WO2025007356A1 - 处理方法、通信设备及存储介质 - Google Patents

处理方法、通信设备及存储介质 Download PDF

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Publication number
WO2025007356A1
WO2025007356A1 PCT/CN2023/106182 CN2023106182W WO2025007356A1 WO 2025007356 A1 WO2025007356 A1 WO 2025007356A1 CN 2023106182 W CN2023106182 W CN 2023106182W WO 2025007356 A1 WO2025007356 A1 WO 2025007356A1
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WIPO (PCT)
Prior art keywords
paging
discontinuous reception
superframe
extended discontinuous
terminal device
Prior art date
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Ceased
Application number
PCT/CN2023/106182
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English (en)
French (fr)
Inventor
吴文
谢毅力
黄伟
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Shenzhen Transsion Holdings Co Ltd
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Shenzhen Transsion Holdings Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
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Application filed by Shenzhen Transsion Holdings Co Ltd filed Critical Shenzhen Transsion Holdings Co Ltd
Priority to PCT/CN2023/106182 priority Critical patent/WO2025007356A1/zh
Priority to CN202380100714.7A priority patent/CN121713570A/zh
Publication of WO2025007356A1 publication Critical patent/WO2025007356A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. Transmission Power Control [TPC] or power classes
    • H04W52/02Power saving arrangements

Definitions

  • the present application relates to the field of communication technology, and in particular to a processing method, a communication device and a storage medium.
  • the network device may configure eDRX (extended Discontinuous Reception) parameters for the terminal device. For example, the network device configures the eDRX cycle and PTW (Paging Time Window) length for the terminal device, and the terminal device uses the terminal device ID (terminal device identification), eDRX cycle and PTW length to calculate PH (Paging Hyperframe) and PTW, and monitors PO (Paging Occasion) within the PTW window.
  • eDRX Extended Discontinuous Reception
  • the inventors found that: in IoT-NTN (Internet of Things-Non-terrestrial network), when the terminal device is in discontinuous coverage, the terminal device needs to avoid monitoring paging, and the existing eDRX protocol does not consider the scenario of discontinuous coverage of the terminal device, which may cause the terminal device to continue to monitor paging when it is in discontinuous coverage (i.e., no coverage period), thereby causing unnecessary power consumption. And/or, due to the large coverage of NTN and the large number of service terminals, paging load will also be caused.
  • IoT-NTN Internet of Things-Non-terrestrial network
  • the main purpose of the present application is to provide a processing method, a communication device and a storage medium, which can enable a terminal device not to monitor paging and/or to monitor paging in different PHs when the terminal device is in discontinuous coverage.
  • This application proposes a processing method, which can be applied to a terminal device (such as a mobile phone), comprising the steps of:
  • S20 Determine a target paging superframe based on the extended discontinuous reception parameters.
  • the extended discontinuous reception parameter includes at least one of the following:
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • the step S20 includes at least one of the following:
  • the paging superframe calculated based on the extended discontinuous reception period length belongs to an invalid paging superframe
  • the paging superframe is cyclically shifted by the paging superframe offset within the extended discontinuous reception period, and a valid paging superframe obtained by the shift is determined as a target paging superframe;
  • the valid paging superframe is determined as a target paging superframe.
  • the method further comprises at least one of the following:
  • each terminal device belonging to an invalid paging superframe is evenly distributed on a valid paging superframe in a corresponding extended discontinuous reception period after cyclic shifting;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the invalid paging superframes.
  • the step S20 includes at least one of the following:
  • the valid paging superframes in the extended discontinuous reception period are re-indexed, and the paging superframe index of the terminal device is determined according to the number of valid paging superframes in the extended discontinuous reception period and the terminal device identifier, and the paging superframe index of the terminal device is determined based on the paging superframe index. Determine the target paging superframe.
  • the method further comprises:
  • a paging time window is determined according to the first parameter, and paging is monitored at a paging opportunity within the corresponding paging time window.
  • the first parameter includes at least one of the following:
  • the length of the paging time window is the length of the paging time window.
  • the present application also proposes a processing method, which can be applied to a network device (such as a base station), comprising the steps of:
  • the extended discontinuous reception parameter includes at least one of the following:
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • the terminal device determines the target paging superframe based on the received extended discontinuous reception parameter, including at least one of the following:
  • the terminal device cyclically shifts the paging superframe by the paging superframe offset within the extended discontinuous reception period, and determines the valid paging superframe obtained by the shift as the target paging superframe;
  • the terminal device determines the valid paging superframe as a target paging superframe.
  • the method further comprises at least one of the following:
  • the terminal device calculates a paging superframe based on the extended discontinuous reception cycle length and the terminal device identifier
  • the terminal devices that are calculated to belong to the invalid paging superframe are evenly distributed on the valid paging superframes in the corresponding extended discontinuous reception period after cyclic shift;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the existence of invalid paging superframes.
  • the terminal device determines the target paging superframe based on the received extended discontinuous reception parameter, including at least one of the following:
  • the terminal device determines the target paging superframe according to the extended discontinuous reception cycle length and the terminal device identifier
  • the terminal device When it is determined that the number of valid paging superframes within the extended discontinuous reception cycle is not equal to the length of the extended discontinuous reception cycle, the terminal device will re-index the valid paging superframes within the extended discontinuous reception cycle, determine the paging superframe index of the terminal device according to the number of valid paging superframes within the extended discontinuous reception cycle and the terminal device identifier, and determine the target paging superframe based on the paging superframe index.
  • the method further comprises:
  • the target paging superframe and paging time window of the terminal device are determined according to the first parameter, and paging is triggered at a paging opportunity within the corresponding paging time window.
  • the first parameter includes at least one of the following:
  • the length of the paging time window is the length of the paging time window.
  • the present application also provides a processing device, comprising:
  • the determination module is used to determine the target paging superframe based on the extended discontinuous reception parameter.
  • the present application also proposes a processing device, comprising:
  • the sending module is used to send the extended discontinuous reception parameters so that the terminal device determines the target paging superframe based on the extended discontinuous reception parameters.
  • the present application also provides a communication device, including: a memory, a processor, and a processing program stored in the memory and executable on the processor, wherein the processing program implements any of the processing methods described above when executed by the processor.
  • the communication device mentioned in the present application may be a terminal device (such as a smart terminal, specifically a mobile phone) or a network device (such as a base station), and the specific reference needs to be clarified in the context.
  • the present application also provides a storage medium, on which a computer program is stored.
  • a computer program is stored.
  • the processing method described in any of the above embodiments is implemented.
  • the technical solution of the present application The terminal device determines the target paging superframe based on the extended discontinuous reception parameter. Through the technical solution of the present application, the terminal device can not monitor paging and/or monitor paging in different PHs when in discontinuous coverage.
  • FIG1 is a schematic diagram of the hardware structure of a mobile terminal for implementing various embodiments of the present application.
  • FIG2 is a diagram of a communication network system architecture provided in an embodiment of the present application.
  • FIG3 is a schematic diagram of the hardware structure of the controller 140 involved in the processing method embodiment of the present application.
  • FIG4 is a schematic diagram of the hardware structure of the network node 150 involved in the processing method embodiment of the present application.
  • FIG5 is a schematic diagram of the interaction process between a terminal device and a network device in the first embodiment of the processing method of the present application;
  • FIG6 is a schematic diagram of the interaction process between a terminal device and a network device in the second embodiment of the processing method of the present application;
  • FIG. 7 and 8 are schematic diagrams of paging superframes that each terminal device needs to monitor in different scenarios in the third embodiment of the processing method of the present application;
  • FIG. 9 is a schematic diagram of a paging superframe that each terminal device needs to monitor in a scenario in the fourth embodiment of the processing method of the present application.
  • first, second, third, etc. may be used to describe various information in this article, these information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other.
  • first information may also be referred to as the second information
  • second information may also be referred to as the first information.
  • word “if” as used herein can be interpreted as “at the time of” or “when” or “in response to determination”.
  • singular forms “one”, “one” and “the” are intended to also include plural forms, unless there is an opposite indication in the context.
  • “comprising at least one of the following: A, B, C” means “any of the following: A; B; C; A and B; A and C; B and C; A and B and C”, and for another example, “A, B or C” or “A, B and/or C” means “any of the following: A; B; C; A and B; A and C; B and C; A and B and C”.
  • An exception to this definition will only occur when a combination of elements, functions, steps or operations are inherently mutually exclusive in some manner.
  • the words “if” and “if” may be interpreted as “at the time of” or “when” or “in response to determining” or “in response to detecting”, depending on the context.
  • the phrases “if it is determined” or “if (stated condition or event) is detected” may be interpreted as “when it is determined” or “in response to determining” or “when detecting (stated condition or event)” or “in response to detecting (stated condition or event)", depending on the context.
  • step codes such as S10 and S20 are used for the purpose of expressing the corresponding content more clearly and concisely, and do not constitute a substantial limitation on the sequence.
  • S20 When implementing the step, those skilled in the art may execute S20 first and then S10, etc., but these should all be within the scope of protection of this application.
  • module means, “component” or “unit” used to represent elements are only used to facilitate the description of the present application, and have no specific meanings. Therefore, “module”, “component” or “unit” can be used in a mixed manner.
  • the communication equipment mentioned in this application can be a terminal device (such as a mobile terminal, specifically a mobile phone) or a network device (such as a base station).
  • a terminal device such as a mobile terminal, specifically a mobile phone
  • a network device such as a base station
  • the terminal device can be implemented in various forms.
  • the terminal device described in this application can include smart terminals such as mobile phones, tablet computers, laptop computers, PDAs, portable media players (PMPs), navigation devices, wearable devices, smart bracelets, pedometers, etc., as well as fixed terminals such as digital TVs and desktop computers.
  • smart terminals such as mobile phones, tablet computers, laptop computers, PDAs, portable media players (PMPs), navigation devices, wearable devices, smart bracelets, pedometers, etc.
  • PDAs portable media players
  • navigation devices wearable devices
  • smart bracelets smart bracelets
  • pedometers etc.
  • fixed terminals such as digital TVs and desktop computers.
  • FIG1 is a schematic diagram of the hardware structure of a mobile terminal for implementing various embodiments of the present application.
  • the mobile terminal 100 may include: an RF (Radio Frequency) unit 101, a WiFi module 102, an audio output unit 103, an A/V (audio/video) input unit 104, a sensor 105, a display unit 106, a user input unit 107, an interface unit 108, a memory 109, a processor 110, and a power supply 111.
  • RF Radio Frequency
  • the radio frequency unit 101 can be used for receiving and sending signals during information transmission or communication. Specifically, after receiving the downlink information of the base station, it is sent to the processor 110 for processing; in addition, the uplink data is sent to the base station.
  • the radio frequency unit 101 includes but is not limited to an antenna, at least one amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, etc.
  • the radio frequency unit 101 can also communicate with the network and other devices through wireless communication.
  • the above-mentioned wireless communication can use any communication standard or protocol, including but not limited to GSM (Global System of Mobile communication), GPRS (General Packet Radio Service), CDMA2000 (Code Division Multiple Access 2000), WCDMA (Wideband Code Division Multiple Access), TD-SCDMA (Time Division-Synchronous Code Division Multiple Access), FDD-LTE (Frequency Division Duplexing-Long Term Evolution), TDD-LTE (Time Division Duplexing-Long Term Evolution), 5G or 6G, etc.
  • GSM Global System of Mobile communication
  • GPRS General Packet Radio Service
  • CDMA2000 Code Division Multiple Access 2000
  • WCDMA Wideband Code Division Multiple Access
  • TD-SCDMA Time Division-Synchronous Code Division Multiple Access
  • FDD-LTE Frequency Division Duplexing-Long Term Evolution
  • TDD-LTE Time Division Duplexing-Long Term Evolution
  • 5G or 6G etc.
  • WiFi is a short-range wireless transmission technology.
  • the mobile terminal can help users send and receive emails, browse web pages, and access streaming media through the WiFi module 102, which provides users with wireless broadband Internet access.
  • FIG1 shows the WiFi module 102, it is understandable that it is not a necessary component of the mobile terminal and can be omitted as needed without changing the essence of the invention.
  • the audio output unit 103 can convert the audio data received by the RF unit 101 or the WiFi module 102 or stored in the memory 109 into an audio signal and output it as sound when the mobile terminal 100 is in a call signal reception mode, a talk mode, a recording mode, a voice recognition mode, a broadcast reception mode, etc. Moreover, the audio output unit 103 can also provide audio output related to a specific function performed by the mobile terminal 100 (for example, a call signal reception sound, a message reception sound, etc.). The audio output unit 103 may include a speaker, a buzzer, etc.
  • the A/V input unit 104 is used to receive audio or video signals.
  • the A/V input unit 104 may include a graphics processor (GPU) 1041 and a microphone 1042, and the graphics processor 1041 processes the image data of a static picture or video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode.
  • the processed image frame can be displayed on the display unit 106.
  • the image frame processed by the graphics processor 1041 can be stored in the memory 109 (or other storage medium) or sent via the radio frequency unit 101 or the WiFi module 102.
  • the microphone 1042 can receive sound (audio data) via the microphone 1042 in a telephone call mode, a recording mode, a voice recognition mode, and other operating modes, and can process such sound into audio data.
  • the processed audio (voice) data can be converted into a format output that can be sent to a mobile communication base station via the radio frequency unit 101 in the case of a telephone call mode.
  • the microphone 1042 can implement various types of noise elimination (or suppression) algorithms to eliminate (or suppress) noise or interference generated in the process of receiving and sending audio signals.
  • the mobile terminal 100 also includes at least one sensor 105, such as a light sensor, a motion sensor, and other sensors.
  • the light sensor includes an ambient light sensor and a proximity sensor.
  • the ambient light sensor can adjust the brightness of the display panel 1061 according to the brightness of the ambient light
  • the proximity sensor can turn off the display panel 1061 and/or the backlight when the mobile terminal 100 is moved to the ear.
  • the accelerometer sensor can detect the magnitude of acceleration in all directions (generally three axes), and can detect the magnitude and direction of gravity when stationary.
  • sensors such as fingerprint sensors, pressure sensors, iris sensors, molecular sensors, gyroscopes, barometers, hygrometers, thermometers, infrared sensors, etc.
  • the display unit 106 is used to display information input by the user or information provided to the user.
  • the display unit 106 may include a display panel 1061, which may be configured in the form of a liquid crystal display (LCD), an organic light-emitting diode (OLED), or the like.
  • LCD liquid crystal display
  • OLED organic light-emitting diode
  • the user input unit 107 can be used to receive input digital or character information, and to generate key signal input related to the user settings and function control of the mobile terminal.
  • the user input unit 107 may include a touch panel 1071 and other input devices 1072.
  • the touch panel 1071 also known as a touch screen, can collect the user's touch operation on or near it (such as the user's operation on the touch panel 1071 or near the touch panel 1071 using any suitable object or accessory such as a finger, stylus, etc.), and drive the corresponding connection device according to a pre-set program.
  • the touch panel 1071 may include two parts: a touch detection device and a touch controller.
  • the touch detection device detects the user's touch orientation, detects the signal brought by the touch operation, and transmits the signal to the touch controller; the touch controller receives the touch information from the touch detection device, converts it into the touch point coordinates, and then sends it to the processor 110, and can receive and execute the command sent by the processor 110.
  • the touch panel 1071 can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic waves.
  • the user input unit 107 may further include other input devices 1072.
  • the other input devices 1072 may include, but are not limited to, one or more of a physical keyboard, a function key (such as a volume control key, a switch key, etc.), a trackball, a mouse, a joystick, etc., which are not specifically limited here.
  • a function key such as a volume control key, a switch key, etc.
  • a trackball such as a mouse, a joystick, etc.
  • the touch panel 1071 may cover the display panel 1061.
  • the touch panel 1071 detects a touch operation on or near it, it is transmitted to the processor 110 to determine the type of the touch event, and then the processor 110 provides a corresponding visual output on the display panel 1061 according to the type of the touch event.
  • the touch panel 1071 and the display panel 1061 are used as two independent components to implement the input and output functions of the mobile terminal, in some embodiments, the touch panel 1071 and the display panel 1061 can be integrated to implement the input and output functions of the mobile terminal, which is not limited to the specifics herein.
  • the interface unit 108 serves as an interface through which at least one external device can be connected to the mobile terminal 100.
  • the external device may include a wired or wireless headset port, an external power supply (or battery charger) port, a wired or wireless data port, a memory card port, a port for connecting a device with an identification module, an audio input/output (I/O) port, a video I/O port, a headphone port, etc.
  • the interface unit 108 may be used to receive input (e.g., data information, power, etc.) from an external device and transmit the received input to one or more elements within the mobile terminal 100 or may be used to transmit data between the mobile terminal 100 and an external device.
  • the memory 109 can be used to store software programs and various data.
  • the memory 109 can mainly include a program storage area and a data storage area.
  • the program storage area can store an operating system, an application required for at least one function (such as a sound playback function, an image playback function, etc.), etc.;
  • the data storage area can store data created according to the use of the mobile phone (such as audio data, a phone book, etc.), etc.
  • the memory 109 can include a high-speed random access memory, and can also include a non-volatile memory, such as at least one disk storage device, a flash memory device, or other volatile solid-state storage devices.
  • the processor 110 is the control center of the mobile terminal. It uses various interfaces and lines to connect various parts of the entire mobile terminal. It executes various functions of the mobile terminal and processes data by running or executing software programs and/or modules stored in the memory 109, and calling data stored in the memory 109, so as to monitor the mobile terminal as a whole.
  • the processor 110 may include one or more processing units; preferably, the processor 110 may integrate an application processor and a modem processor.
  • the application processor mainly processes the operating system, user interface, and application programs
  • the modem processor mainly processes wireless communications. It is understandable that the above-mentioned modem processor may not be integrated into the processor 110.
  • the mobile terminal 100 may also include a power supply 111 (such as a battery) for supplying power to various components.
  • a power supply 111 (such as a battery) for supplying power to various components.
  • the power supply 111 may be logically connected to the processor 110 via a power management system, thereby implementing functions such as charging, discharging, and power consumption management through the power management system.
  • the mobile terminal 100 may further include a Bluetooth module, etc., which will not be described in detail herein.
  • the communication network system is an LTE system of universal mobile communication technology.
  • the LTE system includes a terminal device (User Equipment) 201, E-UTRAN (Evolved UMTS Terrestrial Radio Access Network) 202, EPC (Evolved Packet Core) 203 and an operator's IP service 204, which are connected in sequence for communication.
  • Terminal device User Equipment
  • E-UTRAN Evolved UMTS Terrestrial Radio Access Network
  • EPC Evolved Packet Core
  • the terminal device 201 may be the above-mentioned terminal 100, which will not be described in detail here.
  • E-UTRAN 202 includes eNodeB 2021 and other eNodeBs 2022 , etc.
  • eNodeB 2021 may be connected to other eNodeBs 2022 via a backhaul (eg, an X2 interface), and eNodeB 2021 is connected to EPC 203 , and eNodeB 2021 may provide access from terminal device 201 to EPC 203 .
  • a backhaul eg, an X2 interface
  • EPC203 may include MME (Mobility Management Entity) 2031, HSS (Home Subscriber Server) 2032, other MMEs 2033, SGW (Serving Gate Way) 2034, PGW (PDN Gate Way) 2035 and PCRF (Policy and Charging Rules Function) 2036.
  • MME 2031 is a control node that processes signaling between terminal device 201 and EPC203, providing bearer and connection management.
  • HSS 2032 is used to provide some registers to manage functions such as home location register (not shown in the figure), and save some user-specific information such as service features and data rates.
  • PCRF2036 is the policy and charging control policy decision point for service data flow and IP bearer resources, it selects and provides available policy and charging control decisions for the policy and charging execution function unit (not shown in the figure).
  • IP service 204 may include the Internet, intranet, IMS (IP Multimedia Subsystem) or other IP services.
  • IMS IP Multimedia Subsystem
  • Fig. 3 is a schematic diagram of the hardware structure of a controller 140 provided in the present application.
  • the controller 140 includes: a memory 1401 and a processor 1402, the memory 1401 is used to store program instructions, and the processor 1402 is used to call the program instructions in the memory 1401 to execute the steps performed by the controller in the first embodiment of the above method, and its implementation principle and beneficial effects are similar, which will not be repeated here.
  • the controller further includes a communication interface 1403, which can be connected to the processor 1402 via a bus 1404.
  • the processor 1402 can control the communication interface 1403 to implement the receiving and sending functions of the controller 140.
  • Fig. 4 is a schematic diagram of the hardware structure of a network node 150 provided by the present application.
  • the network node 150 includes: a memory 1501 and a processor 1502, the memory 1501 is used to store program instructions, and the processor 1502 is used to call the program instructions in the memory 1501 to execute the steps performed by the first node in the first embodiment of the above method, and its implementation principle and beneficial effects are similar, which will not be repeated here.
  • the controller further includes a communication interface 1503, which can be connected to the processor 1502 via a bus 1504.
  • the processor 1502 can control the communication interface 1503 to implement the receiving and sending functions of the network node 150.
  • the above-mentioned integrated module implemented in the form of a software function module can be stored in a computer-readable storage medium.
  • the above-mentioned software function module is stored in a storage medium, including a number of instructions for enabling a computer device (which can be a personal computer, a server, or a network device, etc.) or a processor (English: processor) to perform some steps of the methods of various embodiments of the present application.
  • eDRX extended DRX, extended discontinuous reception
  • PTW Paging Time Window, paging time window
  • H-SFN Hyper System Frame Number, hyper frame number
  • IoT-NTN Internet of Things-Non-Terrestrial Network
  • Internet of Things-Non-Terrestrial Network Internet of Things-Non-Terrestrial Network
  • NTN Non-Terrestrial Network
  • non-terrestrial network non-terrestrial network
  • the first embodiment of the present application proposes a processing method, including the steps of:
  • the network device sends an extended discontinuous reception parameter so that the terminal device determines a target paging superframe based on the extended discontinuous reception parameter;
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameters.
  • the extended discontinuous reception parameter includes at least one of the following: an extended discontinuous reception cycle length, a paging time window length, and a paging superframe offset.
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • an invalid paging superframe may exist in the extended discontinuous reception period, that is, there is discontinuous coverage in the paging superframe.
  • a paging superframe without discontinuous coverage is a valid paging superframe.
  • the network device configures extended discontinuous reception parameters, which include: extended discontinuous reception cycle length, paging time window length, and paging superframe offset.
  • the network device When the network device sends down the extended discontinuous reception parameters, in addition to sending down the extended discontinuous reception period (TeDRX_H) and the paging time window length (PTW length L), it will also send down the paging superframe offset (PH_offset).
  • the paging superframe offset represents a valid paging superframe cyclic offset of the paging superframe that the terminal device actually needs to monitor relative to the invalid paging superframe within the extended discontinuous reception period when the paging superframe calculated by the terminal device according to the existing paging superframe determination formula based on the current extended discontinuous reception parameters belongs to an invalid paging superframe.
  • the invalid paging superframes are skipped.
  • the paging superframe offset is not applied, and paging is monitored within the calculated paging superframe.
  • the step S20 includes at least one of the following:
  • the paging superframe calculated based on the extended discontinuous reception period length belongs to an invalid paging superframe
  • the paging superframe is cyclically shifted by the paging superframe offset within the extended discontinuous reception period, and a valid paging superframe obtained by the shift is determined as a target paging superframe;
  • the valid paging superframe is determined as a target paging superframe.
  • the network device configures extended discontinuous reception parameters, and the extended discontinuous reception parameters include: an extended discontinuous reception cycle length and a paging time window length.
  • the network device when sending down the extended discontinuous reception parameters, the network device sends down the extended discontinuous reception cycle length and the paging time window length.
  • the terminal device determines the number of valid paging superframes within the extended discontinuous reception period.
  • the terminal device calculates the paging superframe of the terminal device according to the original calculation formula in the cycle to obtain the target paging superframe.
  • the paging superframes in the period are re-indexed, and the invalid paging superframes do not participate in the indexing.
  • the number of valid paging superframes in the period is calculated, and the paging superframe index of the terminal device is determined based on the number of valid paging superframes in the period and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the step S20 includes at least one of the following:
  • the valid paging superframes in the extended discontinuous reception cycle are re-indexed, and the paging superframe index of the terminal device is determined according to the number of valid paging superframes in the extended discontinuous reception cycle and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, so that when the terminal device is in discontinuous coverage, it does not monitor paging and/or monitors paging in different PHs.
  • the second embodiment of the present application proposes a processing method, where the network device sends an extended discontinuous reception parameter, and the terminal device determines a target paging superframe based on the extended discontinuous reception parameter.
  • the method further comprises the steps of:
  • the network device determines the target paging superframe and paging time window of the terminal device according to the first parameter, and triggers paging at the paging opportunity within the corresponding paging time window;
  • the terminal device determines a paging time window according to the first parameter, and monitors paging at a paging opportunity within the corresponding paging time window.
  • the first parameter includes at least one of the following: terminal device identification, extended discontinuous reception cycle length, effective paging superframe length within the extended discontinuous reception cycle, and paging time window length.
  • the extended discontinuous reception parameter includes at least one of the following: an extended discontinuous reception cycle length, a paging time window length, and a paging superframe offset.
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • an invalid paging superframe may exist in the extended discontinuous reception period, that is, there is discontinuous coverage in the paging superframe.
  • a paging superframe without discontinuous coverage is a valid paging superframe.
  • the network device configures extended discontinuous reception parameters, which include: extended discontinuous reception cycle length, paging time window length, and paging superframe offset.
  • the network device When the network device sends down the extended discontinuous reception parameters, in addition to sending down the extended discontinuous reception period (TeDRX_H) and the paging time window length (PTW length L), it will also send down the paging superframe offset (PH_offset).
  • the paging superframe offset represents a valid paging superframe cyclic offset of the paging superframe that the terminal device actually needs to monitor relative to the invalid paging superframe within the extended discontinuous reception period when the paging superframe calculated by the existing paging superframe determination formula according to the current extended discontinuous reception parameters belongs to an invalid paging superframe.
  • the invalid paging superframes are skipped.
  • the paging superframe offset is not applied, and paging is monitored within the calculated paging superframe.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, including at least the following: One:
  • the paging superframe calculated based on the extended discontinuous reception period length belongs to an invalid paging superframe
  • the paging superframe is cyclically shifted by the paging superframe offset within the extended discontinuous reception period, and a valid paging superframe obtained by the shift is determined as a target paging superframe;
  • the valid paging superframe is determined as a target paging superframe.
  • the method further comprises at least one of the following:
  • each terminal device belonging to an invalid paging superframe is evenly distributed on a valid paging superframe in a corresponding extended discontinuous reception period after cyclic shifting;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the existence of invalid paging superframes.
  • the network device configures extended discontinuous reception parameters, and the extended discontinuous reception parameters include: an extended discontinuous reception cycle length and a paging time window length.
  • the network device when the network device sends down the extended discontinuous reception parameters, it also sends down the extended discontinuous reception cycle length and the paging time window length.
  • the terminal device determines the number of valid paging superframes within the extended discontinuous reception period.
  • the terminal device calculates the paging superframe of the terminal device according to the original calculation formula in the period to obtain the target paging superframe.
  • the paging superframes in the period are re-indexed, and the invalid paging superframes do not participate in the indexing.
  • the number of valid paging superframes in the period is calculated, and the paging superframe index of the terminal device is determined based on the number of valid paging superframes in the period and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, including at least one of the following:
  • the valid paging superframes in the extended discontinuous reception cycle are re-indexed, and the paging superframe index of the terminal device is determined according to the number of valid paging superframes in the extended discontinuous reception cycle and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the network device calculates the paging superframe and paging time window of each terminal device according to the same method, and triggers paging at the paging opportunity within the corresponding paging time window.
  • the third embodiment of the present application proposes a processing method, where the network device sends an extended discontinuous reception parameter, and the terminal device determines a target paging superframe based on the extended discontinuous reception parameter.
  • the network device configures extended discontinuous reception parameters, which include: extended discontinuous reception cycle length, paging time window length, and paging superframe offset.
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • an invalid paging superframe may exist in the extended discontinuous reception period, that is, there is discontinuous coverage in the paging superframe.
  • a paging superframe without discontinuous coverage is a valid paging superframe.
  • the network device When the network device sends down the extended discontinuous reception parameters, in addition to sending down the extended discontinuous reception period (TeDRX_H) and the paging time window length (PTW length L), it will also send down the paging superframe offset (PH_offset).
  • the paging superframe offset represents a valid paging superframe cyclic offset of the paging superframe that the terminal device actually needs to monitor relative to the invalid paging superframe within the extended discontinuous reception period when the paging superframe calculated by the existing paging superframe determination formula according to the current extended discontinuous reception parameters belongs to an invalid paging superframe.
  • the invalid paging superframes are skipped.
  • the paging superframe offset is not applied, and paging is monitored within the calculated paging superframe.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, including at least one of the following:
  • the paging superframe calculated based on the extended discontinuous reception period length belongs to an invalid paging superframe
  • the paging superframe is cyclically shifted by the paging superframe offset within the extended discontinuous reception period, and a valid paging superframe obtained by the shift is determined as a target paging superframe;
  • the valid paging superframe is determined as a target paging superframe.
  • the method further comprises at least one of the following:
  • each terminal device belonging to an invalid paging superframe is evenly distributed on a valid paging superframe in a corresponding extended discontinuous reception period after cyclic shifting;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the existence of invalid paging superframes.
  • the network device When configuring eDRX parameters, the network device sends PH_offset in addition to the eDRX cycle (TeDRX, H) and PTW length (L).
  • the invalid PH is skipped.
  • the PH_offset is not applied, and paging is monitored within the calculated PH.
  • different terminal devices may configure different PH_offsets, and try to ensure that they are in an invalid PH After the PH cycle offset, each terminal device is evenly distributed on the effective PH within the eDRX cycle (guaranteed by the network device by configuring different PH_offsets).
  • Terminal device ID 1/7/13/19/25 needs to monitor paging in PH7 after calculation.
  • the PH_offset configured by the network device for each terminal device is:
  • the PH that each terminal device needs to monitor after the offset is shown in FIG. 7 .
  • PH0 is an invalid PH, and other PHs are valid PHs.
  • PH7 is an invalid PH, and other PHs are valid PHs.
  • PH12, PH15, and PH16 are invalid PHs, and other PHs are valid PHs.
  • PH22 and PH23 are invalid PHs, and other PHs are valid PHs.
  • PH26 is an invalid PH, and other PHs are valid PHs.
  • the PH_offset configured for terminal device ID 0/1/2, terminal device ID 6/7/8, terminal device ID 12/13/14, terminal device ID 18/19/20, and terminal device ID 24/25/26 are offset1, offset2, offset3, offset4, and offset5 respectively.
  • terminal device ID 0, terminal device ID 6, terminal device ID 12, terminal device ID 18, and terminal device ID 24 as examples:
  • H-SFN mod TeDRX_H (UE_ID_H mod TeDRX_H)
  • these terminal devices need to monitor paging at PH0 in eDRX cycle 0, PH6 in eDRX cycle 1, PH12 in eDRX cycle 2, PH18 in eDRX cycle 3, and PH24 in eDRX cycle 4. Since PH0 and PH12 have discontinuous coverage and are invalid PHs, the terminal devices need to apply PH offset.
  • the PHs that each terminal device actually needs to monitor in eDRX cycle 0 are PH1, PH2, PH3, PH4, and PH5
  • the PHs that each terminal device actually needs to monitor in eDRX cycle 2 are PH13, PH14, PH17, PH13, and PH14, that is, the PHs that these terminal devices actually need to monitor need to be offset. After the offset, they are evenly distributed in the corresponding eDRX cycle with invalid PH, avoiding the situation of monitoring paging in a certain PH.
  • the PHs that each terminal device needs to monitor are shown in FIG8 .
  • the dark-colored marked area indicates invalid PHs
  • the light-colored marked area indicates the PHs that the terminal device actually needs to monitor.
  • the terminal device After determining the target paging superframe that actually needs to be monitored, the terminal device calculates the starting position and window of the paging time window according to the original calculation method within the determined target paging superframe, and monitors paging at the paging opportunity within the corresponding paging time window.
  • the network device calculates the paging superframe and paging time window of each terminal device according to the same method, and triggers paging at the paging opportunity within the corresponding paging time window.
  • the PTW window start position and window are calculated according to the original calculation method within the determined PH, and the terminal device monitors paging at the PO within the corresponding PTW window.
  • the network device calculates the PH and PTW window of the terminal device according to the same method, and triggers paging at the PO within the corresponding PTW window.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, so that When the terminal device is in discontinuous coverage, it does not monitor paging and/or is dispersed to different PHs to monitor paging.
  • the fourth embodiment of the present application proposes a processing method, where the network device sends an extended discontinuous reception parameter, and the terminal device determines a target paging superframe based on the extended discontinuous reception parameter.
  • the network device configures extended discontinuous reception parameters, which include: extended discontinuous reception cycle length and paging time window length.
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • an invalid paging superframe may exist in the extended discontinuous reception period, that is, there is discontinuous coverage in the paging superframe.
  • a paging superframe without discontinuous coverage is a valid paging superframe.
  • the network device when sending down the extended discontinuous reception parameters, the network device sends down the extended discontinuous reception cycle length and the paging time window length.
  • the terminal device determines the number of valid paging superframes within the extended discontinuous reception period.
  • the terminal device calculates the paging superframe of the terminal device according to the original calculation formula in the period to obtain the target paging superframe.
  • the paging superframes in the period are re-indexed, and the invalid paging superframes do not participate in the indexing.
  • the number of valid paging superframes in the period is calculated, and the paging superframe index of the terminal device is determined based on the number of valid paging superframes in the period and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, including at least one of the following:
  • the valid paging superframes in the extended discontinuous reception cycle are re-indexed, and the paging superframe index of the terminal device is determined according to the number of valid paging superframes in the extended discontinuous reception cycle and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the network equipment configures the eDRX parameters, namely the eDRX cycle (TeDRX,H) and PTW length (L).
  • the terminal device After receiving the eDRX configuration, the terminal device is divided into the following two cases according to whether there is an invalid PH in each eDRX cycle:
  • the terminal device calculates the paging PH of the terminal device according to the following formula in the eDRX cycle (that is, the original calculation formula remains unchanged, and the calculated result is the paging PH):
  • H-SFN mod TeDRX_valid (UE_ID_H mod TeDRX_valid).
  • the PH in the eDRX cycle is re-indexed, and the invalid PH does not participate in the indexing.
  • the PH re-index in the eDRX cycle is as shown in Table 1:
  • PHa is reindexed to 0
  • PHb does not participate in the indexing due to discontinuous coverage
  • PHc is reindexed to 1
  • PHd is reindexed to 2
  • PHe is reindexed to 3
  • PHf is reindexed to 4.
  • the terminal device calculates a PH index PH_reindex of the terminal device according to the following formula during the eDRX cycle:
  • PH_reindex mod TeDRX_valid (UE_ID_H mod TeDRX_valid).
  • the calculated value is the paging PH index of the terminal device in the eDRX cycle:
  • the PH that the terminal device needs to monitor during the eDRX cycle is PHa.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PHc.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PHd.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PHe.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PHf.
  • PH0 is an invalid PH, and other PHs are valid PHs.
  • PH7 is an invalid PH, and other PHs are valid PHs.
  • PH12, PH15, and PH16 are invalid PHs, and other PHs are valid PHs.
  • PH22 and PH23 are invalid PHs, and other PHs are valid PHs.
  • PH26 is an invalid PH, and other PHs are valid PHs.
  • H-SFN mod TeDRX_valid (terminal equipment_ID_H mod TeDRX_valid).
  • the PHs in the cycle are PH6, PH7, PH8, PH9, PH10, and PH11, among which PH7 has discontinuous coverage and is an invalid PH.
  • the PH re-index in the eDRX cycle is as shown in Table 2:
  • PH6 is re-indexed to 0, PH7b does not participate in the indexing due to discontinuous coverage, PH8 is re-indexed to 1, PH9 is re-indexed to 2, PH10 is re-indexed to 3, and PH11 is re-indexed to 4.
  • the terminal device calculates the PH index PH_reindex of the terminal device according to the following formula during the eDRX cycle, and determines the PH that actually needs to be monitored according to the calculated index:
  • PH_reindex mod TeDRX_valid (UE_ID_H mod TeDRX_valid).
  • the terminal device needs to The monitored PH is PH6.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PH8.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PH9.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PH10.
  • the PH that the terminal device needs to monitor during the eDRX cycle is PH11.
  • the PHs that these terminal devices actually need to monitor are evenly distributed on the valid PHs in the corresponding eDRX cycle, thereby avoiding the situation where the monitoring of paging is concentrated in a certain PH.
  • the PHs that each terminal device needs to monitor are shown in FIG9 .
  • the dark-colored marked area indicates invalid PHs
  • the light-colored marked area indicates the PHs that the terminal device actually needs to monitor.
  • the terminal device After determining the target paging superframe that actually needs to be monitored, the terminal device calculates the starting position and window of the paging time window according to the original calculation method within the determined target paging superframe, and monitors paging at the paging opportunity within the corresponding paging time window.
  • the PTW window starting position and window are calculated in the determined PH according to the following calculation method, and the terminal device monitors paging in the PO in the corresponding PTW window:
  • the network device calculates the PH and PTW window of the terminal device according to the same method, and triggers paging at the PO within the corresponding PTW window.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, so that when the terminal device is in discontinuous coverage, it does not monitor paging and/or monitors paging in different PHs.
  • the determination module is used to determine the target paging superframe based on the extended discontinuous reception parameter.
  • the extended discontinuous reception parameter includes at least one of the following:
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • the device comprises at least one of the following:
  • the paging superframe calculated based on the extended discontinuous reception period length belongs to an invalid paging superframe
  • the paging superframe is cyclically shifted by the paging superframe offset within the extended discontinuous reception period, and a valid paging superframe obtained by the shift is determined as a target paging superframe;
  • the valid paging superframe is determined as a target paging superframe.
  • the device further comprises at least one of the following:
  • each terminal device belonging to an invalid paging superframe is evenly distributed on a valid paging superframe in a corresponding extended discontinuous reception period after cyclic shifting;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the existence of invalid paging superframes.
  • the device comprises at least one of the following:
  • the valid paging superframes in the extended discontinuous reception cycle are re-indexed, and the paging superframe index of the terminal device is determined according to the number of valid paging superframes in the extended discontinuous reception cycle and the terminal device identifier, and the target paging superframe is determined based on the paging superframe index.
  • the device further comprises:
  • a paging time window is determined according to the first parameter, and paging is monitored at a paging opportunity within the corresponding paging time window.
  • the first parameter includes at least one of the following:
  • the length of the paging time window is the length of the paging time window.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, so that when the terminal device is in discontinuous coverage, it does not monitor paging and/or monitors paging in different PHs.
  • the present application also provides a processing device, which is applied to a network device or is a network device, and the device includes:
  • the sending module is used to send the extended discontinuous reception parameters so that the terminal device determines the target paging superframe based on the extended discontinuous reception parameters.
  • the extended discontinuous reception parameter includes at least one of the following:
  • the paging superframes within the extended discontinuous reception cycle length include: invalid paging superframes and/or valid paging superframes, there is discontinuous coverage in the invalid paging superframes, and there is no discontinuous coverage in the valid paging superframes.
  • the terminal device determines the target paging superframe based on the received extended discontinuous reception parameter, including at least one of the following:
  • the terminal device cyclically shifts the paging superframe by the paging superframe offset within the extended discontinuous reception period, and determines the valid paging superframe obtained by the shift as the target paging superframe;
  • the terminal device determines the valid paging superframe as a target paging superframe.
  • the device further comprises at least one of the following:
  • the terminal device calculates a paging superframe based on the extended discontinuous reception cycle length and the terminal device identifier
  • the terminal devices that are calculated to belong to the invalid paging superframe are evenly distributed on the valid paging superframes in the corresponding extended discontinuous reception period after cyclic shift;
  • the target paging superframes are evenly distributed in the extended discontinuous reception period corresponding to the existence of invalid paging superframes.
  • the terminal device determines the target paging superframe based on the received extended discontinuous reception parameter, including at least one of the following:
  • the terminal device determines the target paging superframe according to the extended discontinuous reception cycle length and the terminal device identifier
  • the terminal device When it is determined that the number of valid paging superframes within the extended discontinuous reception cycle is not equal to the length of the extended discontinuous reception cycle, the terminal device will re-index the valid paging superframes within the extended discontinuous reception cycle, determine the paging superframe index of the terminal device according to the number of valid paging superframes within the extended discontinuous reception cycle and the terminal device identifier, and determine the target paging superframe based on the paging superframe index.
  • the device further comprises:
  • the target paging superframe and paging time window of the terminal device are determined according to the first parameter, and paging is triggered at a paging opportunity within the corresponding paging time window.
  • the first parameter includes at least one of the following:
  • the length of the paging time window is the length of the paging time window.
  • the terminal device determines the target paging superframe based on the extended discontinuous reception parameter, so that when the terminal device is in discontinuous coverage, it does not monitor paging and/or monitors paging in different PHs.
  • An embodiment of the present application also provides a communication system, comprising the terminal device described in any of the above embodiments, and the network device described in any of the above embodiments.
  • the embodiment of the present application also provides a communication device, including: a memory, a processor, and a processing program stored in the memory and executable on the processor, wherein the processing program is executed by the processor to implement the processing method described in any of the above embodiments.
  • the communication device mentioned in the present application may be a terminal device (such as a smart terminal, such as a mobile phone) or a network device (such as a base station).
  • a terminal device such as a smart terminal, such as a mobile phone
  • a network device such as a base station
  • An embodiment of the present application further provides a storage medium, on which a computer program is stored.
  • a computer program is executed by a processor, the processing method described in any of the above embodiments is implemented.
  • the embodiment of the present application further provides a computer program product, which includes a computer program code.
  • a computer program product which includes a computer program code.
  • the computer program code runs on a computer, the computer executes the methods in the above various possible implementation modes.
  • An embodiment of the present application also provides a chip, including a memory and a processor, the memory is used to store a computer program, and the processor is used to call and run the computer program from the memory, so that a device equipped with the chip executes the methods in various possible implementation modes as described above.
  • the units in the device of the embodiment of the present application can be merged, divided and deleted according to actual needs.
  • the technical solution of the present application can be embodied in the form of a software product, which is stored in a storage medium (such as ROM/RAM, magnetic disk, optical disk) as above, and includes a number of instructions for a terminal device (which can be a mobile phone, a computer, a server, a controlled terminal, or a network device, etc.) to execute the method of each embodiment of the present application.
  • a storage medium such as ROM/RAM, magnetic disk, optical disk
  • a terminal device which can be a mobile phone, a computer, a server, a controlled terminal, or a network device, etc.
  • a computer program product includes one or more computer instructions.
  • the computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable device.
  • Computer instructions can be stored in a storage medium or transmitted from one storage medium to another storage medium.
  • computer instructions can be transmitted from one website, computer, server or data center to another website, computer, server or data center by wired (e.g., coaxial cable, optical fiber, digital subscriber line) or wireless (e.g., infrared, wireless, microwave, etc.) means.
  • the storage medium can be any available medium that a computer can access or a data storage device such as a server or data center that includes one or more available media integrated. Available media can be magnetic media (e.g., floppy disk, storage disk, tape), optical media (e.g., DVD), or semiconductor media (e.g., solid-state storage disk Solid State Disk (SSD)), etc.

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Abstract

本申请公开了一种处理方法、通信设备及存储介质,处理方法包括:终端设备基于扩展不连续接收参数,确定目标寻呼超帧。通过本申请技术方案,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。

Description

处理方法、通信设备及存储介质 技术领域
本申请涉及通信技术领域,具体涉及一种处理方法、通信设备及存储介质。
背景技术
在现有协议中,为了达到省电的目的,网络设备可能会给终端设备配置eDRX(extendedDiscontinuous Reception,扩展不连续接收)参数。例如,网络设备配置eDRX周期和PTW(Paging Time Window,寻呼时间窗口)长度给终端设备,终端设备使用终端设备ID(终端设备标识)、eDRX周期以及PTW长度来计算PH(Paging Hyperframe寻呼超帧)和PTW,并在PTW窗口内监听PO(Paging Occasion,寻呼时机)。
在构思及实现本申请过程中,发明人发现:在IoT-NTN(Internet of Things-Non-terrestrial network,物联网-非地面网络)下,终端设备处于不连续覆盖时,终端设备需要避免监听寻呼,而现有eDRX协议未考虑终端设备不连续覆盖的场景,可能导致终端设备处于不连续覆盖时(即无覆盖时期),继续监听寻呼,进而导致不必要的功耗。和/或,由于NTN覆盖范围大,服务终端多,也会导致寻呼负载。
前面的叙述在于提供一般的背景信息,并不一定构成现有技术。
技术解决方案
本申请的主要目的在于提供一种处理方法、通信设备及存储介质,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
本申请提出一种处理方法,可应用于终端设备(如手机),包括步骤:
S20:基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述扩展不连续接收参数包括以下至少一项:
扩展不连续接收周期长度;
寻呼时间窗口长度;
寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,所述S20步骤,包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述方法还包括以下至少一项:
基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后,在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
可选地,所述S20步骤,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索 引确定目标寻呼超帧。
可选地,所述方法还包括:
根据第一参数确定寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机监听寻呼。
可选地,所述第一参数包括以下至少一项:
终端设备标识;
扩展不连续接收周期长度;
扩展不连续接收周期内有效寻呼超帧长度;
寻呼时间窗口长度。
本申请还提出一种处理方法,可应用于网络设备(如基站),包括步骤:
S10,发送扩展不连续接收参数,以使终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述扩展不连续接收参数包括以下至少一项:
扩展不连续接收周期长度;
寻呼时间窗口长度;
寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则终端设备在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则终端设备将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述方法还包括以下至少一项:
终端设备基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
可选地,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,终端设备根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,终端设备将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述方法还包括:
根据第一参数确定终端设备的目标寻呼超帧和寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
可选地,所述第一参数包括以下至少一项:
终端设备标识;
扩展不连续接收周期长度;
扩展不连续接收周期内有效寻呼超帧长度;
寻呼时间窗口长度。
本申请还提供一种处理装置,包括:
确定模块,用于基于扩展不连续接收参数,确定目标寻呼超帧。
本申请还提出一种处理装置,包括:
发送模块,用于发送扩展不连续接收参数,以使终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
本申请还提供一种通信设备,包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的处理程序,所述处理程序被所述处理器执行时实现如上任一所述的处理方法。本申请中提及的通信设备,可以是终端设备(如智能终端,具体如手机),也可以是网络设备(如基站),具体所指,需要结合上下文加以明确。
本申请还提供一种存储介质,所述存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如上述任一实施例中所述的处理方法。
本申请技术方案:终端设备基于扩展不连续接收参数,确定目标寻呼超帧。通过本申请技术方案,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
附图说明
此处的附图被并入说明书中并构成本说明书的一部分,示出了符合本申请的实施例,并与说明书一起用于解释本申请的原理。为了更清楚地说明本申请实施例的技术方案,下面将对实施例描述中所需要使用的附图作简单地介绍,显而易见地,对于本领域普通技术人员而言,在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图1为实现本申请各个实施例的一种移动终端的硬件结构示意图;
图2为本申请实施例提供的一种通信网络系统架构图;
图3为本申请处理方法实施例涉及的控制器140的硬件结构示意图;
图4为本申请处理方法实施例涉及的网络节点150的硬件结构示意图;
图5为本申请处理方法第一实施例终端设备与网络设备的交互流程示意图;
图6为本申请处理方法第二实施例终端设备与网络设备的交互流程示意图;
图7和图8分别为本申请处理方法第三实施例中不同场景下各终端设备需要监听的寻呼超帧示意图;
图9为本申请处理方法第四实施例中一种场景下各终端设备需要监听的寻呼超帧示意图。
本申请目的的实现、功能特点及优点将结合实施例,参照附图做进一步说明。通过上述附图,已示出本申请明确的实施例,后文中将有更详细的描述。这些附图和文字描述并不是为了通过任何方式限制本申请构思的范围,而是通过参考特定实施例为本领域技术人员说明本申请的概念。
本申请的实施方式
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本申请相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本申请的一些方面相一致的装置和方法的例子。
需要说明的是,在本文中,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他 性的包含,从而使得包括一系列要素的过程、方法、物品或者装置不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者装置所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括该要素的过程、方法、物品或者装置中还存在另外的相同要素,此外,本申请不同实施例中具有同样命名的部件、特征、要素可能具有相同含义,也可能具有不同含义,其具体含义需以其在该具体实施例中的解释或者进一步结合该具体实施例中上下文进行确定。
应当理解,尽管在本文可能采用术语第一、第二、第三等来描述各种信息,但这些信息不应限于这些术语。这些术语仅用来将同一类型的信息彼此区分开。例如,在不脱离本文范围的情况下,第一信息也可以被称为第二信息,类似地,第二信息也可以被称为第一信息。取决于语境,如在此所使用的词语"如果"可以被解释成为"在……时"或"当……时"或"响应于确定"。再者,如同在本文中所使用的,单数形式“一”、“一个”和“该”旨在也包括复数形式,除非上下文中有相反的指示。应当进一步理解,术语“包含”、“包括”表明存在所述的特征、步骤、操作、元件、组件、项目、种类、和/或组,但不排除一个或多个其他特征、步骤、操作、元件、组件、项目、种类、和/或组的存在、出现或添加。本申请使用的术语“或”、“和/或”、“包括以下至少一个”等可被解释为包括性的,或意味着任一个或任何组合。例如,“包括以下至少一个:A、B、C”意味着“以下任一个:A;B;C;A和B;A和C;B和C;A和B和C”,再如,“A、B或C”或者“A、B和/或C”意味着“以下任一个:A;B;C;A和B;A和C;B和C;A和B和C”。仅当元件、功能、步骤或操作的组合在某些方式下内在地互相排斥时,才会出现该定义的例外。
应该理解的是,虽然本申请实施例中的流程图中的各个步骤按照箭头的指示依次显示,但是这些步骤并不是必然按照箭头指示的顺序依次执行。除非本文中有明确的说明,这些步骤的执行并没有严格的顺序限制,其可以以其他的顺序执行。而且,图中的至少一部分步骤可以包括多个子步骤或者多个阶段,这些子步骤或者阶段并不必然是在同一时刻执行完成,而是可以在不同的时刻执行,其执行顺序也不必然是依次进行,而是可以与其他步骤或者其他步骤的子步骤或者阶段的至少一部分轮流或者交替地执行。
取决于语境,如在此所使用的词语“如果”、“若”可以被解释成为“在……时”或“当……时”或“响应于确定”或“响应于检测”。类似地,取决于语境,短语“如果确定”或“如果检测(陈述的条件或事件)”可以被解释成为“当确定时”或“响应于确定”或“当检测(陈述的条件或事件)时”或“响应于检测(陈述的条件或事件)”。
需要说明的是,在本文中,采用了诸如S10、S20等步骤代号,其目的是为了更清楚简要地表述相应内容,不构成顺序上的实质性限制,本领域技术人员在具体实施时,可能会先执行S20后执行S10等,但这些均应在本申请的保护范围之内。
应当理解,此处所描述的具体实施例仅仅用以解释本申请,并不用于限定本申请。
在后续的描述中,使用用于表示元件的诸如“模块”、“部件”或者“单元”的后缀仅为了有利于本申请的说明,其本身没有特定的意义。因此,“模块”、“部件”或者“单元”可以混合地使用。
本申请中提及的通信设备,可以是终端设备(如移动终端,具体如手机),也可以是网络设备(如基站),具体所指,需要结合上下文加以明确。
可选地,终端设备可以以各种形式来实施。例如,本申请中描述的终端设备可以包括诸如手机、平板电脑、笔记本电脑、掌上电脑、个人数字助理(Personal Digital Assistant,PDA)、便捷式媒体播放器(Portable Media Player,PMP)、导航装置、可穿戴设备、智能手环、计步器等智能终端,以及诸如数字TV、台式计算机等固定终端。
后续描述中将以移动终端为例进行说明,本领域技术人员将理解的是,除了特别用于移动目的的元件之外,根据本申请的实施方式的构造也能够应用于固定类型的终端。
请参阅图1,其为实现本申请各个实施例的一种移动终端的硬件结构示意图,该移动终端100可以包括:RF(Radio Freq终端设备ncy,射频)单元101、WiFi模块102、音频输出单元103、A/V(音频/视频)输入单元104、传感器105、显示单元106、用户输入单元107、接口单元108、存储器109、处理器110、以及电源111等部件。本领域技术人员可以理解,图1中示出的移动终端结构并不构成对移动终端的限定,移动终端可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置。
下面结合图1对移动终端的各个部件进行具体的介绍:
射频单元101可用于收发信息或通话过程中,信号的接收和发送,具体的,将基站的下行信息接收后,给处理器110处理;另外,将上行的数据发送给基站。通常,射频单元101包括但不限于天线、至少一个放大器、收发信机、耦合器、低噪声放大器、双工器等。此外,射频单元101还可以通过无线通信与网络和其他设备通信。上述无线通信可以使用任一通信标准或协议,包括但不限于GSM(Global System of Mobile communication,全球移动通讯系统)、GPRS(General Packet Radio Service,通用分组无线服务)、CDMA2000(Code Division Multiple Access 2000,码分多址2000)、WCDMA(Wideband Code Division Multiple Access,宽带码分多址)、TD-SCDMA(Time Division-Synchronous Code Division Multiple Access,时分同步码分多址)、FDD-LTE(Freq终端设备ncy Division Duplexing-Long Term Evolution,频分双工长期演进)、TDD-LTE(Time Division Duplexing-Long Term Evolution,分时双工长期演进)、5G或6G等。
WiFi属于短距离无线传输技术,移动终端通过WiFi模块102可以帮助用户收发电子邮件、浏览网页和访问流式媒体等,它为用户提供了无线的宽带互联网访问。虽然图1示出了WiFi模块102,但是可以理解的是,其并不属于移动终端的必须构成,完全可以根据需要在不改变发明的本质的范围内而省略。
音频输出单元103可以在移动终端100处于呼叫信号接收模式、通话模式、记录模式、语音识别模式、广播接收模式等等模式下时,将射频单元101或WiFi模块102接收的或者在存储器109中存储的音频数据转换成音频信号并且输出为声音。而且,音频输出单元103还可以提供与移动终端100执行的特定功能相关的音频输出(例如,呼叫信号接收声音、消息接收声音等等)。音频输出单元103可以包括扬声器、蜂鸣器等等。
A/V输入单元104用于接收音频或视频信号。A/V输入单元104可以包括图形处理器(Graphics Processing Unit,GPU)1041和麦克风1042,图形处理器1041对在视频捕获模式或图像捕获模式中由图像捕获装置(如摄像头)获得的静态图片或视频的图像数据进行处理。处理后的图像帧可以显示在显示单元106上。经图形处理器1041处理后的图像帧可以存储在存储器109(或其它存储介质)中或者经由射频单元101或WiFi模块102进行发送。麦克风1042可以在电话通话模式、记录模式、语音识别模式等等运行模式中经由麦克风1042接收声音(音频数据),并且能够将这样的声音处理为音频数据。处理后的音频(语音)数据可以在电话通话模式的情况下转换为可经由射频单元101发送到移动通信基站的格式输出。麦克风1042可以实施各种类型的噪声消除(或抑制)算法以消除(或抑制)在接收和发送音频信号的过程中产生的噪声或者干扰。
移动终端100还包括至少一种传感器105,比如光传感器、运动传感器以及其他传感器。可选地,光传感器包括环境光传感器及接近传感器,可选地,环境光传感器可根据环境光线的明暗来调节显示面板1061的亮度,接近传感器可在移动终端100移动到耳边时,关闭显示面板1061和/或背光。作为运动传感器的一种,加速计传感器可检测各个方向上(一般为三轴)加速度的大小,静止时可检测出重力的大小及方向,可用于识别手机姿态的应用(比如横竖屏切换、相关游戏、磁力计姿态校准)、振动识别相关功能(比如计步器、敲击)等;至于手机还可配置的指纹传感器、压力传感器、虹膜传感器、分子传感器、陀螺仪、气压计、湿度计、温度计、红外线传感器等其他传感器,在此不再赘述。
显示单元106用于显示由用户输入的信息或提供给用户的信息。显示单元106可包括显示面板1061,可以采用液晶显示器(Liquid Crystal Display,LCD)、有机发光二极管(Organic Light-Emitting Diode,OLED)等形式来配置显示面板1061。
用户输入单元107可用于接收输入的数字或字符信息,以及产生与移动终端的用户设置以及功能控制有关的键信号输入。可选地,用户输入单元107可包括触控面板1071以及其他输入设备1072。触控面板1071,也称为触摸屏,可收集用户在其上或附近的触摸操作(比如用户使用手指、触笔等任何适合的物体或附件在触控面板1071上或在触控面板1071附近的操作),并根据预先设定的程式驱动相应的连接装置。触控面板1071可包括触摸检测装置和触摸控制器两个部分。可选地,触摸检测装置检测用户的触摸方位,并检测触摸操作带来的信号,将信号传送给触摸控制器;触摸控制器从触摸检测装置上接收触摸信息,并将它转换成触点坐标,再送给处理器110,并能接收处理器110发来的命令并加以执行。此外,可以采用电阻式、电容式、红外线以及表面声波等多种类型实现触控面板1071。除了触控面板1071,用户输入单元107还可以包括其他输入设备1072。可选地,其他输入设备1072可以包括但不限于物理键盘、功能键(比如音量控制按键、开关按键等)、轨迹球、鼠标、操作杆等中的一种或多种,具体此处不做限定。
可选地,触控面板1071可覆盖显示面板1061,当触控面板1071检测到在其上或附近的触摸操作后,传送给处理器110以确定触摸事件的类型,随后处理器110根据触摸事件的类型在显示面板1061上提供相应的视觉输出。虽然在图1中,触控面板1071与显示面板1061是作为两个独立的部件来实现移动终端的输入和输出功能,但是在某些实施例中,可以将触控面板1071与显示面板1061集成而实现移动终端的输入和输出功能,具体此处不做限定。
接口单元108用作至少一个外部装置与移动终端100连接可以通过的接口。例如,外部装置可以包括有线或无线头戴式耳机端口、外部电源(或电池充电器)端口、有线或无线数据端口、存储卡端口、用于连接具有识别模块的装置的端口、音频输入/输出(I/O)端口、视频I/O端口、耳机端口等等。接口单元108可以用于接收来自外部装置的输入(例如,数据信息、电力等等)并且将接收到的输入传输到移动终端100内的一个或多个元件或者可以用于在移动终端100和外部装置之间传输数据。
存储器109可用于存储软件程序以及各种数据。存储器109可主要包括存储程序区和存储数据区,可选地,存储程序区可存储操作系统、至少一个功能所需的应用程序(比如声音播放功能、图像播放功能等)等;存储数据区可存储根据手机的使用所创建的数据(比如音频数据、电话本等)等。此外,存储器109可以包括高速随机存取存储器,还可以包括非易失性存储器,例如至少一个磁盘存储器件、闪存器件、或其他易失性固态存储器件。
处理器110是移动终端的控制中心,利用各种接口和线路连接整个移动终端的各个部分,通过运行或执行存储在存储器109内的软件程序和/或模块,以及调用存储在存储器109内的数据,执行移动终端的各种功能和处理数据,从而对移动终端进行整体监控。处理器110可包括一个或多个处理单元;优选的,处理器110可集成应用处理器和调制解调处理器,可选地,应用处理器主要处理操作系统、用户界面和应用程序等,调制解调处理器主要处理无线通信。可以理解的是,上述调制解调处理器也可以不集成到处理器110中。
移动终端100还可以包括给各个部件供电的电源111(比如电池),优选的,电源111可以通过电源管理系统与处理器110逻辑相连,从而通过电源管理系统实现管理充电、放电、以及功耗管理等功能。
尽管图1未示出,移动终端100还可以包括蓝牙模块等,在此不再赘述。
为了便于理解本申请实施例,下面对本申请的移动终端所基于的通信网络系统进行描述。
请参阅图2,图2为本申请实施例提供的一种通信网络系统架构图,该通信网络系统为通用移动通信技术的LTE系统,该LTE系统包括依次通讯连接的终端设备(User Equipment,用户设备)201,E-UTRAN(Evolved UMTS Terrestrial Radio Access Network,演进式UMTS陆地无线接入网)202,EPC(Evolved Packet Core,演进式分组核心网)203和运营商的IP业务204。
可选地,终端设备201可以是上述终端100,此处不再赘述。
E-UTRAN202包括eNodeB2021和其它eNodeB2022等。可选地,eNodeB2021可以通过回程(backhaul)(例如X2接口)与其它eNodeB2022连接,eNodeB2021连接到EPC203,eNodeB2021可以提供终端设备201到EPC203的接入。
EPC203可以包括MME(Mobility Management Entity,移动性管理实体)2031,HSS(Home Subscriber Server,归属用户服务器)2032,其它MME2033,SGW(Serving Gate Way,服务网关)2034,PGW(PDN Gate Way,分组数据网络网关)2035和PCRF(Policy and Charging Rules Function,政策和资费功能实体)2036等。可选地,MME2031是处理终端设备201和EPC203之间信令的控制节点,提供承载和连接管理。HSS2032用于提供一些寄存器来管理诸如归属位置寄存器(图中未示)之类的功能,并且保存有一些有关服务特征、数据速率等用户专用的信息。所有用户数据都可以通过SGW2034进行发送,PGW2035可以提供终端设备201的IP地址分配以及其它功能,PCRF2036是业务数据流和IP承载资源的策略与计费控制策略决策点,它为策略与计费执行功能单元(图中未示)选择及提供可用的策略和计费控制决策。
IP业务204可以包括因特网、内联网、IMS(IP Multimedia Subsystem,IP多媒体子系统)或其它IP业务等。
虽然上述以LTE系统为例进行了介绍,但本领域技术人员应当知晓,本申请不仅仅适用于LTE系统,也可以适用于其他无线通信系统,例如GSM、CDMA2000、WCDMA、TD-SCDMA、5G以及未来新的网络系统(如6G)等,此处不做限定。
基于上述移动终端硬件结构以及通信网络系统,提出本申请各个实施例。
图3为本申请提供的一种控制器140的硬件结构示意图。该控制器140包括:存储器1401和处理器1402,存储器1401用于存储程序指令,处理器1402用于调用存储器1401中的程序指令执行上述方法实施例一中控制器所执行的步骤,其实现原理以及有益效果类似,此处不再进行赘述。
可选地,上述控制器还包括通信接口1403,该通信接口1403可以通过总线1404与处理器1402连接。处理器1402可以控制通信接口1403来实现控制器140的接收和发送的功能。
图4为本申请提供的一种网络节点150的硬件结构示意图。该网络节点150包括:存储器1501和处理器1502,存储器1501用于存储程序指令,处理器1502用于调用存储器1501中的程序指令执行上述方法实施例一中首节点所执行的步骤,其实现原理以及有益效果类似,此处不再进行赘述。
可选地,上述控制器还包括通信接口1503,该通信接口1503可以通过总线1504与处理器1502连接。处理器1502可以控制通信接口1503来实现网络节点150的接收和发送的功能。
上述以软件功能模块的形式实现的集成的模块,可以存储在一个计算机可读取存储介质中。上述软件功能模块存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)或处理器(英文:processor)执行本申请各个实施例方法的部分步骤。
本实施例涉及的技术术语:
DRX:Discontinuous Reception,不连续接收;
eDRX:extended DRX,扩展不连续接收;
PH:Paging Hyperframe,寻呼超帧;
PTW:Paging Time Window,寻呼时间窗口;
PO:Paging Occasion,寻呼时机;
H-SFN:Hyper System Frame Number,超帧号;
IoT-NTN,Internet of Things-Non-Terrestrial Network,物联网-非地面网络;
NTN,Non-Terrestrial Network,非地面网络。
第一实施例
参照图5所示,本申请第一实施例提出一种处理方法,包括步骤:
S10,网络设备发送扩展不连续接收参数,以使终端设备基于扩展不连续接收参数,确定目标寻呼超帧;
S20,终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述扩展不连续接收参数包括以下至少一项:扩展不连续接收周期长度、寻呼时间窗口长度、寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,由于卫星部署情况以及卫星移动,针对配置有扩展不连续接收的各终端设备,扩展不连续接收周期内可能存在无效寻呼超帧,即该寻呼超帧内存在不连续覆盖。不存在不连续覆盖的寻呼超帧为有效寻呼超帧。网络设备和终端设备均知晓扩展不连续接收周期内寻呼超帧的分布情况。
可选地,作为一种场景,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度、寻呼超帧偏移。
网络设备在下发扩展不连续接收参数时,除了下发扩展不连续接收周期(TeDRX_H)、寻呼时间窗口长度(PTW长度L)外,还会下发寻呼超帧偏移(PH_offset)。
可选地,寻呼超帧偏移代表当终端设备根据当前扩展不连续接收参数按现有寻呼超帧确定公式计算的寻呼超帧属于无效寻呼超帧时,终端设备实际需要监听的寻呼超帧在该扩展不连续接收周期内相对该无效寻呼超帧的有效寻呼超帧循环偏移。现有寻呼超帧确定公式是指满足公式H-SFN mod TeDRX_H=(UE_ID_H mod TeDRX_H)的超帧号(H-SFN),其中TeDRX_H表示扩展不连续接收周期,UE_ID_H表示终端设备标识,mod表示模运算。
可选地,如果偏移时遇到其他无效寻呼超帧,则跳过该无效寻呼超帧。
可选地,如果终端设备根据当前扩展不连续接收参数计算的寻呼超帧属于有效寻呼超帧,则不应用该寻呼超帧偏移,在该计算的寻呼超帧内监听寻呼。
可选地,所述S20步骤,包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,作为另一种场景,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,网络设备在下发扩展不连续接收参数时,下发扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,终端设备收到扩展不连续接收参数配置后,确定扩展不连续接收周期内的有效寻呼超帧的个数。
可选地,如果扩展不连续接收周期内的某个周期不存在无效寻呼超帧,则该周期内的 有效寻呼超帧的个数等于扩展不连续接收周期长度,终端设备在该周期按照原有计算公式计算该终端设备的寻呼超帧,得到目标寻呼超帧。
如果扩展不连续接收周期内的某个周期存在无效寻呼超帧,则将该周期内的各寻呼超帧重新索引,无效寻呼超帧不参与索引,并计算该周期内的有效寻呼超帧的个数,根据该周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述S20步骤,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
第二实施例
参照图6所示,基于上述实施例,本申请第二实施例提出一种处理方法,网络设备发送扩展不连续接收参数,终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述方法还包括步骤:
S30,网络设备根据第一参数确定终端设备的目标寻呼超帧和寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼;
S40,终端设备根据第一参数确定寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机监听寻呼。
可选地,所述第一参数包括以下至少一项:终端设备标识、扩展不连续接收周期长度、扩展不连续接收周期内有效寻呼超帧长度、寻呼时间窗口长度。
可选地,所述扩展不连续接收参数包括以下至少一项:扩展不连续接收周期长度、寻呼时间窗口长度、寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,由于卫星部署情况以及卫星移动,针对配置有扩展不连续接收的各终端设备,扩展不连续接收周期内可能存在无效寻呼超帧,即该寻呼超帧内存在不连续覆盖。不存在不连续覆盖的寻呼超帧为有效寻呼超帧。网络设备和终端设备均知晓扩展不连续接收周期内寻呼超帧的分布情况。
可选地,作为一种实现方案,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度、寻呼超帧偏移。
网络设备在下发扩展不连续接收参数时,除了下发扩展不连续接收周期(TeDRX_H)、寻呼时间窗口长度(PTW长度L)外,还会下发寻呼超帧偏移(PH_offset)。
可选地,寻呼超帧偏移代表当终端设备根据当前扩展不连续接收参数按现有寻呼超帧确定公式计算的寻呼超帧属于无效寻呼超帧时,终端设备实际需要监听的寻呼超帧在该扩展不连续接收周期内相对该无效寻呼超帧的有效寻呼超帧循环偏移。现有寻呼超帧确定公式是指满足公式H-SFN mod TeDRX_H=(UE_ID_H mod TeDRX_H)的超帧号(H-SFN)。
可选地,如果偏移时遇到其他无效寻呼超帧,则跳过该无效寻呼超帧。
可选地,如果终端设备根据当前扩展不连续接收参数计算的寻呼超帧属于有效寻呼超帧,则不应用该寻呼超帧偏移,在该计算的寻呼超帧内监听寻呼。
可选地,所述终端设备基于扩展不连续接收参数,确定目标寻呼超帧,包括以下至少 一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述方法还包括以下至少一项:
基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后,在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
可选地,作为另一种实现方案,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,网络设备在下发扩展不连续接收参数时,同时下发扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,终端设备收到扩展不连续接收参数配置后,确定扩展不连续接收周期内的有效寻呼超帧的个数。
可选地,如果扩展不连续接收周期内的某个周期不存在无效寻呼超帧,则该周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度,终端设备在该周期按照原有计算公式计算该终端设备的寻呼超帧,得到目标寻呼超帧。
如果该扩展不连续接收周期内的某个周期存在无效寻呼超帧,则将该周期内的各寻呼超帧重新索引,无效寻呼超帧不参与索引,并计算该周期内的有效寻呼超帧的个数,根据该周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述终端设备基于扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
终端设备在确定实际需要监听的目标寻呼超帧后,在该确定的目标寻呼超帧内按原有计算方法计算寻呼时间窗口起始位置及窗口,并在对应寻呼时间窗口内的寻呼时机监听寻呼。
可选地,在确定终端设备实际需要监听的PH后,在该确定的PH内按如下计算方法计算PTW窗口起始位置及窗口,终端设备在对应的PTW窗口内的PO监听寻呼:
PTW起始位置PTW_Start:SFN=256*ieDRX,ieDRX=floor(UE_ID_H/TeDRX_valid)mod 4,UE_ID_H为终端设备标识,TeDRX_valid为该PH内的有效寻呼超帧的个数,floor(x)表示floor运算,即向下取最接近x的整数;
PTW结束位置PTW_end:SFN=(PTW_start+L*100-1)mod 1024,L为PTW长度。
网络设备根据相同的方法计算各终端设备的寻呼超帧及寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
第三实施例
基于上述任一实施例,本申请第三实施例提出一种处理方法,网络设备发送扩展不连续接收参数,终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度、寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,由于卫星部署情况以及卫星移动,针对配置有扩展不连续接收的各终端设备,扩展不连续接收周期内可能存在无效寻呼超帧,即该寻呼超帧内存在不连续覆盖。不存在不连续覆盖的寻呼超帧为有效寻呼超帧。网络设备和终端设备均知晓扩展不连续接收周期内寻呼超帧的分布情况。
网络设备在下发扩展不连续接收参数时,除了下发扩展不连续接收周期(TeDRX_H)、寻呼时间窗口长度(PTW长度L)外,还会下发寻呼超帧偏移(PH_offset)。
可选地,寻呼超帧偏移代表当终端设备根据当前扩展不连续接收参数按现有寻呼超帧确定公式计算的寻呼超帧属于无效寻呼超帧时,终端设备实际需要监听的寻呼超帧在该扩展不连续接收周期内相对该无效寻呼超帧的有效寻呼超帧循环偏移。
可选地,如果偏移时遇到其他无效寻呼超帧,则跳过该无效寻呼超帧。
可选地,如果终端设备根据当前扩展不连续接收参数计算的寻呼超帧属于有效寻呼超帧,则不应用该寻呼超帧偏移,在该计算的寻呼超帧内监听寻呼。
可选地,所述终端设备基于扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述方法还包括以下至少一项:
基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后,在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
以下结合具体场景对本实施例方案进行详细阐述:
网络设备配置eDRX参数时除了下发eDRX周期(TeDRX,H)、PTW长度(L)外,还会下发PH_offset。
可选地,PH_offset代表当终端设备根据当前eDRX参数按现有PH确定公式(即H-SFN mod TeDRX,H=(UE_ID_H mod TeDRX,H)中的H-SFN)计算的PH属于无效PH时,终端设备实际需要监听的PH在该eDRX周期内相对该无效PH的循环偏移。
可选地,如果偏移时遇到其他无效PH,则跳过该无效PH。
可选地,如果终端设备根据当前eDRX参数计算的PH属于有效PH,则不应用该PH_offset,在该计算的PH内监听寻呼。
如图7所示,不同的终端设备可能配置不同的PH_offset,尽可能确保处于某个无效PH 的各终端设备经过PH循环偏移后在该eDRX周期内的有效PH上均匀分布(由网络设备通过配置不同的PH_offset来保证)。
例如,假设当前配置eDRX周期TeDRX_H=6PH,在某个eDRX周期内的有效PH为PH6、PH8、PH9、PH10、PH11,无效PH为PH7。
终端设备ID 1/7/13/19/25经计算需要在PH7内监听寻呼,网络设备给各终端设备配置的PH_offset分别为:
终端设备ID1PH_offset=1,终端设备ID7PH_offset=2,终端设备ID13PH_offset=3,
终端设备ID19PH_offset=4,终端设备ID25PH_offset=5;
则经过偏移后的各终端设备需要监听的PH如图7所示。
可选地,作为一种场景,如图8所示,比如网络配置eDRX周期Tedrx=6PH:
在eDRX周期0内存在PH0无效PH,其他PH为有效PH。
在eDRX周期1内存在PH7无效PH,其他PH为有效PH。
在eDRX周期2内存在PH12、PH15、PH16无效PH,其他PH为有效PH。
在eDRX周期3内存在PH22、PH23无效PH,其他PH为有效PH。
在eDRX周期4内存在PH26无效PH,其他PH为有效PH。
给终端设备ID 0/1/2、终端设备ID6/7/8、终端设备ID12/13/14、终端设备ID18/19/20、终端设备ID24/25/26配置的PH_offset分别为offset1、offset2、offset3、offset4、offset5。
以终端设备ID 0、终端设备ID6、终端设备ID12、终端设备ID18、终端设备ID24为例:
经过计算(即H-SFN mod TeDRX_H=(UE_ID_H mod TeDRX_H),这些终端设备需要在eDRX周期0内的PH0、eDRX周期1内的PH6、eDRX周期2内的PH12、eDRX周期3内的PH18、eDRX周期4内的PH24监听寻呼,由于PH0、PH12内存在不连续覆盖,为无效PH,则终端设备需要应用PH offset,经过PH循环偏移并跳过对应周期内的其他无效PH后,各终端设备在eDRX周期0内实际需要监听的PH分别为PH1、PH2、PH3、PH4、PH5,在eDRX周期2内实际需要监听的PH分别为PH13、PH14、PH17、PH13、PH14,即这些终端设备实际需要监听的PH需要经过偏移,经过偏移后在对应存在无效PH的eDRX周期内均匀分布,避免了在某个PH内监听寻呼的情况。
其他终端设备按照相同的方法确定实际需要监听的PH,在此不再赘述。
最终各终端设备需要监听的的PH如图8所示,图8中,深色标识区域表示无效PH,浅色标识区域表示终端设备实际需要监听的PH。
终端设备在确定实际需要监听的目标寻呼超帧后,在该确定的目标寻呼超帧内按原有计算方法计算寻呼时间窗口起始位置及窗口,并在对应寻呼时间窗口内的寻呼时机监听寻呼。
网络设备根据相同的方法计算各终端设备的寻呼超帧及寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
可选地,在确定终端设备实际需要监听的PH后,在该确定的PH内按原有计算方法计算PTW窗口起始位置及窗口,终端设备在对应PTW窗口内的PO监听寻呼。
可选地,PTW起始位置PTW_Start:SFN=256*ieDRX,ieDRX=floor(UE_ID_H/TeDRX_valid)mod 4,UE_ID_H为终端设备标识,TeDRX_valid为该PH内的有效寻呼超帧的个数。
PTW结束位置PTW_end:SFN=(PTW_start+L*100-1)mod 1024,其中,L为PTW长度。
网络设备根据相同的方法计算终端设备的PH及PTW窗口,在对应的PTW窗口内的PO触发寻呼。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使 得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
第四实施例
基于上述任一实施例,本申请第四实施例提出一种处理方法,网络设备发送扩展不连续接收参数,终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,网络设备配置扩展不连续接收参数,该扩展不连续接收参数包括:扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,由于卫星部署情况以及卫星移动,针对配置有扩展不连续接收的各终端设备,扩展不连续接收周期内可能存在无效寻呼超帧,即该寻呼超帧内存在不连续覆盖。不存在不连续覆盖的寻呼超帧为有效寻呼超帧。网络设备和终端设备均知晓扩展不连续接收周期内寻呼超帧的分布情况。
可选地,网络设备在下发扩展不连续接收参数时,下发扩展不连续接收周期长度、寻呼时间窗口长度。
可选地,终端设备收到扩展不连续接收参数配置后,确定扩展不连续接收周期内的有效寻呼超帧的个数。
可选地,如果扩展不连续接收周期内的某个周期不存在无效寻呼超帧,则该周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度,终端设备在该周期按照原有计算公式计算该终端设备的寻呼超帧,得到目标寻呼超帧。
如果扩展不连续接收周期内的某个周期存在无效寻呼超帧,则将该周期内的各寻呼超帧重新索引,无效寻呼超帧不参与索引,并计算该周期内的有效寻呼超帧的个数,根据该周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述终端设备基于扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
以下结合具体场景对本实施例方案进行详细阐述:
网络设备配置eDRX参数,即eDRX周期(TeDRX,H)、PTW长度(L)。终端设备收到eDRX配置后,根据各eDRX周期内是否存在无效PH,分为以下2种情况:
可选地,如果该周期内不存在无效PH,则有效PH长度TeDRX_valid=TeDRX_H。则终端设备在该eDRX周期内按照如下公式计算该终端设备的寻呼PH(即和原有计算公式不变,计算出来的是寻呼PH):
H-SFN mod TeDRX_valid=(UE_ID_H mod TeDRX_valid)。
可选地,如果该eDRX周期内存在无效PH,则将该eDRX周期内的PH重新索引,无效PH不参与索引。
例如假设当前eDRX周期为TeDRX_H=6PH,某个eDRX周期内PH为PHa、PHb、PHc、PHd、PHe、PHf,其中PHb内存在不连续覆盖,为无效PH,则该eDRX周期内有效周期长度为TeDRX_valid=5PH,该eDRX周期内的PH重新索引如下表1:
表1

即PHa被重新索引为0,PHb由于存在不连续覆盖不参与索引,PHc被重新索引为1,PHd被重新索引为2,PHe被重新索引为3,PHf被重新索引为4。
可选地,终端设备在该eDRX周期内按照如下公式计算该终端设备的PH索引PH_reindex:
PH_reindex mod TeDRX_valid=(UE_ID_H mod TeDRX_valid)。
即计算出来的是终端设备在该eDRX周期内的寻呼PH的索引:
可选地,如果终端设备计算出来的PH_reindex=0,则终端设备在该eDRX周期内需要监听的PH为PHa。
可选地,如果终端设备计算出来的PH_reindex=1,则终端设备在该eDRX周期内需要监听的PH为PHc。
可选地,如果终端设备计算出来的PH_reindex=2,则终端设备在该eDRX周期内需要监听的PH为PHd。
可选地,如果终端设备计算出来的PH_reindex=3,则终端设备在该eDRX周期内需要监听的PH为PHe。
可选地,如果终端设备计算出来的PH_reindex=4,则终端设备在该eDRX周期内需要监听的PH为PHf。
可选地,作为一种场景,比如网络配置eDRX周期Tedrx_H=6PH:
在eDRX周期0内存在PH0无效PH,其他PH为有效PH。
在eDRX周期1内存在PH7无效PH,其他PH为有效PH。
在eDRX周期2内存在PH12、PH15、PH16无效PH,其他PH为有效PH。
在eDRX周期3内存在PH22、PH23无效PH,其他PH为有效PH。
在eDRX周期4内存在PH26无效PH,其他PH为有效PH。
终端设备收到eDRX配置后,如果该周期内的某个周期不存在无效PH,则有效PH长度TeDRX_valid=TeDRX_H。则终端设备在该eDRX周期按照如下公式计算该终端设备的寻呼PH(即和原有计算公式不变,计算出来的是寻呼PH):
H-SFN mod TeDRX_valid=(终端设备_ID_H mod TeDRX_valid)。
如果该eDRX周期内的某个周期存在无效PH,则将该周期内的各PH重新索引,无效PH不参与索引,并计算有效PH长度TeDRX_valid。
以eDRX周期1为例,周期内的PH为PH6、PH7、PH8、PH9、PH10、PH11,其中PH7内存在不连续覆盖,为无效PH,则该eDRX周期内有效周期长度为TeDRX_valid=5PH,则该eDRX周期内的PH重新索引如下表2:
表2
即PH6被重新索引为0,PH7b由于存在不连续覆盖不参与索引,PH8被重新索引为1,PH9被重新索引为2,PH10被重新索引为3,PH11被重新索引为4。终端设备在该eDRX周期内按照如下公式计算该终端设备的PH索引PH_reindex,并按计算出来的索引确定实际需要监听的PH:
PH_reindex mod TeDRX_valid=(UE_ID_H mod TeDRX_valid)。
可选地,如果终端设备计算出来的PH_reindex=0,则终端设备在该eDRX周期内需要 监听的PH为PH6。
可选地,如果终端设备计算出来的PH_reindex=1,则终端设备在该eDRX周期内需要监听的PH为PH8。
可选地,如果终端设备计算出来的PH_reindex=2,则终端设备在该eDRX周期内需要监听的PH为PH9。
可选地,如果终端设备计算出来的PH_reindex=3,则终端设备在该eDRX周期内需要监听的PH为PH10。
可选地,如果终端设备计算出来的PH_reindex=4,则终端设备在该eDRX周期内需要监听的PH为PH11。
即这些终端设备实际需要监听的PH在对应的eDRX周期内的有效PH上均匀分布,避免了集中在某个PH内监听寻呼的情况。
其他终端设备按照相同的方法确定实际需要监听的PH,在此不再赘述。
最终各终端设备需要监听的PH如图9所示,图9中,深色标识区域表示无效PH,浅色标识区域表示终端设备实际需要监听的PH。
终端设备在确定实际需要监听的目标寻呼超帧后,在该确定的目标寻呼超帧内按原有计算方法计算寻呼时间窗口起始位置及窗口,并在对应寻呼时间窗口内的寻呼时机监听寻呼。
网络设备根据相同的方法计算各终端设备的寻呼超帧及寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
可选地,在确定终端设备实际需要监听的PH后,在该确定的PH内按如下计算方法计算PTW窗口起始位置及窗口,终端设备在对应的PTW窗口内的PO监听寻呼:
PTW起始位置PTW_Start:SFN=256*ieDRX,ieDRX=floor(UE_ID_H/TeDRX_valid)mod 4;
PTW结束位置PTW_end:SFN=(PTW_start+L*100-1)mod 1024,L为PTW长度。
网络设备根据相同的方法计算终端设备的PH及PTW窗口,在对应的PTW窗口内的PO触发寻呼。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
本申请实施例还提供一种处理装置,应用于终端设备或者就是终端设备,所述装置包括:
确定模块,用于基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述扩展不连续接收参数包括以下至少一项:
扩展不连续接收周期长度;
寻呼时间窗口长度;
寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,所述装置包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述装置还包括以下至少一项:
基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后,在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
可选地,所述装置包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述装置还包括:
根据第一参数确定寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机监听寻呼。
可选地,所述第一参数包括以下至少一项:
终端设备标识;
扩展不连续接收周期长度;
扩展不连续接收周期内有效寻呼超帧长度;
寻呼时间窗口长度。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
本申请实施例还提出一种处理装置,应用于网络设备或者就是网络设备,所述装置包括:
发送模块,用于发送扩展不连续接收参数,以使终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
可选地,所述扩展不连续接收参数包括以下至少一项:
扩展不连续接收周期长度;
寻呼时间窗口长度;
寻呼超帧偏移。
可选地,所述扩展不连续接收周期长度内的寻呼超帧包括:无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
可选地,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则终端设备在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则终端设备将所述有效寻呼超帧确定为目标寻呼超帧。
可选地,所述装置还包括以下至少一项:
终端设备基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
经计算属于无效寻呼超帧的各终端设备经过循环偏移后在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
可选地,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,终端设备根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,终端设备将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
可选地,所述装置还包括:
根据第一参数确定终端设备的目标寻呼超帧和寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
可选地,所述第一参数包括以下至少一项:
终端设备标识;
扩展不连续接收周期长度;
扩展不连续接收周期内有效寻呼超帧长度;
寻呼时间窗口长度。
本实施例技术方案,终端设备基于扩展不连续接收参数,确定目标寻呼超帧,可以使得终端设备处于不连续覆盖时,不监听寻呼和/或分散到不同的PH去监听寻呼。
本申请实施例还提供一种通信系统,包括上述任一实施例所述的终端设备,及上述任一实施例所述的网络设备。
本申请实施例还提供一种通信设备,包括:存储器、处理器及存储在所述存储器上并可在所述处理器上运行的处理程序,所述处理程序被所述处理器执行时实现如上述任一实施例中所述的处理方法。本申请中提及的通信设备,可以是终端设备(如智能终端,具体如手机),也可以是网络设备(如基站),具体所指,需要结合上下文加以明确。
本申请实施例还提供一种存储介质,所述存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如上述任一实施例中所述的处理方法。
在本申请实施例提供的通信设备和存储介质的实施例中,可以包含任一上述处理方法实施例的全部技术特征,说明书拓展和解释内容与上述方法的各实施例基本相同,在此不再做赘述。
本申请实施例还提供一种计算机程序产品,计算机程序产品包括计算机程序代码,当计算机程序代码在计算机上运行时,使得计算机执行如上各种可能的实施方式中的方法。
本申请实施例还提供一种芯片,包括存储器和处理器,存储器用于存储计算机程序,处理器用于从存储器中调用并运行计算机程序,使得安装有芯片的设备执行如上各种可能的实施方式中的方法。
可以理解,上述场景仅是作为示例,并不构成对于本申请实施例提供的技术方案的应用场景的限定,本申请的技术方案还可应用于其他场景。例如,本领域普通技术人员可知,随着系统架构的演变和新业务场景的出现,本申请实施例提供的技术方案对于类似的技术问题,同样适用。
上述本申请实施例序号仅仅为了描述,不代表实施例的优劣。
本申请实施例方法中的步骤可以根据实际需要进行顺序调整、合并和删减。
本申请实施例设备中的单元可以根据实际需要进行合并、划分和删减。
在本申请中,对于相同或相似的术语概念、技术方案和/或应用场景描述,一般只在第一次出现时进行详细描述,后面再重复出现时,为了简洁,一般未再重复阐述,在理解本 申请技术方案等内容时,对于在后未详细描述的相同或相似的术语概念、技术方案和/或应用场景描述等,可以参考其之前的相关详细描述。
在本申请中,对各个实施例的描述都各有侧重,某个实施例中没有详述或记载的部分,可以参见其它实施例的相关描述。
本申请技术方案的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本申请记载的范围。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在如上的一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,被控终端,或者网络设备等)执行本申请每个实施例的方法。
在上述实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。计算机程序产品包括一个或多个计算机指令。在计算机上加载和执行计算机程序指令时,全部或部分地产生按照本申请实施例的流程或功能。计算机可以是通用计算机、专用计算机、计算机网络,或者其他可编程装置。计算机指令可以存储在存储介质中,或者从一个存储介质向另一个存储介质传输,例如,计算机指令可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线)或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。可用介质可以是磁性介质,(例如,软盘、存储盘、磁带)、光介质(例如,DVD),或者半导体介质(例如固态存储盘Solid State Disk(SSD))等。
以上仅为本申请的优选实施例,并非因此限制本申请的专利范围,凡是利用本申请说明书及附图内容所作的等效结构或等效流程变换,或直接或间接运用在其他相关的技术领域,均同理包括在本申请的专利保护范围内。

Claims (18)

  1. 一种处理方法,其中,包括步骤:
    S20:基于扩展不连续接收参数,确定目标寻呼超帧。
  2. 根据权利要求1所述的方法,其中,所述扩展不连续接收参数包括以下至少一项:
    扩展不连续接收周期长度;
    寻呼时间窗口长度;
    寻呼超帧偏移。
  3. 根据权利要求2所述的方法,其中,所述扩展不连续接收周期长度内的寻呼超帧包括:
    无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
  4. 根据权利要求2所述的方法,其中,所述S20步骤,包括以下至少一项:
    若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
    若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则将所述有效寻呼超帧确定为目标寻呼超帧。
  5. 根据权利要求4所述的方法,其中,所述方法还包括以下至少一项:
    基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
    在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
    经计算属于无效寻呼超帧的各终端设备经过循环偏移后,在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
    目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
  6. 根据权利要求2所述的方法,其中,所述S20步骤,包括以下至少一项:
    在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
    在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
  7. 根据权利要求1所述的方法,其中,所述方法还包括:
    根据第一参数确定寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机监听寻呼。
  8. 根据权利要求7所述的方法,其中,所述第一参数包括以下至少一项:
    终端设备标识;
    扩展不连续接收周期长度;
    扩展不连续接收周期内有效寻呼超帧长度;
    寻呼时间窗口长度。
  9. 一种处理方法,其中,包括步骤:
    S10,发送扩展不连续接收参数,以使终端设备基于扩展不连续接收参数,确定目标寻呼超帧。
  10. 根据权利要求9所述的方法,其中,所述扩展不连续接收参数包括以下至少一项:扩展不连续接收周期长度;
    寻呼时间窗口长度;
    寻呼超帧偏移。
  11. 根据权利要求10所述的方法,其中,所述扩展不连续接收周期长度内的寻呼超帧包括:
    无效寻呼超帧和/或有效寻呼超帧,在无效寻呼超帧内存在不连续覆盖,在有效寻呼超帧内不存在不连续覆盖。
  12. 根据权利要求10所述的方法,其中,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
    若基于扩展不连续接收周期长度计算的寻呼超帧属于无效寻呼超帧,则终端设备在扩展不连续接收周期内,以寻呼超帧偏移对所述寻呼超帧进行循环偏移,将偏移得到的有效寻呼超帧确定为目标寻呼超帧;
    若基于扩展不连续接收周期长度计算的寻呼超帧属于有效寻呼超帧,则终端设备将所述有效寻呼超帧确定为目标寻呼超帧。
  13. 根据权利要求12所述的方法,其中,所述方法还包括以下至少一项:
    终端设备基于扩展不连续接收周期长度和终端设备标识计算寻呼超帧;
    在以寻呼超帧偏移对所述寻呼超帧进行循环偏移时,跳过当前扩展不连续接收周期内的其他无效寻呼超帧;
    经计算属于无效寻呼超帧的各终端设备经过循环偏移后在对应的扩展不连续接收周期内的有效寻呼超帧上均匀分布;
    目标寻呼超帧在对应存在无效寻呼超帧的扩展不连续接收周期内均匀分布。
  14. 根据权利要求10所述的方法,其中,所述终端设备基于接收的扩展不连续接收参数,确定目标寻呼超帧,包括以下至少一项:
    在确定扩展不连续接收周期内的有效寻呼超帧的个数等于扩展不连续接收周期长度时,终端设备根据扩展不连续接收周期长度及终端设备标识确定目标寻呼超帧;
    在确定扩展不连续接收周期内的有效寻呼超帧的个数不等于扩展不连续接收周期长度时,终端设备将扩展不连续接收周期内的有效寻呼超帧重新索引,根据扩展不连续接收周期内的有效寻呼超帧的个数及终端设备标识确定终端设备的寻呼超帧索引,基于所述寻呼超帧索引确定目标寻呼超帧。
  15. 根据权利要求9所述的方法,其中,所述方法还包括:
    根据第一参数确定终端设备的目标寻呼超帧和寻呼时间窗口,在对应的寻呼时间窗口内的寻呼时机触发寻呼。
  16. 根据权利要求15所述的方法,其中,所述第一参数包括以下至少一项:
    终端设备标识;
    扩展不连续接收周期长度;
    扩展不连续接收周期内有效寻呼超帧长度;
    寻呼时间窗口长度。
  17. 一种通信设备,其中,包括:存储器、处理器,所述存储器上存储有处理程序,所述处理程序被所述处理器执行时实现如权利要求1或9所述的处理方法。
  18. 一种存储介质,其中,所述存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求1或9所述的处理方法。
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