna reception, despreading, code division multiplexing, precoding, etc.;
- -A controller/processor 440 that implements L2 layer functions and is associated with a memory 430 that stores program codes and data;
- Controller/processor 440 provides demultiplexing between transport and logical channels, packet reassembly, decryption, header decompression, control signal processing to recover upper layer data packets from UE 450; from controller/processor 440
- the upper layer data packet can be provided to the core network;
- the first processor 471 determines to receive the first wireless signal on M 1 frequency domain resource blocks in N 1 sub-bands;
- the processing related to the user equipment (450) includes:
- Data source 467 provides upper layer data packets to the controller/processor 490.
- Data source 467 represents all protocol layers above the L2 layer;
- the transmitter 456 transmits a radio frequency signal through its corresponding antenna 460, converts the baseband signal into a radio frequency signal, and provides the radio frequency signal to the corresponding antenna 460;
- -Transmit processor 455, implementing various signal reception processing functions for the L1 layer (ie, physical layer) including coding, interleaving, scrambling, modulation, and physical layer signaling generation;
- -Transmit processor 455, implementing various signal receiving and processing functions for the L1 layer (ie, physical layer) including multi-antenna transmission, spreading, code division multiplexing, precoding, etc.;
- the controller/processor 490 implements header compression, encryption, packet segmentation and reordering and multiplexing between logical and transport channels based on the wireless resource allocation of gNB410, and implements L2 for the user plane and control plane Layer function
- the controller/processor 490 is also responsible for HARQ operations, retransmission of lost packets, and signaling to gNB410;
- the first processor 441 determines to send the first wireless signal on M 1 frequency domain resource blocks in N 1 sub-bands;
- the UE450 device includes: at least one processor and at least one memory, the at least one memory includes computer program code; the at least one memory and the computer program code are configured to process with the at least one Used together, the UE450 device at least: receives first information, the first information is used to indicate M frequency domain resource blocks in N subbands; channel access detection is performed on the N subbands, The channel access detection is used to determine that N 1 of the N sub-bands are idle; the first wireless signal is sent on M 1 frequency-domain resource blocks in the N 1 sub-bands; Any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes at least one of the M frequency-domain resource blocks a resource block in the frequency domain; the M resource blocks in a frequency-domain subbands of said M 1 is a frequency-domain resource block belonging to the N of the M frequency-domain resource block 1; any of said N subbands The two sub-bands are orthogonal, and any two of the M
- the UE 450 includes a memory that stores a computer-readable instruction program, and the computer-readable instruction program generates an action when executed by at least one processor.
- the action includes: receiving the first information.
- the first information is used to indicate M frequency domain resource blocks in N sub-bands; channel access detection is performed on the N sub-bands, and the channel access detection is used to determine the number of the N sub-bands N 1 sub-bands are idle; the first wireless signal is sent on M 1 frequency-domain resource blocks in the N 1 sub-bands; wherein, any frequency-domain resource block in the M frequency-domain resource blocks belongs to One of the N subbands, any one of the N subbands includes at least one frequency domain resource block of the M frequency domain resource blocks; the M 1 frequency domain resource block is the M frequency-domain blocks belonging to the resource.
- the first power value is used to determine the transmission power of the first wireless signal; the first power value is related to the N 1 , Alternatively, the first power value is related to M 1 ; the N is a positive integer greater than 1, the M is a positive integer greater than 1, and the N 1 is a positive integer not greater than N, so The M 1 is a positive integer not greater than the M.
- the gNB410 device includes: at least one processor and at least one memory, the at least one memory includes computer program code; the at least one memory and the computer program code are configured to process with the at least one Use together.
- the gNB410 device at least: sends first information, which is used to indicate M frequency domain resource blocks in N sub-bands; and receives on M 1 frequency domain resource blocks in the N 1 sub-bands A first wireless signal; wherein, any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency-domain resource blocks in at least a frequency domain resource block; 1 of the M frequency-domain resource block is the M 1 subbands frequency domain resource block belonging to the N in 1 M frequency-domain resource blocks; Any two of the N sub-bands are orthogonal, and any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to Determine the transmission power of the first wireless signal; the first power value is related to the N 1
- the gNB410 includes a memory that stores a computer-readable instruction program, and the computer-readable instruction program generates an action when executed by at least one processor.
- the action includes: sending the first information.
- the first information is used to indicate M frequency domain resource blocks in N sub-bands; receiving the first wireless signal on the M 1 frequency domain resource blocks in the N 1 sub-bands; wherein, the M frequency bands Any frequency domain resource block in the domain resource block belongs to one sub-band in the N sub-bands, and any sub-band in the N sub-bands includes at least one frequency domain resource in the M frequency-domain resource blocks block; M 1 the frequency-domain resource block is the M frequency domain resource block belonging to the N subbands.
- the first power value is used to determine the transmission power of the first wireless signal;
- the first power value is related to the N 1 , or the first power value is related to the M 1 ;
- the N is a positive integer greater than 1
- the M is a positive integer greater than 1
- the N 1 is a positive integer not greater than N
- M 1 is a positive integer not greater than M.
- the UE 450 corresponds to the user equipment in this application.
- gNB410 corresponds to the base station in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to receive the first information in the present application.
- At least the first two of the transmitter 416, the transmission processor 415, and the controller/processor 440 are used to send the first information in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to receive the second information in the present application.
- At least the first two of the transmitter 416, the transmission processor 415, and the controller/processor 440 are used to send the second information in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to receive the first reference signal group in this application.
- At least the first two of the transmitter 416, the transmission processor 415, and the controller/processor 440 are used to transmit the first reference signal group in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to receive the R third information in this application.
- At least the first two of the transmitter 416, the transmission processor 415, and the controller/processor 440 are used to send the R third information in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to receive the fourth information in the present application.
- At least the first two of the transmitter 416, the transmission processor 415, and the controller/processor 440 are used to send the fourth information in this application.
- At least the first two of the receiver 456, the reception processor 452, and the controller/processor 490 are used to perform the channel access in the present application on the N sub-bands in the present application Detection.
- At least the first two of the transmitter 456, the transmission processor 455, and the controller/processor 490 are used for the M 1 frequency domain resources in the N 1 sub-bands in this application
- the first wireless signal in this application is sent on the block.
- At least the first two of the receiver 416, the reception processor 412, and the controller/processor 440 are used for the M 1 frequency domain resources in the N 1 sub-bands in this application
- the first wireless signal in this application is received on the block.
- At least the first two of the transmitter 456, the transmission processor 455, and the controller/processor 490 are used to transmit the second wireless signal in this application.
- At least the first two of the receiver 416, the reception processor 412, and the controller/processor 440 are used to receive the second wireless signal in this application.
- Embodiment 5 illustrates a flow chart of wireless transmission, as shown in FIG. 5.
- base station N01 is a serving cell maintenance base station of user equipment U02.
- block F1 is optional.
- N01 For N01, S10, in the step of transmitting the second information; transmitting a first reference signal is set in step S11; R a third transmission information in step S12; first information transmitted in step S13; step S14, in the N 1
- the first wireless signal is received on M 1 frequency domain resource blocks in each sub-band; the second wireless signal is received in step S15.
- the second information is received in step S20; the first reference signal group is received in step S21; the R third information is received in step S22; the first information is received in step S23; and the N sub-numbers in step S24 Channel access detection is performed on the frequency band; in step S25, a first wireless signal is sent on M 1 frequency domain resource blocks in N 1 sub-bands; in step S26, a second wireless signal is sent.
- the first information is used to indicate M frequency domain resource blocks in N subbands; the channel access detection is used by the U02 to determine N 1 subbands in the N subbands The frequency band is idle; any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency bands domain resource blocks in at least a frequency domain resource block; 1 of the M frequency-domain resource block is the M 1 subbands frequency domain resource block belonging to the N of the M frequency-domain resource block 1; the Any two of the N sub-bands are orthogonal, and any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used by the U02 To determine the transmission power of the first wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1, The M is a positive integer greater than 1, the N 1 is a positive integer not greater than the N, and the M 1 is
- the second wireless signal is used to carry a second power value; the first power value and the N 1 are used together to determine the second power value, or the first power value and the M 1 is commonly used to determine the second power value.
- the measurement for the first reference signal group is used by the U02 to determine a second component, and the first power value and the second component are linearly related.
- the second information is used to indicate the linear coefficient of the first power value and the second component.
- the R third information is used to indicate R first offsets, respectively, and the third component is linearly related to each of the R first offsets.
- the first The power value is linearly related to the third component, and R is a positive integer.
- the second wireless signal includes at least one of data, control information, and a reference signal.
- the second wireless signal includes data.
- the second wireless signal includes a reference signal.
- the second wireless signal includes data and a reference signal.
- the data included in the second wireless signal is uplink data.
- the reference signal included in the second wireless signal includes ⁇ DMRS (DeModulation, Reference, Demodulation Reference Signal), SRS (Sounding Reference, Signaling Reference Signal), PTRS (Phase Error Tracking, Reference, Signals, One or more of the phase error tracking reference signal) ⁇ .
- DMRS DeModulation, Reference, Demodulation Reference Signal
- SRS Sounding Reference, Signaling Reference Signal
- PTRS Phase Error Tracking, Reference, Signals, One or more of the phase error tracking reference signal
- the reference signal included in the second wireless signal includes an SRS.
- the reference signal included in the second wireless signal includes DMRS.
- the reference signal included in the second wireless signal includes PTRS.
- the second wireless signal is transmitted on an uplink random access channel.
- the uplink random access channel is PRACH.
- the transmission channel of the second wireless signal is UL-SCH.
- the second wireless signal is transmitted on an uplink physical layer data channel.
- the uplink physical layer data channel is PUSCH.
- the uplink physical layer data channel is sPUSCH.
- the uplink physical layer data channel is NR-PUSCH.
- the uplink physical layer data channel is NB-PUSCH.
- the second wireless signal includes a first report, and the first report is used by the N01 to determine the second power value.
- the first report includes PHR (Power Headroom Report).
- the second power value is PH (Power Headroom).
- the unit of the second power value is dB (decibel).
- the second power value is PH (Power Headroom).
- the second power value is PH type1, b, f, c (i, j, q d , l), and the PH type 1, b, f, c (i, j, q d , l )
- PH type1 b, f, c (i, j, q d , l)
- the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N are used by the U02 to determine the first parameter, or The M 1 and the M are used by the U02 to determine the first parameter.
- the first power value and the N 1 are used together to determine the second power value.
- the first power value is related to the N 1 , and the first power value and the N 1 are used together to determine the second power value.
- the first power value and the N 1 are used together to determine the second power value; the second power value is linearly related to both the first power value and the first parameter; The N 1 and the N are used by the U02 to determine the first parameter.
- the first power value and the M 1 are used together to determine the second power value.
- the first power value is related to the M 1 , and the first power value and the M 1 are used together to determine the second power value.
- the first power value and the M 1 are used together to determine the second power value; the second power value is linearly related to both the first power value and the first parameter; The M 1 and the M are used by the U02 to determine the first parameter.
- the unit of the first parameter is dB.
- the first parameter is equal to the linear logarithm of the first parameter and multiplied by 10.
- the sending of the second power value is triggered by a given condition, and the given condition includes at least one of the following:
- the change in the first path loss among the K path losses is greater than a third threshold, the first path loss is the path loss with the largest change among the K path losses;
- the change in the second path loss among the K path losses is greater than a fourth threshold, the second path loss is the path loss with the smallest change among the K path losses;
- the change of the reference path loss is greater than a fifth threshold, the reference path loss and each of the K path losses are linearly related;
- the user equipment receives target signaling, which is used to trigger the sending of the second power value
- the K is a positive integer
- the K path losses are respectively determined by measurements on K reference signal groups.
- the target signaling is dynamic signaling.
- the target signaling is high-level signaling.
- any one of the K reference signal groups is composed of positive integer reference signals.
- the first threshold is fixed or configured by higher layer signaling.
- the second threshold is fixed or configured by higher layer signaling.
- the third threshold is fixed or configured by higher layer signaling.
- the fourth threshold is fixed or configured by higher layer signaling.
- the fifth threshold is fixed or configured by higher layer signaling.
- the first timer is prohibitPHR-Timer.
- the first timer is periodicPHR-Timer.
- the first timer is a phr-PeriodicTimer.
- the first timer is fixed or configured by higher layer signaling.
- the first reference signal group includes positive integer number of reference signals.
- the first reference signal group includes one reference signal.
- the first reference signal group includes at least one of CSI-RS (Channel Status Information Reference Signal) and SSB (Synchronization Signal Block) (Synchronization Signal Block).
- CSI-RS Channel Status Information Reference Signal
- SSB Synchronization Signal Block
- the first reference signal group includes CSI-RS.
- the first reference signal group includes SSB.
- the unit of the second component is dB.
- the second component is equal to the base 10 logarithm of the linear value of the second component and multiplied by 10.
- the second component is a measured path loss (Pass Loss) for the first reference signal group.
- the linear coefficient of the first power value and the second component is a real number not less than 0.
- the linear coefficient of the first power value and the second component is a real number greater than 0.
- the second component is PL b,f,c (q d ), the linear coefficient of the first power value and the second component is ⁇ b,f,c (j), the
- PL b,f,c (q d ) and the aforementioned ⁇ b,f,c (j) please refer to Section 7.1.1 in TS38.213.
- the second information explicitly indicates the linear coefficient of the first power value and the second component.
- the second information implicitly indicates a linear coefficient of the first power value and the second component.
- the second information indicates an index of positive integer coefficients between the linear coefficients of the first power value and the second component.
- the second information is semi-statically configured.
- the second information is carried by higher layer signaling.
- the second information is carried by RRC signaling.
- the second information is carried by MAC CE signaling.
- the second information includes one or more IEs in one RRC signaling.
- the second information includes all or part of an IE in an RRC signaling.
- the second information includes a partial field of an IE in an RRC signaling.
- the second information includes multiple IEs in one RRC signaling.
- the second information includes the msg3-Alpha of PUSCH-PowerControl IE in an RRC signaling.
- the PUSCH-PowerControl IE and the msg3-Alpha refer to section 6.3 in 3GPP TS38.331 .2 chapter.
- the specific definition please refer to Section 6.3.2 in 3GPP TS38.331.
- the second information includes the p0-PUSCH-Alpha field of ConfiguredGrantConfigIE in an RRC signaling.
- ConfiguredGrantConfigIE for the specific definitions of the ConfiguredGrantConfigIE and p0-PUSCH-Alpha field, see 3GPP TS38.331. Section 6.3.2.
- the second information includes a P0-PUSCH-AlphaSet field of PUSCH-PowerControlIE in an RRC signaling.
- P0-PUSCH-AlphaSet field of PUSCH-PowerControlIE in an RRC signaling.
- the second information is transmitted on a downlink physical layer data channel (that is, a downlink channel that can be used to carry physical layer data).
- a downlink physical layer data channel that is, a downlink channel that can be used to carry physical layer data
- the downlink physical layer data channel is PDSCH.
- the downlink physical layer data channel is sPDSCH.
- the downlink physical layer data channel is NR-PDSCH.
- the downlink physical layer data channel is NB-PDSCH.
- the second information is also used by the U02 to determine a fourth component, and the first power value is linearly related to the fourth component.
- the unit of the fourth component is dB.
- the fourth component is equal to the base 10 logarithm of the linear value of the fourth component and multiplied by 10.
- the linear coefficient of the first power value and the fourth component is 1.
- the fourth component is P O_PUSCH,b,f,c (j).
- P O_PUSCH,b,f,c (j) For the specific definition of P O_PUSCH,b,f,c (j), see 3GPP TS38.213 Section 7.1.1.
- the fourth component is the sum of the first sub-component and the second sub-component
- the second information is used to indicate the difference between the first power value and the second component The linear coefficient and the second subcomponent.
- the fourth component is PO_PUSCH, b, f, c (j), and PO_PUSCH, b, f, c (j) is PO_NOMINAL_PUSCH, f, c (j )
- P O_UE_PUSCH, b, f, c (j) is PO_NOMINAL_PUSCH, f, c (j )
- the second information is used to indicate the linear coefficient of the first power value and the second component and the P O_UE_PUSCH, b, f, c (j); the P O_PUSCH, b, f, c (j), the P O_NOMINAL_PUSCH, f, c (j) and the P O_UE_PUSCH, b, f, c (j) for specific definitions, see 3GPP TS38 Section 7.1.1 in .213.
- the first power value and the fifth component (delta) are linearly related.
- the unit of the fifth component is dB.
- the fifth component is equal to the base 10 logarithm of the linear value of the fifth component and multiplied by 10.
- the fifth component is related to the MCS of the first wireless signal.
- the fifth component is related to the number of code blocks (Code Blocks) of the first wireless signal, the size of each code block, and the M.
- the fifth component is ⁇ TF, b, f, c (i).
- ⁇ TF, b, f, c (i) For the specific definition of ⁇ TF, b, f, c (i), see 3GPP TS38.213 Section 7.1.1.
- the R is equal to 1.
- the R is greater than 1.
- the R third information respectively indicate R first offsets.
- the R third information implicitly indicate R first offsets, respectively.
- the R third information respectively indicate indexes corresponding to the R first offsets, respectively.
- the R third information is dynamically configured.
- the R third information is carried by R physical layer signaling, respectively.
- the R third pieces of information are respectively carried by R pieces of DCI signaling.
- the R third information is carried by R TPC signaling, respectively.
- the R pieces of third information are respectively carried by R pieces of uplink grant DCI signaling.
- the R is greater than 1, one third of the R third information is carried by uplink grant DCI signaling, and the R-1 third of the R third information is carried by TPC (Transmitter Power Control, signaling power control) signaling bearer.
- TPC Transmitter Power Control, signaling power control
- the R is greater than 1, there is one third information in the R third information carried by uplink grant DCI signaling, and there is one third information in the R third information carried by TPC signaling .
- the R is greater than 1, at least one third information of the R third information is carried by uplink grant DCI signaling, and at least one third information of the R third information is carried by TPC signaling .
- the R third information is carried by R DCI format 2_2 signalings respectively.
- R DCI format 2_2 For the specific definition of the DCI format 2_2, see section 7.3 in 3GPP TS 38.212.
- the R third information is carried by R pieces of DCI format 0_0 or DCI format 0_1 signaling respectively.
- DCI format 0_0 and DCI format 0_1 For specific definitions of the DCI format 0_0 and the DCI format 0_1, see section 7.3 in 3GPP TS 38.212 chapter.
- the R is greater than 1
- one third of the R third information is carried by DCI format 0_0 or DCI format 0_1 signaling
- the R-1 third information The three pieces of information are carried by DCI format 2_2 signaling.
- DCI format 0_0, the DCI format 0_1 and the DCI format 2_2 refer to Chapter 7.3 in 3GPP TS 38.212.
- the R is greater than 1
- one of the R third messages is carried by DCI format0_0 or DCI format 0_1 signaling
- one of the R third messages is carried by DCI
- the format 2_2 signaling bearer, the DCI format 0_0, the DCI format 0_1 and the DCI format 2_2 are defined in Chapter 7.3 of 3GPP TS 38.212.
- the R is greater than 1, at least one third information of the R third information is carried by DCI format 0_0 or DCI format 0_1 signaling, and at least one third information of the R third information is
- the DCI format 2_2 signaling bearer, the DCI format 0_0, the DCI format 0_1 and the DCI format 2_2 are defined in Chapter 7.3 of 3GPP TS 38.212.
- the R is greater than 1, and one of the R third information and the first information are carried by the same DCI signaling.
- the R is greater than 1, and the end time of sending DCI signaling corresponding to any third information carried by different DCI signaling in the R third information corresponding to the first information is not too late At the time when the DCI signaling carrying the first information ends.
- the R is greater than 1, and the end sending time of the DCI signaling corresponding to any third information of the R third information corresponding to the first information respectively carried by different DCI signaling is earlier than The moment when the DCI signaling carrying the first information ends.
- the R is greater than 1, and the latest third information that is occupied by the DCI signaling corresponding to any third information carried by different DCI signaling for the first information respectively is the latest One multi-carrier symbol is no later than the latest multi-carrier symbol occupied by the DCI signaling carrying the first information.
- the R is greater than 1, and the latest third information that is occupied by the DCI signaling corresponding to any third information carried by different DCI signaling for the first information respectively is the latest One multi-carrier symbol is earlier than the latest multi-carrier symbol occupied by the DCI signaling carrying the first information.
- the R is greater than 1, one of the R third information and the first information are carried by the same DCI signaling, and one of the R third information
- the third information includes the TPC command for scheduled PUSCH field.
- the R is equal to 1, and the R third information and the first information are carried by the same DCI signaling.
- the R is equal to 1
- the R third information and the first information are carried by the same DCI signaling
- the R third information includes a TPC command for scheduled PUSCH field.
- the R third information is transmitted on a downlink physical layer control channel (that is, a downlink channel that can only be used to carry physical layer signaling).
- a downlink physical layer control channel that is, a downlink channel that can only be used to carry physical layer signaling.
- the downlink physical layer control channel is PDCCH.
- the downlink physical layer control channel is sPDCCH.
- the downlink physical layer control channel is NR-PDCCH.
- the downlink physical layer control channel is NB-PDCCH.
- the R third information is transmitted on a downlink physical layer data channel.
- the downlink physical layer data channel is PDSCH.
- the downlink physical layer data channel is sPDSCH.
- the downlink physical layer data channel is NR-PDSCH.
- the downlink physical layer data channel is NB-PDSCH.
- the unit of the third component is dB.
- the third component is PUSCH power control adjustment state (PUSCH power control adjustment state).
- the units of the R first offsets are all dB.
- the R is equal to 1, and the third component is the same as the R first offsets.
- the R is greater than 1, and the third component is the sum of the R first offsets.
- the third component is equal to the base 10 logarithm of the linear value of the third component and multiplied by 10.
- the linear coefficients of the third component and each of the R first offsets are positive real numbers.
- the linear coefficient of the third component and each of the R first offsets is 1.
- the linear coefficient of the first power value and the third component is a positive real number.
- the linear coefficient of the first power value and the third component is 1.
- the third component is f b,f,c (i,l), the f b,f,c (i,l) is the PUSCH power control adjustment state, and the f b,f,
- c (i,l) please refer to Section 7.1.1 in 3GPP TS38.213.
- the above method further includes:
- the base station device monitors whether a wireless signal is sent in the first time window on each of the N sub-bands.
- the first time window includes time-domain resources occupied by the first wireless signal.
- the user equipment is in the M frequency domain resource blocks except for the M according to the monitoring performed in the first time window on the N sub-bands frequency-domain resource blocks outside the MM 1 frequency domain resource blocks or transmits a radio signal is not transmitted radio signal is not received successfully.
- the user equipment is in the M frequency domain resource blocks except for the M according to the monitoring performed in the first time window on the N sub-bands frequency-domain resource blocks outside the MM 1 frequency-domain radio signal is not transmitted in the resource block.
- the user equipment is in the M frequency domain resource blocks except for the M according to the monitoring performed in the first time window on the N sub-bands
- the wireless signals sent in the MM 1 frequency domain resource blocks outside the frequency domain resource blocks are not successfully received.
- the monitoring refers to blind detection, that is, receiving a signal and performing a decoding operation, and if the decoding is determined to be correct according to CRC (Cyclic Redundancy Check) bits, it is determined that the given wireless signal is in the given stator It is sent in a given time window on the frequency band; otherwise it is judged that the given wireless signal is not sent in the given time window on the given stator frequency band.
- CRC Cyclic Redundancy Check
- the monitoring refers to coherent detection, that is, to perform coherent reception using the DMRS RS sequence of the physical layer channel where a given wireless signal is located, and measure the energy of the signal obtained after the coherent reception. If the energy of the signal obtained after the coherent reception is greater than the first given threshold, it is determined that the given wireless signal is transmitted in a given time window on the given stator frequency band; otherwise, it is determined that the given wireless signal is not It is sent in a given time window on a given stator band.
- the monitoring refers to energy detection, that is, to sense the energy of a wireless signal and average it over time to obtain received energy. If the received energy is greater than the second given threshold, it is judged that the given wireless signal is sent in a given time window on the given stator frequency band; otherwise, it is judged that the given wireless signal is not in the given time window on the given stator frequency band Was sent.
- the monitoring refers to coherent detection, that is, to use a given sequence of wireless signals for coherent reception, and measure the energy of the signal obtained after the coherent reception. If the energy of the signal obtained after the coherent reception is greater than the third given threshold, it is judged that the given wireless signal is transmitted in a given time window on the given stator frequency band; otherwise, it is judged that the given wireless signal is not It is sent in a given time window on a given stator band.
- a given node determines whether a given wireless signal is transmitted in a given time window on a given stator frequency band according to the energy of the received signal.
- the given node is the base station device.
- the given node if the energy of the received signal is low, the given node considers that the given wireless signal has not been sent in the given time window on the given stator frequency band, otherwise, the given The fixed node considers that the given wireless signal is transmitted in a given time window on a given stator frequency band.
- the given node if the energy of the received signal is lower than the reference energy threshold, the given node considers that the given wireless signal has not been sent in the given time window on the given stator band, otherwise, The given node considers that the given wireless signal is sent in a given time window on a given stator frequency band; the reference energy threshold is configured by the given node itself.
- a given node determines whether a given wireless signal is transmitted in a given time window on a given stator frequency band according to the power of the received signal.
- the given node is the base station device.
- the given node if the power of the received signal is low, the given node considers that the given wireless signal has not been transmitted in a given time window on the given stator frequency band, otherwise, the given The fixed node considers that the given wireless signal is transmitted in a given time window on a given stator frequency band.
- the given node if the power of the received signal is lower than the reference power threshold, the given node considers that the given wireless signal has not been sent in the given time window on the given stator band, otherwise, The given node considers that the given wireless signal is sent in a given time window on a given stator frequency band; the reference power threshold is configured by the given node itself.
- a given node determines whether the given wireless signal is transmitted in a given time window on a given stator frequency band according to the correlation between the received signal and the given wireless signal.
- the given node is the base station device.
- the given node if the correlation between the received signal and the given wireless signal is low, the given node considers that the given wireless signal is not in the given time window on the given stator frequency band Is sent, otherwise, the given node considers the given wireless signal to be sent in a given time window on a given stator frequency band.
- the given node if the correlation between the received signal and the given wireless signal is lower than a reference correlation threshold, the given node considers the given wireless signal to be given on a given stator frequency band It is not sent in the time window, otherwise, the given node considers that the given wireless signal is sent in the given time window on the given stator frequency band; the reference correlation threshold is configured by the given node itself.
- a given node measures the received signal according to the configuration parameters of a given wireless signal to estimate a channel, and the given node determines that the given wireless signal is on a given sub-band according to the estimated channel Is sent in the given time window of.
- the given node is the base station device.
- the given node if the estimated energy of the channel is low, the given node considers that the given wireless signal has not been sent in the given time window on the given sub-band, otherwise , The given node considers that the given wireless signal is sent in a given time window on a given stator frequency band.
- the given node if the estimated energy of the channel is lower than the reference channel energy threshold, the given node considers that the given wireless signal is not in a given time window on the given sub-band Is sent, otherwise, the given node considers that the given wireless signal is sent in a given time window on a given stator frequency band; the reference channel energy threshold is configured by the given node itself.
- the given node if the estimated power of the channel is low, the given node considers that the given wireless signal has not been sent in a given time window on a given sub-band, otherwise , The given node considers that the given wireless signal is sent in a given time window on a given stator frequency band.
- the given node if the estimated power of the channel is lower than a reference channel power threshold, the given node considers that the given wireless signal is not in a given time window on a given sub-band Is sent, otherwise, the given node considers that the given wireless signal is sent in a given time window on a given stator frequency band; the reference channel power threshold is configured by the given node itself.
- the given node considers that the given wireless signal is on the given sub-band There is no transmission in the given time window, otherwise, the given node considers that the given wireless signal is transmitted in the given time window on the given stator frequency band.
- Embodiment 6 illustrates a schematic diagram of the first power value related to N 1 , as shown in FIG. 6.
- the first power value is linearly related to the first component; the N 1 and the N in this application are used to determine the first component.
- the N 1 and the N are used to determine the first component, and the frequency domains of the M frequency domain resource blocks included in any two sub-bands of the N sub-bands respectively The number of resource blocks is the same.
- the N 1 and the N are used to determine the first component, and any one of the N sub-bands includes M/N frequencies in the M frequency-domain resource blocks For a domain resource block, M is a positive integer multiple of N.
- the linear value of the first component is equal to the value obtained by dividing N by the N 1 .
- the linear coefficient of the first power value and the first component is a negative real number.
- the linear coefficient of the first power value and the first component is -1.
- the linear value of the first component is equal to the value obtained by dividing N 1 by N.
- the linear coefficient of the first power value and the first component is a positive real number.
- the linear coefficient of the first power value and the first component is 1.
- Embodiment 7 illustrates a schematic diagram of the first power value related to M 1 , as shown in FIG. 7.
- the first power value is linearly related to the first component; the M 1 and the M in this application are used to determine the first component.
- the linear value of the first component is equal to the value obtained by dividing the M by the M 1 .
- the linear coefficient of the first power value and the first component is a negative real number.
- the linear coefficient of the first power value and the first component is -1.
- the linear value of the first component is equal to the value obtained by dividing M 1 by M.
- the linear coefficient of the first power value and the first component is a positive real number.
- the linear coefficient of the first power value and the first component is 1.
- Embodiment 8 illustrates another schematic diagram of the first power value related to M 1 , as shown in FIG. 8.
- Example 8 the first power value associated with the first component linearly; M 1 and the sub-carriers of the present application in the first radio signal occupied spacing of the subcarriers is used for determining the second A portion.
- the linear value of the first component is equal to the product of M 1 and 2 ⁇ , that is, 2 ⁇ M 1 , where the 2 ⁇ is equal to the subcarrier of the subcarrier occupied by the first wireless signal The value obtained by dividing the interval by 15 kHz.
- the linear coefficient of the first power value and the first component is a positive real number.
- the linear coefficient of the first power value and the first component is 1.
- the sub-carrier interval of the sub-carriers occupied by the first wireless signal is equal to 15 kHz, the ⁇ is equal to 0, and the 2 ⁇ is equal to 1.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 30 kHz, the ⁇ is equal to 1, and the 2 ⁇ is equal to 2.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 60 kHz, the ⁇ is equal to 2, and the 2 ⁇ is equal to 4.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 120 kHz, the ⁇ is equal to 3, and the 2 ⁇ is equal to 8.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 240 kHz, the ⁇ is equal to 4, and the 2 ⁇ is equal to 16.
- Embodiment 9 illustrates a schematic diagram in which a first power value and N 1 are used together to determine a second power value, as shown in FIG. 9.
- the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N in the present application are used to determine the first parameter.
- the N 1 and the N are used to determine the first parameter, and the frequency domains in the M frequency domain resource blocks included in any two sub-bands of the N sub-bands respectively The number of resource blocks is the same.
- the N 1 and the N are used to determine the first parameter, and any one of the N sub-bands includes M/N frequencies in the M frequency-domain resource blocks For a domain resource block, M is a positive integer multiple of N.
- the first power value is related to the N 1 , and the first power value and the N 1 are used together to determine the second power value.
- the linear value of the first parameter N is equal to the value obtained by dividing the N 1.
- the linear coefficient of the second power value and the first parameter is a positive real number.
- the linear coefficient of the second power value and the first parameter is 1.
- the linear value of the first parameter is equal to the value obtained by dividing N 1 by N.
- the linear coefficient of the second power value and the first parameter is a negative real number.
- the linear coefficient of the second power value and the first parameter is -1.
- Embodiment 10 illustrates a schematic diagram in which a first power value and M 1 are used together to determine a second power value, as shown in FIG. 10.
- the second power value is linearly related to both the first power value and the first parameter; the M 1 and the M in this application are used to determine the first parameter.
- the first power value is related to the M 1 , and the first power value and the M 1 are used together to determine the second power value.
- the linear value of the first parameter is equal to the value obtained by dividing the M by the M 1 .
- the linear coefficient of the second power value and the first parameter is a positive real number.
- the linear coefficient of the second power value and the first parameter is 1.
- the linear value of the first parameter is equal to the value obtained by dividing M 1 by M.
- the linear coefficient of the second power value and the first parameter is a negative real number.
- the linear coefficient of the second power value and the first parameter is -1.
- Embodiment 11 illustrates a schematic diagram of a first power value, as shown in FIG. 11.
- the first power value and the first component, the second component, the third component, the fourth component, the fifth component and the sixth component in this application Are all linearly related.
- the N 1 and the N in this application are used to determine the first component.
- the M 1 and the M in this application are used to determine the first component.
- the first power value and the first component, the second component, the third component, the fourth component, the fifth component and the sixth component are all linearly related ;
- the linear coefficient of the first power value and the third component is 1, the linear coefficient of the first power value and the fourth component is 1, the first power value and the fifth component
- the linear coefficient is 1, and the linear coefficient of the first power value and the sixth component is 1, namely:
- P 1 p 4 +p 6 +b 1 p 1 +b 2 p 2 +p 5 +p 3 ;
- P 1 , p 1 , b 1 , p 2 , b 2 , p 3 , p 4 and p 5 are the first power value, the first component, the first power value and the A linear coefficient of a component, the second component, the linear coefficient of the first power value and the second component, the third component, the fourth component and the fifth component.
- the first power value and the first component, the second component, the third component, the fourth component, the fifth component and the sixth component are all linearly related ;
- the linear coefficient of the first power value and the third component is 1, the linear coefficient of the first power value and the fourth component is 1, the first power value and the fifth component
- the linear coefficient is 1, and the linear coefficient of the first power value and the sixth component is 1, namely:
- P 1 , p 1 and b 1 are the first power value, the first component and the linear coefficient of the first power value and the first component; Said The ⁇ b,f,c (j), the PL b,f,c (q d ), the ⁇ TF,b,f,c (i) and the f b,f,c (i, l)
- ⁇ b,f,c (j) the PL b,f,c (q d ), the ⁇ TF,b,f,c (i) and the f b,f,c (i, l)
- the unit of the sixth component is dB.
- the sixth component is equal to the base 10 logarithm of the linear value of the sixth component and multiplied by 10.
- the sixth component is Said For specific definitions, please refer to Section 7.1.1 in TS38.213.
- the linear value of the sixth component is equal to the product of M and 2 ⁇ , that is, 2 ⁇ M, where 2 ⁇ is equal to the subcarrier interval of the subcarrier occupied by the first wireless signal Value obtained at 15kHz.
- the linear coefficients of the first power value and the sixth component are positive real numbers.
- the linear coefficient of the first power value and the sixth component is 1.
- the sub-carrier interval of the sub-carriers occupied by the first wireless signal is equal to 15 kHz, the ⁇ is equal to 0, and the 2 ⁇ is equal to 1.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 30 kHz, the ⁇ is equal to 1, and the 2 ⁇ is equal to 2.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 60 kHz, the ⁇ is equal to 2, and the 2 ⁇ is equal to 4.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 120 kHz, the ⁇ is equal to 3, and the 2 ⁇ is equal to 8.
- the sub-carrier spacing of the sub-carriers occupied by the first wireless signal is equal to 240 kHz, the ⁇ is equal to 4, and the 2 ⁇ is equal to 16.
- Embodiment 12 illustrates another schematic diagram of the first power value, as shown in FIG. 12.
- the first power value is linearly related to the first component, the second component, the third component, the fourth component and the fifth component in this application, the present application M 1 and the first wireless signal subcarriers occupied spacing of the subcarriers is used to determine the first component.
- the first power value is linearly related to the first component, the second component, the third component, the fourth component, and the fifth component; the first power The linear coefficient of the value and the third component is 1, the linear coefficient of the first power value and the fourth component is 1, and the linear coefficient of the first power value and the fifth component is 1, ie :
- P 1 , p 1 , b 1 , p 2 , b 2 , p 3 , p 4 and p 5 are the first power value, the first component, the first power value and the A linear coefficient of a component, the second component, the linear coefficient of the first power value and the second component, the third component, the fourth component and the fifth component.
- the first power value is linearly related to the first component, the second component, the third component, the fourth component, and the fifth component; the first The linear coefficient of the power value and the third component is 1, the linear coefficient of the first power value and the fourth component is 1, the linear coefficient of the first power value and the fifth component is 1, which is:
- P 1 , p 1 and b 1 are the first power value, the first component and the linear coefficient of the first power value and the first component;
- ⁇ b,f,c (j), the PL b,f,c (q d ), the ⁇ TF,b,f,c (i) and the f b,f,c (i, l) For the specific definition, please refer to Section 7.1.1 in TS38.213.
- Embodiment 13 illustrates a schematic diagram of a second power value, as shown in FIG. 13.
- the second power value is linearly related to the first limited power value in the present application, the first power value and the first parameter.
- the second power value and the first limited power value, the first power value and the first parameter are both linearly related, and the second power value and the first limited power value
- the linear coefficient of is 1, the linear coefficient of the second power value and the first power value is -1, and the linear coefficient of the second power value and the first parameter is a, that is:
- P 2 , P max , P 1 and r are the second power value, the first limited power value, the first power value and the first parameter, respectively.
- the linear value of the first parameter is equal to the value obtained by dividing N by the N 1 , and the linear coefficient of the second power value and the first parameter is a positive real number, That is, a>0.
- the linear value of the first parameter is equal to the value obtained by dividing N 1 by the N, and the linear coefficient of the second power value and the first parameter is a negative real number , Ie a ⁇ 0.
- the linear value of the first parameter is equal to the value obtained by dividing M by the M 1 , and the linear coefficient of the second power value and the first parameter is a positive real number, That is, a>0.
- the linear value of the first parameter is equal to the value obtained by dividing M 1 by the M, and the linear coefficient of the second power value and the first parameter is a negative real number , Ie a ⁇ 0.
- Embodiment 14 illustrates a schematic diagram in which a given access detection performed on a given stator frequency band is used to determine whether to start transmitting a wireless signal at a given time in the given stator frequency band, as shown in FIG. 14.
- the given access detection includes performing X energy detections in X time sub-pools on the given stator frequency band respectively to obtain X detection values, where X is a positive integer; the X The end time of the time sub-pool is not later than the given time.
- the given access detection corresponds to one of the N access detections included in the channel access detection in this application, and the given sub-band corresponds to the N sub-bands in this application Is a sub-band used to perform the given access detection.
- the process of the given access detection can be described by the flowchart in FIG. 14.
- the base station device in the present application is in an idle state in step S1001, and it is determined in step S1002 whether to send; in step 1003, energy detection is performed within a delay period (defer duration); in step In S1004, it is determined whether all the time slots in this delay period are idle. If yes, proceed to step S1005 to set the first counter equal to X1, where X1 is an integer not greater than X; otherwise, return to step S1004; in step In S1006, it is determined whether the first counter is 0.
- step S1007 to start sending the wireless signal at the given time of the given stator frequency band; otherwise proceed to step S1008 in an additional time slot Perform energy detection within an additional slot; determine whether the additional time slot period is idle in step S1009, if so, proceed to step S1010 to decrement the first counter by 1, and then return to step 1006; otherwise proceed to step In S1011, energy detection is performed within an additional delay period; in step S1012, it is determined whether all time slot periods in the additional delay period are idle, and if so, proceed to step S1010; otherwise, return to step S1011.
- the first counter in FIG. 14 is cleared before the given time, the result of the given access detection is that the channel is idle, and a wireless signal can be sent at the given time; Otherwise, the wireless signal cannot be sent at the given time.
- the condition that the first counter is cleared is that X1 detection values of the X detection values corresponding to X1 time subpools in the X time subpools are all lower than a first reference threshold, and the X1 The starting time of the time subpool is after step S1005 in FIG. 14.
- the end time of the given access detection is not later than the given time.
- the end time of the given access detection is earlier than the given time.
- the X time sub-pools include all delay periods in FIG. 14.
- the X time sub-pools include a partial delay period in FIG. 14.
- the X time sub-pools include all delay periods and all additional time slot periods in FIG. 14.
- the X time sub-pools include all delay periods and some additional time slot periods in FIG. 14.
- the X time sub-pools include all delay periods, all additional time slot periods, and all additional delay periods in FIG. 14.
- the X time sub-pools include all delay periods, some additional time slot periods, and all additional delay periods in FIG. 14.
- the X time sub-pools include all delay periods, partial additional time slot periods, and partial additional delay periods in FIG. 14.
- the duration of any of the X time subpools is one of ⁇ 16 microseconds, 9 microseconds ⁇ .
- any slot duration within a given time period is one of the X time sub-pools; the given time period is ⁇ all Delay period, any additional time slot period, any additional delay period ⁇ .
- performing energy detection within a given time period refers to: performing energy detection within all slot periods within the given time period; the given time period is shown in FIG. 14 Any one of the included ⁇ all delay periods, all additional time slot periods, all additional delay periods ⁇ .
- being judged to be idle by energy detection in a given time period means that all the time slot periods included in the given period are judged to be idle by energy detection; the given time period is a drawing Any one of the ⁇ all delay periods, all additional time slot periods, all additional delay periods ⁇ included in 14.
- the energy detection in a given time slot period is determined to be idle means that: the base station device senses the power of all wireless signals on the given stator frequency band in a given time unit, and at the time On average, the obtained received power is lower than the first reference threshold; the given time unit is a duration period in the given time slot period.
- the duration of the given time unit is not shorter than 4 microseconds.
- all energy detections in a given time slot period are judged to be idle means that: the base station device senses the energy of all wireless signals on the given stator frequency band in a given time unit, and On average, the obtained received energy is lower than the first reference threshold; the given time unit is a duration period in the given time slot period.
- the duration of the given time unit is not shorter than 4 microseconds.
- performing energy detection within a given time period refers to: performing energy detection within all time sub-pools within the given time period; the given time period is ⁇ all delays included in FIG. 14 Time period, any additional time slot period, all additional delay periods ⁇ , any of the time sub-pools belong to the X time sub-pools.
- being judged to be idle by energy detection in a given time period means that: the detection values obtained by energy detection for all time sub-pools included in the given time period are lower than the first reference threshold;
- the given time period is any one of ⁇ all delay periods, all additional time slot periods, all additional delay periods ⁇ included in FIG. 14, and all the time subpools belong to the X time subpools ,
- the detection value belongs to the X detection values.
- the duration of a delay period (defer duration) is 16 microseconds plus Y1 and 9 microseconds, where Y1 is a positive integer.
- a delay period includes Y1+1 time sub-pools in the X time sub-pools.
- the duration of the first time sub-pool in the Y1+1 time sub-pools is 16 microseconds, and the duration of the other Y1 time sub-pools is 9 microseconds .
- the given priority level is used to determine the Y1.
- the given priority level is a channel access priority level (Channel Access Priority Class).
- Channel Access Priority Class For the definition of the channel access priority level, see Chapter 15 in 3GPP TS 36.213.
- Y1 belongs to ⁇ 1, 2, 3, 7 ⁇ .
- a delay period includes a plurality of slot periods.
- the first slot period and the second slot period of the plurality of slot periods are discontinuous.
- the time interval between the first slot period and the second slot period of the plurality of slot periods is 7 milliseconds.
- the duration of an additional delay period is 16 microseconds plus Y2 and 9 microseconds, where Y2 is a positive integer.
- an additional delay period includes Y2+1 time sub-pools in the X time sub-pools.
- the duration of the first time sub-pool in the Y2+1 time sub-pools is 16 microseconds, and the duration of the other Y2 time sub-pools is 9 microseconds .
- the given priority level is used to determine the Y2.
- the Y2 belongs to ⁇ 1, 2, 3, 7 ⁇ .
- the duration of a delay period is equal to the duration of an additional delay period.
- Y1 is equal to Y2.
- an additional delay period includes multiple slot periods.
- the first slot period and the second slot period of the plurality of slot periods are discontinuous.
- the time interval between the first slot period and the second slot period of the plurality of slot periods is 7 milliseconds.
- the duration of a slot duration is 9 microseconds.
- a time slot period is 1 time sub-pool among the X time sub-pools.
- the duration of an additional slot period is 9 microseconds.
- an additional time slot period includes 1 time sub-pool in the X time sub-pools.
- the X times of energy detection is used to determine whether the given stator frequency band is idle.
- the X-time energy detection is used to determine whether the given stator frequency band can be used by the base station device to transmit wireless signals.
- the X detection value units are all dBm (milli-decibel).
- the units of the X detection values are all milliwatts (mW).
- the units of the X detection values are all Joules.
- the X1 is smaller than the X.
- the X is greater than 1.
- the unit of the first reference threshold is dBm (milli-decibel).
- the unit of the first reference threshold is milliwatts (mW).
- the unit of the first reference threshold is Joule.
- the first reference threshold is equal to or less than -72 dBm.
- the first reference threshold is any value equal to or less than the first given value.
- the first given value is predefined.
- the first given value is configured by higher layer signaling.
- the first reference threshold is freely selected by the base station device under conditions equal to or less than a first given value.
- the first given value is predefined.
- the first given value is configured by higher layer signaling.
- the X times of energy detection are energy detection in the process of Cat 4 LBT (Listen BeforeBefore Talk, listen before sending), and X1 is CWp in the process of Cat 4 LBT, the CWp It is the size of the contention window.
- CWp For the specific definition of the CWp, see Chapter 15 in 3GPP TS36.213.
- At least one of the X detected values that does not belong to the X1 detected values is lower than the first reference threshold.
- At least one detection value among the X detection values that does not belong to the X1 detection values is not lower than the first reference threshold.
- the durations of any two of the X1 time sub-pools are equal.
- At least two of the X1 time subpools have unequal durations.
- the X1 time subpools include the latest time subpool in the X time subpools.
- the X1 time sub-pools include only time slot periods in eCCA.
- the X time subpools include the X1 time subpools and X2 time subpools. Any time subpool in the X2 time subpools does not belong to the X1 time subpools. ;
- the X2 is a positive integer not greater than the X minus the X1.
- the X2 time sub-pools include time slot periods in the initial CCA.
- the positions of the X2 time subpools in the X time subpools are continuous.
- At least one of the X2 time subpools corresponds to a detection value lower than the first reference threshold.
- the detection value corresponding to at least one time sub-pool among the X2 time sub-pools is not lower than the first reference threshold.
- the X2 time sub-pools include all time slot periods in all delay periods.
- the X2 time sub-pools include all time slot periods within at least one additional delay period.
- the X2 time sub-pools include at least one additional time slot period.
- the X2 time sub-pools include all additional time slot periods determined to be non-idle by energy detection in FIG. 14 and all time slot periods within all additional delay periods.
- the X1 time sub-pools belong to X1 sub-pool sets, and any sub-pool set in the X1 sub-pool set includes positive integer time sub-pools in the X time sub-pools;
- the detection value corresponding to the sub-pool at any time in the X1 sub-pool set is lower than the first reference threshold.
- At least one sub-pool set in the X1 sub-pool set includes a number of time sub-pools equal to 1.
- At least one sub-pool set in the X1 sub-pool set includes a number of time sub-pools greater than 1.
- all time sub-pools in any one of the X1 sub-pool sets belong to the same additional delay period or additional slot period that is determined to be idle by energy detection.
- At least one time sub-pool of the X time sub-pools that does not belong to the X1 sub-pool set has a detection value lower than the first reference threshold.
- At least one time sub-pool in the X time sub-pools that does not belong to the X1 sub-pool set has a detection value corresponding to not less than the first reference threshold .
- Embodiment 15 illustrates another schematic diagram of a given access detection performed on a given stator frequency band used to determine whether to start transmitting a wireless signal at a given time in the given stator frequency band, as shown in FIG. 15.
- the given access detection includes performing Y energy detections in Y time sub-pools on the given stator frequency band respectively to obtain Y detection values, where Y is a positive integer; the Y The end time of the time sub-pool is not later than the given time.
- the given access detection corresponds to one of the N access detections included in the channel access detection in this application, and the given sub-band corresponds to the N sub-bands in this application Is a sub-band used to perform the given access detection.
- the process of the given access detection can be described by the flowchart in FIG. 15.
- the user equipment in the present application is in an idle state in step S2201, and it is determined in step S2202 whether to send; in step 2203, energy detection is performed within a sensing time (Sensing interval); in step In S2204, it is judged whether all time slot periods in the sensing time are idle (Idle). If yes, proceed to step S2205 to send a wireless signal on the first sub-band; otherwise, return to step S2203.
- the first given time period includes positive integer number of time sub-pools in the Y time sub-pools, and the first given time period is any of ⁇ all perceived times ⁇ included in FIG. 15 A period of time.
- the second given time period includes 1 time sub-pool among the Y1 time sub-pools. The second given time period is the perception time judged as idle by energy detection in FIG. 15.
- Y1 is equal to 2.
- Y1 is equal to Y.
- the duration of a sensing time is 25 microseconds.
- one perception time includes 2 time slots, and the 2 time slots are discontinuous in the time domain.
- the time interval in the two time slot periods is 7 microseconds.
- the Y time sub-pools include the monitoring time in Category 2 LBT.
- the Y time sub-pools include time slots in a sensing interval in the Type 2 UL access channel procedure (Second Type Uplink Channel Access Procedure).
- the specific time interval of the sensing interval For definitions, see chapter 15.2 in 3GPP TS36.213.
- the duration of the sensing interval is 25 microseconds.
- the Y time sub-pools include Tf and Tsl in a sensing interval (sensing interval) in Type 2 UL access channel procedure (type 2 uplink channel access procedure), the Tf and the For the specific definition of Tsl, please refer to chapter 15.2 in 3GPP TS36.213.
- the duration of the Tf is 16 microseconds.
- the duration of the Tsl is 9 microseconds.
- the duration of the first time sub-pool in the Y1 time sub-pools is 16 microseconds, and the duration of the second time sub-pool in the Y1 time sub-pools is 9 microseconds , Y1 is equal to 2.
- the duration of the Y1 time subpools are all 9 microseconds; the time interval between the first time subpool and the second time subpool in the Y1 time subpools is 7 microseconds Seconds, Y1 is equal to 2.
- Embodiment 16 illustrates a structural block diagram of a processing device in a UE, as shown in FIG. 16.
- the UE processing device 1200 includes a first receiver 1201 and a first transmitter 1202.
- the first receiver 1201 includes the receiver 456, the reception processor 452, the first processor 441, and the controller/processor 490 in Embodiment 4.
- the first receiver 1201 includes at least the former two of the receiver 456, the reception processor 452, the first processor 441, and the controller/processor 490 in Embodiment 4.
- the first transmitter 1202 includes the transmitter 456, the transmission processor 455, the first processor 441, and the controller/processor 490 in Embodiment 4.
- the first transmitter 1202 includes at least the first two of the transmitter 456, the transmission processor 455, the first processor 441, and the controller/processor 490 in Embodiment 4.
- the first receiver 1201 receiving first information, which is used to indicate M frequency domain resource blocks in N sub-bands; performing channel access detection on the N sub-bands, the channel is connected Incoming detection is used to determine that N 1 of the N sub-bands are idle;
- -A first transmitter 1202 sending a first wireless signal on M 1 frequency domain resource blocks in the N 1 sub-bands;
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency domain resource blocks in at least a frequency domain resource block; 1 of the M frequency-domain resource block is the M 1 subbands frequency domain resource block belonging to the N of the M frequency-domain resource block 1; the Any two of the N sub-bands are orthogonal, and any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine The transmission power of the first wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1, the M is a positive integer greater than 1, the N 1 is a positive integer not greater than N, and the M 1 is a positive integer not greater than M.
- the first transmitter 1202 also sends a second wireless signal; wherein, the second wireless signal is used to carry a second power value; the first power value and the N 1 are used in common In order to determine the second power value, or the first power value and the M 1 are used together to determine the second power value.
- the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component; or, the M 1 and the M are used to determine The first component; or, the subcarrier spacing of the subcarriers occupied by the M 1 and the first wireless signal is used to determine the first component.
- the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N are used to determine the first parameter, or, the M 1 And the M are used to determine the first parameter.
- the first receiver 1201 also receives a first reference signal group; wherein the measurement of the first reference signal group is used to determine a second component, the first power value and the first Two-component linear correlation.
- the first receiver 1201 also receives second information; wherein, the second information is used to indicate a linear coefficient of the first power value and the second component.
- the first receiver 1201 also receives R third information; wherein, the R third information is used to indicate the R first offset, the third component, and the R third information, respectively.
- R third information is used to indicate the R first offset, the third component, and the R third information, respectively.
- Each of the first offsets is linearly related, the first power value and the third component are linearly related, and R is a positive integer.
- Embodiment 17 illustrates a structural block diagram of a processing device in a base station device, as shown in FIG. 17.
- a processing device 1300 in a base station device includes a second transmitter 1301 and a second receiver 1302.
- the second transmitter 1301 includes the transmitter 416, the transmission processor 415, the first processor 471, and the controller/processor 440 in Embodiment 4.
- the second transmitter 1301 includes at least the first two of the transmitter 416, the transmission processor 415, the first processor 471, and the controller/processor 440 in Embodiment 4.
- the second receiver 1302 includes the receiver 416, the reception processor 412, the first processor 471, and the controller/processor 440 in Embodiment 4.
- the second receiver 1302 includes at least the former two of the receiver 416, the reception processor 412, the first processor 471, and the controller/processor 440 in Embodiment 4.
- -A second transmitter 1301, sending first information, which is used to indicate M frequency-domain resource blocks in N sub-bands;
- any one of the M frequency-domain resource blocks belongs to one of the N sub-bands, and any one of the N sub-bands includes the M frequency domain resource blocks in at least a frequency domain resource block; 1 of the M frequency-domain resource block is the M 1 subbands frequency domain resource block belonging to the N of the M frequency-domain resource block 1; the Any two of the N sub-bands are orthogonal, and any two of the M frequency-domain resource blocks are orthogonal in the frequency domain; the first power value is used to determine The transmission power of the first wireless signal; the first power value is related to the N 1 or the first power value is related to the M 1 ; the N is a positive integer greater than 1, the M is a positive integer greater than 1, the N 1 is a positive integer not greater than N, and the M 1 is a positive integer not greater than M.
- the second receiver 1302 also receives a second wireless signal; wherein, the second wireless signal is used to carry a second power value; the first power value and the N 1 are used in common In order to determine the second power value, or the first power value and the M 1 are used together to determine the second power value.
- the first power value is linearly related to the first component; the N 1 and the N are used to determine the first component; or, the M 1 and the M are used to determine The first component; or, the subcarrier spacing of the subcarriers occupied by the M 1 and the first wireless signal is used to determine the first component.
- the second power value is linearly related to both the first power value and the first parameter; the N 1 and the N are used to determine the first parameter, or, the M 1 And the M are used to determine the first parameter.
- the second transmitter 1301 also sends a first reference signal group; wherein, the measurement of the first reference signal group is used to determine a second component, the first power value and the first Two-component linear correlation.
- the second transmitter 1301 also sends second information; wherein, the second information is used to indicate a linear coefficient of the first power value and the second component.
- the second transmitter 1301 also sends R third information; wherein, the R third information is used to indicate R first offsets, the third component, and the R third information, respectively.
- the R third information is used to indicate R first offsets, the third component, and the R third information, respectively.
- Each of the first offsets is linearly related, the first power value and the third component are linearly related, and R is a positive integer.
- User equipment, terminals and UEs in this application include but are not limited to drones, communication modules on drones, remote control aircraft, aircraft, small aircraft, mobile phones, tablet computers, notebooks, in-vehicle communication equipment, wireless sensors, network cards Internet of Things terminal, RFID terminal, NB-IOT terminal, MTC (Machine Type Communication) terminal, eMTC (enhanced MTC, enhanced MTC) terminal, data card, Internet card, car communication device, low-cost mobile phone, low Cost wireless communication devices such as tablets.
- drones communication modules on drones, remote control aircraft, aircraft, small aircraft, mobile phones, tablet computers, notebooks, in-vehicle communication equipment, wireless sensors, network cards Internet of Things terminal, RFID terminal, NB-IOT terminal, MTC (Machine Type Communication) terminal, eMTC (enhanced MTC, enhanced MTC) terminal, data card, Internet card, car communication device, low-cost mobile phone, low Cost wireless communication devices such as tablets.
- MTC Machine Type Communication
- eMTC enhanced M
- the base station or system equipment in this application includes but is not limited to wireless communication such as macro cell base station, micro cell base station, home base station, relay base station, gNB (NR Node B) NR Node B, TRP (Transmitter Receiver Point, sending and receiving node), etc. equipment.
- wireless communication such as macro cell base station, micro cell base station, home base station, relay base station, gNB (NR Node B) NR Node B, TRP (Transmitter Receiver Point, sending and receiving node), etc. equipment.
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Abstract
Description
Claims (10)
- 一种用于无线通信的用户设备,其特征在于,包括:-第一接收机,接收第一信息,所述第一信息被用于指示N个子频带中的M个频域资源块;在所述N个子频带上执行信道接入检测,所述信道接入检测被用于确定所述N个子频带中的N 1个子频带是空闲的;-第一发射机,在所述N 1个子频带中的M 1个频域资源块上发送第一无线信号;其中,所述M个频域资源块中的任一频域资源块属于所述N个子频带中的一个子频带,所述N个子频带中的任一子频带包括所述M个频域资源块中的至少一个频域资源块;所述M 1个频域资源块是所述M个频域资源块中属于所述N 1个子频带中的M 1个频域资源块;所述N个子频带中的任意两个子频带是正交的,所述M个频域资源块中的任意两个频域资源块在频域上都是正交的;第一功率值被用于确定所述第一无线信号的发送功率;所述第一功率值与所述N 1有关,或者,所述第一功率值与所述M 1有关;所述N是大于1的正整数,所述M是大于1的正整数,所述N 1是不大于所述N的正整数,所述M 1是不大于所述M的正整数。
- 根据权利要求1所述的方法,其特征在于,所述第一发射机还发送第二无线信号;其中,所述第二无线信号被用于承载第二功率值;所述第一功率值和所述N 1被共同用于确定所述第二功率值,或者,所述第一功率值和所述M 1被共同用于确定所述第二功率值。
- 根据权利要求1或2所述的方法,其特征在于,所述第一功率值与第一分量线性相关;所述N 1和所述N被用于确定所述第一分量;或者,所述M 1和所述M被用于确定所述第一分量;或者,所述M 1和所述第一无线信号所占用的子载波的子载波间隔被用于确定所述第一分量。
- 根据权利要求2或3所述的方法,其特征在于,所述第二功率值与所述第一功率值和第一参数都线性相关;所述N 1和所述N被用于确定所述第一参数,或者,所述M 1和所述M被用于确定所述第一参数。
- 根据权利要求1至4中任一权利要求所述的方法,其特征在于,所述第一接收机还接收第一参考信号组;其中,针对所述第一参考信号组的测量被用于确定第二分量,所述第一功率值和所述第二分量线性相关。
- 根据权利要求5所述的方法,其特征在于,所述第一接收机还接收第二信息;其中,所述第二信息被用于指示所述第一功率值与所述第二分量的线性系数。
- 根据权利要求1至6中任一权利要求所述的方法,其特征在于,所述第一接收机还接收R个第三信息;其中,所述R个第三信息分别被用于指示R个第一偏移量,第三分量和所述R个第一偏移量中的每个第一偏移量都线性相关,所述第一功率值和所述第三分量线性相关,所述R是正整数。
- 一种用于无线通信的基站设备,其特征在于,包括:-第二发射机,发送第一信息,所述第一信息被用于指示N个子频带中的M个频域资源块;-第二接收机,在所述N 1个子频带中的M 1个频域资源块上接收第一无线信号;其中,所述M个频域资源块中的任一频域资源块属于所述N个子频带中的一个子频带,所述N个子频带中的任一子频带包括所述M个频域资源块中的至少一个频域资源块;所述M 1个频域资源块是所述M个频域资源块中属于所述N 1个子频带中的M 1个频域资源块;所述N个子频带中的任意两个子频带是正交的,所述M个频域资源块中的任意两个频域资源块在频域上都是正交的;第一功率值被用于确定所述第一无线信号的发送功率;所述第一功率值与所述N 1有关,或者,所述第一功率值与所述M 1有关;所述N是大于1的正整数,所述M是大于1的正整数,所述N 1是不大于所述N的正整数,所述M 1是不大于所述M的正整数。
- 一种用于无线通信的用户设备中的方法,其特征在于,包括:-接收第一信息,所述第一信息被用于指示N个子频带中的M个频域资源块;-在所述N个子频带上执行信道接入检测,所述信道接入检测被用于确定所述N个子频带中的N 1个子频带是空闲的;-在所述N 1个子频带中的M 1个频域资源块上发送第一无线信号;其中,所述M个频域资源块中的任一频域资源块属于所述N个子频带中的一个子频带,所述N个子频带中的任一子频带包括所述M个频域资源块中的至少一个频域资源块;所述M 1个频域资源块是所述M个频域资源块中属于所述N 1个子频带中的M 1个频域资源块;所述N个子频带中的任意两个子频带是正交的,所述M个频域资源块中的任意两个频域资源块在频域上都是正交的;第一功率值被用于确定所述第一无线信号的发送功率;所述第一功率值与所述N 1有关,或者,所述第一功率值与所述M 1有关;所述N是大于1的正整数,所述M是大于1的正整数,所述N 1是不大于所述N的正整数,所述M 1是不大于所述M的正整数。
- 一种用于无线通信的基站设备中的方法,其特征在于,包括:-发送第一信息,所述第一信息被用于指示N个子频带中的M个频域资源块;-在所述N 1个子频带中的M 1个频域资源块上接收第一无线信号;其中,所述M个频域资源块中的任一频域资源块属于所述N个子频带中的一个子频带,所述N个子频带中的任一子频带包括所述M个频域资源块中的至少一个频域资源块;所述M 1个频域资源块是所述M个频域资源块中属于所述N 1个子频带中的M 1个频域资源块;所述N个子频带中的任意两个子频带是正交的,所述M个频域资源块中的任意两个频域资源块在频域上都是正交的;第一功率值被用于确定所述第一无线信号的发送功率;所述第一功率值与所述N 1有关,或者,所述第一功率值与所述M 1有关;所述N是大于1的正整数,所述M是大于1的正整数,所述N 1是不大于所述N的正整数,所述M 1是不大于所述M的正整数。
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| WO2023036040A1 (zh) * | 2021-09-09 | 2023-03-16 | 上海朗帛通信技术有限公司 | 一种被用于无线通信的节点中的方法和装置 |
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| CN111385882A (zh) | 2020-07-07 |
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