Resource detection and information transmission method, device and equipment

By detecting interference and noise of target resources, combined with receiving the total received energy of the signal to be measured, the target measurement amount is determined, which solves the problem that low-power receivers cannot perform wireless resource control measurements, and realizes effective RRM measurements.

CN119922728APending Publication Date: 2025-05-02DATANG MOBILE COMM EQUIP CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202311419568.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-10-30
Publication Date
2025-05-02

AI Technical Summary

Technical Problem

Low-power receivers (LRs) cannot detect and measure wireless resources without the Fast Fourier Transform (FFT) module, resulting in the inability to effectively perform wireless resource control (RRM) measurements.

Method used

By detecting interference and noise of the target resource, a first measurement amount is obtained, and combined with the second measurement amount (the total received energy of the signal to be measured), the target measurement amount is determined, thereby realizing RRM measurement.

Benefits of technology

Regardless of whether the device contains an FFT module, it can effectively detect target resources and implement RRM measurements, enhancing the performance of low-power receivers.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119922728A_ABST
    Figure CN119922728A_ABST
Patent Text Reader

Abstract

Provided are a resource detection and information transmission method, apparatus and device, the method being executed by a first device, the method comprising: detecting a target resource, obtaining a first measurement quantity, the first measurement quantity being used for determining a target measurement quantity, the first measurement quantity being related to interference and / or noise on the target resource; the target resource comprises one of the following items: a first resource in a first time window; a second resource; a third resource within the first time window; wherein, in the first time window, the first device does not receive uplink transmission and / or downlink signals; the sending power on the second resource is 0; the sending power on the third resource is 0. According to the scheme, by detecting the target resource, the first measurement quantity related to the interference and / or noise on the target resource and used for determining the target measurement quantity by the first equipment is acquired, so that the first equipment can realize RRM measurement.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of communication technology, and in particular to a resource detection, information transmission method, device and equipment. Background Art

[0002] Rel-18 proposes the concepts of low power wake-up signal (LP-WUS) and low power receiver (LP-WUR, LR). When there is data transmission, the terminal receives LP-WUS through LP-WUR and activates the main radio (MR) to wake up from the ultra-deep sleep state to receive data; when there is no data transmission, the MR is turned off, which can greatly achieve terminal energy saving. In the LP WUS application scenario, some wearable devices will move in different cells, causing the channel conditions around them to change all the time. At this time, the terminal needs to select a suitable cell, which involves the mobility management of the terminal.

[0003] In order to further save energy, LR needs to undertake certain radio resource management (RRM) tasks. According to the current standard discussion, LR is divided into two categories. One type is LR with fast Fourier transform (FFT). This type of receiver can obtain channel information by receiving existing signals such as new radio (NR) reference signal / synchronization signal (for example, synchronization block (Synchronization Signal / PBCH Block, SSB), channel state information reference signal (CSI-RS)). The other type is LR without FFT module. Due to the requirement of low power consumption, this type of receiver cannot receive and obtain channel information by demodulating the existing NR reference signal. Summary of the invention

[0004] The embodiments of the present application provide a resource detection and information transmission method, apparatus and device to ensure that a device without an FFT module can also implement RRM measurement.

[0005] In order to solve the above technical problem, an embodiment of the present application provides a resource detection method, which is executed by a first device and includes:

[0006] Detecting a target resource and acquiring a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource;

[0007] The target resource includes one of the following:

[0008] The first resource in the first time window;

[0009] Second resource;

[0010] Third resources within the first time window;

[0011] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0012] Optionally, the method further includes:

[0013] Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity;

[0014] The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

[0015] Optionally, the first measurement amount, the second measurement amount, and the target measurement amount have the same resource granularity, and the resource granularity includes at least one of the following:

[0016] Resource block RB;

[0017] bandwidth.

[0018] Optionally, when the resource granularity is a resource block, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on an RB corresponding to the target resource; or

[0019] When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

[0020] Optionally, when the resource granularity is RB, the second measurement amount includes: a linear average value of a total received signal power of a target signal detected on the RB corresponding to the target resource; or

[0021] In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval;

[0022] Wherein, the target signal includes:

[0023] The signal to be measured;

[0024] Interference and / or noise.

[0025] Optionally, the frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or

[0026] The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or

[0027] The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0028] Optionally, the method further includes:

[0029] Acquire first configuration information of the first time window;

[0030] The first configuration information includes at least one of the following:

[0031] The time domain starting position of the first time window;

[0032] The time domain length of the first time window;

[0033] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0034] A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

[0035] Optionally, the acquiring first configuration information of the first time window includes:

[0036] Acquire first configuration information of the first time window in a first manner;

[0037] The first method includes at least one of the following:

[0038] Broadcast signal configuration;

[0039] Agreement;

[0040] High-level configuration;

[0041] Downlink signal configuration;

[0042] Downlink channel configuration.

[0043] Optionally, the method further includes:

[0044] Acquire second configuration information of the second resource;

[0045] The second configuration information includes at least one of the following:

[0046] A time domain starting position of the second resource;

[0047] A frequency domain starting position of the second resource;

[0048] A second association relationship between the second resource and the fourth resource.

[0049] Optionally, the second association relationship includes at least one of the following:

[0050] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0051] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0052] Optionally, the acquiring the second configuration information of the second resource includes:

[0053] Acquire second configuration information of the second resource by a second method;

[0054] The second method includes at least one of the following:

[0055] Broadcast signal configuration;

[0056] Agreement;

[0057] High-level configuration;

[0058] Downlink signal configuration;

[0059] Downlink channel configuration.

[0060] Optionally, the method further includes:

[0061] Acquire third configuration information of the third resource;

[0062] The third configuration information includes at least one of the following:

[0063] The time domain starting position of the third resource;

[0064] A frequency domain starting position of the third resource;

[0065] A third association relationship between the third resource and the fourth resource;

[0066] A fourth association relationship between the third resource and the first time window.

[0067] Optionally, the third association relationship includes at least one of the following:

[0068] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0069] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0070] Optionally, the fourth association relationship includes at least one of the following:

[0071] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0072] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0073] Optionally, the acquiring the third configuration information of the third resource includes:

[0074] Acquire third configuration information of the third resource by a third method;

[0075] The third method includes at least one of the following:

[0076] Broadcast signal configuration;

[0077] Agreement;

[0078] High-level configuration;

[0079] Downlink signal configuration;

[0080] Downlink channel configuration.

[0081] Optionally, the target measurement includes at least one of the following:

[0082] The signal strength of the signal to be measured;

[0083] The signal-to-noise power ratio of the signal to be measured.

[0084] Optionally, the signal strength of the signal to be measured is equal to a difference between the second measurement quantity and the first measurement quantity.

[0085] Optionally, the signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by a first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

[0086] Optionally, the signal to be measured is an exclusive receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

[0087] Optionally, the first device is a low power consumption receiver.

[0088] The embodiment of the present application also provides an information transmission method, which is executed by a network device, including:

[0089] Sending first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources;

[0090] The first information includes at least one of the following:

[0091] first configuration information of a first time window;

[0092] second configuration information of a second resource;

[0093] third configuration information of a third resource;

[0094] The first configuration information includes at least one of the following:

[0095] The time domain starting position of the first time window;

[0096] The time domain length of the first time window;

[0097] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0098] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0099] The second configuration information includes at least one of the following:

[0100] A time domain starting position of the second resource;

[0101] A frequency domain starting position of the second resource;

[0102] a second association relationship between the second resource and the fourth resource;

[0103] The third configuration information includes at least one of the following:

[0104] The time domain starting position of the third resource;

[0105] The frequency domain starting position of the third resource;

[0106] A third association relationship between the third resource and the fourth resource;

[0107] a fourth association relationship between the third resource and the first time window;

[0108] The fourth resource is used to send the signal to be measured.

[0109] Optionally, sending the first information to the first device includes:

[0110] Sending the first information to the first device in a fourth manner;

[0111] The fourth method includes at least one of the following:

[0112] Broadcast signal configuration;

[0113] High-level configuration;

[0114] Downlink signal configuration;

[0115] Downlink channel configuration.

[0116] Optionally, the second association relationship includes at least one of the following:

[0117] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0118] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0119] Optionally, the third association relationship includes at least one of the following:

[0120] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0121] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0122] Optionally, the fourth association relationship includes at least one of the following:

[0123] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0124] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0125] The embodiment of the present application further provides a resource detection device, which is a first device and includes a memory, a transceiver, and a processor:

[0126] A memory for storing a computer program; a transceiver for transmitting and receiving data under the control of the processor; and a processor for reading the computer program in the memory and performing the following operations:

[0127] Detecting a target resource and acquiring a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource;

[0128] The target resource includes one of the following:

[0129] The first resource in the first time window;

[0130] Second resource;

[0131] Third resources within the first time window;

[0132] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0133] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0134] Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity;

[0135] The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

[0136] Optionally, the first measurement amount, the second measurement amount, and the target measurement amount have the same resource granularity, and the resource granularity includes at least one of the following:

[0137] Resource block RB;

[0138] bandwidth.

[0139] Optionally, when the resource granularity is a resource block, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on an RB corresponding to the target resource; or

[0140] When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

[0141] Optionally, when the resource granularity is RB, the second measurement amount includes: a linear average value of a total received signal power of a target signal detected on the RB corresponding to the target resource; or

[0142] In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval;

[0143] Wherein, the target signal includes:

[0144] The signal to be measured;

[0145] Interference and / or noise.

[0146] Optionally, the frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or

[0147] The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or

[0148] The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0149] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0150] Acquire first configuration information of the first time window;

[0151] The first configuration information includes at least one of the following:

[0152] The time domain starting position of the first time window;

[0153] The time domain length of the first time window;

[0154] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0155] A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

[0156] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0157] Acquire first configuration information of the first time window in a first manner;

[0158] The first method includes at least one of the following:

[0159] Broadcast signal configuration;

[0160] Agreement;

[0161] High-level configuration;

[0162] Downlink signal configuration;

[0163] Downlink channel configuration.

[0164] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0165] Acquire second configuration information of the second resource;

[0166] The second configuration information includes at least one of the following:

[0167] A time domain starting position of the second resource;

[0168] A frequency domain starting position of the second resource;

[0169] A second association relationship between the second resource and the fourth resource.

[0170] Optionally, the second association relationship includes at least one of the following:

[0171] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0172] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0173] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0174] Acquire second configuration information of the second resource by a second method;

[0175] The second method includes at least one of the following:

[0176] Broadcast signal configuration;

[0177] Agreement;

[0178] High-level configuration;

[0179] Downlink signal configuration;

[0180] Downlink channel configuration.

[0181] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0182] Acquire third configuration information of the third resource;

[0183] The third configuration information includes at least one of the following:

[0184] The time domain starting position of the third resource;

[0185] A frequency domain starting position of the third resource;

[0186] A third association relationship between the third resource and the fourth resource;

[0187] A fourth association relationship between the third resource and the first time window.

[0188] Optionally, the third association relationship includes at least one of the following:

[0189] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0190] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0191] Optionally, the fourth association relationship includes at least one of the following:

[0192] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0193] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0194] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0195] Acquire third configuration information of the third resource by a third method;

[0196] The third method includes at least one of the following:

[0197] Broadcast signal configuration;

[0198] Agreement;

[0199] High-level configuration;

[0200] Downlink signal configuration;

[0201] Downlink channel configuration.

[0202] Optionally, the target measurement includes at least one of the following:

[0203] The signal strength of the signal to be measured;

[0204] The signal-to-noise power ratio of the signal to be measured.

[0205] Optionally, the signal strength of the signal to be measured is equal to a difference between the second measurement quantity and the first measurement quantity.

[0206] Optionally, the signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by a first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

[0207] Optionally, the signal to be measured is an exclusive receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

[0208] Optionally, the first device is a low power consumption receiver.

[0209] The embodiment of the present application also provides a network device, including a memory, a transceiver, and a processor:

[0210] A memory for storing a computer program; a transceiver for transmitting and receiving data under the control of the processor; and a processor for reading the computer program in the memory and performing the following operations:

[0211] Sending first information to a first device through a receiver, where the first information is used to configure time domain resources and / or frequency domain resources;

[0212] The first information includes at least one of the following:

[0213] first configuration information of a first time window;

[0214] second configuration information of a second resource;

[0215] third configuration information of a third resource;

[0216] The first configuration information includes at least one of the following:

[0217] The time domain starting position of the first time window;

[0218] The time domain length of the first time window;

[0219] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0220] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0221] The second configuration information includes at least one of the following:

[0222] A time domain starting position of the second resource;

[0223] A frequency domain starting position of the second resource;

[0224] a second association relationship between the second resource and the fourth resource;

[0225] The third configuration information includes at least one of the following:

[0226] The time domain starting position of the third resource;

[0227] The frequency domain starting position of the third resource;

[0228] A third association relationship between the third resource and the fourth resource;

[0229] a fourth association relationship between the third resource and the first time window;

[0230] The fourth resource is used to send the signal to be measured.

[0231] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0232] Sending the first information to the first device in a fourth manner;

[0233] The fourth method includes at least one of the following:

[0234] Broadcast signal configuration;

[0235] High-level configuration;

[0236] Downlink signal configuration;

[0237] Downlink channel configuration.

[0238] Optionally, the second association relationship includes at least one of the following:

[0239] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0240] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0241] Optionally, the third association relationship includes at least one of the following:

[0242] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0243] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0244] Optionally, the fourth association relationship includes at least one of the following:

[0245] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0246] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0247] The embodiment of the present application further provides a resource detection device, applied to a first device, including:

[0248] A first acquisition unit, configured to detect a target resource and acquire a first measurement amount, where the first measurement amount is used to determine a target measurement amount, and the first measurement amount is related to interference and / or noise on the target resource;

[0249] The target resource includes one of the following:

[0250] The first resource in the first time window;

[0251] Second resource;

[0252] Third resources within the first time window;

[0253] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0254] The embodiment of the present application further provides an information transmission device, which is applied to a network device, including:

[0255] A sending unit, configured to send first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources;

[0256] The first information includes at least one of the following:

[0257] first configuration information of a first time window;

[0258] second configuration information of a second resource;

[0259] third configuration information of a third resource;

[0260] The first configuration information includes at least one of the following:

[0261] The time domain starting position of the first time window;

[0262] The time domain length of the first time window;

[0263] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0264] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0265] The second configuration information includes at least one of the following:

[0266] A time domain starting position of the second resource;

[0267] A frequency domain starting position of the second resource;

[0268] a second association relationship between the second resource and the fourth resource;

[0269] The third configuration information includes at least one of the following:

[0270] The time domain starting position of the third resource;

[0271] The frequency domain starting position of the third resource;

[0272] A third association relationship between the third resource and the fourth resource;

[0273] a fourth association relationship between the third resource and the first time window;

[0274] The fourth resource is used to send the signal to be measured.

[0275] An embodiment of the present application further provides a processor-readable storage medium, wherein the processor-readable storage medium stores a computer program, and the computer program is used to enable the processor to execute the above method.

[0276] The beneficial effects of this application are:

[0277] The above scheme detects the target resource to obtain the first measurement quantity related to the interference and / or noise on the target resource for the first device to determine the target measurement quantity, thereby ensuring that the first device can implement RRM measurement. BRIEF DESCRIPTION OF THE DRAWINGS

[0278] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0279] Figure 1 A structural diagram showing a network system applicable to an embodiment of the present application;

[0280] Figure 2 A schematic diagram showing a flow chart of a resource detection method according to an embodiment of the present application;

[0281] Figure 3 A schematic diagram showing the setting position of the first time window;

[0282] Figure 4 A schematic diagram showing a setting location of a second resource;

[0283] Figure 5 A schematic diagram showing a flow chart of an information transmission method according to an embodiment of the present application;

[0284] Figure 6 A schematic diagram showing a unit of a resource detection device according to an embodiment of the present application;

[0285] Figure 7 A structural diagram showing a resource detection device according to an embodiment of the present application;

[0286] Figure 8 A schematic diagram showing a unit of an information transmission device according to an embodiment of the present application;

[0287] Fig. 9 A structural diagram of a network device according to an embodiment of the present application. DETAILED DESCRIPTION

[0288] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0289] The terms "first", "second", etc. in the specification and claims of the present application are used to distinguish similar objects, and are not necessarily used to describe a specific order or sequential order. It should be understood that the data used in this way can be interchanged where appropriate, so that the embodiments of the present application described herein, for example, are implemented in a sequence other than those illustrated or described herein. In addition, the terms "including" and "having" and any of their variations are intended to cover non-exclusive inclusions, for example, the process, method, system, product or equipment comprising a series of steps or units is not necessarily limited to those steps or units clearly listed, but may include other steps or units that are not clearly listed or inherent to these processes, methods, products or equipment.

[0290] In the embodiments of the present application, the term "and / or" describes the association relationship of associated objects, indicating that three relationships may exist. For example, A and / or B can represent three situations: A exists alone, A and B exist at the same time, and B exists alone. The character " / " generally indicates that the associated objects before and after are in an "or" relationship. In the embodiments of the present application, the term "plurality" refers to two or more than two, and other quantifiers are similar.

[0291] In the embodiments of the present application, words such as "exemplary" or "for example" are used to indicate examples, illustrations or descriptions. Any embodiment or design described as "exemplary" or "for example" in the embodiments of the present application should not be interpreted as being more preferred or more advantageous than other embodiments or designs. Specifically, the use of words such as "exemplary" or "for example" is intended to present related concepts in a specific way.

[0292] The relevant concepts mentioned in this application are briefly described below.

[0293] 1. Mobility Management Reference Signal

[0294] The reference signal for mobility management of the user equipment (UE) in the RRC_IDLE / RRC_INACTIVE state is the secondary synchronization signal (SSS) contained in the NR synchronization block (SynchronizationSignal / PBCH Block, SSB). In addition, since the transmit energy per resource unit (Energy Per Resource Element, EPRE) of the physical broadcast channel (PBCH) demodulation reference signal defined by NR is the same as the EPRE of the NR SSS, the UE can also use the PBCH demodulation reference signal (Demodulation Reference Signal, DM-RS) as an auxiliary mobility management reference signal to improve the measurement performance of radio resource management (Radio resource management, RRM). In the RRC_CONNECTED state, in addition to the SSB, the other reference signal of the UE is the NR channel state information reference signal (CSI-RS). For UEs in RRC_CONNECTED state, the network can use SSB and / or CSI-RS to support mobility management as required. The UE only reports the measurement values ​​to the serving cell in RRC_CONNECTED state. In RRC_IDLE / RRC_INACTIVE state, the UE does not need to report these measurement values, but needs to use these measurement results for cell reselection decisions.

[0295] 2. SSB-based RRM measurements

[0296] The following SSB-based RRM measurements are introduced in NR:

[0297] SS-RSRP (SS-Reference Signal Received Power) refers to the linear average value of the RE resources carrying the SSS signal, indicating the signal strength of the SSS.

[0298] SS Signal-to-Noise and Interference Ratio (SS-SINR), SS-SINR = SS-RSRP / (N+I). When there is a dedicated interference measurement bandwidth configuration, the upper layer indicates the frequency domain resources for measuring N and I, otherwise the frequency domain resources for measuring N and I are at the RE level, and the bandwidth is consistent with the bandwidth of the SSS.

[0299] 3. Acquisition of SSB-based measurements

[0300] In the prior art, after receiving a signal, a terminal can estimate the channel condition through a channel estimation algorithm (e.g., least squares (LS), minimum mean square error (MMSE)), and then use the estimated channel to obtain the power of the useful signal, the power of the interference signal, and the noise power. Then the signal strength of the reference signal is the power of the useful signal, and the signal-to-interference-to-noise ratio of the reference signal is (useful signal / (power of the interference signal + noise power)).

[0301] Due to the low power consumption requirement of the LR, no channel estimation is performed. According to the existing protocol, the LR cannot obtain RRM measurement quantities (such as signal strength / signal quality) based on the low power consumption reference signal.

[0302] The following is an introduction to the embodiments of the present application in conjunction with the accompanying drawings. The resource detection, information transmission method, device and equipment provided in the embodiments of the present application can be applied to a wireless communication system. The wireless communication system can be a system using the fifth generation (5th Generation, 5G) mobile communication technology (hereinafter referred to as a 5G system). Those skilled in the art can understand that the 5G NR system is only an example and is not a limitation.

[0303] See also Figure 1 , Figure 1 is a structural diagram of a network system to which the embodiments of the present application can be applied, such as Figure 1As shown, it includes a user terminal 11 and a base station 12, wherein the user terminal 11 may be a user equipment (User Equipment, UE), for example: it may be a terminal side device such as a mobile phone, a tablet computer (Tablet Personal Computer), a laptop computer (Laptop Computer), a personal digital assistant (Personal Digital Assistant, referred to as PDA), a mobile Internet device (Mobile Internet Device, MID) or a wearable device (Wearable Device). It should be noted that the specific type of the user terminal 11 is not limited in the embodiment of the present application. The above-mentioned base station 12 may be a base station of 5G and later versions (for example: gNB, 5G NR NB), or a base station in other communication systems, or referred to as a node B. It should be noted that in the embodiment of the present application, only a 5G base station is taken as an example, but the specific type of the base station 12 is not limited.

[0304] The embodiments of the present application provide a resource detection and information transmission method, apparatus and device to ensure that a device without an FFT module can also implement RRM measurement.

[0305] Among them, the method and the device are based on the same application concept. Since the method and the device solve the problem in a similar principle, the implementation of the device and the method can refer to each other, and the repeated parts will not be repeated.

[0306] like Figure 2 As shown, an embodiment of the present application provides a resource detection method, which is executed by a first device and includes:

[0307] Step S201: Detect a target resource and obtain a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource;

[0308] The target resource includes one of the following:

[0309] A11, the first resource in the first time window;

[0310] A12, second resource;

[0311] A13, third resources within the first time window;

[0312] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0313] Optionally, the first device mentioned in the embodiment of the present application can be understood as a device that does not include an FFT module. For example, the first device can be a low power consumption receiver (LP-WUR).

[0314] It should be noted that the low-power receiver can be a baseband envelope detection receiver, an intermediate frequency envelope detection receiver and / or an RF envelope detection receiver. The baseband envelope detection receiver converts the RF signal into a baseband signal through an RF mixer and a local oscillator. In an intermediate frequency envelope detection receiver, the RF signal is converted into an intermediate frequency signal through an RF mixer and a local oscillator, and the intermediate frequency signal is then converted into a baseband signal by an intermediate frequency envelope detection. In an RF envelope detection receiver, the RF signal is converted into a baseband signal by RF envelope detection.

[0315] It should be noted that by detecting the target resource, a first measurement quantity related to interference and / or noise on the target resource is obtained for the first device to determine the target measurement quantity, thereby ensuring that the first device without an FFT module can implement RRM measurement.

[0316] Optionally, in one implementation, the method further includes:

[0317] Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity;

[0318] The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

[0319] Optionally, the target measurement quantity refers to an RRM measurement quantity.

[0320] Optionally, in an implementation manner, the resource granularity corresponding to the first measurement amount, the second measurement amount, and the target measurement amount is the same, and the resource granularity includes at least one of the following:

[0321] B11, Resource Block (RB);

[0322] Optionally, in this case, the first measurement amount includes: a linear average value of total received signal power of interference and / or noise detected on the RB corresponding to the target resource.

[0323] For example, the target resource corresponds to 4 RBs, namely RB1, RB2, RB3 and RB4, and the total received signal power of interference and / or noise detected by the first device corresponding to each RB is P1, P2, P3, P4, respectively, then the first measurement amount = (P1+P2+P3+P4) / 4.

[0324] Optionally, in this case, the second measurement amount includes: a linear average value of total received signal power of the target signal detected on the RB corresponding to the target resource;

[0325] The target signal includes:

[0326] The signal to be measured;

[0327] Interference and / or noise.

[0328] B12, bandwidth (BW);

[0329] Optionally, in this case, the first measurement amount includes: a total received energy of interference and / or noise detected on a useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval.

[0330] Optionally, in this case, the second measurement amount includes: a total received energy of a target signal detected on a useful bandwidth corresponding to the target resource; the target signal includes:

[0331] The signal to be measured;

[0332] Interference and / or noise.

[0333] Optionally, in one implementation, the signal to be measured is a dedicated receiving signal of the first device, for example, a low power reference signal (LP-RS), a low power wake-up signal (LP-WUS), a low power synchronization signal (LP-SS). The waveform of the signal to be measured includes any one of the following: a binary on-off keying (OOK) waveform, a frequency shift keying (FSK) waveform, an orthogonal frequency division multiplexing (OFDM) waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

[0334] Optionally, the configuration of the fourth resource can be obtained through a broadcast signal (SIB, PBCH) and / or a predefined method and / or high-level pre-configuration and / or a downlink signal / channel (PDCCH / PDSCH), including at least one of the following: time-frequency / frequency domain position and subcarrier spacing.

[0335] Optionally, in one implementation, the target measurement amount includes at least one of the following:

[0336] B21, signal strength of the signal to be measured;

[0337] Optionally, for example, the signal strength may be a reference signal received power (RSRP) or a reference signal received quality (RSRQ).

[0338] Optionally, in an implementation manner, the signal strength of the signal to be measured is equal to a difference between the second measurement quantity and the first measurement quantity.

[0339] B22, signal-to-noise power ratio of the signal to be measured;

[0340] Optionally, in one implementation, a signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by a first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

[0341] The specific implementation of the embodiments of the present application is described in detail below under different target resources.

[0342] 1. The target resource includes: the first resource in the first time window

[0343] Optionally, in one implementation, the method further includes:

[0344] Acquire first configuration information of the first time window;

[0345] The first configuration information includes at least one of the following:

[0346] C11, the time domain starting position of the first time window;

[0347] For example, the time domain start position may be a system frame number index (SFN index), a subframe index (subframeindex), a time slot index (slot index), a symbol index (symbol index), etc.

[0348] C12, the time domain length of the first time window;

[0349] The time domain length may be a continuous or discontinuous time domain length. For example, the level of the time domain length may be SFN, subframe, slot, or symbol.

[0350] C13, a first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, where the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0351] C14, a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0352] Optionally, the first association relationship may refer to a multiple relationship between the time domain length of the first time window and the duration of the fourth resource, for example, the time domain length of the first time window is N times the duration of the fourth resource, and N is a number greater than or equal to 0; Optionally, the first association relationship may also refer to a size relationship between the time domain length of the first time window and the duration of the fourth resource, for example, the time domain length of the first time window is equal to the duration of the fourth resource, for example, the time domain length of the first time window is less than the duration of the fourth resource, and the first association relationship may further give a difference between the time domain length of the first time window and the duration of the fourth resource, for example, the time domain length of the first time window differs from the duration of the fourth resource by four symbols. Since the duration of the fourth resource is known, the first device can determine the time domain length of the first time window through the first association relationship.

[0353] It should be noted that the first device can determine the time domain length and the time domain starting position of the first time window through the above-mentioned first configuration information.

[0354] Optionally, a specific example of the information combination included in the first configuration information is: for example, the first configuration information includes: C11 and C12; for example, the first configuration information includes: C11 and C14; for example, the first configuration information includes: C12 and C13; for example, the first configuration information includes: C13 and C14.

[0355] Optionally, in one implementation, the specific implementation of obtaining the first configuration information of the first time window includes:

[0356] Acquire first configuration information of the first time window in a first manner;

[0357] The first method includes at least one of the following:

[0358] C21, broadcast signal configuration;

[0359] C22, agreement;

[0360] C23, high-level configuration;

[0361] C24, downlink signal configuration;

[0362] For example, the first configuration information is sent to the first device through a physical downlink control channel (PDCCH).

[0363] C25, downlink channel configuration;

[0364] For example, the first configuration information is sent to the first device through a physical downlink shared channel (PDSCH).

[0365] Optionally, the above C11-C14 may all be determined in the same manner or in different manners; for example, the first configuration information includes C12 and C13, wherein C12 is determined by a protocol agreement and C13 is configured by a broadcast signal.

[0366] Optionally, the frequency domain resources corresponding to the first resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; for example, the first device detects all frequency domain resources corresponding to the fourth resources within the first time window to obtain a first measurement value.

[0367] It should be noted that the specific implementation scheme in this case is:

[0368] Step 1: The first device periodically / aperiodically detects the total received energy of all signals on a fourth resource that sends a signal to be measured, and obtains a second measurement quantity, where all signals include the signal to be measured and interference and / or noise.

[0369] Step 2: The first device detects the total received energy of all interference and / or noise sent from other nodes on the same frequency on the first resource within the first time window, and obtains a first measurement amount, where the other nodes on the same frequency may refer to other first devices on the same frequency and / or network devices on the same frequency;

[0370] Step 3: Determine a target measurement quantity according to the second measurement quantity and the first measurement quantity.

[0371] 2. The target resources include: Second resource

[0372] Optionally, in one implementation, the method further includes:

[0373] Acquire second configuration information of the second resource;

[0374] The second configuration information includes at least one of the following:

[0375] D11, the time domain starting position of the second resource;

[0376] Optionally, the second resource may be a time domain resource occupying continuous or discontinuous time domain, and may be a slot index or a symbol index.

[0377] D12, the frequency domain starting position of the second resource;

[0378] Optionally, the second resource may be located in the frequency domain and occupy a continuous fixed bandwidth or be non-continuously mapped to the fixed bandwidth.

[0379] D13, a second association relationship between the second resource and the fourth resource;

[0380] Optionally, in an implementation manner, the second association relationship includes at least one of the following:

[0381] D131, there is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0382] D132. There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: the time domain starting position, the time domain center position, and the time domain ending position.

[0383] It should be noted that the first device can determine the time domain starting position and the frequency domain starting position of the second resource through the above-mentioned second configuration information.

[0384] Optionally, specific examples of information combinations contained in the above-mentioned first configuration information are: for example, the second configuration information includes: D11 and D12; for example, the second configuration information includes: D11 and D13; for example, the second configuration information includes: D11 and D14; for example, the second configuration information includes: D12 and D13; for example, the second configuration information includes: D12 and D14.

[0385] Optionally, in one implementation, the specific implementation of obtaining the second configuration information of the second resource includes:

[0386] Acquire second configuration information of the second resource by a second method;

[0387] The second method includes at least one of the following:

[0388] D21, broadcast signal configuration;

[0389] D22, agreement;

[0390] D23, high-level configuration;

[0391] D24, downlink signal configuration;

[0392] D25, downlink channel configuration.

[0393] Optionally, the above D11-D13 may all be determined in the same manner or in different manners; for example, the second configuration information includes D11 and D12, wherein D11 is determined by protocol agreement and D12 is configured by a high layer.

[0394] Optionally, the frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0395] It should be noted that the specific implementation scheme in this case is:

[0396] Step 1: The first device periodically / aperiodically detects the total received energy of all signals on the fourth resource that sends the signal to be measured, and obtains a second measurement value.

[0397] Step 2: The first device detects the total received energy of all interference and / or noise on the second resource with a transmit power of 0, and obtains a first measurement amount;

[0398] Step 3: Determine a target measurement quantity according to the second measurement quantity and the first measurement quantity.

[0399] 3. The target resources include: the third resource within the first time window

[0400] It should be noted that in this case, it is also necessary to obtain the configuration information of the first time window. The configuration information can be found in the above description and will not be repeated here.

[0401] Optionally, in one implementation, the method further includes:

[0402] Acquire third configuration information of the third resource;

[0403] The third configuration information includes at least one of the following:

[0404] E11, the time domain starting position of the third resource;

[0405] Optionally, the third resource may be a time domain resource occupying continuous or discontinuous time domain, and may be a slot index or a symbol index.

[0406] E12, the frequency domain starting position of the third resource;

[0407] Optionally, the third resource may be located in the frequency domain and occupy a continuous fixed bandwidth or be non-continuously mapped to the fixed bandwidth.

[0408] E13. a third association relationship between the third resource and the fourth resource;

[0409] Optionally, in one implementation, the third association relationship includes at least one of the following:

[0410] E131. There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0411] E132. There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0412] E14, a fourth association relationship between the third resource and the first time window;

[0413] Optionally, in an implementation manner, the fourth association relationship includes at least one of the following:

[0414] E141. There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0415] E142. The duration of the third resource is less than or equal to the time domain length of the first time window.

[0416] It should be noted that the first device can determine the time domain starting position and the frequency domain starting position of the third resource through the above-mentioned third configuration information.

[0417] Optionally, in an implementation manner, the specific implementation of obtaining the third configuration information of the third resource includes:

[0418] Acquire third configuration information of the third resource by a third method;

[0419] The third method includes at least one of the following:

[0420] E21, broadcast signal configuration;

[0421] E22, agreement;

[0422] E23, high-level configuration;

[0423] E24, downlink signal configuration;

[0424] E25, downlink channel configuration.

[0425] Optionally, the above E11-E14 may all be determined in the same manner or in different manners; for example, the third configuration information includes E11 and E12, wherein E11 is determined by protocol agreement and E12 is configured by a higher layer.

[0426] Optionally, the frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0427] It should be noted that the specific implementation scheme in this case is:

[0428] Step 1: The first device periodically / aperiodically detects the total received energy of all signals on the fourth resource that sends the signal to be measured, and obtains a second measurement value.

[0429] Step 2: The first device detects the total received energy of all interference and / or noise on the third resource with a transmit power of 0 within the first time window, and obtains a first measurement amount;

[0430] Step 3: Determine a target measurement quantity according to the second measurement quantity and the first measurement quantity.

[0431] It should also be noted that the interference mentioned in the embodiments of the present application may include co-channel interference and / or adjacent channel interference; the noise mentioned in the embodiments of the present application may include thermal noise.

[0432] The following takes the communication between the base station and LP-WUR as an example to illustrate the specific application of the embodiment of the present application as follows.

[0433] Application scenario 1: LP-WUR detects the total received energy of interference and / or noise on the first resource within the first time window

[0434] The main implementation on the base station side:

[0435] 1. The base station sends a first reference signal (i.e., the signal to be measured) on a set of time-frequency resources. The configuration information of the first reference signal may include: time-frequency starting transmission position, duration, frequency domain resources, period, etc.

[0436] 2. The base station configures the first configuration information of the first time window. The time domain starting position of the first time window can be pre-configured by the base station. For example, the time domain starting position can be SFN index, subframe index, slot index, symbol index, or the time domain starting position is sent in association with the first reference signal. The time domain starting position of the first time window has a first offset from the time domain starting position / time domain center position / time domain end position of the first reference signal.

[0437] It should be noted that the configuration information of the first reference signal and the first configuration information of the first time window can be sent to LP-WUR via broadcast signals (SIB, PBCH) and / or protocol agreements (i.e., predefined methods) and / or high-level configurations and / or downlink signals / downlink channels (PDCCH / PDSCH).

[0438] The main implementation process on the LP-WUR side is:

[0439] LP-WUR detects the total received energy on the resources transmitting the first reference signal and the total received energy of interference and / or noise on the first resource within the first time window, so as to obtain the received power or signal-to-noise-interference ratio of the first reference signal.

[0440] Step 1: LP-WUR periodically / aperiodically detects the total received energy of all signals on the resources transmitting the first reference signal from the serving cell to obtain a second measurement value.

[0441] LP-WUR can be a baseband envelope detection receiver, an intermediate frequency envelope detection receiver and / or an RF envelope detection receiver. The baseband envelope detection receiver converts the RF signal into a baseband signal through an RF mixer and a local oscillator. In an intermediate frequency envelope detection receiver, the RF signal is converted into an intermediate frequency signal through an RF mixer and a local oscillator, and the intermediate frequency signal is then converted into a baseband signal by intermediate frequency envelope detection. In an RF envelope detection receiver, the RF signal is converted into a baseband signal by RF envelope detection.

[0442] LP-WUR can determine whether the first reference signal to be received is periodic or non-periodic through broadcast signals (SIB, PBCH) and / or protocol agreements and / or high-level configurations and / or DCI indications.

[0443] The first reference signal is a dedicated receiving signal of the first device, for example, LP-RS, LP-WUS, LP-SS. The waveform of the first reference signal can be OOK or FSK or OFDM waveform, or OOK and OFDM joint waveform, or FSK and OFDM joint waveform.

[0444] The configuration information of the resources for transmitting the first reference signal can be obtained through broadcast signals (SIB, PBCH) and / or protocol agreements and / or high-level pre-configuration and / or downlink signals / downlink channels (PDCCH / PDSCH), and includes at least one of the following: time-frequency / frequency domain position and subcarrier spacing.

[0445] All signals may include a first reference signal, interference and noise. Interference may include co-channel interference and lead channel interference, and noise may be thermal noise. The total received energy is the sum of the received powers of all signals.

[0446] The second measurement can be defined in one of the following ways:

[0447] The second measurement amount based on RB can be a linear average of the total received energy of all signals measured on all RBs used to carry the first reference signal; for example, the total received energy corresponding to the RB index {RB_1, RB_2, …RB_n, …RB_N} carrying the first reference signal is {p_1, p_2, …, p_n, …p_N}, then the second measurement amount based on RB P1(RB) = (p_1+p_2, + …+, p_n, + …+p_N) / N, where N is the total number of RBs carrying the first reference signal.

[0448] The second measurement value based on BW may be the total received energy of all signals measured on a useful bandwidth for carrying the first reference signal, where the useful bandwidth is the bandwidth for carrying the first reference signal and does not include a guard interval.

[0449] Step 2: LP-WUR detects the total received energy of all interference and noise sent from other nodes within the first time window for obtaining the first measurement quantity.

[0450] The first time window can be defined as a time domain window, during which LP-WUR has no uplink transmission and no downlink reception. The configuration parameters of the first time window are as follows: Figure 3 As shown, the first time window is a time domain length within the measurement interval period.

[0451] The time domain starting position of the first time window can be one of the following:

[0452] The time domain starting position pre-configured by the higher layer, for example, a specific SFN index, subframe index, slot index, symbol index is configured as the time domain starting position; or

[0453] The time domain starting position has a first offset with the time domain starting position, the time domain center position, and the time domain ending position of the resource for transmitting the first reference signal.

[0454] The time domain length of the first time window can be one of the following:

[0455] The higher layer pre-configures the continuous or non-continuous time domain length, which can be SFN, subframe, slot, symbol level; or

[0456] There is a certain multiple relationship between the time domain length and the duration of the resource for transmitting the first reference signal. For example, the duration of the first time window is X times the duration of the resource for transmitting the first reference signal, where X is an integer.

[0457] The other nodes may be other first devices and / or base stations of the same frequency or different frequencies. The signal may include noise and interference: the noise may include thermal noise. The interference includes co-channel interference and / or different frequency interference and / or adjacent channel interference from other nodes.

[0458] The total received energy is the sum of the interference and / or noise power.

[0459] The first measurement can be defined in one of the following ways:

[0460] The first measurement amount based on the RB may be a linear average of total received signal powers of interference and / or noise detected on all RBs corresponding to the first resource within the first time window;

[0461] The first BW-based measurement quantity may be total received energy of interference and / or noise detected on a useful bandwidth corresponding to the first resource within the first time window.

[0462] Step 3: determining a target measurement amount based on the first measurement amount and the second measurement amount of the same granularity;

[0463] For example, the target measurement amount may be a signal strength of a first reference signal (e.g., LP-RSRP) or a signal to noise and power ratio (e.g., LP-SINR) of a first reference signal, and the target measurement amount may be derived in one of the following ways:

[0464] RB-based LP-RSRP=RB-based second measurement amount-RB-based first measurement amount;

[0465] LP-RSRP based on BW=second measurement quantity based on BW-first measurement quantity based on BW;

[0466] RB-based LP-SINR=(RB-based second measurement amount-RB-based first measurement amount) / RB-based first measurement amount;

[0467] BW-based LP-SINR=(BW-based second measurement amount−BW-based first measurement amount) / BW-based first measurement amount.

[0468] Application scenario 2: LP-WUR detects the total received energy of noise and / or interference of the second resource with zero transmit power

[0469] The main implementation process on the base station side is:

[0470] 1. The base station sends a first reference signal (i.e., the signal to be measured) on a set of time-frequency resources. The configuration information of the first reference signal may include: time-frequency starting transmission position, duration, frequency domain resources, period, etc.

[0471] 2. The base station may configure second configuration information of the second resource.

[0472] Optionally, the second resource can be configured by one of the following:

[0473] a) The high layer pre-configures the time domain start position / frequency domain start position;

[0474] The frequency domain position of the second resource occupies a continuous fixed bandwidth or is non-continuously mapped to the fixed bandwidth. The time domain position of the second resource occupies a continuous or non-continuous time domain resource, which can be a slot index or a symbol index.

[0475] b) configuring the second resource to be associated with the resource for transmitting the first reference signal;

[0476] For example, there is a second offset between the frequency domain position start position of the second resource and the frequency domain start position / frequency domain center position / frequency domain end position of the resource transmitting the first reference signal; the second resource is a continuous or non-continuous frequency domain resource in the frequency domain. There is a third offset between the time domain start position of the second resource and the time domain start position / time domain center position / time domain end position of the resource transmitting the first reference signal; the time domain of the second resource occupies a fixed OFDM symbol position within at least one slot; Figure 4 As shown, the second resource occupies a section of time domain and frequency domain resources, and the transmission power thereon is 0.

[0477] It should be noted that the configuration information of the first reference signal and the second configuration information of the second resource can be sent to LP-WUR via broadcast signals (SIB, PBCH) and / or protocol agreements and / or high pre-configuration and / or downlink signals / downlink channels (PDCCH / PDSCH).

[0478] The main implementation process on the LP-WUR side is:

[0479] LP-WUR detects the total received energy on the resources transmitting the first reference signal and the total received energy of interference and / or noise on the second resources with zero transmit power, so as to obtain the received power or signal-to-noise-interference ratio of the first reference signal.

[0480] Step 1: Refer to step 1 of application scenario 1;

[0481] Step 2: LP-WUR detects the total received energy of all interference and / or noise on the second resource with zero transmit power, which is used to obtain the first measurement quantity.

[0482] LP-WUR can be a baseband envelope detection receiver, an intermediate frequency envelope detection receiver and / or an RF envelope detection receiver. The baseband envelope detection receiver converts the RF signal into a baseband signal through an RF mixer and a local oscillator. In an intermediate frequency envelope detection receiver, the RF signal is converted into an intermediate frequency signal through an RF mixer and a local oscillator, and the intermediate frequency signal is then converted into a baseband signal by intermediate frequency envelope detection. In an RF envelope detection receiver, the RF signal is converted into a baseband signal by RF envelope detection.

[0483] It should be noted that the noise is thermal noise, and the interference may be co-channel interference and / or inter-frequency interference and / or adjacent channel interference. The total received energy is the sum of the interference and / or noise detected on the second resource.

[0484] The first measurement quantity is the total received energy on the second resource, which can be defined as follows:

[0485] The RB-based first measurement amount may be a linear average value of total received energy of interference and / or noise detected on all RBs corresponding to the second resource.

[0486] The first measurement amount based on BW may be a total received energy of interference and / or noise detected on a useful bandwidth corresponding to the second resource, where the useful bandwidth is a bandwidth occupied by the second resource and does not include a guard interval.

[0487] Step 3: determining a target measurement amount based on the first measurement amount and the second measurement amount of the same granularity;

[0488] For example, the target measurement amount may be a signal strength of a first reference signal (e.g., LP-RSRP) or a signal to noise and power ratio (e.g., LP-SINR) of a first reference signal, and the target measurement amount may be derived in one of the following ways:

[0489] RB-based LP-RSRP=RB-based second measurement amount-RB-based first measurement amount;

[0490] LP-RSRP based on BW=second measurement quantity based on BW-first measurement quantity based on BW;

[0491] RB-based LP-SINR=(RB-based second measurement amount-RB-based first measurement amount) / RB-based first measurement amount;

[0492] BW-based LP-SINR=(BW-based second measurement amount−BW-based first measurement amount) / BW-based first measurement amount.

[0493] Application scenario 3: LP-WUR detects the total received energy of interference and / or noise on the third resource with zero transmit power within the first time window

[0494] The main implementation process on the base station side is:

[0495] 1. The base station sends a first reference signal (i.e., the signal to be measured) on a set of time-frequency resources. The configuration information of the first reference signal may include: time-frequency starting transmission position, duration, frequency domain resources, period, etc.

[0496] 2. The base station configures the first configuration information of the first time window. The time domain starting position of the first time window can be pre-configured by the base station. For example, the time domain starting position can be SFN index, subframe index, slot index, symbol index, or the time domain starting position is sent in association with the first reference signal. The time domain starting position of the first time window has a first offset from the time domain starting position / time domain center position / time domain end position of the first reference signal.

[0497] 3. The base station may configure third configuration information of the third resource.

[0498] Optionally, the third resource can be configured by one of the following:

[0499] The third resource is configured in association with the resource for transmitting the first reference signal;

[0500] For example, there is a fourth offset between the frequency domain position start position of the third resource and the frequency domain start position / frequency domain center position / frequency domain end position of the resource for transmitting the first reference signal; the third resource is a continuous or non-continuous frequency domain resource in the frequency domain. There is a fifth offset between the time domain start position of the third resource and the time domain start position / time domain center position / time domain end position of the resource for transmitting the first reference signal; the time domain of the third resource occupies a fixed OFDM symbol position within at least one slot; the third resource occupies a section of time domain and frequency domain resources, and the transmission power thereon is 0.

[0501] The third resource is configured in association with the first time window;

[0502] For example, the time domain starting position of the third resource is offset from the time domain starting position / time domain center position / time domain ending position of the first time window by a sixth offset, and the time domain of the third resource occupies a fixed OFDM symbol position in at least one slot. The duration of the third resource is less than or equal to the time domain length of the first time window; the third resource is a continuous or non-continuous frequency domain resource in the frequency domain.

[0503] The main implementation process of LP-WUR is:

[0504] Within the first time window, LP-WUR detects the total received energy of all interference and / or noise on the third resource with zero transmit power, which is used to obtain the signal strength and signal quantity of the first reference signal.

[0505] Step 1: Refer to step 1 of application scenario 1;

[0506] Step 2: LP-WUR detects the total received energy of interference and / or noise in the third resource with zero transmit power within the first time window, and obtains a first measurement amount;

[0507] LP-WUR can be a baseband envelope detection receiver, an intermediate frequency envelope detection receiver and / or an RF envelope detection receiver. The baseband envelope detection receiver converts the RF signal into a baseband signal through an RF mixer and a local oscillator. In an intermediate frequency envelope detection receiver, the RF signal is converted into an intermediate frequency signal through an RF mixer and a local oscillator, and the intermediate frequency signal is then converted into a baseband signal by intermediate frequency envelope detection. In an RF envelope detection receiver, the RF signal is converted into a baseband signal by RF envelope detection.

[0508] The definition and configuration of the first time window can refer to application scenario 1.

[0509] It should be noted that the noise is thermal noise, and the interference may be co-channel interference and / or inter-frequency interference and / or adjacent channel interference. The total received energy is the sum of the interference and / or noise detected on the third resource within the first time window.

[0510] The first measurement can have one of the following definitions:

[0511] The RB-based first measurement amount may be a linear average value of total received energy of interference and / or noise detected on all RBs corresponding to the third resource.

[0512] The first measurement amount based on BW may be a total received energy of interference and / or noise detected on a useful bandwidth corresponding to the third resource, where the useful bandwidth is a bandwidth occupied by the third resource and does not include a guard interval.

[0513] Step 3: determining a target measurement amount based on the first measurement amount and the second measurement amount of the same granularity;

[0514] For example, the target measurement amount may be a signal strength of a first reference signal (e.g., LP-RSRP) or a signal to noise and power ratio (e.g., LP-SINR) of a first reference signal, and the target measurement amount may be derived in one of the following ways:

[0515] RB-based LP-RSRP=RB-based second measurement amount-RB-based first measurement amount;

[0516] LP-RSRP based on BW=second measurement quantity based on BW-first measurement quantity based on BW;

[0517] RB-based LP-SINR=(RB-based second measurement amount-RB-based first measurement amount) / RB-based first measurement amount;

[0518] BW-based LP-SINR=(BW-based second measurement amount−BW-based first measurement amount) / BW-based first measurement amount.

[0519] It should be noted that at least one embodiment of the present application can ensure that a low-power receiver that does not include an FFT module can also obtain the target measurement value, thereby enhancing the performance of the low-power receiver.

[0520] The technical solution provided in the embodiment of the present application can be applicable to a variety of systems, especially 5G systems. For example, the applicable system can be a global system of mobile communication (GSM) system, a code division multiple access (CDMA) system, a wideband code division multiple access (WCDMA) general packet radio service (GPRS) system, a long term evolution (LTE) system, a LTE frequency division duplex (FDD) system, a LTE time division duplex (TDD) system, an advanced long term evolution (LTE-A) system, a universal mobile telecommunication system (UMTS), a world-wide interoperability for microwave access (WiMAX) system, a 5G new radio (NR) system, etc. These various systems include terminals (also referred to as terminal equipment) and network equipment. The system may also include a core network part, such as an evolved packet system (EPS), a 5G system (5GS), etc.

[0521] The terminal involved in the embodiment of the present application may also be referred to as a terminal device, which may be a device that provides voice and / or data connectivity to a user, a handheld device with a wireless connection function, or other processing devices connected to a wireless modem. In different systems, the name of the terminal device may also be different. For example, in a 5G system, the terminal device may be referred to as a user equipment (UE). A wireless terminal device may communicate with one or more core networks (CN) via a radio access network (RAN). The wireless terminal device may be a mobile terminal device, such as a mobile phone (or a "cellular" phone) and a computer with a mobile terminal device. For example, it may be a portable, pocket-sized, handheld, computer-built-in or vehicle-mounted mobile device that exchanges language and / or data with a wireless access network. For example, personal communication service (PCS) phones, cordless phones, session initiation protocol (SIP) phones, wireless local loop (WLL) stations, personal digital assistants (PDAs) and other devices. The wireless terminal device may also be referred to as a system, a subscriber unit, a subscriber station, a mobile station, a mobile station, a remote station, an access point, a remote terminal device, an access terminal device, a user terminal device, a user agent, and a user device, but is not limited in the embodiments of the present application.

[0522] The network device involved in the embodiment of the present application may be a base station, which may include multiple cells providing services for the terminal. Depending on the specific application scenario, the base station may also be called an access point, or may be a device in the access network that communicates with the wireless terminal device through one or more sectors on the air interface, or other names. The network device may be used to interchange received air frames with Internet Protocol (IP) packets, and serve as a router between the wireless terminal device and the rest of the access network, wherein the rest of the access network may include an Internet Protocol (IP) communication network. The network device may also coordinate the attribute management of the air interface. For example, the network device involved in the embodiments of the present application may be a network device (Base Transceiver Station, BTS) in the Global System for Mobile communications (Global System for Mobile communications, GSM) or Code Division Multiple Access (Code Division Multiple Access, CDMA), or a network device (NodeB) in Wide-band Code Division Multiple Access (WCDMA), or an evolutionary network device (evolutional Node B, eNB or e-NodeB) in the long term evolution (long term evolution, LTE) system, a 5G base station (gNB) in the 5G network architecture (next generation system), or a home evolved Node B (Home evolved Node B, HeNB), a relay terminal node (relay node), a home base station (femto), a pico base station (pico), etc., which is not limited in the embodiments of the present application. In some network structures, the network device may include a centralized unit (CU) node and a distributed unit (DU) node, and the centralized unit and the distributed unit may also be arranged geographically separately.

[0523] Network devices and terminal devices can each use one or more antennas for multiple-input multiple-output (MIMO) transmission. MIMO transmission can be single-user MIMO (SU-MIMO) or multi-user MIMO (MU-MIMO). Depending on the form and number of antenna combinations, MIMO transmission can be 2D-MIMO, 3D-MIMO, FD-MIMO or massive-MIMO, or it can be diversity transmission, precoded transmission or beamforming transmission, etc.

[0524] like Figure 5 As shown, an embodiment of the present application provides an information transmission method, which is executed by a network device, including:

[0525] Step S501: sending first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources;

[0526] The first information includes at least one of the following:

[0527] first configuration information of a first time window;

[0528] second configuration information of a second resource;

[0529] third configuration information of a third resource;

[0530] The first configuration information includes at least one of the following:

[0531] The time domain starting position of the first time window;

[0532] The time domain length of the first time window;

[0533] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0534] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0535] The second configuration information includes at least one of the following:

[0536] A time domain starting position of the second resource;

[0537] A frequency domain starting position of the second resource;

[0538] a second association relationship between the second resource and the fourth resource;

[0539] The third configuration information includes at least one of the following:

[0540] The time domain starting position of the third resource;

[0541] The frequency domain starting position of the third resource;

[0542] A third association relationship between the third resource and the fourth resource;

[0543] a fourth association relationship between the third resource and the first time window;

[0544] The fourth resource is used to send the signal to be measured.

[0545] Optionally, sending the first information to the first device includes:

[0546] Sending the first information to the first device in a fourth manner;

[0547] The fourth method includes at least one of the following:

[0548] Broadcast signal configuration;

[0549] High-level configuration;

[0550] Downlink signal configuration;

[0551] Downlink channel configuration.

[0552] Optionally, the second association relationship includes at least one of the following:

[0553] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0554] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0555] Optionally, the third association relationship includes at least one of the following:

[0556] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0557] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0558] Optionally, the fourth association relationship includes at least one of the following:

[0559] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0560] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0561] It should be noted that all implementation methods in the above embodiments are applicable to the embodiments of the information transmission method applied to the network device side, and can achieve the same technical effect, which will not be repeated here.

[0562] like Figure 6 As shown, the embodiment of the present application provides a resource detection device 600, which is applied to a first device, including:

[0563] A first acquisition unit 601 is configured to detect a target resource and acquire a first measurement amount, where the first measurement amount is used to determine a target measurement amount, and the first measurement amount is related to interference and / or noise on the target resource;

[0564] The target resource includes one of the following:

[0565] The first resource in the first time window;

[0566] Second resource;

[0567] Third resources within the first time window;

[0568] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0569] Optionally, the device further includes:

[0570] a determining unit, configured to determine a target measurement amount according to the first measurement amount and the second measurement amount;

[0571] The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

[0572] Optionally, the first measurement amount, the second measurement amount, and the target measurement amount have the same resource granularity, and the resource granularity includes at least one of the following:

[0573] Resource block RB;

[0574] bandwidth.

[0575] Optionally, when the resource granularity is a resource block, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on an RB corresponding to the target resource; or

[0576] When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

[0577] Optionally, when the resource granularity is RB, the second measurement amount includes: a linear average value of a total received signal power of a target signal detected on the RB corresponding to the target resource; or

[0578] In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval;

[0579] Wherein, the target signal includes:

[0580] The signal to be measured;

[0581] Interference and / or noise.

[0582] Optionally, the frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or

[0583] The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or

[0584] The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0585] Optionally, the device further includes:

[0586] A second acquiring unit, configured to acquire first configuration information of the first time window;

[0587] The first configuration information includes at least one of the following:

[0588] The time domain starting position of the first time window;

[0589] The time domain length of the first time window;

[0590] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0591] A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

[0592] Optionally, the second acquiring unit is used to:

[0593] Acquire first configuration information of the first time window in a first manner;

[0594] The first method includes at least one of the following:

[0595] Broadcast signal configuration;

[0596] Agreement;

[0597] High-level configuration;

[0598] Downlink signal configuration;

[0599] Downlink channel configuration.

[0600] Optionally, the device further includes:

[0601] A third acquisition unit, configured to acquire second configuration information of the second resource;

[0602] The second configuration information includes at least one of the following:

[0603] A time domain starting position of the second resource;

[0604] A frequency domain starting position of the second resource;

[0605] A second association relationship between the second resource and the fourth resource.

[0606] Optionally, the second association relationship includes at least one of the following:

[0607] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0608] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0609] Optionally, the third acquiring unit is used to:

[0610] Acquire second configuration information of the second resource by a second method;

[0611] The second method includes at least one of the following:

[0612] Broadcast signal configuration;

[0613] Agreement;

[0614] High-level configuration;

[0615] Downlink signal configuration;

[0616] Downlink channel configuration.

[0617] Optionally, the device further includes:

[0618] A fourth acquisition unit, configured to acquire third configuration information of the third resource;

[0619] The third configuration information includes at least one of the following:

[0620] The time domain starting position of the third resource;

[0621] The frequency domain starting position of the third resource;

[0622] A third association relationship between the third resource and the fourth resource;

[0623] A fourth association relationship between the third resource and the first time window.

[0624] Optionally, the third association relationship includes at least one of the following:

[0625] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0626] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0627] Optionally, the fourth association relationship includes at least one of the following:

[0628] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0629] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0630] Optionally, the fourth acquiring unit is used to:

[0631] Acquire third configuration information of the third resource by a third method;

[0632] The third method includes at least one of the following:

[0633] Broadcast signal configuration;

[0634] Agreement;

[0635] High-level configuration;

[0636] Downlink signal configuration;

[0637] Downlink channel configuration.

[0638] Optionally, the target measurement includes at least one of the following:

[0639] The signal strength of the signal to be measured;

[0640] The signal-to-noise power ratio of the signal to be measured.

[0641] Optionally, the signal strength of the signal to be measured is equal to a difference between the second measurement quantity and the first measurement quantity.

[0642] Optionally, the signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by a first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

[0643] Optionally, the signal to be measured is an exclusive receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

[0644] Optionally, the first device is a low power consumption receiver.

[0645] It should be noted that the device embodiment is a device that corresponds one-to-one to the above-mentioned method embodiment. All implementation methods in the above-mentioned method embodiment are applicable to the device embodiment and can achieve the same technical effect.

[0646] It should be noted that the division of units in the embodiments of the present application is schematic and is only a logical function division. There may be other division methods in actual implementation. In addition, each functional unit in each embodiment of the present application may be integrated into a processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of software functional units.

[0647] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a processor-readable storage medium. Based on this understanding, the technical solution of the present application is essentially or the part that contributes to the prior art or all or part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a number of instructions to enable a computer device (which can be a personal computer, server, or network device, etc.) or a processor (processor) to perform all or part of the steps of the method described in each embodiment of the present application. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), disk or optical disk and other media that can store program codes.

[0648] like Figure 7 As shown, the embodiment of the present application further provides a resource detection device, including a processor 700, a transceiver 710, a memory 720, and a program stored in the memory 720 and executable on the processor 700; wherein the transceiver 710 is connected to the processor 700 and the memory 720 through a bus interface, wherein the processor 700 is used to read the program in the memory and execute the following process:

[0649] Detecting a target resource and acquiring a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource;

[0650] The target resource includes one of the following:

[0651] The first resource in the first time window;

[0652] Second resource;

[0653] Third resources within the first time window;

[0654] Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

[0655] The transceiver 710 is configured to receive and send data under the control of the processor 700 .

[0656] Among them, Figure 7 In the embodiment, the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by processor 700 and various circuits of memory represented by memory 720 are linked together. The bus architecture may also link together various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and are therefore not further described herein. The bus interface provides an interface. The transceiver 710 may be a plurality of components, namely, a transmitter and a receiver, providing a unit for communicating with various other devices on a transmission medium, including wireless channels, wired channels, optical cables, and other transmission media. For different user devices, the user interface 730 may also be an interface capable of externally and internally connecting required devices, and the connected devices include but are not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.

[0657] The processor 700 is responsible for managing the bus architecture and general processing, and the memory 720 can store data used by the processor 700 when performing operations.

[0658] Optionally, the processor 700 may be a CPU (central processing unit), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array) or a CPLD (Complex Programmable Logic Device), and the processor may also adopt a multi-core architecture.

[0659] The processor calls the computer program stored in the memory to execute any of the methods provided in the embodiments of the present application according to the obtained executable instructions. The processor and the memory can also be arranged physically separately.

[0660] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0661] Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity;

[0662] The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

[0663] Optionally, the first measurement amount, the second measurement amount, and the target measurement amount have the same resource granularity, and the resource granularity includes at least one of the following:

[0664] Resource block RB;

[0665] bandwidth.

[0666] Optionally, when the resource granularity is a resource block, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on an RB corresponding to the target resource; or

[0667] When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

[0668] Optionally, when the resource granularity is RB, the second measurement amount includes: a linear average value of a total received signal power of a target signal detected on the RB corresponding to the target resource; or

[0669] In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval;

[0670] Wherein, the target signal includes:

[0671] The signal to be measured;

[0672] Interference and / or noise.

[0673] Optionally, the frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or

[0674] The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or

[0675] The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

[0676] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0677] Acquire first configuration information of the first time window;

[0678] The first configuration information includes at least one of the following:

[0679] The time domain starting position of the first time window;

[0680] The time domain length of the first time window;

[0681] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0682] A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

[0683] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0684] Acquire first configuration information of the first time window in a first manner;

[0685] The first method includes at least one of the following:

[0686] Broadcast signal configuration;

[0687] Agreement;

[0688] High-level configuration;

[0689] Downlink signal configuration;

[0690] Downlink channel configuration.

[0691] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0692] Acquire second configuration information of the second resource;

[0693] The second configuration information includes at least one of the following:

[0694] A time domain starting position of the second resource;

[0695] A frequency domain starting position of the second resource;

[0696] A second association relationship between the second resource and the fourth resource.

[0697] Optionally, the second association relationship includes at least one of the following:

[0698] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0699] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0700] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0701] Acquire second configuration information of the second resource by a second method;

[0702] The second method includes at least one of the following:

[0703] Broadcast signal configuration;

[0704] Agreement;

[0705] High-level configuration;

[0706] Downlink signal configuration;

[0707] Downlink channel configuration.

[0708] Optionally, the processor, for reading the computer program in the memory, further performs the following operations:

[0709] Acquire third configuration information of the third resource;

[0710] The third configuration information includes at least one of the following:

[0711] The time domain starting position of the third resource;

[0712] A frequency domain starting position of the third resource;

[0713] A third association relationship between the third resource and the fourth resource;

[0714] A fourth association relationship between the third resource and the first time window.

[0715] Optionally, the third association relationship includes at least one of the following:

[0716] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0717] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0718] Optionally, the fourth association relationship includes at least one of the following:

[0719] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0720] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0721] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0722] Acquire third configuration information of the third resource by a third method;

[0723] The third method includes at least one of the following:

[0724] Broadcast signal configuration;

[0725] Agreement;

[0726] High-level configuration;

[0727] Downlink signal configuration;

[0728] Downlink channel configuration.

[0729] Optionally, the target measurement includes at least one of the following:

[0730] The signal strength of the signal to be measured;

[0731] The signal-to-noise power ratio of the signal to be measured.

[0732] Optionally, the signal strength of the signal to be measured is equal to a difference between the second measurement quantity and the first measurement quantity.

[0733] Optionally, the signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by a first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

[0734] Optionally, the signal to be measured is an exclusive receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

[0735] Optionally, the first device is a low power consumption receiver.

[0736] It should be noted here that the above-mentioned resource detection device provided in the embodiment of the present application can implement all the method steps implemented in the above-mentioned method embodiment, and can achieve the same technical effect. The parts and beneficial effects of this embodiment that are the same as the method embodiment will not be described in detail here.

[0737] The embodiment of the present application also provides a computer-readable storage medium having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the steps of the resource detection method applied to the first device. The processor-readable storage medium may be any available medium or data storage device that the processor can access, including but not limited to magnetic storage (e.g., floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc.), optical storage (e.g., CD, DVD, BD, HVD, etc.), and semiconductor storage (e.g., ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid-state drive (SSD)), etc.

[0738] like Figure 8 As shown, the embodiment of the present application provides an information transmission device 800, which is applied to a network device, including:

[0739] A sending unit 801 is configured to send first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources;

[0740] The first information includes at least one of the following:

[0741] first configuration information of a first time window;

[0742] second configuration information of a second resource;

[0743] third configuration information of a third resource;

[0744] The first configuration information includes at least one of the following:

[0745] The time domain starting position of the first time window;

[0746] The time domain length of the first time window;

[0747] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0748] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0749] The second configuration information includes at least one of the following:

[0750] A time domain starting position of the second resource;

[0751] A frequency domain starting position of the second resource;

[0752] a second association relationship between the second resource and the fourth resource;

[0753] The third configuration information includes at least one of the following:

[0754] The time domain starting position of the third resource;

[0755] A frequency domain starting position of the third resource;

[0756] A third association relationship between the third resource and the fourth resource;

[0757] a fourth association relationship between the third resource and the first time window;

[0758] The fourth resource is used to send the signal to be measured.

[0759] Optionally, the sending unit 801 is configured to:

[0760] Sending the first information to the first device in a fourth manner;

[0761] The fourth method includes at least one of the following:

[0762] Broadcast signal configuration;

[0763] High-level configuration;

[0764] Downlink signal configuration;

[0765] Downlink channel configuration.

[0766] Optionally, the second association relationship includes at least one of the following:

[0767] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0768] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0769] Optionally, the third association relationship includes at least one of the following:

[0770] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0771] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0772] Optionally, the fourth association relationship includes at least one of the following:

[0773] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0774] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0775] It should be noted that the device embodiment is a device that corresponds one-to-one to the above-mentioned method embodiment. All implementation methods in the above-mentioned method embodiment are applicable to the device embodiment and can achieve the same technical effect.

[0776] It should be noted that the division of units in the embodiments of the present application is schematic and is only a logical function division. There may be other division methods in actual implementation. In addition, each functional unit in each embodiment of the present application may be integrated into a processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit. The above-mentioned integrated unit may be implemented in the form of hardware or in the form of software functional units.

[0777] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a processor-readable storage medium. Based on this understanding, the technical solution of the present application is essentially or the part that contributes to the prior art or all or part of the technical solution can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a number of instructions to enable a computer device (which can be a personal computer, server, or network device, etc.) or a processor (processor) to perform all or part of the steps of the method described in each embodiment of the present application. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), disk or optical disk and other media that can store program codes.

[0778] like Fig. 9 As shown, the embodiment of the present application also provides a network device, including a processor 900, a transceiver 910, a memory 920, and a program stored in the memory 920 and executable on the processor 900; wherein the transceiver 910 is connected to the processor 900 and the memory 920 through a bus interface, wherein the processor 900 is used to read the program in the memory and execute the following process: wherein the processor is used to read the computer program in the memory and execute the following operations:

[0779] Sending first information to a first device through a receiver, where the first information is used to configure time domain resources and / or frequency domain resources;

[0780] The first information includes at least one of the following:

[0781] first configuration information of a first time window;

[0782] second configuration information of a second resource;

[0783] third configuration information of a third resource;

[0784] The first configuration information includes at least one of the following:

[0785] The time domain starting position of the first time window;

[0786] The time domain length of the first time window;

[0787] A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0788] a first association relationship between the time domain length of the first time window and the duration of the fourth resource;

[0789] The second configuration information includes at least one of the following:

[0790] A time domain starting position of the second resource;

[0791] A frequency domain starting position of the second resource;

[0792] a second association relationship between the second resource and the fourth resource;

[0793] The third configuration information includes at least one of the following:

[0794] The time domain starting position of the third resource;

[0795] The frequency domain starting position of the third resource;

[0796] A third association relationship between the third resource and the fourth resource;

[0797] a fourth association relationship between the third resource and the first time window;

[0798] The fourth resource is used to send the signal to be measured.

[0799] The transceiver 910 is configured to receive and send data under the control of the processor 900 .

[0800] Among them, Fig. 9 In the embodiment, the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by processor 900 and various circuits of memory represented by memory 920 are linked together. The bus architecture may also link together various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and are therefore not further described herein. The bus interface provides an interface. The transceiver 910 may be a plurality of components, namely, a transmitter and a receiver, providing a unit for communicating with various other devices on a transmission medium, including transmission media such as wireless channels, wired channels, and optical cables. For different user devices, the user interface 930 may also be an interface capable of externally and internally connecting required devices, and the connected devices include but are not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.

[0801] The processor 900 is responsible for managing the bus architecture and general processing, and the memory 920 can store data used by the processor 900 when performing operations.

[0802] Optionally, the processor 900 may be a CPU (central processing unit), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array) or a CPLD (Complex Programmable Logic Device), and the processor may also adopt a multi-core architecture.

[0803] The processor calls the computer program stored in the memory to execute any of the methods provided in the embodiments of the present application according to the obtained executable instructions. The processor and the memory can also be arranged physically separately.

[0804] Optionally, the processor is configured to read the computer program in the memory and perform the following operations:

[0805] Sending the first information to the first device in a fourth manner;

[0806] The fourth method includes at least one of the following:

[0807] Broadcast signal configuration;

[0808] High-level configuration;

[0809] Downlink signal configuration;

[0810] Downlink channel configuration.

[0811] Optionally, the second association relationship includes at least one of the following:

[0812] There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0813] There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0814] Optionally, the third association relationship includes at least one of the following:

[0815] There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position;

[0816] There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

[0817] Optionally, the fourth association relationship includes at least one of the following:

[0818] There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position;

[0819] The duration of the third resource is less than or equal to the time domain length of the first time window.

[0820] It should be noted here that the above-mentioned network device provided in the embodiment of the present application can implement all the method steps implemented in the above-mentioned method embodiment, and can achieve the same technical effect. The parts and beneficial effects that are the same as the method embodiment in this embodiment will not be described in detail here.

[0821] The embodiment of the present application also provides a computer-readable storage medium having a computer program stored thereon, wherein the computer program, when executed by a processor, implements the steps of the information transmission method applied to a network device. The processor-readable storage medium may be any available medium or data storage device that the processor can access, including but not limited to magnetic storage (e.g., floppy disk, hard disk, magnetic tape, magneto-optical disk (MO), etc.), optical storage (e.g., CD, DVD, BD, HVD, etc.), and semiconductor storage (e.g., ROM, EPROM, EEPROM, non-volatile memory (NAND FLASH), solid-state drive (SSD)), etc.

[0822] Those skilled in the art will appreciate that the embodiments of the present application may be provided as methods, systems, or computer program products. Therefore, the present application may adopt the form of a complete hardware embodiment, a complete software embodiment, or an embodiment in combination with software and hardware. Moreover, the present application may adopt the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage and optical storage, etc.) that contain computer-usable program code.

[0823] The present application is described with reference to the flowcharts and / or block diagrams of the methods, devices (systems), and computer program products according to the embodiments of the present application. It should be understood that each process and / or box in the flowchart and / or block diagram, as well as the combination of the processes and / or boxes in the flowchart and / or block diagram, can be implemented by computer executable instructions. These computer executable instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, an embedded processor, or other programmable data processing device to generate a machine, so that the instructions executed by the processor of the computer or other programmable data processing device generate instructions for implementing the processes in the flowchart and / or block diagram. Figure 1 A process or multiple processes and / or boxes Figure 1 A device that provides the functions specified in a block or multiple blocks.

[0824] These processor executable instructions may also be stored in a processor readable memory that can direct a computer or other programmable data processing device to operate in a specific manner, so that the instructions stored in the processor readable memory produce an article of manufacture including an instruction device, which implements the process Figure 1 A process or multiple processes and / or boxes Figure 1 A function specified in one or more boxes.

[0825] These processor-executable instructions may also be loaded onto a computer or other programmable data processing device so that a series of operational steps are executed on the computer or other programmable device to produce a computer-implemented process, thereby providing instructions for executing on the computer or other programmable device to implement the process. Figure 1 A process or multiple processes and / or boxes Figure 1 The steps for the functions specified in one or more boxes.

[0826] Obviously, those skilled in the art can make various changes and modifications to the present application without departing from the spirit and scope of the present application. Thus, if these modifications and variations of the present application fall within the scope of the claims of the present application and their equivalents, the present application is also intended to include these modifications and variations.

Claims

1. A resource detection method, characterized in that: The method is executed by a first device and includes: Detecting a target resource and acquiring a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource; The target resource includes one of the following: The first resource in the first time window; Second resource; Third resources within the first time window; Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

2. The method according to claim 1, characterized in that: Also includes: Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity; The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

3. The method according to claim 2, characterized in that The resource granularity corresponding to the first measurement amount, the second measurement amount, and the target measurement amount is the same, and the resource granularity includes at least one of the following: Resource block RB; bandwidth.

4. The method according to claim 3, characterized in that In the case where the resource granularity is RB, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on the RB corresponding to the target resource; or When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

5. The method according to claim 3 or 4, characterized in that: In the case where the resource granularity is RB, the second measurement amount includes: a linear average value of total received signal power of the target signal detected on the RB corresponding to the target resource; or In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval; Wherein, the target signal includes: The signal to be measured; Interference and / or noise.

6. The method according to claim 2, characterized in that The frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

7. The method according to claim 2, characterized in that Also includes: Acquire first configuration information of the first time window; The first configuration information includes at least one of the following: The time domain starting position of the first time window; The time domain length of the first time window; A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

8. The method according to claim 7, characterized in that The acquiring the first configuration information of the first time window includes: Acquire first configuration information of the first time window in a first manner; The first method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

9. The method according to claim 2, characterized in that: Also includes: Acquire second configuration information of the second resource; The second configuration information includes at least one of the following: A time domain starting position of the second resource; A frequency domain starting position of the second resource; A second association relationship between the second resource and the fourth resource.

10. The method according to claim 9, characterized in that The second association relationship includes at least one of the following: There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

11. The method according to claim 9, characterized in that The acquiring the second configuration information of the second resource includes: Acquire second configuration information of the second resource by a second method; The second method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

12. The method according to claim 2, characterized in that: Also includes: Acquire third configuration information of the third resource; The third configuration information includes at least one of the following: The time domain starting position of the third resource; The frequency domain starting position of the third resource; A third association relationship between the third resource and the fourth resource; A fourth association relationship between the third resource and the first time window.

13. The method according to claim 12, characterized in that The third association relationship includes at least one of the following: There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

14. The method according to claim 12, characterized in that The fourth association relationship includes at least one of the following: There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; The duration of the third resource is less than or equal to the time domain length of the first time window.

15. The method according to claim 12, characterized in that The acquiring the third configuration information of the third resource includes: Acquire third configuration information of the third resource by a third method; The third method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

16. The method according to claim 2, characterized in that The target measurement includes at least one of the following: The signal strength of the signal to be measured; The signal-to-noise power ratio of the signal to be measured.

17. The method according to claim 16, characterized in that The signal strength of the signal to be measured is equal to the difference between the second measurement value and the first measurement value.

18. The method according to claim 16, characterized in that The signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by the first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

19. The method according to claim 2, characterized in that The signal to be measured is a dedicated receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

20. The method according to any one of claims 1 to 19, characterized in that: The first device is a low power consumption receiver.

21. An information transmission method, characterized in that: Performed by network devices, including: Sending first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources; The first information includes at least one of the following: first configuration information of a first time window; second configuration information of a second resource; third configuration information of a third resource; The first configuration information includes at least one of the following: The time domain starting position of the first time window; The time domain length of the first time window; A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; a first association relationship between the time domain length of the first time window and the duration of the fourth resource; The second configuration information includes at least one of the following: A time domain starting position of the second resource; A frequency domain starting position of the second resource; a second association relationship between the second resource and the fourth resource; The third configuration information includes at least one of the following: The time domain starting position of the third resource; The frequency domain starting position of the third resource; A third association relationship between the third resource and the fourth resource; a fourth association relationship between the third resource and the first time window; The fourth resource is used to send the signal to be measured.

22. The method according to claim 21, characterized in that The sending the first information to the first device includes: Sending the first information to the first device in a fourth manner; The fourth method includes at least one of the following: Broadcast signal configuration; High-level configuration; Downlink signal configuration; Downlink channel configuration.

23. The method according to claim 21, characterized in that The second association relationship includes at least one of the following: There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

24. The method according to claim 21, characterized in that The third association relationship includes at least one of the following: There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

25. The method according to claim 21, characterized in that The fourth association relationship includes at least one of the following: There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; The duration of the third resource is less than or equal to the time domain length of the first time window.

26. A resource detection device, the resource detection device being a first device, characterized in that: Including memory, transceiver, processor: A memory for storing a computer program; a transceiver for transmitting and receiving data under the control of the processor; and a processor for reading the computer program in the memory and performing the following operations: Detecting a target resource and acquiring a first measurement quantity, where the first measurement quantity is used to determine a target measurement quantity, and the first measurement quantity is related to interference and / or noise on the target resource; The target resource includes one of the following: The first resource in the first time window; Second resource; Third resources within the first time window; Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

27. The device according to claim 26, characterized in that The processor is configured to read the computer program in the memory and further perform the following operations: Determining a target measurement quantity according to the first measurement quantity and the second measurement quantity; The second measurement amount is the total received energy on a fourth resource for receiving the signal to be measured.

28. The device according to claim 27, characterized in that The resource granularity corresponding to the first measurement amount, the second measurement amount, and the target measurement amount is the same, and the resource granularity includes at least one of the following: Resource block RB; bandwidth.

29. The device according to claim 28, characterized in that In the case where the resource granularity is a resource block, the first measurement amount includes: a linear average value of a total received signal power of interference and / or noise detected on an RB corresponding to the target resource; or When the resource granularity is bandwidth, the first measurement amount includes: the total received energy of interference and / or noise detected on the useful bandwidth corresponding to the target resource, and the useful bandwidth is the bandwidth that carries the signal to be measured and does not include a guard interval.

30. The device according to claim 28 or 29, characterized in that In the case where the resource granularity is RB, the second measurement amount includes: a linear average value of total received signal power of the target signal detected on the RB corresponding to the target resource; or In the case where the resource granularity is bandwidth, the second measurement amount includes: total received energy of the target signal detected on the useful bandwidth corresponding to the target resource, where the useful bandwidth is a bandwidth that carries the signal to be measured and does not include a guard interval; Wherein, the target signal includes: The signal to be measured; Interference and / or noise.

31. The device according to claim 27, characterized in that The frequency domain resources corresponding to the first resource are a subset or a full set of the frequency domain resources corresponding to the fourth resource; or The frequency domain resources corresponding to the second resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources; or The frequency domain resources corresponding to the third resources are a subset or a full set of the frequency domain resources corresponding to the fourth resources.

32. The apparatus according to claim 27, characterized in that The processor is configured to read the computer program in the memory and further perform the following operations: Acquire first configuration information of the first time window; The first configuration information includes at least one of the following: The time domain starting position of the first time window; The time domain length of the first time window; A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; A first association relationship between the time domain length of the first time window and the duration of the fourth resource.

33. The device according to claim 32, characterized in that The processor is configured to read the computer program in the memory and perform the following operations: Acquire first configuration information of the first time window in a first manner; The first method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

34. The apparatus according to claim 27, characterized in that The processor is configured to read the computer program in the memory and further perform the following operations: Acquire second configuration information of the second resource; The second configuration information includes at least one of the following: A time domain starting position of the second resource; A frequency domain starting position of the second resource; A second association relationship between the second resource and the fourth resource.

35. The device according to claim 34, characterized in that The second association relationship includes at least one of the following: There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, where the first target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

36. The device according to claim 34, characterized in that The processor is configured to read the computer program in the memory and perform the following operations: Acquire second configuration information of the second resource by a second method; The second method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

37. The apparatus according to claim 27, characterized in that The processor is configured to read the computer program in the memory and further perform the following operations: Acquire third configuration information of the third resource; The third configuration information includes at least one of the following: The time domain starting position of the third resource; The frequency domain starting position of the third resource; A third association relationship between the third resource and the fourth resource; A fourth association relationship between the third resource and the first time window.

38. The device according to claim 37, characterized in that The third association relationship includes at least one of the following: There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, where the second target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the third target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

39. The device according to claim 37, characterized in that The fourth association relationship includes at least one of the following: There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; The duration of the third resource is less than or equal to the time domain length of the first time window.

40. The apparatus according to claim 37, characterized in that The processor is configured to read the computer program in the memory and perform the following operations: Acquire third configuration information of the third resource by a third method; The third method includes at least one of the following: Broadcast signal configuration; Agreement; High-level configuration; Downlink signal configuration; Downlink channel configuration.

41. The apparatus according to claim 27, characterized in that The target measurement includes at least one of the following: The signal strength of the signal to be measured; The signal-to-noise power ratio of the signal to be measured.

42. The device according to claim 41, characterized in that The signal strength of the signal to be measured is equal to the difference between the second measurement value and the first measurement value.

43. The device according to claim 41, characterized in that The signal-to-noise power ratio of the signal to be measured is equal to a quotient of a first difference divided by the first measurement value, and the first difference is a difference between the second measurement value and the first measurement value.

44. The apparatus according to claim 27, characterized in that The signal to be measured is a dedicated receiving signal of the first device, and the waveform of the signal to be measured includes any one of the following: a binary on-off keying OOK waveform, a frequency shift keying FSK waveform, an orthogonal frequency division multiplexing OFDM waveform, a joint waveform of OOK and OFDM, and a joint waveform of FSK and OFDM.

45. The device according to any one of claims 26 to 44, characterized in that The first device is a low power consumption receiver.

46. ​​A network device, characterized in that: Including memory, transceiver, processor: A memory for storing a computer program; a transceiver for transmitting and receiving data under the control of the processor; and a processor for reading the computer program in the memory and performing the following operations: Sending first information to a first device through a receiver, where the first information is used to configure time domain resources and / or frequency domain resources; The first information includes at least one of the following: first configuration information of a first time window; second configuration information of a second resource; third configuration information of a third resource; The first configuration information includes at least one of the following: The time domain starting position of the first time window; The time domain length of the first time window; A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; a first association relationship between the time domain length of the first time window and the duration of the fourth resource; The second configuration information includes at least one of the following: A time domain starting position of the second resource; A frequency domain starting position of the second resource; a second association relationship between the second resource and the fourth resource; The third configuration information includes at least one of the following: The time domain starting position of the third resource; The frequency domain starting position of the third resource; A third association relationship between the third resource and the fourth resource; a fourth association relationship between the third resource and the first time window; The fourth resource is used to send the signal to be measured.

47. The network device according to claim 46, characterized in that The processor is configured to read the computer program in the memory and perform the following operations: Sending the first information to the first device in a fourth manner; The fourth method includes at least one of the following: Broadcast signal configuration; High-level configuration; Downlink signal configuration; Downlink channel configuration.

48. The network device according to claim 46, characterized in that The second association relationship includes at least one of the following: There is a second offset between the frequency domain starting position of the second resource and the first target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a third offset between the time domain starting position of the second resource and the second target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

49. The network device according to claim 46, characterized in that The third association relationship includes at least one of the following: There is a fourth offset between the frequency domain starting position of the third resource and the second target frequency domain position of the fourth resource, and the target frequency domain position includes at least one of the following: a frequency domain starting position, a frequency domain center position, and a frequency domain ending position; There is a fifth offset between the time domain starting position of the third resource and the third target time domain position of the fourth resource, and the second target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position.

50. The network device according to claim 46, characterized in that The fourth association relationship includes at least one of the following: There is a sixth offset between the time domain starting position of the third resource and the fourth target time domain position of the first time window, and the fourth target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; The duration of the third resource is less than or equal to the time domain length of the first time window.

51. A resource detection device, applied to a first device, characterized in that: include: A first acquisition unit, configured to detect a target resource and acquire a first measurement amount, where the first measurement amount is used to determine a target measurement amount, and the first measurement amount is related to interference and / or noise on the target resource; The target resource includes one of the following: The first resource in the first time window; Second resource; Third resources within the first time window; Among them, within the first time window, the first device does not have any uplink transmission and / or downlink signal reception; the transmission power on the second resource is 0; and the transmission power on the third resource is 0.

52. An information transmission device, applied to a network device, characterized in that: include: A sending unit, configured to send first information to a first device, where the first information is used to configure time domain resources and / or frequency domain resources; The first information includes at least one of the following: first configuration information of a first time window; second configuration information of a second resource; third configuration information of a third resource; The first configuration information includes at least one of the following: The time domain starting position of the first time window; The time domain length of the first time window; A first offset between the time domain starting position of the first time window and the first target time domain position of the fourth resource, wherein the first target time domain position includes at least one of the following: a time domain starting position, a time domain center position, and a time domain ending position; a first association relationship between the time domain length of the first time window and the duration of the fourth resource; The second configuration information includes at least one of the following: A time domain starting position of the second resource; A frequency domain starting position of the second resource; a second association relationship between the second resource and the fourth resource; The third configuration information includes at least one of the following: The time domain starting position of the third resource; A frequency domain starting position of the third resource; A third association relationship between the third resource and the fourth resource; a fourth association relationship between the third resource and the first time window; The fourth resource is used to send the signal to be measured.

53. A processor-readable storage medium, characterized in that: The processor-readable storage medium stores a computer program, and the computer program is used to enable the processor to execute the method according to any one of claims 1 to 25.