Method for determining power characteristic information, apparatus, terminal and storage medium
By determining the power characteristic information of different objects or basic objects in the terminal, the power design problem of transmission objects under different network systems and functions is solved, and more efficient transmission adaptability is achieved.
Patent Information
- Application Number
- PCT/CN2025/113668
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-08-09
- Filing Date
- 2025-08-08
- Publication Date
- 2026-02-12
AI Technical Summary
Existing power design schemes for transmission objects between terminals and network-side devices cannot meet the transmission requirements of different network systems or different functions.
The terminal determines the power characteristic information of the first object and the second object, including the power characteristic information of different parts or different basic objects, in order to adapt to the transmission requirements under different network systems or functions.
It enables the power design requirements of the transmitted objects to be met under different network systems and functions, thereby improving transmission efficiency and flexibility.
Smart Images

Figure CN2025113668_12022026_PF_FP_ABST
Abstract
Description
Method and apparatus for determining power characteristic information, terminal and storage medium
[0001] Cross-reference to Related Applications
[0002] The present application claims priority to the Chinese patent application No. 202411094453.5, filed on August 9, 2024, and entitled "Method and apparatus for determining power characteristic information, terminal and storage medium", the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD
[0003] The present application belongs to the field of communication technology, and specifically relates to a method and apparatus for determining power characteristic information, a terminal and a storage medium. BACKGROUND
[0004] Synchronization Signal Block (SSB) transmission is a key signal transmission method in 5G NR networks. Among them, SSB is used to realize cell search, timing and frequency synchronization functions, so as to facilitate uplink and downlink transmission between the terminal and the network side device. Therefore, before the network side device and the terminal perform uplink and downlink transmission, some basic signals are needed to realize cell search, timing, frequency synchronization and other functions. It can be seen that the transmission of basic signals is very important.
[0005] Among them, the SSB power in a cell is unique, but the transmission requirements of SSB are different in different network systems or different functions at present, so the unique SSB power cannot meet the transmission requirements in these scenarios. And the power of uplink signals or channels and downlink signals or channels is determined based on the power of the SSB respectively, so that the transmission of uplink signals or channels and downlink signals or channels also cannot meet the transmission requirements in the above scenarios.
[0006] It can be seen that the power design scheme of the transmission object between the terminal and the network side device cannot meet the transmission requirements of the transmission object in different network systems or different functions. SUMMARY
[0007] The embodiments of the present application provide a method and apparatus for determining power characteristic information, a terminal and a storage medium, which can solve the problem that the power design scheme of the transmission object between the terminal and the network side device cannot meet the transmission requirements of the transmission object in different network systems or different functions.
[0008] In a first aspect, a method for determining power characteristic information is provided, the method comprising:
[0009] The terminal determines at least one of power characteristic information of the first object and power characteristic information of the second object;
[0010] The terminal transmits the first object according to the power characteristic information of the first object, or transmits the second object according to the power characteristic information of the second object;
[0011] The first object includes a first part of a third object, the second object includes a second part of the third object, and the third object includes at least one of a first basic object, an uplink object and a downlink object;
[0012] Alternatively,
[0013] The first object includes at least part of a symbol of a second basic object, and the second object includes at least part of a symbol of a third basic object;
[0014] Alternatively,
[0015] The first object includes at least one fourth basic object, and the second object includes at least one of an uplink object and a downlink object;
[0016] The basic object includes a specific type of object, and the object includes at least one of a signal and a channel.
[0017] In a second aspect, a power characteristic information determination apparatus is provided, applied to a terminal, and the apparatus includes:
[0018] The transmission module is configured to transmit the first object according to the power characteristic information of the first object, or transmit the second object according to the power characteristic information of the second object;
[0019] The determination module is configured to determine at least one of power characteristic information of the first object and power characteristic information of the second object;
[0020] The first object includes a first part of a third object, the second object includes a second part of the third object, and the third object includes at least one of a first basic object, an uplink object and a downlink object;
[0021] Alternatively,
[0022] The first object includes at least part of a symbol of a second basic object, and the second object includes at least part of a symbol of a third basic object;
[0023] Alternatively,
[0024] The first object includes at least one fourth basic object, and the second object includes at least one of an uplink object and a downlink object;
[0025] The base object includes a specific type of object, and the object includes at least one of a signal and a channel.
[0026] In a third aspect, a terminal is provided, which includes a processor and a memory, the memory storing programs or instructions executable on the processor, and the programs or instructions, when executed by the processor, implement steps of the method according to the first aspect.
[0027] In a fourth aspect, a terminal is provided, which includes a processor and a communication interface.
[0028] The processor is configured to determine at least one of power characteristic information of the first object and power characteristic information of the second object.
[0029] The communication interface is configured to transmit the first object according to the power characteristic information of the first object, or transmit the second object according to the power characteristic information of the second object.
[0030] The first object includes a first part of a third object, and the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object, and a downlink object.
[0031] Alternatively,
[0032] The first object includes at least part of a symbol of a second base object, and the second object includes at least part of a symbol of a third base object.
[0033] Alternatively,
[0034] The first object includes at least one fourth base object, and the second object includes at least one of an uplink object and a downlink object.
[0035] The base object includes a specific type of object, and the object includes at least one of a signal and a channel.
[0036] In a fifth aspect, a readable storage medium is provided, which stores programs or instructions, and the programs or instructions, when executed by a processor, implement steps of the method according to the first aspect.
[0037] In a sixth aspect, a chip is provided, which includes a processor and a communication interface, the communication interface and the processor are coupled, and the processor is configured to run programs or instructions to implement the method according to the first aspect.
[0038] In a seventh aspect, a computer program / program product is provided, which is stored in a storage medium, and the program / program product is executed by at least one processor to implement steps of the method according to the first aspect.
[0039] In the embodiments of the present application, the terminal can determine at least one of the power characteristic information of the first object and the power characteristic information of the second object, wherein the first object includes a first part of a third object, the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object and a downlink object; or the first object includes at least part of symbols of a second base object, and the second object includes at least part of symbols of a third base object; or the first object includes at least one fourth base object, and the second object includes at least one of the uplink object and the downlink object; and the base object includes an object of a specific type, and the object includes at least one of a signal and a channel.
[0040] It can be seen that, in the embodiments of the present application, for any one of the first base object, the uplink object and the downlink object, the terminal can determine the power characteristic information of different parts of the same object, so that the transmission requirements of the object in different network systems or different functions can be adapted through the power characteristic information of different parts of the same object; or the terminal can determine the power characteristic information of at least part of symbols of different base objects, or the terminal can determine the power characteristic information of at least one fourth base object and the power characteristic information of at least one of the uplink object and the downlink object, so that the determination scheme of the power characteristic information of the transmission object between the terminal and the network side device in the multiple base object scenario can be implemented, and the transmission requirements of the transmission object in different network systems or different functions can be met. BRIEF DESCRIPTION OF DRAWINGS
[0041] FIG. 1 is a block diagram of a wireless communication system to which the embodiments of the present application can be applied;
[0042] FIG. 2 is a structure diagram of an SSB in the embodiments of the present application;
[0043] FIG. 3 is a diagram of a hierarchical cell-free network structure in the embodiments of the present application;
[0044] FIG. 4 is a flowchart of a method for determining power characteristic information according to an embodiment of the present application;
[0045] FIG. 5 is a block diagram of a device for determining power characteristic information according to an embodiment of the present application;
[0046] FIG. 6 is a block diagram of a communication device according to an embodiment of the present application;
[0047] FIG. 7 is a block diagram of a terminal according to an embodiment of the present application. DETAILED DESCRIPTION
[0048] With reference to the drawings and the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly described. Obviously, the described embodiments are only some of the embodiments of the present application, but not all of the embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art are within the scope of the present application.
[0049] The terms "first", "second", and the like in the present application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the terms used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second" are generally a class, and do not limit the number of objects, for example, the first object can be one or more. In addition, "or" in the present application means at least one of the connected objects. For example, "A or B" covers three schemes, namely, scheme one: including A and not including B; scheme two: including B and not including A; scheme three: including A and including B. The character " / " generally represents that the objects before and after are in an "or" relationship.
[0050] The term "indication" in the present application can be a direct indication (or explicit indication) or an indirect indication (or implicit indication). The direct indication can be understood as the sender explicitly informing the receiver of the specific information, the operation to be performed or the request result in the sent indication; the indirect indication can be understood as the receiver determining the corresponding information according to the indication sent by the sender, or judging and determining the operation to be performed or the request result according to the judgment result.
[0051] It is worth noting that the technology described in the embodiments of the present application is not limited to Long Term Evolution (LTE) / LTE-Advanced (LTE-A) systems, but can also be used in other wireless communication systems, such as Code Division Multiple Access (CDMA), Time Division Multiple Access (TDMA), Frequency Division Multiple Access (FDMA), Orthogonal Frequency Division Multiple Access (OFDMA), Single-carrier Frequency-Division Multiple Access (SC-FDMA) or other systems. The terms "system" and "network" in the embodiments of the present application are often used interchangeably, and the described technology can be used in the above-mentioned systems and radio technologies, as well as in other systems and radio technologies. The following description describes a New Radio (NR) system for example purposes, and NR terminology is used in most of the following description, but these technologies can also be applied to systems other than NR systems, such as 6th Generation (6G) communication systems. th
[0052] FIG. 1 shows a block diagram of a wireless communication system to which embodiments of the present application can be applied. The wireless communication system includes a terminal 11 and a network-side device 12. The terminal 11 can be a terminal-side device such as a mobile phone, a Tablet Personal Computer, a Laptop Computer, a notebook computer, a Personal Digital Assistant (PDA), a palmtop computer, a netbook, an Ultra-mobile Personal Computer (UMPC), a Mobile Internet Device (MID), an Augmented Reality (AR) device, a Virtual Reality (VR) device, a robot, a Wearable Device, a flight vehicle, a Vehicle User Equipment (VUE), a shipboard device, a Pedestrian User Equipment (PUE), a smart home (a home device with a wireless communication function such as a refrigerator, a television, a washing machine, or furniture), a game machine, a Personal Computer (PC), a kiosk, or a self-service machine. The Wearable Device includes a smart watch, a smart bracelet, a smart earphone, smart glasses, smart jewelry (a smart bracelet, a smart necklace, a smart ring, a smart necklace, a smart anklet, a smart necklace, and the like), a smart wristband, smart clothing, and the like. The vehicle-mounted device can also be referred to as a vehicle-mounted terminal, a vehicle-mounted controller, a vehicle-mounted module, a vehicle-mounted component, a vehicle-mounted chip, or a vehicle-mounted unit. It should be noted that the specific type of the terminal 11 is not limited in the embodiments of the present application.
[0053] The network side device 12 can include an access network device or a core network device, wherein the access network device can also be referred to as a radio access network (RAN) device, a radio access network function or a radio access network unit. The access network device can include a base station, a wireless local area network (WLAN) access point (AP) or a wireless fidelity (WiFi) node, etc. Among them, the base station can be referred to as a node B (NB), an evolved node B (eNB), a next generation node B (gNB), a new radio node B (NR node B), an access point, a relay base station (RBS), a serving base station (SBS), a base transceiver station (BTS), a radio base station, a radio transceiver, a basic service set (BSS), an extended service set (ESS), a home node B (HNB), a home evolved node B, a transmission reception point (TRP) or some other suitable term in the art, as long as the same technical effect is achieved. The base station is not limited to a specific technical term, and it should be noted that in the embodiments of the present application, only the base station in the NR system is taken as an example for introduction, and the specific type of the base station is not limited.
[0054] In order to facilitate understanding of the power characteristic information determination method of the embodiments of the present application, the following related technologies are first introduced:
[0055] I. Synchronization signal and broadcast channel (PBCH)
[0056] In order to enable the UE to search for a reasonable cell and synchronize with the selected cell, it is usually necessary for the network to broadcast a synchronization signal and provide certain main information about the cell. Among them, the synchronization signal mainly includes a primary synchronization signal and a secondary synchronization signal. The most important system information carried by the PBCH is also called the master information block (MIB).
[0057] Among them, in 5G, the structure of SSB is as shown in FIG. 2.
[0058] II. Sync raster and GSCN
[0059] 5G NR defines a sync raster for 0-100GHz, and the numbering of the sync raster is called GSCN. Among them, the base station can send the synchronization signal block (SS block, SSB) (also known as SS / PBCH block) on the sync raster.
[0060] Wherein, the position and calculation of GSCN in different frequency ranges are shown in Table 1; for example, when GSCN = 2, it can be deduced that N = 1 and M = 1, so the corresponding frequency domain position is 1250 kHz.
[0061] Table 1: GSCN global frequency raster parameters
[0062] According to the frequency domain planning of the 15th version of the NR protocol (R15), according to different subcarrier spacing (SCS), different working frequency bands are defined for different channel bandwidths that can be supported; as shown in Table 2, it is the channel bandwidth related information of band n1; for example, for band n1, when the SCS of the transmitted data / control signal is 15 kHz, the minimum channel bandwidth on the band is 5 MHz.
[0063] Table 2: Channel bandwidth of each NR band
[0064] It can be understood that "Yes" in Table 2 means that the bandwidth can be supported.
[0065] In addition, the range and step size of GSCN are defined for different bands in NR; wherein, the step size is the difference between the GSCN numbers of two adjacent sync rasters belonging to the band. For example, the GSCN range of n41 is 6246-6714, and the step size is 3, so the GSCN numbers in the range of n41 are 6246, 6249, …, 6714.
[0066] It should be noted that there may be overlap between different bands in the frequency domain, for example, band n38 and n41. As can be seen from Table 3, although the two frequency bands overlap, the step size of the GSCN is different.
[0067] Table 3: SS raster applicable for each operating band
[0068] In Table 3, Case A and Case C represent two different modes of SSB.
[0069] II. Channel raster
[0070] In NR, channel raster is defined, and the base station can deploy channels on the channel raster. The channel raster can be 100 kHz, 15 kHz, 30 kHz, 60 kHz, or 120 kHz.
[0071] For example, as shown in Table 4, the channel raster on band n1 is 100 kHz, and the frequency domain corresponding to the uplink channel raster number (NR-ARFCN) ranges from 384000 to 396000, and the frequency domain corresponding to the downlink NR-ARFCN number ranges from 422000 to 434000. One NR-ARFCN number can also be used to indicate a frequency domain position.
[0072] Table 4: NR-ARFCN applicable for each operating band
[0073] In Table 4, ΔF Raster represents the step size of one raster.
[0074] It should be noted that there can be an overlap between different bands, such as band n38 and n41. As can be seen from Table 4, although there is an overlap between the two frequency bands, the step size of the NR-ARFCN is different.
[0075] III. Non-Terrestrial Network (NTN)
[0076] NTN refers to a communication network constructed by non-ground devices such as satellites, airships, drones, or high-altitude balloons. Such a communication network can cover areas that cannot be covered by the ground, providing global communication services. Non-terrestrial communication technology plays an important role in remote areas, emergency rescue, natural disaster areas, oceans, and other scenarios where traditional ground communication cannot be used.
[0077] The area covered by a satellite is very wide, which can reach several hundred to several thousand kilometers, but due to the high speed of the satellite, the coverage time for providing services is also very short, and it can only provide services to an area for tens of minutes before flying to other places.
[0078] Due to the limited capability of some satellites, which cannot cover thousands of kilometers at the same time, it may be necessary to cover different parts of an area in sequence through beam sweep, resulting in the actual transmission period of SSB being much longer than 20 ms.
[0079] IV. Cell-free system
[0080] A cell-free massive MIMO system can be considered as a decoupling of the traditional massive MIMO system. In the traditional massive MIMO system, the distribution of the antenna set is concentrated in a station (base station), and the UEs are distributed around the base station. In a massive MIMO system, a large number of antennas are deployed in each base station. Therefore, a high array gain and spatial resolution are provided. Multiple UEs can be served simultaneously on the same time-frequency resource, providing high throughput, high reliability, and high energy efficiency. The cell-free massive MIMO system breaks the concept of a cell, and a large number of antennas are distributed in a wide area, and UEs are also distributed in this wide area. These distributed antennas are called transmit-receive points (TRPs) or access points (APs). In theory, each UE can communicate with each AP, and with the help of a front-end network and a central processing unit (CPU), a large number of geographically distributed TRPs can jointly serve some UEs, and the CPU uses channel statistical information to perform joint detection.
[0081] Among them, the cell-free network is expected to be applied to the next generation of indoor and hotspot coverage scenarios, such as smart factories, train stations, shopping centers, stadiums, subways, hospitals, community centers, or university campuses, etc. In practice, the cell-free network in the hotspot area can be regarded as a cell containing multiple TRPs, where multiple TRPs use the same cell ID, and cooperative transmission can be achieved between TRPs.
[0082] In addition, in the traditional centralized massive MIMO network, all antenna units are deployed on the macro base station. In contrast, in the cell-free network, the antenna units are distributed in a distributed manner in TRPs at different locations, thereby obtaining better diversity gain. From the perspective of network deployment, the cell-free network has the following two typical network architectures.
[0083] First, single-layer cell-free network:
[0084] All TRPs are deployed in the same layer, and each TRP is directly connected to the CPU through a front-haul link for data transmission and resource allocation. The TRP is responsible for transmitting signals to and receiving signals from the UE, while the CPU is responsible for allocating, combining, precoding and processing data from different TRPs, and updating the TRP cluster serving different UEs.
[0085] The second one is a hierarchical cell-free network, as shown in FIG. 3:
[0086] The first layer can be used to implement the initial access and mobility management of the UE, complete the low-latency control signaling exchange between the UE and the network, and provide high coverage performance. For example, the first layer network can be a hyper cell based on single frequency network (SFN) technology or dynamic site selection (e.g., macro TRP), or a wide coverage cell based on low frequency communication (e.g., using existing 2G or 3G infrastructure or spectrum resources), or a satellite or high altitude platform station (HAPS) cell in satellite communication.
[0087] The second layer can achieve high-speed data transmission by dynamically selecting one or more transmission nodes (e.g., small TRPs) for each UE to perform MIMO transmission, which can obtain higher spatial multiplexing gain and provide higher data transmission rate. For example, the second layer network can use a non-SFN mode, or use a higher frequency band than the first layer network, or use a low earth orbit satellite in satellite communication.
[0088] Among them, the synchronization signal or reference signal of the first layer network node can be associated with the synchronization signal or reference signal of the second layer network node in the same area. For example, the first layer network can use a wide beam reference signal to maintain a stable connection of the terminal, and the second layer network can use multiple narrow beam reference signals related to the wide beam to realize high-speed transmission of the terminal.
[0089] Five, Physical Random Access Channel (PRACH) power control
[0090] The target received power PREAMBLE_RECEIVED_TARGET_POWER of the preamble is calculated by the following first formula:
[0091] First formula: preambleReceivedTargetPower + DELTA_PREAMBLE + (PREAMBLE_POWER_RAMPING_COUNTER - 1) x PREAMBLE_POWER_RAMPING_STEP
[0092] wherein preambleReceivedTargetPower is the initial power of the preamble expected to be received by the base station;
[0093] DELTA_PREAMBLE is related to the preamble format;
[0094] PREAMBLE_POWER_RAMPING_STEP is the transmission power to be increased next time of access after each access failure;
[0095] PREAMBLE_POWER_RAMPING_COUNTER is the number of times of increasing the transmission power.
[0096] the actual transmission power P PRACH,b,f,c The calculation formula of (i) is as follows: second formula:
[0097] Second formula: P PRACH,b,f,c (i) = min{P CMAX,f,c (i), P PRACH,target,f,c + PL b,f,c} [dBm]
[0098] wherein P CMAX,f,c (i) is the maximum transmission power configured to the UE by the carrier f of the serving cell C at the transmission occasion (occasion) i (the maximum power of UE transmission is 23 dBm);
[0099] P PRACH,target,f,c is the PRACH target reception power PREAMBLE_RECEIVED_TARGET_POWER on the active UL BWP b of the carrier f on the serving cell C;
[0100] PL b,f,c is the path loss of the active UL BWP b of the carrier f based on the DL RS associated with the PRACH transmission on the active DL BWP of the serving cell C, and PL b,f,c is equal to the reference signal power (referenceSignalPower) (unit: dB) - the higher layer filtered RSRP (unit: dBm, RRC filtered).
[0101] If the PL b,f,c Based on the DL BWP is the initial DL BWP, and for SSB and CORESET multiplexing mode 2 or 3, the UE determines the PL based on the SSB associated with the PRACH transmission b,f,c .
[0102] Similarly, in the calculation of other uplink channels, such as Physical Uplink Shared Channel (PUSCH), Physical Uplink Control Channel (PUCCH), Sounding Reference Signal (SRS), also rely on the path loss PL calculated based on one SSB to control the uplink transmission power. b,f,c come.
[0103] In addition, it also needs to be explained that the grid in this paper can include at least one of the channel grid, the synchronization grid, and another set of newly defined grids.
[0104] The determination method of the power characteristic information provided by the embodiments of the present application will be described in detail in combination with some embodiments and their application scenarios.
[0105] Referring to FIG. 4, the embodiments of the present application provide a determination method of power characteristic information, which can include the following steps 401 to 402:
[0106] Step 401: The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object.
[0107] Step 402: The terminal transmits the first object according to the power characteristic information of the first object, or transmits the second object according to the power characteristic information of the second object.
[0108] Among them, the contents included in the first object and the second object can be described as one of the following A-1 to A-3:
[0109] A-1: The first object includes a first part of a third object, the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object, and a downlink object;
[0110] Therefore, in the embodiment of the present application, the terminal can determine at least one of the power characteristic information of the first part of the first basic object, the power characteristic information of the second part of the first basic object, at least one of the power characteristic information of the first part of the uplink object, the power characteristic information of the second part of the uplink object, at least one of the power characteristic information of the first part of the downlink object, and the power characteristic information of the second part of the downlink object.
[0111] It should be noted that the first part and the second part of the third object each refer to at least part of the symbols of the third object, and the first part of the third object and the second part of the third object are at least partially different.
[0112] It should be further noted that the SSB power in a cell is currently unique, but the transmission requirements for SSBs are different under different network systems or different functions, and the power-unique SSB cannot meet the transmission requirements in these scenarios. In the embodiment of the present application, the terminal can determine the power characteristic information of different parts of the same object, so that the power characteristic information of different parts of the same object can adapt to the transmission requirements for the object under different network systems or different functions.
[0113] Item A-2: The first object includes at least part of the symbols of a second basic object, and the second object includes at least part of the symbols of a third basic object.
[0114] Therefore, in the embodiment of the present application, the terminal can determine at least one of the power characteristic information of at least part of the symbols of the first basic object and the power characteristic information of at least part of the symbols of the second basic object.
[0115] It should be noted that at least part of the symbols of an object can refer to part of the symbols or all the symbols of the object.
[0116] It should be further noted that the SSB power in a cell is currently unique, that is, the power determination scheme for the basic object such as SSB is only applicable to the case of a single basic object, and cannot be applied to the case of multiple basic objects. In the embodiment of the present application, when there are multiple basic objects, the power characteristic information of at least part of the symbols of at least one of the basic objects can be determined. That is, the embodiment of the present application provides a determination scheme for the power characteristic information in the case of multiple basic objects, so as to meet the transmission requirements for the basic objects under different network systems or different functions, and make up for the deficiencies of the related art.
[0117] Item A-3: The first object includes at least one fourth basic object, and the second object includes at least one of an uplink object and a downlink object.
[0118] Therefore, in the embodiment of the present application, the terminal can determine at least one of the power characteristic information of the at least one fourth basic object, the power characteristic information of the uplink object, and the power characteristic information of the downlink object.
[0119] It should be noted that, in the embodiment of the present application, determining the power characteristic information of an object can refer to determining the power characteristic information of part of the symbols of the object, or the power characteristic information of all the symbols of the object.
[0120] It should be further noted that, at present, the SSB power in a cell is unique, and the power of the uplink signal or channel and the downlink signal or channel is determined based on the power of the SSB respectively. That is, the power determination scheme for the basic object such as SSB is only applicable to the case of a single basic object. However, in the embodiment of the present application, there can be multiple basic objects, and in this case, the power characteristic information of at least one of the at least one basic object, the uplink object, and the downlink object can be determined. That is, the embodiment of the present application provides a power characteristic information determination scheme for multiple objects in a multiple basic object scenario, so as to meet the transmission requirements of multiple objects in different network systems or different functions, and make up for the shortcomings of the related art.
[0121] In addition, the basic object includes an object of a specific type, and the object includes at least one of a signal and a channel.
[0122] As described above, in the embodiment of the present application, for any one of the first basic object, the uplink object, and the downlink object, the terminal can determine the power characteristic information of different parts of the same object, so as to adapt to the transmission requirements of the object in different network systems or different functions through the power characteristic information of different parts of the same object. Alternatively, the terminal can determine the power characteristic information of at least part of the symbols of different basic objects, or the terminal can determine the power characteristic information of at least one of the at least one fourth basic object, the uplink object, and the downlink object, so as to realize a power characteristic information determination scheme for the transmission object between the terminal and the network side device in a multiple basic object scenario, and further meet the transmission requirements of the transmission object in different network systems or different functions.
[0123] It can be understood that, in the above A-1 to A-3, in the embodiments of the present application, for any one of the first base object, the uplink object and the downlink object, the terminal can determine the power characteristic information of different parts of the same object; or the terminal can determine the power characteristic information of at least part of the symbols of different base objects; or the terminal can determine the power characteristic information of at least one fourth base object, and the power characteristic information of at least one of the uplink object and the downlink object; therefore, in the embodiments of the present application, the power characteristic information of different parts of the same object can be determined respectively, the power characteristic information of different base objects can be determined respectively, and the power characteristic information of at least one base object, the uplink object and the downlink object can be determined respectively. It can be seen that the embodiments of the present application provide a variety of design schemes of power characteristic information, so that the confirmation method of the power characteristic information of various transmission objects is more flexible, thereby being able to adapt to the needs of different systems, scenes and network side devices.
[0124] In addition, in the case that the first object includes a first part of a third object, and the second object includes a second part of the third object, the method further includes:
[0125] The terminal transmits the third object according to the power characteristic information of the first object or the power characteristic information of the second object.
[0126] Exemplarily, the third object is an SSB including 4 symbols, and the terminal can receive the SSB of 4 symbols according to the first two symbols of the SSB.
[0127] Optionally, the power characteristic information includes at least one of:
[0128] Power spectral density, energy per resource element (EPRE), bit signal-to-noise ratio (Eb / N0), power. It should be noted that the " / " in "Eb / N0" represents division operation.
[0129] Optionally, at least one of the first part of the third object and the second base object satisfies at least one of:
[0130] corresponding to a first time domain position, corresponding to a first frequency domain position, corresponding to a first time, corresponding to a first period, corresponding to a first grouping index, corresponding to a first index, corresponding to a first use, corresponding to a first system, corresponding to a first beam, corresponding to a first transmit-receive point (TRP), corresponding to a first area, corresponding to a first network type, corresponding to a first antenna, corresponding to a first panel, corresponding to a first element.
[0131] at least one of a first time domain position, a first frequency domain position, a first time, a first period, a first group index, a first index, a first usage, a first system, a first beam, a first TRP, a first area, a first network type, a first antenna, a first panel, a first element, at least for transmitting (e.g., sending or receiving) the first object.
[0132] Optionally, at least one of the second part of the third object, the third base object satisfies at least one of the following:
[0133] a corresponding second time domain position, a corresponding second frequency domain position, a corresponding second time, a corresponding second period, a corresponding second group index, a corresponding second index, a corresponding second usage, a corresponding second system, a corresponding second beam, a corresponding second TRP; a corresponding second area, a corresponding second network type, a corresponding second antenna, a corresponding second panel, a corresponding second element.
[0134] at least one of a second time domain position, a second frequency domain position, a second time, a second period, a second group index, a second index, a second usage, a second system, a second beam, a second TRP; a second area, a second network type, a second antenna, a second panel, a second element, at least for transmitting (e.g., sending or receiving) the second object.
[0135] Therefore, the second base object and the third base object are different in at least one of the following:
[0136] a time domain position, a frequency domain position, a period, an index of a group to which the object belongs, an index, a usage, a type, a beam, a transmission and reception point (TRP), an area, a network type, an antenna, a panel, an element.
[0137] at least one of a second base object and a third base object are different in at least one of the following: a time domain position, a frequency domain position, a period, an index of a group to which the object belongs, an index, a usage, a type, a beam, a transmission and reception point (TRP), an area, a network type, an antenna, a panel, an element.
[0138] It can also be understood that in the content of "a time domain position, a frequency domain position, a period, an index of a group to which the object belongs, an index, a usage, a type, a beam, a transmission and reception point (TRP), an area, a network type, an antenna, a panel, an element", at least part of the content of the second base object and the third base object can be the same, and at least part of the content can be different.
[0139] For example, the time domain positions of the second base object and the third base object are different, e.g., a first time or period or time unit is used at least for sending or receiving the second base object, and a second time or period or time unit is used at least for sending or receiving the third base object; but the frequency domain positions of the second base object and the third base object can be the same;
[0140] Alternatively, exemplarily, the second basic object is different from the third basic object in frequency domain position, and a first band or subband or raster or frequency domain position or frequency point is used at least for transmitting or receiving the second basic object, and a second band or subband or raster or frequency domain position or frequency point is used at least for transmitting or receiving the third basic object; but the time domain positions of the second basic object and the third basic object can be the same.
[0141] It should be noted that the types of the second basic object and the third basic object can respectively include at least one of the following: an on-demand type, a normal or periodic type; exemplarily, when the second basic object and the third basic object are synchronization signal blocks or SSBs, the types can include: an on-demand SSB, a normal SSB or a periodic SSB.
[0142] The network types corresponding to the second basic object and the third basic object can respectively include at least one of TN and NTN.
[0143] Similarly, as known from the above, the first part of the third object and the second part of the third object are different in at least one of the following:
[0144] Time domain position, frequency domain position, period, index of belonging group, index, purpose, type, beam, transmission and reception point TRP, area, network type, antenna, panel, element.
[0145] Optionally, at least one of the first basic object, the second basic object and the third basic object respectively includes at least one of the following:
[0146] Primary Synchronization Signal (PSS), Secondary Synchronization Signal (SSS), first level synchronization signal, first level broadcast channel, first level synchronization signal block, second level synchronization signal, second level broadcast channel, second level synchronization signal block, first part of synchronization signal, first part of broadcast channel, first part of synchronization signal block, second part of synchronization signal, second part of broadcast channel, second part of synchronization signal block, narrowband part of synchronization signal, narrowband part of broadcast channel, narrowband part of synchronization signal block, wideband part of synchronization signal, wideband part of broadcast channel, wideband part of synchronization signal block, synchronization signal corresponding to narrowband, broadcast channel corresponding to narrowband, synchronization signal block corresponding to narrowband, synchronization signal corresponding to wideband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, synchronization signal associated with downlink object, broadcast channel associated with downlink object, synchronization signal block associated with downlink object, synchronization signal associated with uplink object, broadcast channel associated with uplink object, synchronization signal block associated with uplink object.
[0147] Therefore, the second basic object can include at least one of the following:
[0148] PSS;
[0149] SSS;
[0150] first level synchronization signal or broadcast channel or synchronization signal block;
[0151] second level synchronization signal or broadcast channel or synchronization signal block;
[0152] first part of synchronization signal or broadcast channel or synchronization signal block;
[0153] second part of synchronization signal or broadcast channel or synchronization signal block;
[0154] narrowband part of synchronization signal or broadcast channel or synchronization signal block;
[0155] wideband part of synchronization signal or broadcast channel or synchronization signal block;
[0156] synchronization signal or broadcast channel or synchronization signal block corresponding to narrowband;
[0157] synchronization signal or broadcast channel or synchronization signal block corresponding to wideband;
[0158] synchronization signal or broadcast channel or synchronization signal block associated with downlink signal or channel;
[0159] synchronization signal or broadcast channel or synchronization signal block associated with uplink signal or channel.
[0160] The third base object can comprise at least one of:
[0161] a PSS;
[0162] a PSS;
[0163] a second level synchronization signal or a broadcast channel or a synchronization signal block;
[0164] a first level synchronization signal or a broadcast channel or a synchronization signal block;
[0165] a second part of a synchronization signal or a broadcast channel or a synchronization signal block;
[0166] a first part of a synchronization signal or a broadcast channel or a synchronization signal block;
[0167] a wideband part of a synchronization signal or a broadcast channel or a synchronization signal block;
[0168] a narrowband part of a synchronization signal or a broadcast channel or a synchronization signal block;
[0169] a wideband corresponding synchronization signal or a broadcast channel or a synchronization signal block;
[0170] a narrowband corresponding synchronization signal or a broadcast channel or a synchronization signal block;
[0171] an uplink signal or channel associated synchronization signal or a broadcast channel or a synchronization signal block;
[0172] a downlink signal or channel associated synchronization signal or a broadcast channel or a synchronization signal block.
[0173] wherein the second base object and the third base object are exemplified as follows:
[0174] exemplarily, the second base object comprises a PSS and the third base object comprises a SSS;
[0175] or, exemplarily, the second base object comprises a SSS and the third base object comprises a PSS;
[0176] or, exemplarily, the second base object comprises a first level synchronization signal and the third base object comprises a second level synchronization signal;
[0177] or, exemplarily, the second base object comprises a first level broadcast channel and the third base object comprises a second level broadcast channel;
[0178] or, exemplarily, the second base object comprises a first level synchronization signal block and the third base object comprises a second level synchronization signal block;
[0179] or, exemplarily, the second base object comprises a second level synchronization signal and the third base object comprises a first level synchronization signal;
[0180] Alternatively, the second base object comprises a second level broadcast channel and the third base object comprises a first level broadcast channel, for example.
[0181] Alternatively, the second base object comprises a second level synchronization signal block and the third base object comprises a first level synchronization signal block, for example.
[0182] Alternatively, the second base object comprises a first part of a synchronization signal and the third base object comprises a second part of the synchronization signal, for example.
[0183] Alternatively, the second base object comprises a first part of a broadcast channel and the third base object comprises a second part of the broadcast channel, for example.
[0184] Alternatively, the second base object comprises a first part of a synchronization signal block and the third base object comprises a second part of the synchronization signal block, for example.
[0185] Alternatively, the second base object comprises a second part of a synchronization signal and the third base object comprises a first part of the synchronization signal, for example.
[0186] Alternatively, the second base object comprises a second part of a broadcast channel and the third base object comprises a first part of the broadcast channel, for example.
[0187] Alternatively, the second base object comprises a second part of a synchronization signal block and the third base object comprises a first part of the synchronization signal block, for example.
[0188] Alternatively, the second base object comprises a narrowband part of a synchronization signal and the third base object comprises a wideband part of the synchronization signal, for example.
[0189] Alternatively, the second base object comprises a narrowband part of a broadcast channel and the third base object comprises a wideband part of the broadcast channel, for example.
[0190] Alternatively, the second base object comprises a narrowband part of a synchronization signal block and the third base object comprises a wideband part of the synchronization signal block, for example.
[0191] Alternatively, the second base object comprises a wideband part of a synchronization signal and the third base object comprises a narrowband part of the synchronization signal, for example.
[0192] Alternatively, the second base object comprises a wideband part of a broadcast channel and the third base object comprises a narrowband part of the broadcast channel, for example.
[0193] Alternatively, the second base object comprises a wideband part of a synchronization signal block and the third base object comprises a narrowband part of the synchronization signal block, for example.
[0194] Alternatively, the second basic object comprises a narrowband corresponding synchronization signal, and the third basic object comprises a wideband corresponding synchronization signal;
[0195] Alternatively, the second basic object comprises a narrowband corresponding broadcast channel, and the third basic object comprises a wideband corresponding broadcast channel;
[0196] Alternatively, the second basic object comprises a narrowband corresponding synchronization signal block, and the third basic object comprises a wideband corresponding synchronization signal block;
[0197] Alternatively, the second basic object comprises a wideband corresponding synchronization signal, and the third basic object comprises a narrowband corresponding synchronization signal;
[0198] Alternatively, the second basic object comprises a wideband corresponding broadcast channel, and the third basic object comprises a narrowband corresponding broadcast channel;
[0199] Alternatively, the second basic object comprises a wideband corresponding synchronization signal block, and the third basic object comprises a narrowband corresponding synchronization signal block;
[0200] Alternatively, the second basic object comprises a downlink object associated synchronization signal, and the third basic object comprises an uplink object associated synchronization signal;
[0201] Alternatively, the second basic object comprises a downlink object associated broadcast channel, and the third basic object comprises an uplink object associated broadcast channel;
[0202] Alternatively, the second basic object comprises a downlink object associated synchronization signal block, and the third basic object comprises an uplink object associated synchronization signal block;
[0203] Alternatively, the second basic object comprises an uplink object associated synchronization signal, and the third basic object comprises a downlink object associated synchronization signal;
[0204] Alternatively, the second basic object comprises an uplink object associated broadcast channel, and the third basic object comprises a downlink object associated broadcast channel;
[0205] Alternatively, the second basic object comprises an uplink object associated synchronization signal block, and the third basic object comprises a downlink object associated synchronization signal block.
[0206] It should be noted that for the narrowband part of the synchronization signal or the broadcast channel or the synchronization signal block, the wideband part of the synchronization signal or the broadcast channel or the synchronization signal block: the synchronization signal or the broadcast channel or the synchronization signal block can comprise multiple parts of different bandwidths, the narrowband part refers to the narrower part of the multiple parts, and the wideband refers to the wider part.
[0207] In addition, the first level synchronization signal, the first level broadcast channel, the first level synchronization signal block, the second level synchronization signal, the second level broadcast channel, the second level synchronization signal block are explained as follows:
[0208] It can be understood that the synchronization signal includes two parts or two levels, for example, the terminal can receive the first level synchronization signal to obtain part of the information, and then find the second level synchronization signal, or vice versa. In an embodiment, the first level synchronization signal indicates or corresponds to the second level synchronization signal.
[0209] It can be understood that the broadcast channel includes two parts or two levels, for example, the terminal can receive the first level broadcast channel to obtain part of the information, and then find the second level broadcast channel, or vice versa. In an embodiment, the first level broadcast channel indicates or corresponds to the second level broadcast channel.
[0210] It can be understood that the synchronization signal block includes two parts or two levels, for example, the terminal can receive the first level synchronization signal block to obtain part of the information, and then find the second level synchronization signal block, or vice versa. In an embodiment, the first level synchronization signal block indicates or corresponds to the second level synchronization signal block.
[0211] The first part of the synchronization signal, the first part of the broadcast channel, the first part of the synchronization signal block, the second part of the synchronization signal, the second part of the broadcast channel, the second part of the synchronization signal block are explained as follows:
[0212] It can be understood that the synchronization signal includes two parts, for example, the PSS is the first part, and the SSS is the second part; or, for example, the SSS is the first part, and the PSS is the second part; or, for example, the PSS and the SSS are the first part, and other SS (such as a tracking synchronization signal (TSS)) is the second part; or, for example, the PSS and the SSS are the second part, and other SS such as TSS is the first part.
[0213] It can be understood that the broadcast channel includes two parts, for example, part of the symbols is the first part, and another part of the symbols is the second part; or, for example, the bandwidth is narrower is the first part, and the bandwidth is wider is the second part; or vice versa.
[0214] It can be understood that the synchronization signal block includes two parts, for example, part of the symbols is the first part, and another part of the symbols is the second part; or, for example, the bandwidth is narrower is the first part, and the bandwidth is wider is the second part; or, for example, the synchronization signal is the first part, and the broadcast channel is the second part; or vice versa.
[0215] Optionally, the uplink object comprises at least one of a physical random access channel (PRACH), a physical uplink shared channel (PUSCH) (e.g., at least one of a Msg3 PUSCH, a MsgA PUSCH, a configured grant (CG) PUSCH in an RRC idle / inactive state, a dynamic grant (DG) PUSCH in an RRC idle or inactive state), a sounding reference signal (SRS) (e.g., an SRS in an RRC inactive or idle state), a wake-up signal (WUS), a physical uplink control channel (PUCCH).
[0216] Optionally, the downlink object comprises at least one of a fourth object, a demodulation reference signal of the fourth object, a control channel of the fourth object, a common object (e.g., a downlink object scheduling a SIB), wherein the fourth object comprises at least one of a channel state information-reference signal (CSI-RS), a physical downlink control channel (PDCCH), a common search space, a positioning reference signal (PRS), a tracking reference signal (TRS), a measurement reference signal, a broadcast channel, a multicast channel, a random access response (RAR), a paging, a contention resolution message (Msg4).
[0217] Optionally, the power feature information of the first object and the power feature information of the second object satisfy at least one of:
[0218] the two are the same;
[0219] a difference between the two is within a first range;
[0220] the difference between the two is a first preset value.
[0221] It should be noted that the difference between the two is a first preset value, and the first preset value is zero, which can also be understood as the same as the two; that is, the difference between the power characteristic information of the first object and the power characteristic information of the second object is zero, which can also be understood as the same as the two.
[0222] That is, the power characteristic information of the first object and the power characteristic information of the second object can be the same, or the difference between them is within a first range, or the difference between them is a first preset value.
[0223] As a first example, the power characteristic information of all symbols of the first base object is the same, or the difference between the power characteristic information of at least two symbols of the first base object is within a first range, or the difference between the power characteristic information of at least two symbols of the first base object is a first preset value.
[0224] As a second example, the power characteristic information of all symbols of the uplink object is the same, or the difference between the power characteristic information of at least two symbols of the uplink object is within a first range, or the difference between the power characteristic information of at least two symbols of the uplink object is a first preset value.
[0225] As a third example, the power characteristic information of all symbols of the downlink object is the same, or the difference between the power characteristic information of at least two symbols of the downlink object is within a first range, or the difference between the power characteristic information of at least two symbols of the downlink object is a first preset value.
[0226] As a fourth example, the power characteristic information of at least part of the symbols of the second base object and the power characteristic information of at least part of the symbols of the third base object can be the same, or the difference between them is within a first range, or the difference between them is a first preset value.
[0227] As a fifth example, the power characteristic information of the fourth base object and the power characteristic information of the uplink object can be the same, or the difference between them is within a first range, or the difference between them is a first preset value.
[0228] As a sixth example, the power characteristic information of the fourth base object and the power characteristic information of the downlink object can be the same, or the difference between them is within a first range, or the difference between them is a first preset value; for example, the network side device can be configured or the protocol can be specified that the difference between the power characteristic information of the downlink object and the associated synchronization signal or broadcast channel or synchronization signal block; in this way, the terminal can determine the power characteristic information or the range of the power characteristic information of the downlink object based on the fourth base object, thereby facilitating the terminal to adjust the power and quickly adapt to the power of the downlink object, and facilitating reception or decoding.
[0229] It should be noted that in the first to sixth examples, the values of the respective first preset values can be different or the same, and the values of the respective first ranges can be the same or different.
[0230] Optionally, at least one of the power characteristic information of the first object and the power characteristic information of the second object, the first range and the first preset value satisfies at least one of the following conditions:
[0231] Through protocol agreement;
[0232] Through network side device configuration;
[0233] According to the first target parameter;
[0234] Through the first signal specification;
[0235] Among them, at least one of the first object and the second object corresponds to the first target parameter;
[0236] The first target parameter includes at least one of the following:
[0237] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth (such as minimum bandwidth, maximum bandwidth), channel grid interval, channel grid step, channel grid number, synchronization grid interval, synchronization grid step, synchronization grid number, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, vibrator.
[0238] It should be noted that it can also be understood that the first target parameter includes at least one of the following corresponding to at least one of the first object and the second object: time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of objects, bandwidth of objects, channel bandwidth (such as minimum bandwidth, maximum bandwidth), channel grid interval, channel grid step, channel grid number, synchronization grid interval, synchronization grid step, synchronization grid number, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, vibrator.
[0239] In addition, the time unit can include at least one of symbol, time slot, millisecond, frame, candidate position.
[0240] Therefore, the power characteristic information of the first object and the power characteristic information of the second object can be determined through protocol agreement, or through network side device configuration, or according to the first target parameter, or through the first signal specification.
[0241] The difference between the power characteristic information of the first object and the power characteristic information of the second object is in the first range, which can be agreed by a protocol, or configured by a network side device, or determined according to the first target parameter, or specified by the first signal;
[0242] The difference between the power characteristic information of the first object and the power characteristic information of the second object is a first preset value, which can be agreed by a protocol, or configured by a network side device, or determined according to the first target parameter (for example, the difference between the power of the first object corresponding to the first raster on the frequency band A and the power of the second object corresponding to the second raster is Z), or specified by the first signal.
[0243] It should be noted that the power characteristic information of the first object and the second object is the same, or the difference is a preset value, or the difference is in the first range, which can be understood as: the power characteristic information of at least part or all symbols of the first object and the second object is the same, or the difference is a first preset value, or the difference is in the first range; or it can also be understood that: the power characteristic information of at least part or all symbols of the first object corresponding to at least one first target parameter is the same as the power characteristic information of at least part or all symbols of the second object corresponding to at least one first target parameter, or the difference is a first preset value, or the difference is in the first range.
[0244] For example: the power characteristic information of at least part or all symbols of the first object on at least one first band or subband or raster or frequency domain position or frequency point and the power characteristic information of at least part or all symbols of the second object on at least one second band or subband or raster or frequency domain position or frequency point is the same, or the difference is a first preset value, or the difference is in the first range (that is, the power characteristic information of at least part or all symbols of the objects on at least two bands or subbands or rasters or frequency domain positions or frequency points is the same, or the difference is a first preset value, or the difference is in the first range);
[0245] Or, for example, the power characteristic information of at least part or all symbols of the first object of at least one first time or period or time unit and the power characteristic information of at least part or all symbols of the second object of at least one second time or period or time unit is the same, or the difference is a first preset value, or the difference is in the first range (that is, the power characteristic information of at least part or all symbols of the objects of at least two times or periods or time units is the same, or the difference is a first preset value, or the difference is in the first range);
[0246] Or, for example, the first object corresponding to the first index and the second object of the second index, at least part or all of the power characteristic information of the symbol is the same, or the difference is the first preset value, or the difference is in the first range (that is, at least part or all of the power characteristic information of the symbol of the object of the first index and the second index is the same, or the difference is the first preset value, or the difference is in the first range).
[0247] Optionally, in the step 401, the terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including:
[0248] The terminal determines at least one of the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object according to the first target parameter;
[0249] At least one of the first object and the second object corresponds to the first target parameter.
[0250] The first target parameter includes at least one of:
[0251] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, and vibrator.
[0252] Therefore, the first target parameter includes the above-mentioned parameters corresponding to at least one of the first object and the second object; when the first target parameter includes the above-mentioned parameters corresponding to the first object (that is, the first target parameter corresponds to the first object), the first target parameter corresponds to the power characteristic information, and the power characteristic information of the first object can be determined according to the first target parameter; or, when the first target parameter includes the above-mentioned parameters corresponding to the second object (that is, the first target parameter corresponds to the second object), the first target parameter corresponds to the power characteristic information, and the power characteristic information of the second object can be determined according to the first target parameter; or, when the first target parameter includes the above-mentioned parameters corresponding to the first object and the second object (that is, the first target parameter corresponds to the first object), the first target parameter corresponds to the difference between the power characteristic information, and the difference between the power characteristic information of the first object and the second object can be determined according to the first target parameter.
[0253] Optionally, the terminal determines at least one of the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object according to the first target parameter, in order to perform a target behavior on at least one of the first object and the second object; wherein the target behavior comprises at least one of monitoring, detecting, searching, and measuring.
[0254] For example, the terminal determines the power characteristic information of at least one of the first object and the second object, or determines the difference between the power characteristic information of the first object and the power characteristic information of the second object, based on a time or a period or a time unit, in which the monitoring or the detecting or the searching or the measuring is performed.
[0255] For example, the terminal determines the difference between the power characteristic information of the first object and the power characteristic information of the second object based on a time or a period or a time unit, which can include that the terminal assumes or expects that the difference between the power characteristic information of at least part of the symbols of the first object at a first time or a first period or a first time unit and the power characteristic information of at least part of the symbols of the second object at a second time or a second period or a second time unit is one or more of the following:
[0256] a first preset value defined by a protocol;
[0257] a first range defined by a protocol;
[0258] a first preset value configured by a network-side device;
[0259] a first range configured by a network-side device;
[0260] For example, the first preset value and the first range depend on the first target parameter (for example, the fixed power difference between the first object corresponding to the first time and the second object corresponding to the second time is Z).
[0261] For example, the terminal determines the power characteristic information of at least one of the first object and the second object, or determines the difference between the power characteristic information of the first object and the power characteristic information of the second object, based on a band or a subband or a raster or a frequency domain location or a frequency point, in which the monitoring or the detecting or the searching or the measuring is performed.
[0262] For example, the terminal determines the difference between the power characteristic information of the first object and the power characteristic information of the second object based on a band or a subband or a raster or a frequency domain location or a frequency point, which can include that the terminal assumes or expects that the difference between the power characteristic information of at least part of the symbols of the first object at a first band or a first subband or a first raster or a first frequency domain location or a first frequency point and the power characteristic information of at least part of the symbols of the second object at a second band or a second subband or a second raster or a second frequency domain location or a second frequency point is one or more of the following:
[0263] a first preset value defined by the protocol;
[0264] belongs to a first range defined by the protocol;
[0265] a first preset value configured by the network-side device;
[0266] belongs to a first range configured by the network-side device;
[0267] wherein the first preset value and the first range depend on the above-mentioned first target parameter (e.g., a fixed power difference between the first object corresponding to the first raster on the band A and the second object corresponding to the second raster is Z).
[0268] Alternatively, for example, the terminal determines the power characteristic information of at least one of the first object and the second object monitored or detected or searched or measured according to the grouping index or the index or the use or the type or the beam or the TRP or the area or the network type or the antenna or the panel or the vibrator, or determines the difference between the power characteristic information of the first object and the power characteristic information of the second object.
[0269] wherein the terminal determines the difference between the power characteristic information of the first object and the power characteristic information of the second object based on the grouping index or the index or the use or the type or the beam or the TRP or the area or the network type or the antenna or the panel or the vibrator, which can include that the terminal assumes or expects the difference between the power characteristic information of the first object or at least part of the symbols of the first object on the first grouping index or the index or the use or the type or the beam or the TRP or the area or the network type or the antenna or the panel or the vibrator, and the power characteristic information of the second object or at least part of the symbols of the second object on the second grouping index or the index or the use or the type or the beam or the TRP or the area or the network type or the antenna or the panel or the vibrator, is one or more of the following:
[0270] a first preset value defined by the protocol;
[0271] belongs to a first range defined by the protocol;
[0272] a first preset value configured by the network-side device;
[0273] belongs to a first range configured by the network-side device;
[0274] wherein the first preset value and the first range depend on the above-mentioned first target parameter (e.g., a fixed power difference between the first object corresponding to the first index and the second object corresponding to the second index is Z).
[0275] Optionally, the method further includes at least one of the following:
[0276] The terminal performs a target behavior on the first object based on at least one of the first target parameter, power characteristic information of the first object, and a difference between the power characteristic information of the first object and the second object;
[0277] The terminal performs the target behavior on the second object based on at least one of the first target parameter, power characteristic information of the second object, and a difference between the power characteristic information of the first object and the second object;
[0278] At least one of the first object and the second object corresponds to the first target parameter.
[0279] The first target parameter includes at least one of:
[0280] a time domain position, a time, a period, a time unit, a frequency band, a sub-band, a grid, a frequency domain position, a frequency point, a frequency domain range, a sub-carrier spacing, a number of corresponding objects, a bandwidth of corresponding objects, a channel bandwidth, a channel grid spacing, a channel grid step, a number of channel grids, a synchronization grid spacing, a synchronization grid step, a number of synchronization grids, a network type, an index of a belonging group, an index, a use, a type, a beam, a TRP, a region, a network type, an antenna, a panel, a vibrator;
[0281] The target behavior includes at least one of monitoring, detecting, searching, and measuring.
[0282] It can be understood that the terminal performing a target behavior on the first object based on the first target parameter can include:
[0283] The terminal determines power characteristic information of the first object and a difference between the power characteristic information of the first object and the second object according to the first target parameter, and thus performs a target behavior on the first object based on at least one of the power characteristic information of the first object and the difference between the power characteristic information of the first object and the second object.
[0284] Similarly, the terminal performing a target behavior on the second object based on the first target parameter can include:
[0285] The terminal determines power characteristic information of the second object and a difference between the power characteristic information of the first object and the second object according to the first target parameter, and thus performs a target behavior on the second object based on at least one of the power characteristic information of the second object and the difference between the power characteristic information of the first object and the second object.
[0286] The specific process in which the terminal determines the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the second object according to the first target parameter can be referred to in the foregoing description, and will not be described here.
[0287] Therefore, the terminal can perform the target behavior based on the assumption that the difference between the power characteristic information of at least part or all of the symbols of the first object corresponding to the at least one first target parameter and the power characteristic information of at least part or all of the symbols of the second object corresponding to the at least one first target parameter is a first preset value or is within a first range, wherein the first preset value and the first range depend on the first target parameter.
[0288] For example, the terminal monitors or detects or searches or measures based on the following assumptions:
[0289] If at least part of the symbols of the first object are monitored or detected or searched or measured on the first time or period or time unit (i.e., at least part of the symbols of the first object are monitored or detected or searched or measured), the following cases one or two can occur:
[0290] Case one: the terminal can assume or expect that the difference between the power characteristic information of at least part of the symbols of the first object and the power characteristic information of at least part of the symbols of the second object monitored or detected or searched or measured on the second time or period or time unit (i.e., at least part of the symbols of the second object are monitored or detected or searched or measured) is determined in the following one or more ways:
[0291] A first preset value defined by the protocol;
[0292] Belongs to a first range defined by the protocol;
[0293] A first preset value configured by the network side device;
[0294] Belongs to a first range configured by the network side device;
[0295] Wherein, the first preset value and the first range depend on the above-mentioned first target parameter.
[0296] Case two: the terminal assumes or expects or infers the power characteristic information of at least part of the symbols of the first object based on the power characteristic information of at least part of the symbols of the second object.
[0297] Alternatively, for example, the terminal monitors or detects or searches or measures based on the following assumptions:
[0298] If at least part of the symbols of the first object are monitored or detected or searched or measured on the first band or subband or raster or frequency domain location or frequency point (i.e., at least part of the symbols of the first object are monitored or detected or searched or measured), the following cases one or two can occur:
[0299] Case one: the difference between the power characteristic information of at least part of the symbols of the first object and the power characteristic information of at least part of the symbols of the second object (i.e., the power characteristic information of at least part of the symbols of the second object) monitored or detected or searched or measured by the terminal is determined in the following one or more ways:
[0300] a first preset value defined by a protocol;
[0301] a first range defined by a protocol;
[0302] a first preset value configured by a network-side device;
[0303] a first range configured by a network-side device;
[0304] The first preset value and the first range depend on the first target parameter.
[0305] Case two: the terminal assumes or expects or infers the power characteristic information of at least part of the symbols of the first object based on the power characteristic information of at least part of the symbols of the second object.
[0306] Alternatively, the terminal monitors or detects or searches or measures based on the following assumptions:
[0307] If at least part of the symbols of the first object (i.e., at least part of the symbols of the first object) is monitored or detected or searched or measured based on the first grouping index or index or use or type or beam or TRP or area or network type or antenna or panel or element, the following case one or two can be used:
[0308] Case one: the difference between the power characteristic information of at least part of the symbols of the first object and the power characteristic information of at least part of the symbols of the second object (i.e., the power characteristic information of at least part of the symbols of the second object) monitored or detected or searched or measured by the terminal based on the second grouping index or index or use or type or beam or TRP or area or network type or antenna or panel or element is determined in the following one or more ways:
[0309] a first preset value defined by a protocol;
[0310] a first range defined by a protocol;
[0311] a first preset value configured by a network-side device;
[0312] a first range configured by a network-side device;
[0313] The first preset value and the first range depend on the first target parameter.
[0314] Case two: the terminal assumes or expects or infers the power characteristic information of at least part of the symbols of the first object based on the power characteristic information of at least part of the symbols of the second object.
[0315] Optionally, the terminal determining the power characteristic information of the second object in the step 401 comprises:
[0316] The terminal determines the power characteristic information of the second object according to the difference between the power characteristic information of the first object and the power characteristic information of the second object, and the power characteristic information of the first object.
[0317] Optionally, the at least one first target parameter has a first corresponding relationship with at least one of the power characteristic information and the offset information.
[0318] The offset information comprises an offset relative to the power characteristic information corresponding to a second target parameter, and the second target parameter is a first target parameter serving as an anchor point or a basis or a reference or a main resource object.
[0319] The first target parameter comprises at least one of:
[0320] a time domain position, a time, a period, a time unit, a frequency band, a sub-band, a grid, a frequency domain position, a frequency point, a frequency domain range, a sub-carrier spacing, a number of corresponding objects, a bandwidth of corresponding objects, a channel bandwidth, a channel grid spacing, a channel grid step, a number of channel grids, a synchronization grid spacing, a synchronization grid step, a number of synchronization grids, a network type, an index of a belonging group, an index, a use, a type, a beam, a TRP, a region, a network type, an antenna, a panel, a vibrator.
[0321] In addition, the resource object can comprise at least one of: a cell, a bandwidth part (BWP), a TRP, a cell free (i.e. a cell comprising multiple TRPs), a carrier, a multi-carrier aggregation cell, a multi-BWP aggregation cell.
[0322] In addition, in some embodiments, the second target parameter can also be one of a first part of a third object, a second basis object, and a fourth basis object.
[0323] Therefore, the first corresponding relationship comprises at least one of B-1 to B-2 as follows:
[0324] B-1: a corresponding relationship between the at least one first target parameter and the power characteristic information;
[0325] That is, at least one first target parameter has corresponding power characteristic information, so that the power characteristic information of the object corresponding to the first target parameter is the power characteristic information corresponding to the first target parameter; for example, the power corresponding to the first period is x3watt (w), and the power corresponding to the second period is x4w, then the power of the first object corresponding to the first period is x3w, and the power of the second object corresponding to the second period is x4w.
[0326] Item B-2: the correspondence between at least one first target parameter and offset information;
[0327] That is, at least one first target parameter has corresponding offset information, so that the power characteristic information of the object corresponding to the first target parameter can be obtained according to the offset information corresponding to the first target parameter, that is, the offset corresponding to the offset information is performed on the basis of the power characteristic information corresponding to the second target parameter; for example, the first period is an anchor point or a basis or a main reference, and the offset corresponding to the second period is +x5watt (w), then if the power corresponding to the first period is Yw, the power of the second period is (Y+x5)w.
[0328] Optionally, the first correspondence is provided by a network side device or defined by a protocol.
[0329] Exemplarily, the network side device provides the respective power characteristic information or offset information for at least one first target parameter (i.e. at least one time or period or time unit or band or subband or raster or frequency domain position or frequency point or frequency domain range or subcarrier spacing or the number of corresponding objects or corresponding bandwidth or channel bandwidth or channel raster or the number of channel rasters or synchronization raster interval or synchronization raster step or the number of synchronization rasters or network type or index of belonging group or index or use or type or beam or TRP or area or network type or antenna or panel or vibrator).
[0330] Exemplarily, the protocol defines the respective power characteristic information or offset information for at least one first target parameter (i.e. at least one time or period or time unit or band or subband or raster or frequency domain position or frequency point or frequency domain range or subcarrier spacing or the number of corresponding objects or corresponding bandwidth or channel bandwidth or channel raster or the number of channel rasters or synchronization raster interval or synchronization raster step or the number of synchronization rasters or network type or index of belonging group or index or use or type or beam or TRP or area or network type or antenna or panel or vibrator).
[0331] Optionally, in the step 401, the terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including:
[0332] The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object according to the first correspondence relationship.
[0333] At least one of the first object and the second object corresponds to the first target parameter.
[0334] Therefore, the first correspondence relationship includes the correspondence relationship between at least one first target parameter and at least one of the power characteristic information and the offset information, and the power characteristic information of at least one of the first object and the second object can be determined according to the first target parameter.
[0335] Optionally, the terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object according to the first correspondence relationship, including at least one of the following C-1 to C-4:
[0336] C-1: In the first correspondence relationship, at least one of the power characteristic information and the offset information corresponding to the first target parameter corresponding to the first object exists, and the terminal determines the power characteristic information of the first object according to at least one of the power characteristic information and the offset information corresponding to the first target parameter corresponding to the first object in the first correspondence relationship.
[0337] C-2: In the first correspondence relationship, at least one of the power characteristic information and the offset information corresponding to the first target parameter corresponding to the second object exists, and the terminal determines the power characteristic information of the second object according to at least one of the power characteristic information and the offset information corresponding to the first target parameter corresponding to the second object in the first correspondence relationship.
[0338] C-3: In the first correspondence relationship, the power characteristic information and the offset information corresponding to the first target parameter corresponding to the first object do not exist, and the terminal determines the power parameter of the first object according to the maximum value of the power characteristic information supported by the terminal and the power characteristic information and the offset information existing in the first correspondence relationship.
[0339] C-4: In the first correspondence relationship, the power characteristic information and the offset information corresponding to the first target parameter corresponding to the second object do not exist, and the terminal determines the power parameter of the second object according to the maximum value of the power characteristic information supported by the terminal and the power characteristic information and the offset information existing in the first correspondence relationship.
[0340] In order to facilitate understanding of the above C-1 to C-4, the following examples are given:
[0341] For example, the power characteristic information of at least one first band or subband or raster or frequency domain location or frequency point or cell is provided or defined; optionally, the remaining part after excluding the power characteristic information of the at least one first band or subband or raster or frequency domain location or frequency point or cell provided or defined is allocated to other bands or subbands or rasters or frequency domain locations or frequency points or cells; for example, the terminal works on three frequency bands, and the power on the first band is provided or defined as Aw, and the maximum power of the terminal is Bw, then the power on the second and third bands can be (A-B)w.
[0342] It should be noted that the power can use the unit of decibel milliwatt (dBm) or the unit of w; if the unit of the power is dBm, the excluding operation can include corresponding mathematical conversion operation and subtraction operation, i.e., converting the maximum power of the terminal and the unit of the provided or defined power from dBm to w, so as to calculate the difference between the maximum power of the terminal and the provided or defined power in the unit of w, and then allocate the power represented by the difference to other bands or subbands or rasters or frequency domain locations or frequency points or cells.
[0343] Alternatively, for example, the offset of the power characteristic information of other bands or subbands or rasters or frequency domain locations or frequency points or cells relative to the at least one first band or subband or raster or frequency domain location or frequency point or cell is provided or defined:
[0344] The at least one first band or subband or raster or frequency domain location or frequency point or cell can be referred to as an anchor or base or main or reference band or subband or raster or frequency domain location or frequency point or cell.
[0345] In addition, the terminal can determine the power spectral density or EPRE or Eb or N0 or EPRE or power of other bands or subbands or rasters or frequency domain locations or frequency points or cells based on the power characteristic information of the at least one first band or subband or raster or frequency domain location or frequency point or cell and the offset.
[0346] In addition, if a band or subband or raster or frequency domain location or frequency point or cell is not provided, and an offset of power characteristic information relative to the at least one first band or subband or raster or frequency domain location or frequency point or cell is not provided, the power characteristic information on the band or subband or raster or frequency domain location or frequency point or cell to be determined can be determined according to the provided offset and the maximum capability of the terminal. For example, the terminal works in three bands, a second band is provided or defined, the offset of power relative to the first band is +x6w, the power on the first band is x7w, and the maximum capability of the terminal power is x8w, then the power on the third band can be: [x8-(x7+x6)]w.
[0347] Optionally, the fourth basic object is in a corresponding relationship with a power adjustment parameter.
[0348] Optionally, in the case that the first object includes at least one fourth basic object, and the second object includes the uplink object, the terminal determining the power characteristic information of the second object includes the following step E-1:
[0349] Step E-1: The terminal determines the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basic object.
[0350] Therefore, in the embodiments of the present application, the fourth basic object can correspond to a power adjustment parameter, and the power characteristic information of the uplink object can be determined according to the power adjustment parameter corresponding to the fourth basic object.
[0351] Optionally, the power adjustment parameter includes at least one of the following D-1 to D-11:
[0352] D-1: path loss; for example, the path loss between the terminal and the network side device;
[0353] For example, the path loss corresponding to the first SSB is 3db, and the path loss corresponding to the second SSB is 6db, so when calculating the PRACH power corresponding to the first SSB, the power needs to be calculated based on 3db.
[0354] D-2: power offset (delta power); for example, when the uplink object is a preamble, the power offset can be DELTA_PREAMBLE described above;
[0355] Exemplarily, the delta power corresponding to the first SSB is 3db, and the delta power corresponding to the second SSB is 6db, so when calculating the PRACH power corresponding to the first SSB, the delta power needs to be added by 3db, or the value of the delta power is 3db, and when calculating the PRACH power corresponding to the second SSB, the delta power needs to be added by 6db, or the value of the delta power is 6db.
[0356] D-3 item: power ramping;
[0357] Exemplarily, the power ramping corresponding to the first SSB is 3db, and the power ramping corresponding to the second SSB is 6db, so when the PRACH retransmission corresponding to the first SSB is power ramped, the power is adjusted by 3db each time; when the PRACH retransmission corresponding to the second SSB is power ramped, the power is adjusted by 6db each time.
[0358] D-4 item: additional power; for example, when the uplink object is a preamble, the additional power is added to the second formula described above, so that the transmission power of the preamble can be obtained.
[0359] Exemplarily, the additional power corresponding to the first SSB is 3db, and the additional power corresponding to the second SSB is 6db, so when calculating the PRACH power corresponding to the first SSB, 3db needs to be added, and when calculating the PRACH power corresponding to the second SSB, 6db needs to be added.
[0360] D-5 item: received target power of the uplink object;
[0361] Exemplarily, the received target power of the uplink object corresponding to the first SSB is 10dbm, and the received target power of the uplink object corresponding to the second SSB is 16dbm, so when the uplink object corresponding to the first SSB is transmitted, the power is calculated based on 10dbm; when the uplink object corresponding to the second SSB is transmitted, the power is calculated based on 16dbm.
[0362] D-6 item: reference power;
[0363] Exemplarily, the reference power of the uplink object corresponding to the first SSB is 10dbm, and the reference power of the uplink object corresponding to the second SSB is 16dbm, when the first SSB corresponding uplink object is sent, the power is calculated based on 10dbm; when the second SSB corresponding uplink object is sent, the power is calculated based on 16dbm.
[0364] D-7: Nominal power;
[0365] Exemplarily, the nominal power of the target received power of the uplink object corresponding to the first SSB is a1, and the nominal power of the target received power of the uplink object corresponding to the second SSB is b1, when the first SSB corresponding uplink object is sent, the power is calculated based on a1; when the second SSB corresponding uplink object is sent, the power is calculated based on b1.
[0366] D-8: Transmission power command;
[0367] Exemplarily, the transmission power command of the uplink object corresponding to the first SSB is a2, and the transmission power command of the uplink object corresponding to the second SSB is b2, when the first SSB corresponding uplink object is sent, the power is calculated based on a2; when the second SSB corresponding uplink object is sent, the power is calculated based on b2.
[0368] D-9: Power scaling factor;
[0369] Exemplarily, the power scaling factor corresponding to the first SSB is a3, and the power scaling factor corresponding to the second SSB is b3, when the first SSB corresponding uplink object is sent, the power is calculated based on a3; when the second SSB corresponding uplink object is sent, the power is calculated based on b3.
[0370] D-10: Offset of target received power of uplink object.
[0371] Exemplarily, the offset of the target received power of the uplink object corresponding to the first SSB is a4, and the offset of the target received power of the uplink object corresponding to the second SSB is b4, when the first SSB corresponding uplink object is sent, the power is calculated based on a4; when the second SSB corresponding uplink object is sent, the power is calculated based on b4.
[0372] D-11: Number of power changes;
[0373] Exemplarily, the first SSB corresponds to a power change number a5, and the second SSB corresponds to a power change number b5. When the first SSB corresponds to PRACH retransmission for power ramping, the power is calculated based on a5. When the second SSB corresponds to PRACH retransmission for power ramping, the power is calculated based on b5.
[0374] It should be noted that the examples of SSBs in this paper can also be applied to the basic objects including other objects in addition to SSBs. That is, the examples of SSBs in this paper can also replace SSBs in the basic objects with other objects in addition to SSBs.
[0375] Optionally, the correspondence between the fourth basic object and the power adjustment parameter includes the correspondence between at least one of the following associated with the fourth basic object and the power adjustment parameter:
[0376] time, period, time unit, frequency band, subband, raster, frequency domain position, frequency point, resource object, mapping pattern of the fourth basic object and uplink object, period of the uplink object, density of the uplink object, interval of the uplink object, interval between the fourth basic object and the uplink object, path loss measured by the fourth basic object, received power or signal quality measured by the fourth basic object, parameter information of the network system to which the fourth basic object belongs.
[0377] The pattern can include at least one of the period, interval, and density.
[0378] The content included in the resource object is as described above, and will not be repeated here.
[0379] For example, the first band or subband or raster or frequency domain position or frequency point or cell or time or period or time unit corresponds to a delta power of 3db, and the first band or subband or raster or frequency domain position or frequency point or cell or time or period or time unit is the first SSB. When calculating the PRACH power corresponding to the first SSB, the delta power needs to be added by 3db, or the value of the delta power is 3db.
[0380] Or, for example, the first band or subband or raster or frequency domain location or frequency point or cell or time or period or time unit, the corresponding additional power is 6db, the first SSB on the first band or subband or raster or frequency domain location or frequency point or cell or time or period or time unit, then when calculating the PRACH power corresponding to the first SSB, 3db needs to be added.
[0381] In addition, regarding the correspondence between the mapping pattern of the fourth base object and the uplink object and the power adjustment parameter: since there is a mapping relationship between the uplink object (such as PRACH) and the fourth base object (such as SSB), the mapping relationship may be relatively sparse or the period is relatively long, for example, there is a mapping every 160 milliseconds, or it may be relatively dense, for example, there is a mapping every 20 milliseconds;
[0382] If the mapping relationship is relatively sparse or the period is relatively long, and the transmission power of the current uplink object is too small, the terminal needs to perform power adjustment before sending the uplink object, which may need to wait for the next 160 milliseconds to have the opportunity to send the uplink object, resulting in a long delay; therefore, for the case that the mapping relationship is relatively sparse or the period is relatively long, the corresponding power adjustment parameter needs to be larger, so that the uplink object can be successfully transmitted as soon as possible and retransmission is reduced;
[0383] If the mapping relationship is relatively dense or the period is relatively short, and the transmission power of the current uplink object is too large, it will waste terminal energy consumption or cause relatively large interference; therefore, for the case that the mapping relationship is relatively dense or the period is relatively short, the corresponding power adjustment parameter needs to be smaller, so as to reduce the waste of terminal energy consumption.
[0384] Regarding the period of the uplink object corresponding to the fourth base object and the interval between the fourth base object and the uplink object corresponding to the fourth base object:
[0385] If the period of the uplink object corresponding to the fourth base object is relatively large or the interval between the two is relatively large, and the transmission power of the current uplink object is too small, the terminal needs to perform power adjustment before sending the uplink object, which may need to wait for the next period or the next interval to send the uplink object, resulting in a long delay; therefore, for the case that the period of the uplink object corresponding to the fourth base object is relatively large or the interval between the two is relatively large, the corresponding power adjustment parameter needs to be larger, so that the uplink object can be successfully transmitted as soon as possible and retransmission is reduced;
[0386] If the period of the uplink object corresponding to the fourth base object is relatively small or the interval between the two is relatively small, and the transmission power of the current uplink object is too large, the terminal energy consumption will be wasted; therefore, for the case that the period of the uplink object corresponding to the fourth base object is relatively small or the interval between the two is relatively small, the corresponding power adjustment parameter needs to be smaller, so as to reduce the waste of terminal energy consumption.
[0387] Regarding the path loss or received power or signal quality measured by the fourth base object:
[0388] If the path loss measured by the fourth base object is large, or the received power or signal quality measured by the fourth base object is small, when the uplink object sent by the terminal reaches the network side device, the power will be smaller, thereby reducing the success reception probability of the network side device; therefore, in this case, the corresponding power adjustment parameter needs to be larger, so that the uplink object can be successfully transmitted as soon as possible and retransmission is reduced.
[0389] If the path loss measured by the fourth base object is small, or the received power or signal quality measured by the fourth base object is large, when the uplink object sent by the terminal reaches the network side device, the power is large enough, which may waste terminal energy consumption; therefore, in this case, the corresponding power adjustment parameter needs to be smaller, so as to reduce the waste of terminal energy consumption.
[0390] Regarding the parameter information of the network system to which the fourth base object belongs:
[0391] The parameter information of the network system can include at least one of network type and coverage range;
[0392] If the network system to which the fourth base object belongs is NTN or a larger TRP, the path loss between the terminal and the network side device is large, the distance is far, or the transmission delay is long, and the corresponding power adjustment parameter needs to be larger, so that the uplink object can be successfully transmitted as soon as possible and retransmission is reduced.
[0393] If the network system to which the fourth base object belongs is TN, the path loss between the terminal and the network side device is small, and the power of the uplink object sent by the terminal to the network side device is large enough, which may waste terminal energy consumption; therefore, in this case, the corresponding power adjustment parameter needs to be smaller, so as to reduce the waste of terminal energy consumption.
[0394] Optionally, in the step E-1, the terminal determines the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth base object, including:
[0395] In a case where the first object includes a plurality of the fourth basic objects, the terminal calculates a third target parameter according to the power adjustment parameters corresponding to the fourth basic objects, and determines the power feature information of the uplink object according to the third target parameter;
[0396] The third target parameter is one of:
[0397] The maximum of the power adjustment parameters corresponding to the fourth basic objects;
[0398] The minimum of the power adjustment parameters corresponding to the fourth basic objects;
[0399] The weighted sum of the power adjustment parameters corresponding to the fourth basic objects;
[0400] The average of the power adjustment parameters corresponding to the fourth basic objects.
[0401] Therefore, when performing uplink object transmission (such as preamble retransmission or repeated transmission), if the uplink object corresponds to a plurality of fourth basic objects, the power feature information of the uplink object can be determined based on the maximum or minimum or average or weighted sum of the power adjustment parameters corresponding to the plurality of fourth basic objects; for example, if SSB1 corresponds to delta power = 3db and SSB2 corresponds to delta power = 6db, the power of the preamble is determined based on max(3, 6) = 6db.
[0402] Optionally, the plurality of fourth basic objects included in the first object are fourth basic objects of a plurality of TPRs, that is, in a case where the first object includes fourth basic objects of a plurality of TPRs, the terminal calculates a third target parameter according to the power adjustment parameters corresponding to the fourth basic objects of the plurality of TPRs, and determines the power feature information of the uplink object according to the third target parameter; wherein the third target parameter is one of:
[0403] The maximum of the power adjustment parameters corresponding to the fourth basic objects of the plurality of TPRs;
[0404] The minimum of the power adjustment parameters corresponding to the fourth basic objects of the plurality of TPRs;
[0405] The weighted sum of the power adjustment parameters corresponding to the fourth basic objects of the plurality of TPRs;
[0406] The average of the power adjustment parameters corresponding to the fourth basic objects of the plurality of TPRs.
[0407] Therefore, when performing uplink object transmission (such as preamble retransmission or repeated transmission), if the uplink object corresponds to the fourth basis object of multiple TRPs, the power characteristic information of the uplink object can be determined based on the maximum or minimum or average value or weighted sum of the power adjustment parameters corresponding to the fourth basis object of multiple TRPs; for example, the preamble corresponds to SSB1 or SSB2, SSB1 corresponds to TRP1, SSB2 corresponds to TRP2, SSB1 corresponds to delta power = 3db, and SSB2 corresponds to delta power = 6db. The power of the preamble is determined based on 3db corresponding to SSB1 of TRP1.
[0408] Alternatively, the power characteristic information of the uplink object can also be determined according to the power adjustment parameter corresponding to the fourth basis object of a specific TPR in multiple TPRs.
[0409] Optionally, in the step E-1, the terminal determines the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basis object, including:
[0410] In the case where the network side device indicates or the protocol agrees that the Quasi Co-Location (QCL) reference object or the corresponding power control reference object of the uplink object is the fifth basis object, the terminal determines the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basis object;
[0411] Among them, the fourth basis object and the fifth basis object satisfy at least one of the following:
[0412] They are the same basis object;
[0413] They belong to the same group;
[0414] At least part of the first target parameter is the same;
[0415] Among them, at least one of the fourth basis object and the fifth basis object corresponds to the first target parameter;
[0416] The first target parameter includes at least one of the following:
[0417] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the group to which it belongs, index, use, type, beam, TRP, area, network type, antenna, panel, and vibrator.
[0418] Optionally, the method further comprises:
[0419] In a case where the network side device indicates or a protocol stipulates that the quasi co-sited reference object or the corresponding power control reference object of the uplink object is a fifth basic object, the terminal determines the fourth basic object according to the fifth basic object;
[0420] The fourth basic object and the fifth basic object satisfy at least one of the following conditions:
[0421] They are the same basic object;
[0422] They belong to the same group;
[0423] At least part of the first target parameter is the same;
[0424] At least one of the fourth basic object and the fifth basic object corresponds to the first target parameter;
[0425] The first target parameter includes at least one of the following:
[0426] Time domain position, time, period, time unit, frequency band, subband, raster, frequency domain position, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of the group to which it belongs, index, use, type, beam, TRP, area, network type, antenna, panel, and element.
[0427] From the above, if the network side device indicates or a protocol stipulates that the quasi co-sited reference object or the corresponding power control reference object of the uplink object is a fifth basic object, the terminal can determine the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basic object, or can determine the fourth basic object based on the fifth basic object, and then determine the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basic object.
[0428] For example, when the base station indicates or a protocol stipulates that the QCL reference signal object or the power control reference object of the uplink object is a first specific SSB, the power characteristic information of the uplink object can be determined based on a second specific SSB; wherein the first specific SSB and the second specific SSB belong to the same group, or a group of bands or subbands or rasters or frequency domain positions or frequency points or cells, or belong to the same group, or belong to the same or a group of time or period or time unit.
[0429] Alternatively, for example, there are SSB1 and SSB2 in one SSB group, if the transmission powers of the two are different, but the RSRP or EPRE difference can be within a range, although the terminal accesses the cell based on SSB1 or although the PUSCH associated quasi co-location reference signal (QCL RS) is SSB1, but SSB1 can be temporarily blocked or triggered beam failure indication (BFI), then the terminal can adjust the power based on the power adjustment parameter corresponding to SSB2, such as the path loss (PL) calculated based on SSB2 to calculate the PUSCH power, or can use SSB2 to derive the PUSCH QCL or TCI, so as to continue transmission.
[0430] Optionally, the method further comprises at least one of the following F-1 to F-4:
[0431] F-1: In the case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is different from at least one first target parameter corresponding to the uplink object retransmitted or repeatedly transmitted by the terminal, at least in part, the terminal satisfies at least one of the following: switching or changing the uplink object, keeping the power characteristic information of the uplink object unchanged.
[0432] It should be noted that at least partial difference includes at least one of partial difference and total difference.
[0433] That is, when the terminal retransmits or repeatedly transmits the uplink object (such as preamble), switching or changing the uplink object occurs, which can be explained as: the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is different from at least one first target parameter corresponding to the uplink object retransmitted or repeatedly transmitted by the terminal, at least in part.
[0434] For example: the terminal transmits the uplink object (such as PRACH) corresponding to the first band or subband or raster or frequency domain position or frequency point or cell or index for the first time or the last time, and selects the uplink object corresponding to the second band or subband or raster or frequency domain position or frequency point or cell or index for retransmission; or vice versa.
[0435] For example, the terminal transmits the uplink object (such as PRACH) corresponding to the first time or period or time unit for the first time or the last time, and selects the uplink object corresponding to the second time or period or time unit for retransmission; or vice versa.
[0436] F-2: In the case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: the fourth basic object is switched or changed, and the power characteristic information of the uplink object is kept unchanged;
[0437] That is, in the case that the terminal performs the retransmission or repeated transmission of the uplink object (such as preamble), the fourth basic object is switched or changed, which can be explained as: the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly;
[0438] For example, the fourth basic object corresponding to the first band or subband or raster or frequency domain position or frequency point or cell or index is transmitted by the terminal for the first time or the last time, and the fourth basic object corresponding to the second band or subband or raster or frequency domain position or frequency point or cell or index is selected for retransmission.
[0439] Alternatively, for example, the fourth basic object corresponding to the first time or period or time unit is transmitted by the terminal for the first time or the last time, and the fourth basic object corresponding to the second time or period or time unit is selected for retransmission.
[0440] F-3: In the case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is at least partially the same as the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: the uplink object is not switched or changed, and the power characteristic information of the uplink object is kept unchanged;
[0441] It should be noted that the at least partially the same includes at least one of partially the same and totally the same.
[0442] That is, in the case that the terminal performs the retransmission or repeated transmission of the uplink object (such as preamble), the uplink object is not switched or changed, which can be explained as: the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is at least partially the same as the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly;
[0443] For example, the terminal transmits the uplink object (such as PRACH) corresponding to the first band or subband or raster or frequency domain location or frequency point or cell or index for the first time or the last time, and selects the uplink object corresponding to the first band or subband or raster or frequency domain location or frequency point or cell or index for retransmission; or, the terminal transmits the uplink object (such as PRACH) corresponding to the second band or subband or raster or frequency domain location or frequency point or cell or index for the first time or the last time, and selects the uplink object corresponding to the second band or subband or raster or frequency domain location or frequency point or cell or index for retransmission.
[0444] Alternatively, for example, the terminal transmits the uplink object (such as PRACH) corresponding to the first time or period or time unit for the first time or the last time, and selects the uplink object corresponding to the first time or period or time unit for retransmission; or, the terminal transmits the uplink object (such as PRACH) corresponding to the second time or period or time unit for the first time or the last time, and selects the uplink object corresponding to the second time or period or time unit for retransmission.
[0445] F-4: In the case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is at least partially the same as the first target parameter corresponding to the fourth basic object transmitted at least once for retransmission or repetition, the terminal satisfies at least one of the following: the fourth basic object is not switched or changed, and the power characteristic information of the uplink object is kept unchanged;
[0446] That is, when the terminal performs retransmission or repetition of the uplink object (such as preamble), the fourth basic object is not switched or changed, which can be interpreted as that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is at least partially the same as the first target parameter corresponding to the fourth basic object transmitted at least once for retransmission or repetition;
[0447] For example, the terminal transmits the fourth basic object corresponding to the first band or subband or raster or frequency domain location or frequency point or cell or index for the first time or the last time, and selects the fourth basic object corresponding to the first band or subband or raster or frequency domain location or frequency point or cell or index for retransmission; or, the terminal transmits the fourth basic object corresponding to the second band or subband or raster or frequency domain location or frequency point or cell or index for the first time or the last time, and selects the fourth basic object corresponding to the second band or subband or raster or frequency domain location or frequency point or cell or index for retransmission.
[0448] Or, for example, the terminal first or last time transmits the fourth basic object corresponding to the first time or period or time unit, and the retransmission is selected as the fourth basic object corresponding to the first time or period or time unit; or, the terminal first or last time transmits the fourth basic object corresponding to the second time or period or time unit, and the retransmission is selected as the fourth basic object corresponding to the second time or period or time unit.
[0449] The first target parameter includes at least one of the following:
[0450] Time domain location, time, period, time unit, frequency band, sub-band, grid, frequency domain location, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, and element.
[0451] Optionally, the fourth basic object includes at least part of at least one of the following G-1 to G-12:
[0452] G-1: synchronization signal; wherein the synchronization signal includes at least one of the following:
[0453] G-2: broadcast channel;
[0454] G-3: broadcast channel related control channel;
[0455] G-4: broadcast signal related demodulation reference signal;
[0456] G-5: wake-up signal (WUS);
[0457] G-6: synchronization signal corresponding to the first target parameter;
[0458] G-7: broadcast channel corresponding to the first target parameter;
[0459] G-7: broadcast channel related control channel corresponding to the first target parameter;
[0460] G-9: broadcast signal related demodulation reference signal corresponding to the first target parameter;
[0461] G-10: wake-up signal corresponding to the first target parameter;
[0462] G-11: synchronization signal block;
[0463] G-12: synchronization signal block corresponding to the first target parameter.
[0464] The first target parameter comprises at least one of:
[0465] time domain location, time, period, time unit, frequency band, subband, raster, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0466] For G-1 to G-2, G-11, for example, the fourth basic object can comprise at least one of:
[0467] first synchronization signal or broadcast channel or synchronization signal block, second synchronization signal or broadcast channel or synchronization signal block, PSS, SSS, first level synchronization signal or broadcast channel or synchronization signal block, second level synchronization signal or broadcast channel or synchronization signal block, first part of synchronization signal or broadcast channel or synchronization signal block, second part of synchronization signal or broadcast channel or synchronization signal block, narrowband part of synchronization signal or broadcast channel or synchronization signal block, wideband part of synchronization signal or broadcast channel or synchronization signal block, uplink object associated synchronization signal or broadcast channel or synchronization signal block.
[0468] As can be seen from G-6 to G-10, G-12, the terminal can perform power control on the uplink object or the downlink object based on the first target parameter:
[0469] For example, the fourth basic object comprises the first band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block or control channel of broadcast channel or demodulation reference signal of broadcast signal or WUS signal of the cell; that is, only based on the first band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block of the cell to perform uplink power control (such as power allocation or power determination).
[0470] Alternatively, for example, the fourth basic object comprises the second band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block or control channel of broadcast channel or demodulation reference signal of broadcast signal or WUS signal of the cell; that is, only based on the second band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block of the cell to perform uplink power control (such as power allocation or power determination).
[0471] Or, for example, the fourth basic object includes the first band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block or control channel of the broadcast channel or demodulation reference signal of the broadcast signal or WUS signal of the cell; that is, only based on the first band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block of the cell to perform downlink power control (such as power allocation or power determination).
[0472] Or, for example, the fourth basic object includes the second band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block or control channel of the broadcast channel or demodulation reference signal of the broadcast signal or WUS signal of the cell; that is, only based on the second band or subband or raster or frequency domain location or frequency point or synchronization signal or broadcast channel or synchronization signal block of the cell to perform downlink power control (such as power allocation or power determination).
[0473] Optionally, in the case where the first object includes the fourth basic object, the terminal determines the power characteristic information of the first object, including:
[0474] The terminal receives first indication information, wherein the first indication information is used to indicate at least one of the power characteristic information of the fourth basic object, the change of the power characteristic information, the power characteristic information change step, and the number of power characteristic information changes.
[0475] The terminal determines the power characteristic information of the fourth basic object according to the first indication information.
[0476] Optionally, the first indication information is carried in at least one of downlink control information DCI, medium access control control element MAC CE, and radio resource control RRC signaling.
[0477] Therefore, at least one of the following can be indicated by at least one of DCI, MAC CE, and RRC: the power characteristic information of the fourth basic object, the change of the power characteristic information, and the power characteristic information change step.
[0478] The change of the power characteristic information of the fourth basic object may, for example, include at least one of the following: the value of the up or down, the number of up or down power steps, and the number of up or down levels.
[0479] In addition, the power characteristic information change step refers to the step size of each adjustment of the power characteristic information.
[0480] Optionally, in a case where the second object comprises at least one of an uplink object and a downlink object, the terminal determines power characteristic information of the second object, comprising:
[0481] The terminal receives second indication information;
[0482] The terminal determines power characteristic information of at least one of the uplink object and the downlink object according to the second indication information;
[0483] Optionally, the second indication information is carried in at least one of DCI, MAC CE, and RRC signaling.
[0484] The second indication information indicates at least one of the following H-1 to H-5:
[0485] H-1: Power characteristic information of at least one of the uplink object and the downlink object;
[0486] That is, at least one of DCI, MAC CE, and RRC can be used to indicate the power characteristic information of at least one of the uplink object and the downlink object.
[0487] H-2: Difference between the power characteristic information of at least one of the uplink object and the downlink object and the power characteristic information of the fourth base object;
[0488] That is, at least one of DCI, MAC CE, and RRC can be used to indicate the difference between the power characteristic information of at least one of the uplink object and the downlink object and the power characteristic information of the fourth base object.
[0489] H-3: Change in the power characteristic information corresponding to at least one of the uplink object and the downlink object;
[0490] That is, at least one of DCI, MAC CE, and RRC can be used to indicate the change in the power characteristic information of at least one of the uplink object and the downlink object.
[0491] For example, the change in the power characteristic information of at least one of the uplink object and the downlink object can include at least one of the following: a value of up-regulation or down-regulation, a number of up-regulation or down-regulation power steps, and a number of up-regulation or down-regulation levels.
[0492] H-4: Change step corresponding to the power characteristic information of at least one of the uplink object and the downlink object;
[0493] That is, at least one of DCI, MAC CE, and RRC can be used to indicate the change step corresponding to the power characteristic information of at least one of the uplink object and the downlink object.
[0494] The step length of the change of the power characteristic information of at least one of the uplink object and the downlink object refers to a step length of the power characteristic information of at least one of the uplink object and the downlink object that needs to be adjusted each time.
[0495] H-5: The number of changes corresponding to the power characteristic information of at least one of the uplink object and the downlink object.
[0496] The power characteristic information determination method provided in the embodiments of the present application can be executed by a power characteristic information determination device. In the embodiments of the present application, the power characteristic information determination method executed by the power characteristic information determination device is taken as an example to describe the power characteristic information determination device provided in the embodiments of the present application.
[0497] Referring to FIG. 5, the embodiments of the present application provide a power characteristic information determination device applied to a terminal, which can include the following modules:
[0498] The determination module 501 is configured to determine at least one of the power characteristic information of a first object and the power characteristic information of a second object.
[0499] The transmission module 502 is configured to transmit the first object according to the power characteristic information of the first object, or transmit the second object according to the power characteristic information of the second object.
[0500] The first object includes a first part of a third object, the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object, and a downlink object.
[0501] Alternatively,
[0502] The first object includes at least part of a symbol of a second base object, and the second object includes at least part of a symbol of a third base object.
[0503] Alternatively,
[0504] The first object includes at least one fourth base object, and the second object includes at least one of an uplink object and a downlink object.
[0505] The base object includes a specific type of object, and the object includes at least one of a signal and a channel.
[0506] Optionally, at least one of the first part of the third object and the second base object satisfies at least one of the following conditions:
[0507] corresponding to a first time domain position, corresponding to a first frequency domain position, corresponding to a first time, corresponding to a first period, corresponding to a first group index, corresponding to a first index, corresponding to a first usage, corresponding to a first system, corresponding to a first beam, corresponding to a first transmission reception point, TRP, corresponding to a first area, corresponding to a first network type, corresponding to a first antenna, corresponding to a first panel, corresponding to a first element.
[0508] Optionally, at least one of the second part of the third object, the third base object satisfies at least one of the following:
[0509] corresponding to a second time domain position, corresponding to a second frequency domain position, corresponding to a second time, corresponding to a second period, corresponding to a second group index, corresponding to a second index, corresponding to a second usage, corresponding to a second system, corresponding to a second beam, corresponding to a second TRP, corresponding to a second area, corresponding to a second network type, corresponding to a second antenna, corresponding to a second panel, corresponding to a second element.
[0510] Optionally, at least one of the first base object, the second base object, the third base object respectively comprises at least one of the following:
[0511] a primary synchronization signal, PSS, a secondary synchronization signal, SSS, a first level synchronization signal, a first level broadcast channel, a first level synchronization signal block, a second level synchronization signal, a second level broadcast channel, a second level synchronization signal block, a first part of a synchronization signal, a first part of a broadcast channel, a first part of a synchronization signal block, a second part of a synchronization signal, a second part of a broadcast channel, a second part of a synchronization signal block, a narrowband part of a synchronization signal, a narrowband part of a broadcast channel, a narrowband part of a synchronization signal block, a wideband part of a synchronization signal, a wideband part of a broadcast channel, a wideband part of a synchronization signal block, a synchronization signal corresponding to a narrowband, a broadcast channel corresponding to a narrowband, a synchronization signal block corresponding to a narrowband, a synchronization signal corresponding to a wideband, a broadcast channel corresponding to a wideband, a synchronization signal block corresponding to a wideband, a synchronization signal associated with a downlink object, a broadcast channel associated with a downlink object, a synchronization signal block associated with a downlink object, a synchronization signal associated with an uplink object, a broadcast channel associated with an uplink object, a synchronization signal block associated with an uplink object.
[0512] Optionally, the power characteristic information of the first object and the power characteristic information of the second object satisfy at least one of the following:
[0513] the same;
[0514] the difference is within a first range;
[0515] the difference is a first preset value.
[0516] Optionally, at least one of the first range and the first preset value, and the power characteristic information of the first object and the power characteristic information of the second object satisfy at least one of the following conditions:
[0517] Through an agreement of a protocol;
[0518] Through configuration of a network side device;
[0519] According to the first target parameter;
[0520] Through the first signal;
[0521] At least one of the first object and the second object corresponds to the first target parameter;
[0522] The first target parameter includes at least one of the following:
[0523] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, and element.
[0524] Optionally, the determining module 501 determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including:
[0525] According to the first target parameter, at least one of the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object is determined.
[0526] At least one of the first object and the second object corresponds to the first target parameter;
[0527] The first target parameter includes at least one of the following:
[0528] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, and element.
[0529] Optionally, the apparatus further includes a processing module for performing at least one of the following:
[0530] perform a target behavior on the first object based on at least one of the first target parameter, power characteristic information of the first object, and a difference between the power characteristic information of the first object and the second object;
[0531] perform the target behavior on the second object based on at least one of the first target parameter, power characteristic information of the second object, and a difference between the power characteristic information of the first object and the second object;
[0532] wherein at least one of the first object and the second object corresponds to the first target parameter;
[0533] the first target parameter comprises at least one of:
[0534] a time domain position, a time, a period, a time unit, a frequency band, a sub-band, a grid, a frequency domain position, a frequency point, a frequency domain range, a sub-carrier spacing, a number of corresponding objects, a bandwidth of corresponding objects, a channel bandwidth, a channel grid spacing, a channel grid step, a number of channel grids, a synchronization grid spacing, a synchronization grid step, a number of synchronization grids, a network type, an index of a belonging group, an index, a use, a type, a beam, a TRP, a region, a network type, an antenna, a panel, a vibrator;
[0535] the target behavior comprises at least one of monitoring, detecting, searching, and measuring.
[0536] Optionally, the determining module 501 determines the power characteristic information of the second object, comprising:
[0537] determining the power characteristic information of the second object according to a difference between the power characteristic information of the first object and the second object, and the power characteristic information of the first object.
[0538] Optionally, at least one first target parameter has a first correspondence relationship with at least one of power characteristic information and offset information;
[0539] wherein the offset information comprises an offset relative to power characteristic information corresponding to a second target parameter, and the second target parameter is a first target parameter as an anchor point or a basis or a reference or a main resource object;
[0540] the first target parameter comprises at least one of:
[0541] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0542] Optionally, the determining module 501 determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including:
[0543] According to the first correspondence relationship, at least one of the power characteristic information of the first object and the power characteristic information of the second object is determined.
[0544] At least one of the first object and the second object corresponds to the first target parameter.
[0545] Optionally, the fourth basic object has a corresponding relationship with a power adjustment parameter.
[0546] Optionally, in the case that the first object includes at least one fourth basic object and the second object includes the uplink object, the determining module 501 determines the power characteristic information of the second object, including:
[0547] According to the power adjustment parameter corresponding to the fourth basic object, the power characteristic information of the uplink object is determined.
[0548] Optionally, the power adjustment parameter includes at least one of the following:
[0549] Path loss;
[0550] Power offset;
[0551] Power change step;
[0552] Power change number;
[0553] Additional power;
[0554] Target received power of the uplink object;
[0555] Reference power;
[0556] Normalized power;
[0557] Transmission power command;
[0558] Power quantization factor;
[0559] Offset of the target received power of the uplink object.
[0560] Optionally, the correspondence between the fourth base object and the power adjustment parameter comprises a correspondence between at least one of the following associated with the fourth base object and the power adjustment parameter:
[0561] a time, a period, a time unit, a frequency band, a sub-band, a grid, a frequency domain position, a frequency point, a resource object, a mapping pattern of the fourth base object and an uplink object, a period of the uplink object, a density of the uplink object, an interval of the uplink object, an interval between the fourth base object and the uplink object, a path loss measured by the fourth base object, a received power or signal quality measured by the fourth base object, or parameter information of a network system to which the fourth base object belongs.
[0562] Optionally, the determining module 501 determines the power feature information of the uplink object according to the power adjustment parameter corresponding to the fourth base object, comprising:
[0563] In a case where the first object comprises a plurality of fourth base objects, a third target parameter is calculated according to the power adjustment parameter corresponding to the fourth base object, and the power feature information of the uplink object is determined according to the third target parameter;
[0564] The third target parameter is one of the following:
[0565] a maximum of the power adjustment parameter corresponding to the fourth base object;
[0566] a minimum of the power adjustment parameter corresponding to the fourth base object;
[0567] a weighted sum of the power adjustment parameter corresponding to the fourth base object;
[0568] an average of the power adjustment parameter corresponding to the fourth base object.
[0569] Optionally, the determining module 501 determines the power feature information of the uplink object according to the power adjustment parameter corresponding to the fourth base object, comprising:
[0570] In a case where the network side device indicates or the protocol agrees that a quasi co-site reference object or a corresponding power control reference object of the uplink object is a fifth base object, the power feature information of the uplink object is determined according to the power adjustment parameter corresponding to the fourth base object;
[0571] The fourth base object and the fifth base object satisfy at least one of the following:
[0572] they are the same base object;
[0573] they belong to the same group.
[0574] at least part of the first target parameter is same as at least one of the fourth basic object and the fifth basic object;
[0575] at least one of the fourth basic object and the fifth basic object corresponds to the first target parameter;
[0576] the first target parameter comprises at least one of:
[0577] time domain position, time, period, time unit, frequency band, sub-band, raster, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0578] Optionally, the determining module 501 is further configured to:
[0579] in a case where the network side device indicates or a protocol agrees that the quasi-co-location reference object or the corresponding power control reference object of the uplink object is the fifth basic object, determining the fourth basic object according to the fifth basic object;
[0580] at least one of the fourth basic object and the fifth basic object satisfies at least one of:
[0581] they are same basic objects;
[0582] they belong to same groups;
[0583] at least part of the first target parameter is same as at least one of the fourth basic object and the fifth basic object;
[0584] at least one of the fourth basic object and the fifth basic object corresponds to the first target parameter;
[0585] the first target parameter comprises at least one of:
[0586] time domain position, time, period, time unit, frequency band, sub-band, raster, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0587] Optionally, in a case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: switching or changing the uplink object, keeping the power characteristic information of the uplink object unchanged.
[0588] Or,
[0589] In a case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: switching or changing the fourth basic object, keeping the power characteristic information of the uplink object unchanged.
[0590] Or,
[0591] In a case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is the same as the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: not switching or changing the uplink object, keeping the power characteristic information of the uplink object unchanged.
[0592] Or,
[0593] In a case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is the same as the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: not switching or changing the fourth basic object, keeping the power characteristic information of the uplink object unchanged.
[0594] The first target parameter includes at least one of the following:
[0595] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0596] Optionally, the fourth basic object includes at least part of at least one of the following:
[0597] synchronization signal, broadcast channel, synchronization signal block, broadcast channel related control channel, broadcast signal related demodulation reference signal, wake-up signal, synchronization signal corresponding to the first target parameter, broadcast channel corresponding to the first target parameter, synchronization signal block corresponding to the first target parameter, broadcast channel related control channel corresponding to the first target parameter, broadcast signal related demodulation reference signal corresponding to the first target parameter, wake-up signal corresponding to the first target parameter;
[0598] The first target parameter includes at least one of the following:
[0599] time domain location, time, period, time unit, frequency band, sub-band, grid, frequency domain location, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0600] Optionally, in the case where the first object includes the fourth basic object, the determination module 501 determines the power feature information of the first object, including:
[0601] receiving first indication information, wherein the first indication information is used to indicate at least one of the power feature information of the fourth basic object, the change of the power feature information, the power feature information change step, and the power feature information change number;
[0602] According to the first indication information, the power feature information of the fourth basic object is determined.
[0603] Optionally, the first indication information is carried in at least one of downlink control information DCI, medium access control control element MAC CE, and radio resource control RRC signaling.
[0604] Optionally, in the case where the second object includes at least one of an uplink object and a downlink object, the determination module 501 determines the power feature information of the second object, including:
[0605] receiving second indication information;
[0606] According to the second indication information, the power feature information of at least one of the uplink object and the downlink object is determined.
[0607] The second indication information indicates at least one of the following:
[0608] The power feature information of at least one of the uplink object and the downlink object;
[0609] a difference between the power characteristic information of at least one of the uplink object and the downlink object and the power characteristic information of the fourth base object;
[0610] a change in the power characteristic information corresponding to at least one of the uplink object and the downlink object;
[0611] a change step corresponding to the power characteristic information of at least one of the uplink object and the downlink object;
[0612] a change number corresponding to the power characteristic information of at least one of the uplink object and the downlink object.
[0613] Optionally, the second indication information is carried in at least one of DCI, MAC CE, and RRC signaling.
[0614] Optionally, the power characteristic information includes at least one of the following:
[0615] power spectral density, energy of a resource element EPRE, bit signal-to-noise ratio Eb / N0, and power.
[0616] The power characteristic information determination apparatus in the embodiments of the present application can be an electronic device, for example, an electronic device with an operating system, or a component in an electronic device, for example, an integrated circuit or a chip. The electronic device can be a terminal. Exemplarily, the terminal can include, but is not limited to, the types of the terminal 11 listed above, and the embodiments of the present application are not limited specifically.
[0617] The power characteristic information determination apparatus provided in the embodiments of the present application can implement each process implemented by the method embodiment of FIG. 4 and achieve the same technical effects. To avoid repetition, details are not described herein.
[0618] As shown in FIG. 6, the embodiments of the present application further provide a communication device 600, which includes a processor 601 and a memory 602, and the memory 602 stores programs or instructions executable on the processor 601. For example, when the communication device 600 is a terminal, the programs or instructions are executed by the processor 601 to implement each step of the power characteristic information determination method embodiments described above and achieve the same technical effects.
[0619] The embodiments of the present application further provide a terminal including a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is configured to run programs or instructions to implement the steps in the method embodiment of FIG. 4. The terminal embodiment corresponds to the terminal-side method embodiment described above, and each implementation process and implementation manner of the method embodiment described above can be applied to the terminal embodiment and achieve the same technical effects. Specifically, FIG. 7 is a schematic diagram of a hardware structure of a terminal implementing the embodiments of the present application.
[0620] The terminal 700 includes, but is not limited to, at least part of components such as a radio frequency unit 701, a network module 702, an audio output unit 703, an input unit 704, a sensor 705, a display unit 706, a user input unit 707, an interface unit 708, a memory 709, and a processor 710.
[0621] Those skilled in the art can understand that the terminal 700 can further include a power supply (such as a battery) for supplying power to each component, and the power supply can be logically connected to the processor 710 through a power management system, so as to realize functions such as management of charging, discharging, and power consumption management through the power management system. The terminal structure shown in FIG. 7 does not constitute a limitation on the terminal, and the terminal can include more or fewer components than those shown, or combine certain components, or different component arrangements, which are not described here.
[0622] It should be understood that in the embodiments of the present application, the input unit 704 can include a graphics processing unit (GPU) 7041 and a microphone 7042. The graphics processor 7041 processes image data of a still picture or a video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode. The display unit 706 can include a display panel 7061, which can be configured in the form of a liquid crystal display, an organic light-emitting diode, etc. The user input unit 707 includes at least one of a touch panel 7071 and other input devices 7072. The touch panel 7071 is also called a touch screen. The touch panel 7071 can include two parts of a touch detection device and a touch controller. The other input devices 7072 can include, but are not limited to, a physical keyboard, function keys (such as volume control keys, on-off keys, etc.), trackballs, mice, joysticks, etc., which are not described here.
[0623] In the embodiments of the present application, the radio frequency unit 701 can transmit downlink data from the network side device to the processor 710 for processing after receiving the downlink data. In addition, the radio frequency unit 701 can send uplink data to the network side device. Generally, the radio frequency unit 701 includes, but is not limited to, an antenna, an amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.
[0624] The memory 709 can be used to store software programs or instructions and various data. The memory 709 can mainly include a first storage area storing programs or instructions and a second storage area storing data, wherein the first storage area can store an operating system, application programs or instructions required by at least one function (such as a sound playing function, an image playing function, etc.), and the like. In addition, the memory 709 can include a volatile memory or a non-volatile memory. The non-volatile memory can be a Read-Only Memory (ROM), a Programmable ROM (PROM), an Erasable PROM (EPROM), an Electrically EPROM (EEPROM), or a flash memory. The volatile memory can be a Random Access Memory (RAM), a Static RAM (SRAM), a Dynamic RAM (DRAM), a Synchronous DRAM (SDRAM), a Double Data Rate SDRAM (DDR SDRAM), an Enhanced SDRAM (ESDRAM), a Synch link DRAM (SLDRAM), and a Direct Rambus RAM (DRRAM). The memory 709 in the embodiments of the present application includes but is not limited to these and any other suitable types of memory.
[0625] The processor 710 can include one or more processing units; optionally, the processor 710 integrates an application processor and a modem processor, wherein the application processor mainly processes operations related to an operating system, a user interface, and an application program, and the modem processor mainly processes wireless communication signals, such as a baseband processor. It can be understood that the above-mentioned modem processor can also not be integrated into the processor 710.
[0626] The processor 710 is configured to determine at least one of power characteristic information of a first object and power characteristic information of a second object.
[0627] The radio frequency unit 701 is configured to transmit the first object according to the power characteristic information of the first object, or transmit the second object according to the power characteristic information of the second object.
[0628] The first object includes a first part of a third object, and the second object includes a second part of the third object.
[0629] Alternatively, the first object includes at least part of a symbol of a second base object, and the second object includes at least part of a symbol of a third base object.
[0630] Alternatively, the first object includes at least one fourth base object, and the second object includes at least one of an uplink object and a downlink object.
[0631] The base object includes a specific type of object, and the object includes at least one of a signal and a channel.
[0632] Optionally, at least one of the first part of the third object and the second base object satisfies at least one of the following:
[0633] corresponding first time domain position, corresponding first frequency domain position, corresponding first time, corresponding first period, corresponding first group index, corresponding first index, corresponding first use, corresponding first system, corresponding first beam, corresponding first transmission and reception point (TRP), corresponding first area, corresponding first network type, corresponding first antenna, corresponding first panel, and corresponding first element.
[0634] Optionally, at least one of the second part of the third object and the third base object satisfies at least one of the following:
[0635] corresponding second time domain position, corresponding second frequency domain position, corresponding second time, corresponding second period, corresponding second group index, corresponding second index, corresponding second use, corresponding second system, corresponding second beam, corresponding second TRP, corresponding second area, corresponding second network type, corresponding second antenna, corresponding second panel, and corresponding second element.
[0636] Optionally, at least one of the first base object, the second base object, the third base object, and the fourth base object respectively includes at least one of the following:
[0637] Primary synchronization signal, PSS, secondary synchronization signal, SSS, first level synchronization signal, first level broadcast channel, first level synchronization signal block, second level synchronization signal, second level broadcast channel, second level synchronization signal block, first part of synchronization signal, first part of broadcast channel, first part of synchronization signal block, second part of synchronization signal, second part of broadcast channel, second part of synchronization signal block, narrowband part of synchronization signal, narrowband part of broadcast channel, narrowband part of synchronization signal block, wideband part of synchronization signal, wideband part of broadcast channel, wideband part of synchronization signal block, synchronization signal corresponding to narrowband, broadcast channel corresponding to narrowband, synchronization signal block corresponding to narrowband, synchronization signal corresponding to wideband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, synchronization signal associated with downlink object, broadcast channel associated with downlink object, synchronization signal block associated with downlink object, synchronization signal associated with uplink object, broadcast channel associated with uplink object, synchronization signal block associated with uplink object.
[0638] Optionally, the power characteristic information of the first object and the power characteristic information of the second object satisfy at least one of the following:
[0639] The two are the same;
[0640] The difference between the two is within a first range;
[0641] The difference between the two is a first preset value.
[0642] Optionally, at least one of the power characteristic information of the first object and the power characteristic information of the second object, the first range and the first preset value satisfies at least one of the following:
[0643] Through protocol agreement;
[0644] Through network side device configuration;
[0645] According to the first target parameter;
[0646] Through the first signal specification;
[0647] At least one of the first object and the second object corresponds to the first target parameter;
[0648] The first target parameter includes at least one of the following:
[0649] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0650] Optionally, the processor 710 determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, comprising:
[0651] According to the first target parameter, at least one of the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object is determined.
[0652] At least one of the first object and the second object corresponds to the first target parameter.
[0653] The first target parameter comprises at least one of:
[0654] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0655] Optionally, the processor 710 is further configured to perform at least one of:
[0656] Based on at least one of the first target parameter, the power characteristic information of the first object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object, the target behavior is performed on the first object;
[0657] Based on at least one of the first target parameter, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the power characteristic information of the second object, the target behavior is performed on the second object;
[0658] At least one of the first object and the second object corresponds to the first target parameter.
[0659] The first target parameter comprises at least one of:
[0660] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0661] The target behavior includes at least one of monitoring, detecting, searching, and measuring.
[0662] Optionally, the processor 710 determines the power characteristic information of the second object, including:
[0663] According to the difference between the power characteristic information of the first object and the second object, and the power characteristic information of the first object, the power characteristic information of the second object is determined.
[0664] Optionally, at least one first target parameter has a first corresponding relationship with at least one of power characteristic information and offset information.
[0665] The offset information includes an offset relative to the power characteristic information corresponding to the second target parameter, and the second target parameter is a first target parameter serving as an anchor point or a basis or a reference or a main resource object.
[0666] The first target parameter includes at least one of:
[0667] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0668] Optionally, the processor 710 determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including:
[0669] According to the first corresponding relationship, at least one of the power characteristic information of the first object and the power characteristic information of the second object is determined.
[0670] At least one of the first object and the second object corresponds to the first target parameter.
[0671] Optionally, the fourth basic object has a corresponding relationship with a power adjustment parameter.
[0672] Optionally, in the case that the first object comprises at least one fourth basic object and the second object comprises the uplink object, the processor 710 determines the power characteristic information of the second object, comprising:
[0673] determining the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basic object.
[0674] Optionally, the power adjustment parameter comprises at least one of:
[0675] path loss, power offset, power change step, power change times, additional power, target received power of the uplink object, reference power, normalized power, transmit power command, power quantization factor, offset of the target received power of the uplink object.
[0676] Optionally, the corresponding relationship between the fourth basic object and the power adjustment parameter comprises the corresponding relationship between at least one of the following associated with the fourth basic object and the power adjustment parameter:
[0677] time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, resource object, mapping pattern of the fourth basic object and the uplink object, period of the uplink object, density of the uplink object, interval of the uplink object, interval between the fourth basic object and the corresponding uplink object, path loss measured by the fourth basic object, received power or signal quality measured by the fourth basic object, parameter information of the network system to which the fourth basic object belongs.
[0678] Optionally, the processor 710 determines the power characteristic information of the uplink object according to the power adjustment parameter corresponding to the fourth basic object, comprising:
[0679] in the case that the first object comprises a plurality of fourth basic objects, calculating a third target parameter according to the power adjustment parameter corresponding to the fourth basic object, and determining the power characteristic information of the uplink object according to the third target parameter;
[0680] wherein the third target parameter is one of:
[0681] the maximum of the power adjustment parameter corresponding to the fourth basic object;
[0682] the minimum of the power adjustment parameter corresponding to the fourth basic object;
[0683] the weighted sum of the power adjustment parameter corresponding to the fourth basic object;
[0684] an average of the power adjustment parameters corresponding to the fourth base object.
[0685] Optionally, the processor 710 determines the power characteristic information of the uplink object according to the power adjustment parameters corresponding to the fourth base object, including:
[0686] In a case where the network side device indicates or agrees by protocol that the quasi co-site reference object or the corresponding power control reference object of the uplink object is a fifth base object, the power characteristic information of the uplink object is determined according to the power adjustment parameters corresponding to the fourth base object;
[0687] The fourth base object and the fifth base object satisfy at least one of the following:
[0688] They are the same base object;
[0689] They belong to the same group;
[0690] At least part of the first target parameter is the same;
[0691] At least one of the fourth base object and the fifth base object corresponds to the first target parameter;
[0692] The first target parameter includes at least one of the following:
[0693] time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step, number of channel grids, synchronization grid spacing, synchronization grid step, number of synchronization grids, network type, index of the group to which it belongs, index, use, type, beam, TRP, area, network type, antenna, panel, and vibrator.
[0694] Optionally, the processor 710 is further configured to:
[0695] In a case where the network side device indicates or agrees by protocol that the quasi co-site reference object or the corresponding power control reference object of the uplink object is a fifth base object, the fourth base object is determined according to the fifth base object;
[0696] The fourth base object and the fifth base object satisfy at least one of the following:
[0697] They are the same base object;
[0698] They belong to the same group;
[0699] At least part of the first target parameter is the same;
[0700] The fourth basic object and the fifth basic object correspond to the first target parameter.
[0701] The first target parameter includes at least one of the following:
[0702] Time domain position, time, period, time unit, frequency band, sub-band, grid, frequency domain position, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid interval, channel grid step, number of channel grids, synchronization grid interval, synchronization grid step, number of synchronization grids, network type, index of the group to which it belongs, index, use, type, beam, TRP, area, network type, antenna, panel, and element.
[0703] Optionally, in the case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: switching or changing the uplink object, keeping the power characteristic information of the uplink object unchanged.
[0704] Or,
[0705] In the case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is different from the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: switching or changing the fourth basic object, keeping the power characteristic information of the uplink object unchanged.
[0706] Or,
[0707] In the case that the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is the same as the first target parameter corresponding to the uplink object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: not switching or changing the uplink object, keeping the power characteristic information of the uplink object unchanged.
[0708] Or,
[0709] In the case that the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is the same as the first target parameter corresponding to the fourth basic object transmitted at least one time or repeatedly, the terminal satisfies at least one of the following: not switching or changing the fourth basic object, keeping the power characteristic information of the uplink object unchanged.
[0710] The first target parameter includes at least one of the following:
[0711] Time domain location, time, period, time unit, frequency band, sub-band, raster, frequency domain location, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0712] Optionally, the fourth basic object includes at least part of at least one of the following:
[0713] Synchronization signal, broadcast channel, synchronization signal block, broadcast channel related control channel, broadcast signal related demodulation reference signal, wake-up signal, synchronization signal corresponding to the first target parameter, broadcast channel corresponding to the first target parameter, synchronization signal block corresponding to the first target parameter, broadcast channel related control channel corresponding to the first target parameter, broadcast signal related demodulation reference signal corresponding to the first target parameter, wake-up signal corresponding to the first target parameter.
[0714] Optionally, the first target parameter includes at least one of the following:
[0715] Time domain location, time, period, time unit, frequency band, sub-band, raster, frequency domain location, frequency point, frequency domain range, sub-carrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel raster interval, channel raster step, number of channel rasters, synchronization raster interval, synchronization raster step, number of synchronization rasters, network type, index of the belonging group, index, use, type, beam, TRP, area, network type, antenna, panel, element.
[0716] Optionally, in the case where the first object includes the fourth basic object, the radio frequency unit 701 is configured to: receive first indication information, wherein the first indication information is used to indicate at least one of the power characteristic information of the fourth basic object, the change of the power characteristic information, the power characteristic information change step, and the power characteristic information change number.
[0717] The processor 710 determines the power characteristic information of the first object, including:
[0718] According to the first indication information, the power characteristic information of the fourth basic object is determined.
[0719] Optionally, the first indication information is carried in at least one of the following: downlink control information DCI, medium access control control element MAC CE, and radio resource control RRC signaling.
[0720] Optionally, in a case where the second object comprises at least one of an uplink object and a downlink object, the radio frequency unit 701 is configured to: receive second indication information;
[0721] The processor 710 determines power characteristic information of the second object, including:
[0722] According to the second indication information, the power characteristic information of at least one of the uplink object and the downlink object is determined.
[0723] The second indication information indicates at least one of:
[0724] The power characteristic information of at least one of the uplink object and the downlink object;
[0725] The difference between the power characteristic information of at least one of the uplink object and the downlink object and the power characteristic information of the fourth base object;
[0726] The change of the power characteristic information corresponding to at least one of the uplink object and the downlink object;
[0727] The change step corresponding to the power characteristic information of at least one of the uplink object and the downlink object;
[0728] The number of changes corresponding to the power characteristic information of at least one of the uplink object and the downlink object.
[0729] Optionally, the second indication information is carried in at least one of DCI, MAC CE, and RRC signaling.
[0730] Optionally, the power characteristic information comprises at least one of:
[0731] Power spectral density, energy of a resource element EPRE, bit signal-to-noise ratio Eb / N0, and power.
[0732] It can be understood that the implementation processes of the implementation manners mentioned in the embodiment can refer to the related descriptions of the method embodiments and achieve the same or corresponding technical effects. To avoid repetition, they will not be described here.
[0733] The embodiment of the application further provides a readable storage medium, which stores a program or instructions, and the program or instructions are executed by a processor to implement each process of the power characteristic information determination method embodiment and achieve the same technical effects. To avoid repetition, they will not be described here.
[0734] The processor is the processor in the terminal in the above embodiments. The readable storage medium includes a computer readable storage medium, such as a computer readable only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, etc. In some examples, the readable storage medium can be a non-transitory readable storage medium.
[0735] The embodiment of the application further provides a chip, which comprises a processor and a communication interface, the communication interface is coupled with the processor, the processor is used for running programs or instructions, realizes each process of the power feature information determination method embodiment, and can achieve the same technical effect. To avoid repetition, it will not be described here.
[0736] It should be understood that the chip mentioned in the embodiment of the application can also be referred to as a system chip, a system chip, a chip system or a system on chip, etc.
[0737] The embodiment of the application further provides a computer program / program product, which is stored in a storage medium, and is executed by at least one processor to realize each process of the power feature information determination method embodiment, and can achieve the same technical effect. To avoid repetition, it will not be described here.
[0738] It should be noted that in this paper, the term "includes", "contains" or any other variant thereof is intended to cover non-exclusive inclusion, so that the process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such process, method, article or device. Without more limitations, the element defined by the statement "includes a" does not exclude the presence of another identical element in the process, method, article or device including the element. In addition, it should be pointed out that the scope of the method and device in the embodiment of the application is not limited to the order of the functions shown or discussed, but also includes the functions performed in a substantially simultaneous manner or in the opposite order, for example, the described method can be performed in a different order from the described order, and various steps can also be added, omitted or combined. In addition, the features described with reference to some examples can be combined in other examples.
[0739] Through the description of the above embodiments, those skilled in the art can clearly understand that the above embodiment method can be realized by means of computer software product and general hardware platform, of course, it can also be realized by hardware. The computer software product is stored in a storage medium (such as ROM, RAM, magnetic disk, optical disk, etc.), which includes a plurality of instructions for making the terminal or network side equipment execute the method described in each embodiment of the application.
[0740] The embodiments of the present application are described above with reference to the accompanying drawings, but the present application is not limited to the above-described specific embodiments, and the above-described specific embodiments are merely illustrative, but not restrictive, and a person of ordinary skill in the art can make many forms of embodiments under the inspiration of the present application without departing from the purpose of the present application and the scope protected by the claims.
Claims
1. A method for determining power characteristic information, wherein, The method includes: The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object; The terminal transmits the first object based on the power characteristic information of the first object, or transmits the second object based on the power characteristic information of the second object; Wherein, the first object includes a first part of the third object, the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object, and a downlink object; Alternatively, the first object may include at least a portion of the symbols of the second base object, and the second object may include at least a portion of the symbols of the third base object; Alternatively, the first object may include at least one fourth base object, and the second object may include at least one of an uplink object and a downlink object; The underlying object includes objects of a specific type, and the objects include at least one of signals and channels.
2. The method according to claim 1, wherein, At least one of the first part of the third object and the second base object satisfies at least one of the following: Corresponding to the first time domain position, corresponding to the first frequency domain position, corresponding to the first time, corresponding to the first period, corresponding to the first group index, corresponding to the first index, corresponding to the first purpose, corresponding to the first system, corresponding to the first beam, corresponding to the first transmit / receive point (TRP), corresponding to the first area, corresponding to the first network type, corresponding to the first antenna, corresponding to the first panel, and corresponding to the first vibrator.
3. The method according to claim 1 or 2, wherein, At least one of the second part of the third object and the third base object satisfies at least one of the following: Corresponding to the second time domain position, corresponding to the second frequency domain position, corresponding to the second time, corresponding to the second period, corresponding to the second group index, corresponding to the second index, corresponding to the second purpose, corresponding to the second system, corresponding to the second beam, corresponding to the second TRP, corresponding to the second region, corresponding to the second network type, corresponding to the second antenna, corresponding to the second panel, corresponding to the second oscillator.
4. The method according to any one of claims 1 to 3, wherein, At least one of the first base object, the second base object, and the third base object includes at least one of the following: Primary synchronization signal (PSS), secondary synchronization signal (SSS), first-level synchronization signal, first-level broadcast channel, first-level synchronization signal block, second-level synchronization signal, second-level broadcast channel, second-level synchronization signal block, first part of synchronization signal, first part of broadcast channel, first part of synchronization signal block, second part of synchronization signal, second part of broadcast channel, second part of synchronization signal block, narrowband part of synchronization signal, narrowband part of broadcast channel, narrowband part of synchronization signal block, wideband part of synchronization signal, wideband part of broadcast channel, wideband part of synchronization signal block, synchronization signal corresponding to narrowband, broadcast channel corresponding to narrowband, synchronization signal block corresponding to narrowband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, synchronization signal associated with downlink object, broadcast channel associated with downlink object, synchronization signal block associated with downlink object, synchronization signal associated with uplink object, broadcast channel associated with uplink object, synchronization signal block associated with uplink object.
5. The method according to any one of claims 1 to 4, wherein, The power characteristic information of the first object and the power characteristic information of the second object satisfy at least one of the following: The two are the same; The difference between the two is within the first range; The difference between the two is the first preset value.
6. The method according to claim 5, wherein, The power characteristic information of the first object is the same as that of the second object, and at least one of the first range and the first preset value satisfies at least one of the following: By way of agreement; Configure via network-side devices; Determined based on the first target parameter; Specify via the first signal; Wherein, at least one of the first object and the second object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
7. The method according to any one of claims 1 to 6, wherein, The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including: The terminal determines at least one of the following based on the first target parameter: the power characteristic information of the first object, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the second object. Wherein, at least one of the first object and the second object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
8. The method according to any one of claims 1 to 7, wherein, The method further includes at least one of the following: The terminal performs a target action on the first object based on at least one of the first target parameter, the power characteristic information of the first object, and the difference between the power characteristic information of the first object and the second object; The terminal performs the target behavior on the second object based on at least one of the first target parameter, the power characteristic information of the second object, and the difference between the power characteristic information of the first object and the second object; Wherein, at least one of the first object and the second object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator; The target behavior includes at least one of the following: monitoring, detection, searching, and measurement.
9. The method according to any one of claims 1 to 8, wherein, The terminal determines the power characteristic information of the second object, including: The terminal determines the power characteristic information of the second object based on the difference between the power characteristic information of the first object and the second object, and the power characteristic information of the first object.
10. The method according to any one of claims 1 to 9, wherein, At least one of the first target parameters has a first correspondence with at least one of the power characteristic information and offset information; The offset information includes the offset relative to the power characteristic information corresponding to the second target parameter, where the second target parameter is a first target parameter that serves as an anchor point, base, reference, or primary resource object. The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
11. The method according to claim 10, wherein, The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object, including: The terminal determines at least one of the power characteristic information of the first object and the power characteristic information of the second object based on the first correspondence relationship; Wherein, at least one of the first object and the second object corresponds to the first target parameter.
12. The method according to any one of claims 1 to 11, wherein, The fourth basic object has a corresponding relationship with the power adjustment parameters.
13. The method according to claim 12, wherein, When the first object includes at least one of the fourth base objects and the second object includes the uplink object, the terminal determines the power characteristic information of the second object, including: The terminal determines the power characteristic information of the uplink object based on the power adjustment parameters corresponding to the fourth basic object.
14. The method according to claim 12 or 13, wherein, The power adjustment parameter includes at least one of the following: Path loss; power offset; power change step size; number of power changes; additional power; target received power of the uplink object; reference power; normalized power; transmit power command; power quantization factor; offset of the target received power of the uplink object.
15. The method according to any one of claims 12 to 14, wherein, The correspondence between the fourth basic object and the power adjustment parameter includes: at least one of the following correspondences between the fourth basic object and the power adjustment parameter: Time, period, time unit, frequency band, sub-band, grid, frequency domain location, frequency point, resource object, mapping pattern between the fourth basic object and the uplink object, period of the uplink object, density of the uplink object, interval of the uplink object, interval between the fourth basic object and the uplink object, path loss measured by the fourth basic object, received power or signal quality measured by the fourth basic object, and parameter information of the network system to which the fourth basic object belongs.
16. The method according to any one of claims 13 to 15, wherein, The terminal determines the power characteristic information of the uplink object based on the power adjustment parameters corresponding to the fourth basic object, including: When the first object includes multiple fourth basic objects, the terminal calculates a third target parameter based on the power adjustment parameter corresponding to the fourth basic object, and determines the power characteristic information of the uplink object based on the third target parameter; The third target parameter is one of the following: The largest of the power adjustment parameters corresponding to the fourth basic object; The smallest of the power adjustment parameters corresponding to the fourth basic object; The weighted sum of the power adjustment parameters corresponding to the fourth basic object; The average value of the power adjustment parameters corresponding to the fourth basic object.
17. The method according to any one of claims 13 to 16, wherein, The terminal determines the power characteristic information of the uplink object based on the power adjustment parameters corresponding to the fourth basic object, including: When the network-side device indicates or the protocol stipulates that the quasi-co-address reference object or the corresponding power control reference object of the uplink object is the fifth basic object, the terminal determines the power characteristic information of the uplink object according to the power adjustment parameters corresponding to the fourth basic object; Wherein, the fourth basic object and the fifth basic object satisfy at least one of the following: They are based on the same object; Belonging to the same group; At least some of the first objective parameters are the same; Wherein, at least one of the fourth basic object and the fifth basic object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
18. The method according to any one of claims 13 to 17, wherein, The method further includes: When the network-side device indicates or the protocol stipulates that the quasi-co-address reference object or the corresponding power control reference object of the uplink object is the fifth basic object, the terminal determines the fourth basic object based on the fifth basic object; Wherein, the fourth basic object and the fifth basic object satisfy at least one of the following: They are based on the same object; Belonging to the same group; At least some of the first objective parameters are the same; Wherein, at least one of the fourth basic object and the fifth basic object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
19. The method according to any one of claims 1 to 18, wherein, When the first target parameter corresponding to the uplink object transmitted by the terminal for the first time or the last time is at least partially different from the first target parameter corresponding to the uplink object transmitted in at least one retransmission or repeated transmission, the terminal satisfies at least one of the following: the uplink object is switched or changed, or the power characteristic information of the uplink object is kept unchanged. or, When the first target parameter corresponding to the fourth basic object transmitted by the terminal for the first time or the last time is at least partially different from the first target parameter corresponding to the fourth basic object transmitted in at least one retransmission or repeated transmission, the terminal satisfies at least one of the following: the fourth basic object is switched or changed, and the power characteristic information of the uplink object is kept unchanged. or, When the first target parameter corresponding to the uplink object transmitted by the terminal for the first or last time is at least partially the same as the first target parameter corresponding to the uplink object transmitted in at least one retransmission or repeated transmission, the terminal satisfies at least one of the following: the uplink object is not switched or changed, and the power characteristic information of the uplink object remains unchanged. or, When the first target parameter corresponding to the fourth basic object is transmitted for the first time or last time by the terminal and the first target parameter corresponding to the fourth basic object is at least partially the same as the first target parameter transmitted in at least one retransmission or repeated transmission of the fourth basic object, the terminal satisfies at least one of the following: the fourth basic object is not switched or changed, and the power characteristic information of the uplink object remains unchanged. The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
20. The method according to any one of claims 1 to 19, wherein, The fourth basic object includes at least a portion of at least one of the following: Synchronization signal, broadcast channel, synchronization signal block, control channel related to broadcast channel, demodulation reference signal related to broadcast signal, wake-up signal, synchronization signal corresponding to the first target parameter, broadcast channel corresponding to the first target parameter, synchronization signal block corresponding to the first target parameter, control channel related to broadcast channel corresponding to the first target parameter, demodulation reference signal related to broadcast signal corresponding to the first target parameter, wake-up signal corresponding to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
21. The method according to any one of claims 1 to 20, wherein, When the first object includes the fourth basic object, the terminal determines the power characteristic information of the first object, including: The terminal receives first indication information, wherein the first indication information is used to indicate at least one of the power characteristic information, the change of power characteristic information, the step size of the change of power characteristic information, and the number of changes of power characteristic information of the fourth basic object; The terminal determines the power characteristic information of the fourth basic object based on the first instruction information.
22. The method according to any one of claims 1 to 21, wherein, When the second object includes at least one of an uplink object and a downlink object, the terminal determines the power characteristic information of the second object, including: The terminal receives the second instruction information; The terminal determines the power characteristic information of at least one of the uplink object and the downlink object based on the second indication information; The second indication information indicates at least one of the following: Power characteristic information of at least one of the uplink object and the downlink object; The difference between the power characteristic information of at least one of the uplink object and the downlink object and the power characteristic information of the fourth basic object; Changes in power characteristic information corresponding to at least one of the uplink object and the downlink object; The change step size corresponding to the power characteristic information of at least one of the uplink object and the downlink object; The number of changes corresponding to the power characteristic information of at least one of the uplink object and the downlink object.
23. The method according to any one of claims 1 to 22, wherein, The power characteristic information includes at least one of the following: Power spectral density, energy EPRE of resource elements, bit signal-to-noise ratio Eb / N0, power.
24. A device for determining power characteristic information, wherein, Applied to a terminal, the device includes: A determining module is used to determine at least one of the power characteristic information of the first object and the power characteristic information of the second object; The transmission module is used to transmit the first object according to the power characteristic information of the first object, or to transmit the second object according to the power characteristic information of the second object; Wherein, the first object includes a first part of the third object, the second object includes a second part of the third object, and the third object includes at least one of a first base object, an uplink object, and a downlink object; Alternatively, the first object may include at least a portion of the symbols of the second base object, and the second object may include at least a portion of the symbols of the third base object; Alternatively, the first object may include at least one fourth base object, and the second object may include at least one of an uplink object and a downlink object; The underlying object includes objects of a specific type, and the objects include at least one of signals and channels.
25. The apparatus according to claim 24, wherein, At least one of the first part of the third object and the second base object satisfies at least one of the following: Corresponding to the first time domain position, corresponding to the first frequency domain position, corresponding to the first time, corresponding to the first period, corresponding to the first group index, corresponding to the first index, corresponding to the first purpose, corresponding to the first system, corresponding to the first beam, corresponding to the first transmit / receive point (TRP), corresponding to the first area, corresponding to the first network type, corresponding to the first antenna, corresponding to the first panel, and corresponding to the first vibrator.
26. The apparatus according to claim 24 or 25, wherein, At least one of the first basic object, the second basic object, and the third basic object includes at least one of the following: Primary synchronization signal (PSS), secondary synchronization signal (SSS), first-level synchronization signal, first-level broadcast channel, first-level synchronization signal block, second-level synchronization signal, second-level broadcast channel, second-level synchronization signal block, first part of synchronization signal, first part of broadcast channel, first part of synchronization signal block, second part of synchronization signal, second part of broadcast channel, second part of synchronization signal block, narrowband part of synchronization signal, narrowband part of broadcast channel, narrowband part of synchronization signal block, wideband part of synchronization signal, wideband part of broadcast channel, wideband part of synchronization signal block, synchronization signal corresponding to narrowband, broadcast channel corresponding to narrowband, synchronization signal block corresponding to narrowband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, broadcast channel corresponding to wideband, synchronization signal block corresponding to wideband, synchronization signal associated with downlink object, broadcast channel associated with downlink object, synchronization signal block associated with downlink object, synchronization signal associated with uplink object, broadcast channel associated with uplink object, synchronization signal block associated with uplink object.
27. The apparatus according to any one of claims 24 to 26, wherein, The power characteristic information of the first object and the power characteristic information of the second object satisfy at least one of the following: The two are the same; The difference between the two is within the first range; The difference between the two is the first preset value.
28. The apparatus according to claim 27, wherein, The power characteristic information of the first object is the same as that of the second object, and at least one of the first range and the first preset value satisfies at least one of the following: By way of agreement; Configure via network-side devices; Determined based on the first target parameter; Specify via the first signal; Wherein, at least one of the first object and the second object corresponds to the first target parameter; The first target parameter includes at least one of the following: Time domain location, time, period, time unit, frequency band, subband, grid, frequency domain location, frequency point, frequency domain range, subcarrier spacing, number of corresponding objects, bandwidth of corresponding objects, channel bandwidth, channel grid spacing, channel grid step size, number of channel grids, synchronization grid spacing, synchronization grid step size, number of synchronization grids, network type, index of the group to which it belongs, index, purpose, type, beam, TRP, area, network type, antenna, panel, vibrator.
29. A terminal, wherein, It includes a processor and a memory, the memory storing a program or instructions that can run on the processor, the program or instructions being executed by the processor to implement the steps of the method for determining power characteristic information as described in any one of claims 1 to 23.
30. A readable storage medium, wherein, The readable storage medium stores a program or instructions that, when executed by a processor, implement the steps of the method for determining power characteristic information as described in any one of claims 1 to 23.
31. A chip, wherein, The chip includes a processor and a communication interface, the communication interface being coupled to the processor, the processor being used to run programs or instructions to implement the steps of the method for determining power characteristic information as described in any one of claims 1 to 23.
32. A computer program product, wherein, The program product is stored in a non-volatile storage medium and is executed by at least one processor to implement the steps of the method for determining power characteristic information as described in any one of claims 1 to 23.
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