WO2022228338A1 - 信息配置方法、装置、相关设备及存储介质 - Google Patents
信息配置方法、装置、相关设备及存储介质 Download PDFInfo
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- WO2022228338A1 WO2022228338A1 PCT/CN2022/088731 CN2022088731W WO2022228338A1 WO 2022228338 A1 WO2022228338 A1 WO 2022228338A1 CN 2022088731 W CN2022088731 W CN 2022088731W WO 2022228338 A1 WO2022228338 A1 WO 2022228338A1
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- information
- synchronization signal
- random access
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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]
- H04W52/30—Transmission power control [TPC] using constraints in the total amount of available transmission power
- H04W52/32—TPC of broadcast or control channels
- H04W52/325—Power control of control or pilot channels
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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]
- H04W52/30—Transmission power control [TPC] using constraints in the total amount of available transmission power
- H04W52/32—TPC of broadcast or control channels
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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]
- H04W52/30—Transmission power control [TPC] using constraints in the total amount of available transmission power
- H04W52/36—Transmission power control [TPC] using constraints in the total amount of available transmission power with a discrete range or set of values, e.g. step size, ramping or offsets
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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]
- H04W52/30—Transmission power control [TPC] using constraints in the total amount of available transmission power
- H04W52/36—Transmission power control [TPC] using constraints in the total amount of available transmission power with a discrete range or set of values, e.g. step size, ramping or offsets
- H04W52/362—Aspects of the step size
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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]
- H04W52/54—Signalisation aspects of the TPC commands, e.g. frame structure
Definitions
- the present application relates to the field of wireless communication, and in particular, to an information configuration method, apparatus, related equipment and storage medium.
- the distributed ultra-large-scale antenna system in the sixth-generation mobile communication technology (6G) network presents the remarkable characteristics of more antennas, wider geographical distribution, and deeper intelligent synergy.
- the distributed ultra-large-scale antenna system consists of a large number of sites distributed in different geographical locations to form a distributed cooperative cluster. Information such as interactive scheduling among cooperative multi-sites, and cooperatively complete processes such as resource scheduling and joint data transmission. Through intelligent interaction and intelligent collaboration, on the one hand, interference is effectively eliminated and signal reception quality is enhanced;
- the workflow of the distributed system is to measure the quality of adjacent cells or adjacent transmit and receive points (TRPs) after the terminal accesses the network, report the measurement results, and then select an appropriate cell or TRP for cooperative transmission.
- TRPs transmit and receive points
- a static configuration method is adopted, that is, a cooperative base station/remote radio unit (RRU) is selected during deployment, and is configured directly according to a cell and performs cooperative transmission.
- RRU cooperative base station/remote radio unit
- embodiments of the present application provide an information configuration method, apparatus, related equipment, and storage medium.
- An embodiment of the present application provides an information configuration method, which is applied to a terminal, including:
- the first information indicates a first offset value
- the first offset value is used to calculate the transmission power of the random access sequence.
- the first synchronization signal includes a cooperative synchronization signal.
- the first information at least indicates the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal when the terminal calculates the cell selection criterion;
- the first information is used to determine the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the first information when the second information is not received, the first information indicates an offset when calculating the transmission power of the random access sequence
- the first information is used to determine the amount to increase when calculating the transmission power of the random access sequence.
- the second information when the second information is received, the second information indicates a second offset value; the second offset value is different from the first offset value; the second offset value is used to determine The amount to increase when calculating the random access sequence transmit power.
- the second information when the second information is received, the second information indicates that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are the same or different.
- the first information When the second information is received, the first information indicates an offset when calculating the transmit power of the random access sequence; the first information is used to determine the amount of increase when calculating the transmit power of the random access sequence.
- the second information is received through the SIB.
- the embodiment of the present application also provides an information configuration method, which is applied to a network device, including:
- the first information indicates the first offset value
- the second information is configured or not configured to indicate whether the first offset value is used to calculate the random access sequence transmission power.
- the first synchronization signal includes a cooperative synchronization signal.
- the first information at least indicates the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal when the terminal calculates the cell selection criterion; the first information is used for The terminal determines the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the second information is not configured, and the first information at least indicates the offset when calculating the transmission power of the random access sequence.
- second information is configured; the second information indicates a second offset value; the second offset value is different from the first offset value; the second offset value is used to determine the calculation of random access The amount by which the sequence transmit power is increased.
- second information is configured; the second information indication is used to indicate that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are the same or different.
- the second information is configured, and the first information indicates the offset when calculating the transmission power of the random access sequence.
- the second information is configured through the SIB.
- the embodiment of the present application also provides an information configuration device, including:
- a receiving unit configured to receive the first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates the first offset value;
- the determining unit is configured to determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- the embodiment of the present application also provides an information configuration device, including:
- a first configuration unit configured to configure first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- the second configuration unit is configured to configure or not to configure the second information, so as to indicate whether the first offset value is used to calculate the transmission power of the random access sequence.
- the embodiment of the present application also provides a terminal, including:
- a first communication interface configured to receive first information through the MIB or system information block SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- the first processor is configured to determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- An embodiment of the present application further provides a network device, including: a second communication interface and a second processor; wherein,
- the second processor configured to use the second communication interface to configure first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- the second information is configured or not configured by using the second communication interface to indicate whether the first offset value is used to calculate the random access sequence transmission power.
- An embodiment of the present application further provides a terminal, including: a first processor and a first memory configured to store a computer program that can be run on the processor,
- the first processor is configured to execute the steps of any method on the terminal side when running the computer program.
- the embodiments of the present application further provide a network device, including: a second processor and a second memory configured to store a computer program that can be executed on the processor,
- the second processor is configured to execute the steps of any method on the network device side when running the computer program.
- Embodiments of the present application further provide a storage medium on which a computer program is stored, and when the computer program is executed by a processor, implements the steps of any method on the terminal side or implements the steps of any method on the network device side.
- the network device sends the first information through the MIB or SIB corresponding to the first synchronization signal, and configures or does not configure the second information to indicate the first information. Whether the offset value is used to calculate the transmission power of the random access sequence; the first information indicates the first offset value; and after receiving the first information, the terminal determines the first offset value according to the situation of receiving the second information Whether the shift value is used to calculate the random access sequence transmit power.
- the solutions provided by the embodiments of the present application can realize that the network side instructs the terminal to determine the transmission power of the random access sequence in a cooperative manner or a non-cooperative manner through different offset values, thereby ensuring the performance of uplink access and reducing the access delay. .
- FIG. 1 is a schematic diagram of a cooperative synchronization signal and a non-cooperative synchronization signal
- FIG. 2 is a schematic flowchart of a method for configuring information according to an embodiment of the present application
- FIG. 3 is a schematic flowchart of a second information configuration method according to an embodiment of the present application.
- FIG. 4 is a schematic flowchart of a third information configuration method according to an embodiment of the present application.
- FIG. 5 is a schematic structural diagram of an information configuration apparatus according to an embodiment of the present application.
- FIG. 6 is a schematic structural diagram of another information configuration apparatus according to an embodiment of the present application.
- FIG. 7 is a schematic structural diagram of a terminal according to an embodiment of the present application.
- FIG. 8 is a schematic structural diagram of a network device according to an embodiment of the present application.
- FIG. 9 is a schematic structural diagram of an information configuration system according to an embodiment of the present application.
- a terminal wants to obtain distributed cooperative distributed transmission, it needs to access the network first, and then can perform cooperative transmission on the service channel. If it is in a high-frequency and low-frequency cooperative network, this process is more lengthy, and the terminal needs to access the network once at the low frequency, and also needs to access the network once at the high frequency, and then can start cooperative transmission.
- the synchronization signals (specifically, synchronization signal blocks (SSBs)) in the system can be divided into two categories: one is the ordinary synchronization signal (ie, the non-cooperative synchronization signal), and each TRP is in the synchronization signal of this type of synchronization signal.
- the synchronization signal is sent independently at the location; the other type is the cooperative synchronization signal.
- Different TRPs can cooperatively send the synchronization signal at the location of this type of synchronization signal.
- the terminal can measure the coordinated cell during the synchronization phase. Therefore, cooperative transmission is started in the access phase, as shown in Figure 1, so that there is no need to perform multiple measurements before accessing the network, reducing the delay and improving the rate or reliability of the access process.
- the terminal will see two types of synchronization signals when performing cell search, one is the common synchronization signal, and the other is the coordinated synchronization signal. How to select the network and quickly access the network under the hybrid network) is an urgent problem to be solved.
- multiple TRPs transmit the cooperative synchronization signal at the position in the form of a single frequency network (SFN, Single Frequency Network).
- SFN Single Frequency Network
- a terminal searches for a synchronization signal, it may search for multiple synchronization signals including cooperative and non-cooperative synchronization signals. Since the cooperative synchronization signal adopts SFN transmission, when the terminal receives this kind of synchronization signal, the corresponding reference signal received power (RSRP) is likely to be higher than the RSRP of the non-cooperative synchronization signal.
- RSRP reference signal received power
- the terminal When the terminal performs random access in the cooperative cell, because the RSRP of the cooperative synchronization signal is relatively high, the terminal will use this higher RSRP to estimate the path loss when performing random access power control, which results in the transmission of physical random access.
- the power of an incoming channel PRACH, Physical Random Access CHannel
- PRACH Physical Random Access CHannel
- the purpose of performing uplink power control on uplink signals is to reduce the interference of uplink signals to adjacent cells.
- multiple cells can perform joint reception.
- the problem of inter-cell interference is not serious, and if the received power on this resource is too low, it may cause the terminal's signal to be submerged, increasing the complexity of joint reception. While affecting the uplink reception performance, the preamble sequence may be retransmitted, which also leads to an excessively long access delay.
- the network side instructs the terminal to determine the transmission power of the random access sequence in a cooperative manner or a non-cooperative manner, thereby ensuring uplink access performance and reducing access delay.
- An embodiment of the present application provides an information configuration method, which is applied to a network device (specifically, a base station). As shown in FIG. 2 , the method includes:
- Step 201 configure first information by using the MIB or SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- Step 202 Configure or not configure second information to indicate whether the first offset value is used to calculate the random access sequence transmit power.
- step 202 the second information is configured or not configured, so that the terminal can judge whether the first offset value is used to calculate the transmission power of the random access sequence.
- steps 201 and 202 it can be understood that the terminal is configured with the first information, and the second information is configured or not configured.
- the terminal may be called a user equipment (UE), and may also be called a user.
- UE user equipment
- the network device may configure the terminal to receive a first type of synchronization signal and/or a second type of synchronization signal; the first type of synchronization signal includes a cooperative synchronization signal; correspondingly, the second type of synchronization signal includes a non-cooperative synchronization signal.
- first type of synchronization signal includes a cooperative synchronization signal
- second type of synchronization signal includes a non-cooperative synchronization signal.
- cooperative synchronization signals multiple TRPs cooperatively send synchronization signals at corresponding positions; correspondingly, for non-cooperative synchronization signals, each TRP independently sends synchronization signals at corresponding positions.
- the synchronization signal may specifically be an SSB, and the offset value may also be called an offset, which is not limited in this embodiment of the present application.
- the first synchronization signal includes a cooperative synchronization signal.
- the size of the first offset value is related to the number of TRPs at the transmission position of the currently coordinated synchronization signal, and the more the number of coordinated TRPs is, the larger the first offset value is.
- the size of the first offset value can be configured to be proportional to the number of TRPs; for example, there are two cooperative synchronization signals, the number of TRPs coordinated on the first cooperative synchronization signal is 2, and the number of TRPs coordinated on the second cooperative synchronization signal is 2. If the number of cooperative TRPs on the synchronization signal is 4, then the offset value corresponding to the first cooperative synchronization signal can be configured to be 3dB; the offset value corresponding to the second cooperative synchronization signal can be configured to be 6dB.
- a terminal when a terminal searches for a synchronization signal, it may search for multiple synchronization signals including cooperative and non-cooperative synchronization signals. Since the cooperative synchronization signal adopts SFN transmission, when the terminal receives this kind of synchronization signal, the corresponding RSRP is likely to be higher than that of the non-cooperative synchronization signal, which may cause a large number of terminals to wish to synchronize through cooperative synchronization. signal access to the network.
- the RSRP corresponding to the cooperative synchronization signal is often higher than the RSRP of the non-cooperative synchronization signal when the terminal receives the synchronization signal, if the terminal is only close to some cooperative nodes among the cooperative nodes, but is not far from the cooperative nodes Other nodes in the terminal are far away, and the actual cooperation effect cannot be guaranteed at this time, so it is not expected that such terminals can access the network in a cooperative manner.
- the RSRP of the cooperative synchronization signal needs to be higher than the threshold of normal access to a non-cooperative cell by 3dB, so that the terminal can access the network on this cooperative synchronization signal.
- the terminal can be notified of the corresponding threshold, and the terminal can select the cell, so as to realize the allocation of initial access resources between the coordinated and non-cooperative cells, and ensure the coordination User allocation ratio between cells and non-cooperating cells to avoid centralized access to cooperating cells due to excessive signal strength.
- the first information may at least indicate the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal when the terminal calculates the cell selection criterion, thus, After receiving the first information, the terminal may use the first information to determine the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the first offset value is configured in the system message, and the terminal needs to consider this offset value when calculating the access criterion.
- the identifiers eg IDs
- the identifiers corresponding to the cooperative synchronization signal and the non-cooperative synchronization signal are different.
- the first offset value can be a relative value, which can be used to determine the transmission power of the random access sequence and also be used for The amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal is determined.
- step 202 configuring or not configuring the second information can play two different roles; specifically,
- the first function is the function of direct confirmation (comform in English), that is, if the second information is configured, the first offset value can be directly determined and used to calculate the transmission power of the random access sequence.
- the second information is not configured. Then, it can be directly determined that the first offset value is not used for calculating the transmission power of the random access sequence.
- second information is configured, where the first information indicates an offset when calculating the transmission power of the random access sequence.
- the second function is an indirect confirmation function, that is, if the second information is configured, the first offset value is indirectly determined not to be used to calculate the transmission power of the random access sequence; correspondingly, if the second information is not configured, the first offset value is indirectly determined.
- the shift value is used to calculate the transmit power of the random access sequence.
- the network device may configure the second information for the terminal as required, or may not configure the second information for the terminal, for example, may be based on the number of TRPs that are coordinated when actually receiving PRACH to determine whether to configure the second information to the terminal. Exemplarily, if the number of TRPs coordinated at the transmission position of the first synchronization signal is the same as the number of TRPs coordinated when actually receiving PRACH, it is not necessary to send the second information to the terminal.
- the terminal configures the second information, so that the terminal uses the first offset value to calculate the random access sequence transmit power (that is, uses the first offset value to determine the random access sequence transmit power); if the first When the number of coordinated TRPs at the transmission position of the synchronization signal is less than the number of coordinated TRPs when actually receiving PRACH, the second information may be configured for the terminal.
- the second offset value when the second information indicates two offset values, the second offset value is different from the first offset value; the second offset value is used to determine the calculation of random access The amount by which the sequence transmit power is increased.
- the size of the second offset value is related to the number of coordinated TRPs when actually receiving PRACH.
- the number of coordinated TRPs the larger the second offset value.
- the number of cooperative TRPs on the first synchronization signal is 4, and the first offset value can be configured as 6dB, but only 2 TRPs are used for cooperation when actually receiving PRACH, then the second offset value is configured as 3dB. , if only 1 TRP is used to receive PRACH, then the second offset value is configured as 0dB.
- the network device may instruct the terminal to use other methods to calculate the transmission power of the random access sequence.
- the network device may be configured according to the situation of actually receiving the TRP of the PRACH. Exemplarily, if only one TRP receives the PRACH, the terminal is instructed to use the resources of a synchronization signal sent by this TRP to determine the transmission power of the random access sequence; wherein, the synchronization signal may be the first synchronization signal, or may be other synchronization signals different from the first synchronization signal; if two TRPs receive PRACH, the terminal can be instructed to use the resources of any one of the synchronization signals sent by the two TRPs to determine the transmission power of the random access sequence; Any one of the synchronization signals sent by each TRP may be the first synchronization signal, or may be other synchronization signals different from the first synchronization signal.
- the second information indicates that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are the same or different.
- the second information may include a synchronization signal identifier, a cell identifier, etc., so as to instruct the terminal to perform path loss calculation based on the newly allocated second synchronization signal, thereby determining the transmission power of the random access sequence.
- the random access sequence transmit power may also be referred to as PRACH transmit power.
- the solution provided by the embodiments of the present application ensures the power when PRACH is received for the network access mode in the cooperative mode. Since there is no inter-cell interference problem in this access mode, it can be improved through configuration.
- the transmission power of PRACH can speed up the access speed and reduce the access delay.
- the network device may configure the terminal with the second information through the SIB, so that the terminal can obtain the second information in time.
- an embodiment of the present application also provides an information configuration method, which is applied to a terminal. As shown in FIG. 3 , the method includes:
- Step 301 Receive first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- Step 302 Determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- the situation of receiving the second information includes receiving the second information or not receiving the second information.
- configuring or not configuring the second information can play two different roles. Under different roles, the process of determining whether the first offset value is used to calculate the transmission power of the random access sequence is different; specifically,
- the terminal determines that the first offset value is not used to calculate the transmission power of the random access sequence;
- the terminal determines that the first offset value is used to calculate the transmission power of the random access sequence, and at this time, the first information indicates the offset when calculating the transmission power of the random access sequence;
- the terminal uses the first information to determine the amount to increase when calculating the transmission power of the random access sequence.
- the function of configuring or not configuring the second information is an indirect confirmation function
- the terminal when the terminal receives the second information, it is determined that the first offset value is not used to calculate the transmission power of the random access sequence; when the terminal receives the second information
- the terminal determines that the first offset value is used to calculate the transmission power of the random access sequence.
- the first at least instructs the terminal to calculate the cell selection criterion when the first at least instructs the terminal to calculate the cell selection criterion, the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal;
- the terminal uses the first information to determine the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the terminal uses the following formula to calculate the cell selection criterion:
- Srxlev represents the cell selection reception level value
- Q rxlevmeas represents the measured cell reception level value
- Q rxlevmin represents the minimum required cell reception level
- Q rxlevminoffset represents the Srxlev evaluation, when it resides in the access public land mobile network (VPLMN) normally, Offset value considered on Q rxlevmin due to periodic search for higher priority public land mobile network (PLMN);
- P compensation represents maximum power compensation value;
- Qoffset temp represents currently configured cell offset value;
- Squal represents cell selection Quality value;
- Q qualmeas indicates the quality value of the measured cell;
- Q qualmin indicates the minimum required quality value of the cell;
- Q qualminoffset indicates that during the Squal evaluation, when it normally resides in the VPLMN, it is on the Q qualmin due to the periodic search for a higher priority PLMN
- ⁇ 1 represents the first offset value.
- the first offset value is at least used to calculate the amount of reduction in the quality value of the reference signal obtained on the first synchronization signal.
- the terminal when the terminal does not receive the second information, the first information indicates the offset when calculating the transmission power of the random access sequence ; At this time, the terminal also uses the first information to determine the amount of increase when calculating the transmit power of the random access sequence.
- the terminal can use the following formula to calculate the transmission power of the random access sequence:
- P PRACHb,f,c (i) min ⁇ P cmax,f,c (i),P PRACH,target,f,c +PL b,f,c + ⁇ 1 ⁇ (3)
- P PRACHb,f ( , ic ) represents the random access sequence transmit power on transmission opportunity i;
- P cmax,fc, (i) represents the maximum output configured by the terminal on transmission opportunity i of carrier f in serving cell c power;
- P PRACH,target,f,c represents the expected received power of the PRACH signal on carrier f of serving cell c;
- PL b,f,c represents the downlink reference channel based on the downlink activation bandwidth of serving cell c associated with PRACH transmission
- the obtained path loss of the upstream active bandwidth part b on the carrier f; min ⁇ A, B ⁇ means taking the minimum value of A and B;
- ⁇ 1 means the first offset value.
- the first offset value can also be used to calculate the amount of increase in the transmission power value of the random access sequence.
- the second information when the terminal receives the second information, the second information indicates a second offset value; the second offset value is different from the first offset value; the first offset value The second offset value is used to determine the amount of increase when calculating the transmit power of the random access sequence; accordingly, the terminal uses the second offset value to determine the amount of increase when calculating the transmit power of the random access sequence.
- the terminal uses the following formula to calculate the transmission power of the random access sequence:
- P PRACHb,f,c (i) min ⁇ P cmax,f,c (i),P PRACH,target,f,c +PL b,f,c + ⁇ 2 ⁇ (4)
- ⁇ 2 represents the second offset value
- the second information indicates that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are same or different; the terminal determines the transmission power of the random access sequence by using the resources of the second synchronization signal. That is to say, the terminal performs path calculation calculation based on the newly allocated resources of the synchronization signal, so as to determine the transmission power of the random access sequence.
- the terminal can determine the corresponding PL b,f,c according to the second synchronization signal (downlink reference signal), and determine the corresponding offset value (for example, configured by the network side), and then use the following formula to calculate the random access Sequence transmit power:
- P PRACHb,f,c (i) min ⁇ P cmax,f,c (i),P PRACH,target,f,c +PL b,f,c + ⁇ 3 ⁇ (5)
- the terminal may receive the second information through the SIB.
- the embodiment of the present application also provides an information configuration method, as shown in FIG. 4 , the method includes:
- Step 401 The network device configures the first information through the MIB or SIB corresponding to the first synchronization signal, and configures or does not configure the second information to indicate whether the first offset value is used to calculate the transmission power of the random access sequence; the first information indicates a first offset value;
- Step 402 After the terminal receives the first information, according to the situation of receiving the second information, determine whether the first offset value is used to calculate the transmission power of the random access sequence.
- the network device configures the first information by using the MIB or SIB corresponding to the first synchronization signal, and configures or does not configure the second information, so as to indicate whether the first offset value is used to calculate the random
- the transmission power of the access sequence the first information indicates the first offset value; and after the terminal receives the first information, it determines whether the first offset value is used to calculate random access according to the situation of receiving the second information.
- incoming sequence transmit power.
- an information configuration apparatus is also provided, which is set on a network device. As shown in FIG. 5 , the apparatus includes:
- the first configuration unit 501 is configured to configure the first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates the first offset value;
- the second configuration unit 502 is configured to configure or not to configure second information to indicate whether the first offset value is used to calculate the transmission power of the random access sequence.
- the second configuration unit 502 is configured to configure second information; the second information indicates a second offset value; the second offset value is different from the first offset value; The second offset value is used to determine the amount of increase when calculating the random access sequence transmit power.
- the second configuration unit 502 configures second information; the second information indication is used to indicate that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the first synchronization signal is synchronized with the second synchronization signal The identification of the signals is the same or different.
- the second configuration unit 502 configures second information; the first information indicates an offset when calculating the transmission power of the random access sequence.
- the second configuration unit 502 configures the second information through SIB.
- the first configuration unit 501 and the second configuration unit 502 may be implemented by a processor in an information configuration apparatus in combination with a communication interface.
- the embodiment of the present application further provides an information configuration apparatus, which is set on the terminal.
- the apparatus includes:
- the receiving unit 601 is configured to receive first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates a first offset value;
- the determining unit 602 is configured to determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- the first information at least indicates the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal when the terminal calculates the cell selection criterion;
- the determining unit 602 is further configured to use the first information to determine the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the receiving unit 601 is further configured to receive the second information.
- the receiving unit 601 is configured to receive the second information through the SIB.
- the determining unit 602 is configured to:
- the first offset value is not used to calculate the transmission power of the random access sequence
- the first offset value is determined to be used for calculating the transmission power of the random access sequence.
- the first information when the second information is not received, indicates an offset when calculating the transmission power of the random access sequence
- the determining unit 602 is further configured to use the first information to determine the amount of increase when calculating the transmit power of the random access sequence.
- the second information when the second information is received, the second information indicates a second offset value; the second offset value is different from the first offset value; the second offset value is In determining the amount to increase when calculating the transmit power of the random access sequence;
- the determining unit 602 is further configured to use the second offset value to determine the amount of increase when calculating the transmit power of the random access sequence.
- the second information when the second information is received, the second information indicates that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are the same or different. ;
- the determining unit 602 is further configured to use the resources of the second synchronization signal to determine the transmission power of the random access sequence.
- the determining unit 602 is configured to:
- the first information When the second information is received, the first information indicates an offset when calculating the transmit power of the random access sequence; the first information is used to determine the amount of increase when calculating the transmit power of the random access sequence.
- the information configuration device provided in the above embodiment performs information configuration
- only the division of the above program modules is used as an example for illustration.
- the above processing can be allocated to different program modules according to needs. That is, the internal structure of the device is divided into different program modules to complete all or part of the processing described above.
- the information configuration apparatus and the information configuration method embodiments provided by the above embodiments belong to the same concept, and the specific implementation process thereof is detailed in the method embodiments, which will not be repeated here.
- the embodiment of the present application further provides a terminal.
- the terminal 700 includes:
- the first processor 702 is connected to the first communication interface 701 to realize information exchange with the network device, and is configured to execute the method provided by one or more technical solutions on the terminal side when running a computer program;
- the first communication interface 701 is configured to receive the first information through the MIB or the system information block SIB corresponding to the first synchronization signal; the first information indicates the first offset value;
- the first processor 702 is configured to determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- the first information at least indicates the offset of the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal when the terminal calculates the cell selection criterion;
- the first processor 702 is further configured to use the first information to determine the amount of decrease in the cell selection reception level value and/or the cell selection quality value corresponding to the first synchronization signal.
- the first communication interface 701 is further configured to receive second information.
- the first communication interface 701 is configured to receive the second information through the SIB.
- the first processor 702 is configured to:
- the first offset value is not used to calculate the transmission power of the random access sequence
- the first offset value is determined to be used for calculating the transmission power of the random access sequence.
- the first information when the second information is not received, indicates an offset when calculating the transmission power of the random access sequence
- the first processor 702 is further configured to use the first information to determine the amount of increase when calculating the transmit power of the random access sequence.
- the second information when the second information is received, the second information indicates a second offset value; the second offset value is different from the first offset value; the second offset value is In determining the amount to increase when calculating the transmit power of the random access sequence;
- the first processor 702 is further configured to use the second offset value to determine the amount of increase when calculating the transmit power of the random access sequence.
- the second information when the second information is received, the second information indicates that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the identifiers of the first synchronization signal and the second synchronization signal are the same or different. ;
- the first processor 702 is further configured to use the resources of the second synchronization signal to determine the transmission power of the random access sequence.
- the first processor 702 is configured to:
- the first information When the second information is received, the first information indicates an offset when calculating the transmit power of the random access sequence; the first information is used to determine the amount of increase when calculating the transmit power of the random access sequence.
- the specific processing process of the first processor 702 and the first communication interface 701 can be understood by referring to the above method.
- bus system 704 is configured to enable connection communication between these components.
- bus system 704 also includes a power bus, a control bus and a status signal bus.
- the various buses are labeled as bus system 704 in FIG. 7 .
- the first memory 703 in the embodiment of the present application is configured to store various types of data to support the operation of the terminal 700 .
- Examples of such data include: any computer program used to operate on the terminal 700 .
- the methods disclosed in the above embodiments of the present application may be applied to the first processor 702 or implemented by the first processor 702 .
- the first processor 702 may be an integrated circuit chip with signal processing capability. In the implementation process, each step of the above-mentioned method may be completed by an integrated logic circuit of hardware in the first processor 702 or an instruction in the form of software.
- the above-mentioned first processor 702 may be a general-purpose processor, a digital signal processor (DSP, Digital Signal Processor), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
- the first processor 702 may implement or execute the methods, steps, and logical block diagrams disclosed in the embodiments of this application.
- a general purpose processor may be a microprocessor or any conventional processor or the like.
- the steps of the method disclosed in the embodiments of the present application can be directly embodied as being executed by a hardware decoding processor, or executed by a combination of hardware and software modules in the decoding processor.
- the software module may be located in a storage medium, and the storage medium is located in the first memory 703, and the first processor 702 reads the information in the first memory 703, and completes the steps of the foregoing method in combination with its hardware.
- the terminal 700 may be implemented by one or more Application Specific Integrated Circuit (ASIC, Application Specific Integrated Circuit), DSP, Programmable Logic Device (PLD, Programmable Logic Device), Complex Programmable Logic Device (CPLD, Complex Programmable Logic Device), Field Programmable Gate Array (FPGA, Field-Programmable Gate Array), general-purpose processor, controller, microcontroller (MCU, Micro Controller Unit), microprocessor (Microprocessor), or other electronic components
- ASIC Application Specific Integrated Circuit
- DSP Programmable Logic Device
- PLD Programmable Logic Device
- CPLD Complex Programmable Logic Device
- FPGA Field Programmable Gate Array
- MCU microcontroller
- Microcontroller Micro Controller Unit
- Microprocessor Microprocessor
- the embodiment of the present application further provides a network device.
- the network device 800 includes:
- the second communication interface 801 is capable of information interaction with the terminal
- the second processor 802 is connected to the second communication interface 801 to realize information exchange with the terminal, and is configured to execute the method provided by one or more technical solutions on the network device side when running the computer program;
- the second processor 802 is configured to use the second communication interface 801 to configure the first information through the MIB or SIB corresponding to the first synchronization signal; the first information indicates the first offset value; and,
- the second information is configured or not configured by using the second communication interface 801 to indicate whether the first offset value is used to calculate the transmission power of the random access sequence.
- the second processor 802 is configured to configure second information; the second information indicates a second offset value; the second offset value is different from the first offset value; The second offset value is used to determine the amount of increase when calculating the random access sequence transmit power.
- the second processor 802 configures second information; the second information indication is used to indicate that the transmission power of the random access sequence is determined based on the resources of the second synchronization signal; the first synchronization signal is synchronized with the second synchronization signal The identification of the signals is the same or different.
- the second processor 802 configures second information; configures the second information; the first information indicates an offset when calculating the transmission power of the random access sequence.
- the second processor 802 configures the second information through SIB.
- bus system 804 is configured to enable connection communication between these components.
- bus system 804 also includes a power bus, a control bus, and a status signal bus.
- the various buses are labeled as bus system 804 in FIG. 8 .
- the second memory 803 in this embodiment of the present application is configured to store various types of data to support the operation of the network-connected device 800 .
- Examples of such data include: any computer program used to operate on network device 800 .
- the methods disclosed in the above embodiments of the present application may be applied to the second processor 802, or implemented by the second processor 802.
- the second processor 802 may be an integrated circuit chip with signal processing capability. In the implementation process, each step of the above-mentioned method may be completed by an integrated logic circuit of hardware in the second processor 802 or an instruction in the form of software.
- the above-mentioned second processor 802 may be a general-purpose processor, a DSP, or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, and the like.
- the second processor 802 may implement or execute the methods, steps, and logical block diagrams disclosed in the embodiments of this application.
- a general purpose processor may be a microprocessor or any conventional processor or the like.
- the steps of the method disclosed in the embodiments of the present application can be directly embodied as being executed by a hardware decoding processor, or executed by a combination of hardware and software modules in the decoding processor.
- the software module may be located in a storage medium, and the storage medium is located in the second memory 803, and the second processor 802 reads the information in the second memory 803, and completes the steps of the foregoing method in combination with its hardware.
- network device 800 may be implemented by one or more ASICs, DSPs, PLDs, CPLDs, FPGAs, general purpose processors, controllers, MCUs, Microprocessors, or other electronic components configured to perform the aforementioned methods.
- the memory (the first memory 703 and the second memory 803 ) in this embodiment of the present application may be a volatile memory or a non-volatile memory, and may also include both volatile and non-volatile memory.
- the non-volatile memory can be a read-only memory (ROM, Read Only Memory), a programmable read-only memory (PROM, Programmable Read-Only Memory), an erasable programmable read-only memory (EPROM, Erasable Programmable Read-only memory) Only Memory), Electrically Erasable Programmable Read-Only Memory (EEPROM, Electrically Erasable Programmable Read-Only Memory), Magnetic Random Access Memory (FRAM, ferromagnetic random access memory), Flash Memory (Flash Memory), Magnetic Surface Memory , CD-ROM, or CD-ROM (Compact Disc Read-Only Memory); magnetic surface memory can be disk memory or tape memory.
- RAM Random Access Memory
- SRAM Static Random Access Memory
- SSRAM Synchronous Static Random Access Memory
- DRAM Dynamic Random Access Memory
- SDRAM Synchronous Dynamic Random Access Memory
- DDRSDRAM Double Data Rate Synchronous Dynamic Random Access Memory
- ESDRAM Double Data Rate Synchronous Dynamic Random Access Memory
- ESDRAM Enhanced Type Synchronous Dynamic Random Access Memory
- SLDRAM Synchronous Link Dynamic Random Access Memory
- DRRAM Direct Rambus Random Access Memory
- DRRAM Direct Rambus Random Access Memory
- the embodiment of the present application further provides an information configuration system, as shown in FIG. 9 , the system includes: a network device 901 and a terminal 902; wherein,
- the network device 901 is configured to configure the first information through the MIB or SIB corresponding to the first synchronization signal, and configure or not configure the second information to indicate whether the first offset value is used to calculate the random access sequence transmission power; the first information indicates a first offset value;
- the terminal 902 is configured to receive the first information, and determine whether the first offset value is used to calculate the transmission power of the random access sequence according to the situation of receiving the second information.
- an embodiment of the present application further provides a storage medium, that is, a computer storage medium, specifically a computer-readable storage medium, for example, including a first memory 703 that stores a computer program, and the above-mentioned computer program can be stored in the terminal 700.
- the first processor 702 executes to complete the steps of the aforementioned terminal-side method.
- it includes a second memory 803 that stores a computer program, and the computer program can be executed by the second processor 802 of the network device 800 to complete the steps of the aforementioned method on the network device side.
- the computer-readable storage medium may be memory such as FRAM, ROM, PROM, EPROM, EEPROM, Flash Memory, magnetic surface memory, optical disk, or CD-ROM.
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Abstract
Description
Claims (23)
- 一种信息配置方法,应用于终端,包括:通过第一同步信号对应的信息块MIB或系统信息块SIB接收第一信息;所述第一信息指示第一偏移值;根据接收到第二信息的情况,确定所述第一偏移值是否用于计算随机接入序列发送功率。
- 根据权利要求1所述的方法,其中,所述第一同步信号包括协作同步信号。
- 根据权利要求1所述的方法,其中,所述第一信息至少指示终端计算小区选择准则时,与第一同步信号对应的小区选择接收水平值和/或小区选择质量值的偏移量;利用所述第一信息确定所述第一同步信号对应的小区选择接收水平值和/或小区选择质量值上减少的量。
- 根据权利要求1所述的方法,其中,未接收到所述第二信息时,所述第一信息指示计算随机接入序列发送功率时的偏移量;利用所述第一信息确定计算随机接入序列发送功率时增加的量。
- 根据权利要求1所述的方法,其中,接收到所述第二信息时,所述第二信息指示第二偏移值;所述第二偏移值与第一偏移值不同;所述第二偏移值用于确定计算随机接入序列发送功率时增加的量。
- 根据权利要求1所述的方法,其中,接收到所述第二信息时,所述第二信息指示基于第二同步信号的资源确定随机接入序列发送功率;第一同步信号与第二同步信号的标识相同或不同。
- 根据权利要求1所述的方法,其中,未接收到所述第二信息时,确定所述第一偏移值不用于计算随机接入序列发送功率;或者,接收到所述第二信息时,所述第一信息指示计算随机接入序列发送功率时的偏移量;利用所述第一信息确定计算随机接入序列发送功率时增加的量。
- 根据权利要求1至7任一项所述的方法,其中,通过SIB接收所述第二信息。
- 一种信息配置方法,应用于网络设备,包括:通过第一同步信号对应的MIB或SIB配置第一信息;所述第一信息指示第一偏移值;配置或不配置第二信息,以指示所述第一偏移值是否用于计算随机接入序列发送功率。
- 根据权利要求9所述的方法,其中,所述第一同步信号包括协作 同步信号。
- 根据权利要求9所述的方法,其中,所述第一信息至少指示终端计算小区选择准则时,与第一同步信号对应的小区选择接收水平值和/或小区选择质量值的偏移量;所述第一信息用于供所述终端确定所述第一同步信号对应的小区选择接收水平值和/或小区选择质量值上减少的量。
- 根据权利要求9所述的方法,其中,不配置第二信息,所述第一信息至少指示计算随机接入序列发送功率时的偏移量。
- 根据权利要求9所述的方法,其中,配置第二信息;所述第二信息指示第二偏移值;所述第二偏移值与第一偏移值不同;所述第二偏移值用于确定计算随机接入序列发送功率时增加的量。
- 根据权利要求9所述的方法,其中,配置第二信息;所述第二信息指示配置为指示基于第二同步信号的资源确定随机接入序列发送功率;第一同步信号与第二同步信号的标识相同或不同。
- 根据权利要求9所述的方法,其中,配置第二信息,所述第一信息指示计算随机接入序列发送功率时的偏移量。
- 根据权利要求9至15任一项所述的方法,其中,通过SIB配置所述第二信息。
- 一种信息配置装置,包括:接收单元,配置为通过第一同步信号对应的MIB或SIB接收第一信息;所述第一信息指示第一偏移值;确定单元,配置为根据接收到第二信息的情况,确定所述第一偏移值是否用于计算随机接入序列发送功率。
- 一种信息配置装置,包括:第一配置单元,配置为通过第一同步信号对应的MIB或SIB配置第一信息;所述第一信息指示第一偏移值;第二配置单元,配置为配置或不配置第二信息,以指示所述第一偏移值是否用于计算随机接入序列发送功率。
- 一种终端,包括:第一通信接口,配置为通过第一同步信号对应的MIB或系统信息块SIB接收第一信息;所述第一信息指示第一偏移值;第一处理器,配置为根据接收到第二信息的情况,确定所述第一偏移值是否用于计算随机接入序列发送功率。
- 一种网络设备,包括:第二通信接口及第二处理器;其中,所述第二处理器,配置为利用所述第二通信接口通过第一同步信号对应的MIB或SIB配置第一信息;所述第一信息指示第一偏移值;以及,利用所述第二通信接口配置或不配置第二信息,以指示所述第一偏移 值是否用于计算随机接入序列发送功率。
- 一种终端,包括:第一处理器和配置为存储能够在处理器上运行的计算机程序的第一存储器,其中,所述第一处理器配置为运行所述计算机程序时,执行权利要求1至8任一项所述方法的步骤。
- 一种网络设备,包括:第二处理器和配置为存储能够在处理器上运行的计算机程序的第二存储器,其中,所述第二处理器配置为运行所述计算机程序时,执行权利要求9至16任一项所述方法的步骤。
- 一种存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现权利要求1至8任一项所述方法的步骤,或者实现权利要求9至16任一项所述方法的步骤。
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| JP2018032887A (ja) * | 2015-01-08 | 2018-03-01 | シャープ株式会社 | 端末装置、基地局装置、制御方法及び集積回路 |
| CN110351814B (zh) * | 2018-04-04 | 2021-09-21 | 华为技术有限公司 | 功率控制方法、装置和系统 |
| EP3799506A1 (en) * | 2019-09-30 | 2021-03-31 | Comcast Cable Communications LLC | Downlink reception and beam management |
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