WO2019096309A1 - 时间分配方法、装置及系统 - Google Patents

时间分配方法、装置及系统 Download PDF

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Publication number
WO2019096309A1
WO2019096309A1 PCT/CN2018/116237 CN2018116237W WO2019096309A1 WO 2019096309 A1 WO2019096309 A1 WO 2019096309A1 CN 2018116237 W CN2018116237 W CN 2018116237W WO 2019096309 A1 WO2019096309 A1 WO 2019096309A1
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symbol
dta
mus
symbols
terminal
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PCT/CN2018/116237
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English (en)
French (fr)
Inventor
卢刘明
胡珊
袁立权
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中兴通讯股份有限公司
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Publication of WO2019096309A1 publication Critical patent/WO2019096309A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/16Time-division multiplex systems in which the time allocation to individual channels within a transmission cycle is variable, e.g. to accommodate varying complexity of signals, to vary number of channels transmitted
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/14Two-way operation using the same type of signal, i.e. duplex
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation

Definitions

  • the present disclosure relates to the field of communications, for example, to a time allocation method, apparatus, and system.
  • the copper access system includes a Fast Access Subscriber Terminal (FAST) system and a Very High Speed Digital Subscriber Line (VDSL) 2 system.
  • FAST Fast Access Subscriber Terminal
  • VDSL Very High Speed Digital Subscriber Line
  • Its network architecture can be divided into G.FAST/x Digital Subscriber Line (xDSL) central office (DPU) and G.FAST/xDSL terminal (Customer Premise Equipment, CPE).
  • the G.FAST/xDSL Distribution Point Unit (DPU) can provide multiple interfaces to be connected to multiple terminals (CPEs), that is, a Fast Transceiver Unit at the Optical Network Unit (FTU-O).
  • CPEs Central Office
  • FTU-O Optical Network Unit
  • FIG. 1 is in accordance with the related art
  • FTU-R Terminal module
  • P2P Peer-to-Peer
  • Figure 1 is in accordance with the related art
  • G. Schematic diagram of the FAST/xDSL system architecture.
  • the connection medium between the G.FAST/xDSL central office and the terminal corresponding interface may be a copper cable medium such as a twisted pair cable or a coaxial cable.
  • G.FAST adopts Time Division Duplexing (TDD) working mode.
  • TDD Time Division Duplexing
  • Each TDD frame includes Mds downlink symbols and Mus uplink symbols.
  • Tsymb represents symbol period
  • TF is TDD frame period
  • MF Mds+Mus+1.
  • DTA Dynamic Time Assignment
  • DTA update a DTA update command
  • the command contains the new TDD frame configuration.
  • the number of downlink symbols Mds (new) and the DTA frame countdown value (N) are as shown in FIG. 2, and FIG. 2 is a TDD frame structure diagram according to the related art.
  • the FTU-O repeatedly sends a DTA update command to the FTU-R, where N is decremented by one each time a TDD frame is transmitted, and when the value of N is decremented to zero, the frame is transmitted based on the new TDD frame format.
  • the multi-line pair DTA update that is, Coordinated DTA (cDTA)
  • cDTA Coordinated DTA
  • NXT near-end crosstalk
  • the embodiments of the present disclosure provide a time allocation method, apparatus, and system to at least solve the problem of crosstalk between pairs during dynamic time adjustment in the related art in the related art.
  • a time allocation method including: a central office receives a dynamic time adjustment DTA update request message; the central office performs at least one of: determining an update according to the DTA update request message
  • the time division duplex TDD frame configuration parameter determines, according to the DTA update request message, whether to initiate a specific transmission mode for reducing crosstalk between pairs when updating the TDD frame; and transmitting the DTA configuration message to the terminal.
  • a time allocation method including: receiving, by a terminal, a dynamic time adjustment DTA configuration message sent by a central office; determining, according to the DTA configuration message, at least one of the following information: whether to update a TDD frame Or logical frame, updated TDD frame or logical frame configuration parameter, whether to initiate a specific transmission mode for reducing crosstalk between pairs when updating a TDD frame or a logical frame.
  • a time allocation method including: a Dynamic Resource Allocation (DRA) sends a DTA update request message to a central office, where the update request message is used to determine At least one of the following: an updated time division duplex TDD frame configuration parameter that determines whether a particular transmission mode for reducing crosstalk between pairs is initiated when the TDD frame is updated.
  • DTA Dynamic Resource Allocation
  • a time allocation apparatus comprising: a receiving module configured to receive a dynamic time adjustment DTA update request message; and an execution module configured to perform at least one of the following operations: Determining, according to the DTA update request message, an updated time division duplex TDD frame configuration parameter, determining, according to the DTA update request message, whether to initiate a specific transmission mode for reducing crosstalk between pairs when updating a TDD frame; and configuring the DTA The message is sent to the terminal.
  • a time allocation apparatus including: a receiving module, configured to receive a dynamic time adjustment DTA configuration message sent by a central office; and a determining module configured to determine the following according to the DTA configuration message At least one of the information: whether to update the TDD frame or logical frame, the updated TDD frame or the logical frame configuration parameter, whether to initiate a specific transmission mode for reducing crosstalk between pairs when updating the TDD frame or the logical frame.
  • a time allocation apparatus comprising: a sending module, configured to send an update request message to a central office, wherein the update request message is used to determine at least one of: updated A time division duplex TDD frame configuration parameter determines whether a particular transmission mode for reducing crosstalk between pairs is initiated when updating a TDD frame.
  • a time allocation system including a dynamic resource manager DRA, a central office and a terminal; the dynamic resource manager DRA is configured to: send a DTA update request message to the central office
  • the central office is configured to: receive the DTA update request message, and perform at least one of: determining an updated time division duplex TDD frame configuration parameter according to the DTA update request message, determining, according to the DTA update request message, Whether to start a specific transmission mode for reducing crosstalk between pairs when updating a TDD frame; sending a DTA configuration message to the terminal; the terminal is configured to: receive the DTA configuration message, and determine the following information according to the DTA configuration message At least one of: whether to update a TDD frame or a logical frame, an updated TDD frame or a logical frame configuration parameter, whether to initiate a specific transmission mode for reducing crosstalk between pairs when updating a TDD frame or a logical frame.
  • a storage medium comprising a stored program, wherein the program is executed to perform the method described in any of the above embodiments.
  • a processor for running a program wherein the program is executed to perform the method described in any of the above embodiments.
  • FIG. 1 is a schematic diagram of a G.FAST/xDSL system architecture according to the related art
  • FIG. 2 is a structural diagram of a TDD frame according to the related art
  • FIG. 3 is a schematic diagram of generating near-end crosstalk according to cDS in the related art
  • 4a is a flowchart of a time allocation method according to an embodiment of the present disclosure
  • 4b is a flowchart of another method of time allocation according to an embodiment of the present disclosure.
  • 4c is a flowchart of still another time allocation method according to an embodiment of the present disclosure.
  • FIG. 5 is a schematic diagram of a cDTA update process according to Embodiment 1 of the present disclosure.
  • FIG. 6 is a schematic diagram of another cDTA update process according to Embodiment 2 of the present disclosure.
  • FIG. 7 is a schematic diagram of still another cDTA update process according to Embodiment 3 of the present disclosure.
  • FIG. 8 is a schematic structural diagram of a time allocation system according to an embodiment of the present disclosure.
  • the technical solution of the present application can be applied to a copper access system.
  • the central office can be a Fast Transceiver Unit at the Optical Network Unit (FTU-O), and the terminal can be a FAST located at a remote site.
  • FTU-O Optical Network Unit
  • FTU-R Fast Transceiver Unit at the Remote site
  • FIG. 4a is a flowchart of a time allocation method according to an embodiment of the present disclosure. As shown in FIG. 4a, the process includes the following steps:
  • Step 402 The central office receives the dynamic time adjustment DTA update request message.
  • Step 404 The central office performs at least one of: determining, according to the DTA update request message, an updated time division duplex TDD frame configuration parameter, determining, according to the DTA update request message, whether to start to reduce a line pair when updating the TDD frame. a specific transmission mode between crosstalks;
  • step 406 the central office sends a DTA configuration message to the terminal.
  • the terminal receives the DTA update request message sent by the DRA; the terminal performs at least one of: determining an updated time division duplex TDD frame configuration parameter according to the DTA update request message, and/or determining when updating the TDD frame Whether to initiate a specific transmission mode for reducing crosstalk between pairs; send DTA configuration information to the central office.
  • the above technical solution solves the problem of crosstalk between line pairs in the dynamic time adjustment process in the related art, and the equipment such as the central office uses the above scheme to communicate, which greatly reduces the crosstalk generated between the pair and improves the communication efficiency. .
  • the DTA corresponding to the DTA update request message includes one of the following: an Independent Dynamic Time Assignment (iDTA) or a Coordinated DTA (cDTA).
  • iDTA Independent Dynamic Time Assignment
  • cDTA Coordinated DTA
  • the update request message includes at least one of: a downlink symbol number of a TDD frame or a logical frame to be updated; a first TDD frame or logical frame information indicating that the updated TDD frame configuration information is used; An indication information for determining whether each terminal in the coordination group or the vector group has received the DTA configuration message.
  • the coordination group or vector group may be composed of a central office in the DRA.
  • the DTA configuration message includes at least one of the following information: a number of downlink symbols of the TDD frame or the logical frame to be updated; a DTA frame countdown value; and is used to determine whether each terminal in the coordination group or the vector group has The first indication information of the DTA configuration command is received.
  • the method further includes: receiving, by the central office, the determining, that each terminal in the coordination group or the vector group has received the DTA configuration.
  • the second indication information of the message the office end sends the second indication information to the terminal.
  • the DTA configuration message includes at least one of the following: a number of downlink symbols of the TDD frame to be updated, and synchronization information.
  • the synchronization information includes at least one of the following: a DTA frame countdown value; first indication information indicating whether each terminal in the coordination group or the vector group has received the DTA configuration message.
  • the specific transmission mode for reducing crosstalk between pairs of lines includes: performing, by the central office, at least one of: transmitting an idle symbol in a transmit symbol region preset in a TDD frame or a logical frame; Sending a quiet symbol; stopping transmitting symbols; transmitting a quiet symbol or idle symbol at a non-robust management channel RMC symbol position, and transmitting an RMC symbol at the RMC symbol position.
  • determining a time for updating the time division duplex TDD frame configuration according to the DTA configuration message, and determining whether to initiate a specific transmission mode for reducing crosstalk between pairs including one of the following: the central office is decrementing the value in the frame When it is zero, if the terminal has confirmed that each terminal in the coordination group or the vector group has received the DTA configuration message, the updated TDD frame is started to communicate according to the update request message, and the updated downlink symbols are used.
  • the data symbol or the RMC symbol is sent; when the frame decrement count value is zero, if the office end does not confirm that each terminal has received the DTA configuration message, perform one of the following operations: And transmitting, according to the update request message, the updated TDD frame to communicate; transmitting the data symbol or the RMC symbol in the downlink symbol of the updated downlink symbol number; and adopting the specific transmission mode for reducing crosstalk between pairs.
  • the method further includes:
  • the terminal determines that each terminal in the coordination group or the vector group has received the DTA configuration command message, stop using the specific transmission mode, and send the data symbol or RMC in the downlink symbol of the updated downlink symbol number. symbol.
  • the central office includes a FAST transceiver FTU-O at a remote site; the terminal includes a FAST transceiver FTU-R located at the optical network unit.
  • FIG. 4b is a flowchart of another time allocation method according to an embodiment of the present disclosure. Referring to FIG. 4b, the method includes the following steps:
  • Step 4100 The terminal receives a dynamic time adjustment DTA configuration message sent by the central office.
  • Step 4200 Determine at least one of the following information according to the DTA configuration message: whether to update the TDD frame or the logical frame, the updated TDD frame or the logical frame configuration parameter, whether to start the reduction of the pair when updating the TDD frame or the logical frame The specific transmission mode of crosstalk.
  • the method further includes: when the frame decrement count value is zero, if the terminal determines that each terminal in the coordination group or the vector group has received the DTA configuration message, the terminal is based on The DTA configuration message initiates an updated TDD frame or logical frame for communication, and transmits a data symbol or an RMC symbol within an uplink symbol of the updated number of uplink symbols; when the frame countdown value is zero, the terminal does not If it can be confirmed that each of the coordination group or the vector group has received the DTA configuration message, the terminal initiates the updated TDD frame or logical frame communication according to the DTA configuration message, and performs communication using the first specific transmission mode.
  • the first specific transmission mode includes: the terminal performing at least one of: transmitting an idle symbol; transmitting a quiet symbol; stopping transmitting the symbol in an uplink symbol region preset in a TDD frame or a logical frame; A quiet symbol or idle symbol is transmitted at the non-robust management channel RMC symbol position, and the RMC symbol is transmitted at the RMC symbol position.
  • the first specific transmission mode comprises at least one of the following:
  • the terminal performs the following operations from the first symbol of the uplink to the (cDTA_SMax-(Mds.new-Mds)) or (Mus.new-Mus.min) symbols.
  • the terminal performs at least one of the following operations from the first symbol of the uplink to the (cDTA_SMax+(Mds.new-Mds)) or (Mus.new-Mus.min) symbol. : transmitting an idle symbol; transmitting a quiet symbol; stopping transmitting the symbol; transmitting a quiet symbol or an idle symbol at a non-RMC symbol position, and transmitting the RMC symbol at the RMC symbol position;
  • Mds represents the original number of downlink symbols
  • Mus represents the original number of uplink symbols
  • Mds.new represents the number of updated downlink symbols
  • cDTA_SMax represents the maximum number of symbols that cDTA allows Mds or Mus to adjust at one time
  • Mus.min refers to the minimum number of upstream symbols set by the communication system.
  • (Mds.new-Mds) and the like in the present application indicate the difference between the two
  • the (cDTA_SMax+(Mds.new-Mds)) equation is a plus sign indicating the sum of the two. .
  • the terminal moves from the first symbol of the uplink to the (cDTA_SMax-(Mds.new-Mds)) Performing at least one of the following operations on the symbol: transmitting an idle symbol; a quiet symbol; stopping transmitting the symbol; transmitting a quiet symbol or an idle symbol at the non-RMC symbol position, and transmitting the RMC symbol at the RMC symbol position;
  • the terminal performs at least one of the following operations from the first symbol of the uplink to the (Mus.new-Mus.min) symbol. : sending idle symbols; quiet symbols; stopping transmitting symbols; not transmitting data; transmitting quiet symbols or idle symbols at non-RMC symbol positions, and transmitting RMC symbols at RMC symbol positions;
  • the terminal performs at least one of the following operations from the first symbol of the uplink to the (cDTA_SMax+(Mds.new-Mds)) symbol. : transmitting an idle symbol; a quiet symbol; stopping transmitting a symbol; transmitting a quiet symbol or an idle symbol at a non-RMC symbol position, and transmitting the RMC symbol at the RMC symbol position;
  • the terminal performs at least one of the following operations from the first symbol of the uplink to the (Mus.new-Mus.min) symbol: Sending an idle symbol; a quiet symbol; stopping transmitting a symbol; transmitting a quiet symbol or an idle symbol at a non-RMC symbol position, and transmitting the RMC symbol at the RMC symbol position;
  • the Mds represents the original number of downlink symbols
  • the Mus represents the original number of uplink symbols
  • the Mds.new represents the updated number of downlink symbols
  • the cDTA_SMax indicates that the coordinated dynamic time allocation cDTA allows Mds or Mus.
  • the maximum number of symbols adjusted at one time; the Mus.min refers to the minimum number of upstream symbols set by the communication system.
  • the method further includes:
  • the terminal If the terminal does not receive the DTA configuration message in a TDD frame or a logical frame of a preset minimum data period, the terminal performs communication by using the second specific transmission mode.
  • the second specific transmission mode comprises:
  • the terminal transmits only (Mus-cDTA_SMax) uplink quiet symbols or idle symbols from Symbol.Mus+cDTA_SMax, and does not transmit data symbols or RMC symbols;
  • the terminal transmits only Mus.min uplink quiet symbols or idle symbols from Symbol.Mus+ (Mus-Mus.min), and does not transmit data symbols or RMC symbols;
  • Mus represents the original number of uplink symbols
  • cDTA_SMax indicates the maximum number of symbols that cDTA allows Mds or Mus to adjust at one time
  • Symbol.Mus indicates the first uplink symbol position corresponding to the original Mus
  • Mus.min refers to the communication system settings. The minimum number of upstream symbols.
  • FIG. 4c is a flowchart of still another time allocation method according to an embodiment of the present disclosure. As shown in FIG. 4c, the method includes:
  • Step 41000 The dynamic resource manager DRA sends a DTA update request message to the central office, where the update request message is used to determine at least one of the following: an updated time division duplex TDD frame configuration parameter, and determine whether to start when updating the TDD frame.
  • the update request message is used to determine at least one of the following: an updated time division duplex TDD frame configuration parameter, and determine whether to start when updating the TDD frame.
  • a specific transmission mode that reduces crosstalk between pairs.
  • the method further includes: confirming that each terminal in the coordination group or the vector group has received the DTA configuration message sent by the central office; and is used to confirm that each terminal in the coordination group or the vector group has received the DTA configuration.
  • the second indication message of the message is sent to the central office.
  • the Dynamic Resource Allocation sends a DTA Update Request message to all FTU-Os in the coordination group or vectoring group, and the cDTA update request command includes a new Time Division Dupxing (TDD) frame. (or logical frame) configuration parameters, that is, the number of downlink symbols of the TDD frame to be updated, synchronization information, and the like;
  • TDD Time Division Dupxing
  • the FTU-O sends a new TDD frame (or logical frame) configuration command (ie, DTA configuration message) to the FTU-R, where the DTA configuration message includes the number of downlink symbols (or logical frames) to be updated, and the DTA frame countdown.
  • DTA configuration message includes the number of downlink symbols (or logical frames) to be updated, and the DTA frame countdown.
  • a value (DTA the Frame Decrement count, DTAFDC) for indicating the information of the first TDD frame or logical frame based on the new TDD frame configuration information to be started, and/or for confirming whether each FTU-R is already Received instructions for the DTA configuration message.
  • the FTU-O and/or FTU-R decides, based on the synchronization information, when to initiate communication of the TDD frame based on the new TDD frame configuration information and whether to initiate a specific transmission mode that avoids or reduces crosstalk between pairs.
  • the synchronization information includes: a first TDD frame or logical frame information used to indicate that the new TDD frame configuration information is enabled, and whether each FTU-R has received the DTA configuration message.
  • the DTA frame countdown value is corresponding to the start of new TDD frame configuration information after several TDD frame (or logical frame) cycles, and the DTA frame countdown value is decremented by one every time a TDD frame (or logical frame) is passed.
  • the use of a specific transmission mode to avoid or reduce crosstalk between pairs is that the FTU-O or FTU-R transmits idle symbols in a pre-configured or set transmit symbol region in a TDD frame (or logical frame), or Quiet symbols, or stop transmitting symbols, retain Reference Measurement Channel (RMC) symbols or not retain RMC symbols to avoid or reduce crosstalk between potential pairs.
  • RMC Reference Measurement Channel
  • the FTU-R determines when to initiate communication of TDD frames based on new TDD frame configuration information and whether to initiate a specific transmission mode that avoids or reduces crosstalk between pairs is based on the following:
  • the new TDD is started when the frame countdown value is zero.
  • the frame configuration information performs communication of the TDD frame and adopts a normal transmission mode (ie, transmits data symbols or RMC symbols within Mus.new (updated number of uplink symbols) of uplink symbols) instead of using to avoid or reduce potential line pairs.
  • the specific transmission mode between crosstalk ie, transmits data symbols or RMC symbols within Mus.new (updated number of uplink symbols) of uplink symbols
  • the FTU-R does not receive the DTA configuration message during the set minimum number of periods of TDD frame (or logical frame) period, and then adopts a specific transmission mode for avoiding or reducing crosstalk between potential line pairs, that is, Send idle symbols, or quiet symbols, or stop sending symbols in the pre-configured or set transmit symbol area.
  • the specific transmission mode may include: when (Mus-cDTA_SMax)>Mus.min, the FTU-R only sends (Mus-cDTA_SMax) uplink quiet symbols from Symbol.Mus+cDTA_SMax, does not send data symbols or RMC symbols; when (Mus -cDTA_SMax) ⁇ Mus.min FTU-R only sends Mus.min uplink quiet symbols starting from Symbol.Mus+ (Mus-Mus.min), and does not send data symbols or RMC symbols.
  • Mus represents the original number of uplink symbols
  • cDTA_SMax represents the maximum number of symbols (steps) that cDTA allows Mds (or Mus) to adjust at one time.
  • Symbol.Mus represents the first upstream symbol position corresponding to the original Mus. Mus.min is the minimum number of upstream symbols allowed or set by the system.
  • the FTU-O decides when to initiate communication of TDD frames based on new TDD frame configuration information and whether to initiate a specific transmission mode that avoids or reduces crosstalk between pairs is as follows:
  • the TDD frame is started based on the new TDD frame configuration information. Communication, and adopts a normal transmission mode without employing a specific transmission mode for avoiding or reducing crosstalk between potential pairs.
  • the TDD frame is started based on the new TDD frame configuration information when the frame countdown value is zero.
  • Communication either directly using the normal transmission mode (ie, transmitting data symbols or RMC symbols within Mds.new (updated number of downlink symbols) downlink symbols); or using specific to avoid or reduce crosstalk between potential pairs
  • the specific transmission mode for avoiding or reducing crosstalk between potential pairs is switched to the normal transmission mode.
  • the meaning of just zeroing is a critical state, and the DAT frame countdown value will be set to zero.
  • Embodiment 1 is a diagrammatic representation of Embodiment 1:
  • the number of downlink symbols (Mds.new) in the TDD frame configuration parameter to be updated is greater than the original number of downlink symbols (Mds), and the flow is as follows.
  • the FTU-O sends a new TDD frame (or logical frame) configuration command (ie, DTA configuration message) to the FTU-R, where the DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • a countdown value (DTAFDC), an indication for confirming whether each FTU-R has received a DTA configuration message (indicated by Ack(all), the initial value is 0).
  • the DTA configuration message is received, and the obtained Ack(all) information is zero, so the communication of the TDD frame based on the new TDD frame configuration information is started, and is adopted for avoiding Or reduce the specific transmission mode of crosstalk between potential pairs, that is, send quiet symbols from the first symbol of the uplink to the (cDTA_SMax-(Mds.new-Mds)) symbols, and do not send data symbols.
  • cDTA_SMax is the maximum number of symbols that cDTA allows Mds to adjust at one time.
  • the TDD frame communication is started based on the new TDD frame configuration information, that is, the number of uplink symbols is Mus.new And adopting a specific transmission mode for avoiding or reducing crosstalk between potential pairs, that is, sending quiet symbols from the first symbol of the uplink to the (cDTA_SMax-(Mds.new-Mds)) symbol, Do not send data.
  • the normal transmission mode is started, that is, the data symbol or the RMC symbol is transmitted within the Mus.new symbol.
  • Embodiment 2 is a diagrammatic representation of Embodiment 1:
  • the number of downlink symbols (Mds.new) in the TDD frame configuration parameter to be updated is smaller than the original number of downlink symbols (Mds), and the flow is as follows.
  • the FTU-O sends a new TDD frame (or logical frame) configuration command (ie, DTA configuration message) to the FTU-R, where the DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • a countdown value (DTAFDC), an indication for confirming whether each FTU-R has received a DTA configuration message (indicated by Ack(all), the initial value is 0).
  • cDTA_SMax refers to the maximum number of symbols that cDTA allows Mds to adjust at one time.
  • the TDD frame communication is started based on the new TDD frame configuration information, that is, the number of uplink symbols is Mus.new And adopting a specific transmission mode for avoiding or reducing crosstalk between potential pairs, that is, sending quiet symbols from the first symbol of the uplink to the (cDTA_SMax+(Mds.new-Mds)) symbol, send data.
  • Embodiment 3 is a diagrammatic representation of Embodiment 3
  • the number of downlink symbols (Mds.new) in the TDD frame configuration parameter to be updated is greater than the original number of downlink symbols (Mds), and the process is as follows:
  • the FTU-O sends a new TDD frame (or logical frame) configuration command (ie, DTA configuration message) to the FTU-R, where the DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • DTA configuration message includes the number of downlink symbols (Mds.new) of the TDD frame to be updated, and the DTA frame.
  • a countdown value (DTAFDC), an indication for confirming whether each FTU-R has received a DTA configuration message (indicated by Ack(all), the initial value is 0).
  • the frame configuration information Mus.new sends an uplink data symbol or an RMC symbol.
  • the TDD frame communication is started based on the new TDD frame configuration information, that is, the number of uplink symbols is Mus. New, and adopts a specific transmission mode for avoiding or reducing crosstalk between potential pairs, that is, sending quiet symbols from the first symbol of the uplink to the (cDTA_SMax-(Mds.new-Mds)) symbol. , do not send data.
  • the reliability and robustness of the cDTA update are effectively improved, and the near-end crosstalk and the far-end crosstalk between the potential pairs are avoided or reduced, and the efficiency of the cDTA update is also ensured as soon as possible.
  • the dynamic adjustment of the TDD frame transmission parameters is completed, which is beneficial to the line to quickly adjust the number of uplink and downlink symbols based on the uplink and downlink traffic conditions.
  • the method according to the above embodiments can be implemented by means of software plus a general hardware platform, and of course, by hardware.
  • the technical solution of the present disclosure which is essential or contributes to the related art, may be embodied in the form of a software product stored in a storage medium (such as a read only memory (Read Only Memory, ROM)/Random Access Memory (RAM), disk, CD-ROM, including a plurality of instructions for causing a terminal (which may be a mobile phone, a computer, a server, or a network device, etc.) to perform one of the present disclosures Or the method described in the various embodiments.
  • a storage medium such as a read only memory (Read Only Memory, ROM)/Random Access Memory (RAM), disk, CD-ROM, including a plurality of instructions for causing a terminal (which may be a mobile phone, a computer, a server, or a network device, etc.) to perform one of the present disclosures Or the method described in the various embodiments.
  • a time distribution device is also provided, which is used to implement the above-mentioned embodiments and implementation manners, and has not been described again.
  • the term "module” may implement a combination of software and/or hardware of a predetermined function.
  • the devices described in the following embodiments may be implemented in software, hardware, or a combination of software and hardware, is also possible and contemplated.
  • a time distribution device applicable to an FTU-O comprising:
  • a first receiving module configured to receive a dynamic time adjustment DTA update request message
  • the first execution module is configured to perform at least one of: determining an updated time division duplex TDD frame configuration parameter according to the DTA update request message, determining, according to the DTA update request message, whether to start the line for reducing when updating the TDD frame a specific transmission mode for crosstalk between pairs;
  • the above apparatus may perform the method described in the embodiment executed by the central office.
  • a time distribution device applicable to an FTU-R comprising:
  • a second receiving module configured to receive a dynamic time adjustment DTA configuration message sent by a FAST transceiver office end of the optical network unit;
  • the determining module is configured to determine at least one of the following information according to the DTA configuration message: whether to update the TDD frame or the logical frame, the updated TDD frame or the logical frame configuration parameter, whether to start the line for reducing when updating the TDD frame or the logical frame A specific transmission mode for crosstalk between pairs.
  • the above apparatus may perform the method described in the embodiment executed by the terminal.
  • a time distribution apparatus including:
  • a sending module configured to send an update request message to the central office, where the update request message is used to determine at least one of the following: an updated time division duplex TDD frame configuration parameter, determining whether to start to reduce the line pair when updating the TDD frame The specific transmission mode between crosstalk.
  • the above apparatus may perform the method described in the embodiment performed by the DRA.
  • the one or more modules may be implemented by software or hardware.
  • the foregoing may be implemented by, but not limited to, the foregoing modules are all located in the same processor; or one of the foregoing Or multiple modules are located in different processors in any combination.
  • a storage medium comprising a stored program, wherein the program is executed while the method described in the above embodiments is executed.
  • a processor configured to execute a program, wherein the program is executed to perform the method described in the above embodiments.
  • FIG. 8 is a schematic structural diagram of a time allocation system according to an embodiment of the present disclosure. As shown in FIG. 8, the dynamic resource manager DRA 810 is included. End 820 and terminal 830:
  • the dynamic resource manager DRA 810 is configured to: send a DTA update request message to the central office 820;
  • the central office 820 is configured to: receive the DTA update request message, and perform at least one of: determining an updated time division duplex TDD frame configuration parameter according to the DTA update request message, determining, according to the DTA update request message, when updating the TDD frame Whether to initiate a specific transmission mode for reducing crosstalk between pairs; sending a DTA configuration message to terminal 830;
  • the terminal 830 is configured to: receive the DTA configuration message, and determine at least one of the following information according to the DTA configuration message: whether to update the TDD frame or the logical frame, the updated TDD frame or the logical frame configuration parameter, and update the TDD frame or the logical frame. Whether to initiate a specific transmission mode for reducing crosstalk between pairs.
  • the solution of the above embodiments may be run in the system.
  • the above-described at least one module or at least one step of the present disclosure may be implemented by a general-purpose computing device, which may be centralized on a single computing device or distributed over a network of multiple computing devices, in one embodiment, They may be implemented in program code executable by a computing device, such that they may be stored in a storage device for execution by a computing device, and in some instances, illustrated or described in a different order than those illustrated herein.
  • the steps are either made into one or more integrated circuit modules, or a plurality of modules or steps are made into a single integrated circuit module. As such, the disclosure is not limited to any specific combination of hardware and software.

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Abstract

本文公开了一种时间分配方法,包括:局端接收到动态资源管理器DRA发送的动态时间调整DTA更新请求消息;该局端执行以下操作至少之一:依据该DTA更新请求消息确定更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置信息发送至终端。本文还公开了一种时间分配装置及系统。

Description

时间分配方法、装置及系统
本申请要求在2017年11月18日提交中国专利局、申请号为201711151396.X的中国专利申请的优先权,该申请的全部内容通过引用结合在本申请中。
技术领域
本公开涉及通信领域,例如,涉及一种时间分配方法、装置及系统。
背景技术
在相关技术中,铜缆接入系统包括快速接入用户终端(Fast Access Subscriber Terminal,FAST)系统与超高速数字用户线路(Very High Speed Digital Subscriber Line,VDSL)2系统。它的网络架构可分为G.FAST/多种类型数字用户线路(x Digital Subscriber Line,xDSL)局端(DPU)与G.FAST/xDSL终端(Customer Premise Equipment,CPE)。其中,G.FAST/xDSL局端(Distribution Point Unit,DPU)可提供多个接口分别与多个终端(CPE)相连,即一个局端模块(Fast Transceiver Unit at the Optical network unit,FTU-O)与一个终端模块(Fast Transceiver Unit at the Remote site,FTU-R)相连(对等式网络(peer-to-peer,P2P)架构),如图1所示,图1是根据相关技术中G.FAST/xDSL系统架构示意图。G.FAST/xDSL局端与终端对应接口之间的连接介质可以是双绞线、同轴电缆等铜缆介质。G.FAST采用时分双工(Time Division Duplexing,TDD)工作模式,每个TDD帧包含Mds个下行符号与Mus个上行符号,其中,图1中Tsymb表示符号周期,TF为TDD帧周期,MF=Mds+Mus+1。
动态时间调整(Dynamic Time Assignment,DTA)在正常工作(showtime)阶段对Mds进行动态调整时,通过FTU-O下发DTA更新(DTA update)指令给FTU-R,该指令中包含新TDD帧配置中的下行符号数Mds(新)、以及DTA帧递减计数值(N),如图2所示,图2是根据相关技术中TDD帧结构图。FTU-O重复向FTU-R发送DTA更新指令,其中,每发送一个TDD帧,N就递减1,当N的值递减到0时,就马上触发基于新TDD帧格式进行帧的发送。对于一个协调组或向量(vectoring)组的多线对DTA更新,即协调DTA(Coordinated DTA, cDTA),当多线对之间的DTA更新不同步而导致多根线对不能同时发送上行信号或下行信号,线对之间就会产生严重的近端串扰(NEXT)而且难以消除,从而会大大影响系统的性能甚至会导致系统崩溃,如图3所示,图3是根据相关技术中cDTA不同步而产生近端串扰的示意图。
针对相关技术中动态时间调整过程中,线对之间产生串扰的问题,目前还没有有效的解决方案。
发明内容
本公开实施例提供了一种时间分配方法、装置及系统,以至少解决相关技术中相关技术中动态时间调整过程中,线对之间产生串扰的问题。
根据本公开的一个实施例,提供了一种时间分配方法,包括:局端接收到动态时间调整DTA更新请求消息;所述局端执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置消息发送至终端。
根据本公开的另一个实施例,还提供了一种时间分配方法,包括:终端接收局端发送的动态时间调整DTA配置消息;依据所述DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
根据本公开的另一个实施例,还提供了一种时间分配方法,包括:动态资源管理器(Dynamic Resource Allocation,DRA)向局端发送DTA更新请求消息,其中,所述更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
根据本公开的另一个实施例,还提供了一种时间分配装置,所述装置包括:接收模块,设置为接收到动态时间调整DTA更新请求消息;执行模块,设置为执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;以及将DTA配置消息发送至终端。
根据本公开的另一个实施例,还提供了一种时间分配装置,包括:接收模块,设置为接收局端发送的动态时间调整DTA配置消息;确定模块,设置为依据所述DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
根据本公开的另一个实施例,还提供了一种时间分配装置,包括:发送模块,设置为向局端发送更新请求消息,其中,所述更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
根据本公开的另一个实施例,还提供了一种时间分配系统,包括动态资源管理器DRA,局端和终端;所述动态资源管理器DRA设置为:向所述局端发送DTA更新请求消息;所述局端设置为:接收所述DTA更新请求消息,执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置消息发送至终端;所述终端设置为:接收到所述DTA配置消息,依据所述DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
根据本公开的另一个实施例,还提供了一种存储介质,所述存储介质包括存储的程序,其中,所述程序运行时执行上述实施例任一项中所述的方法。
根据本公开的另一个实施例,还提供了一种处理器,所述处理器用于运行程序,其中,所述程序运行时执行上述实施例任一项中所述的方法。
附图说明
图1是根据相关技术中G.FAST/xDSL系统架构示意图;
图2是根据相关技术中TDD帧结构图;
图3是根据相关技术中cDTA不同步而产生近端串扰的示意图;
图4a是根据本公开实施例提供的一种时间分配方法的流程图;
图4b是根据本公开实施例提供的另一种时间分配方法的流程图;
图4c是根据本公开实施例提供的又一种时间分配方法的流程图;
图5是根据本公开实施方式1提供的一种cDTA更新流程示意图;
图6是根据本公开实施方式2提供的另一种cDTA更新流程示意图;
图7是根据本公开实施方式3提供的还一种cDTA更新流程示意图;
图8是本公开实施例提供的一种时间分配系统的结构示意图。
具体实施方式
本申请文件的技术方案可以应用于铜缆接入系统中,局端可以是光网络单元的FAST收发器(Fast Transceiver Unit at the Optical network unit,FTU-O),终端可以是位于远程站点的FAST收发器(Fast Transceiver Unit at the Remote site,FTU-R),但是,不局限于此。
实施例一
在本实施例中提供了一种运行上述网络架构的时间分配方法,图4a是根据本公开实施例的一种时间分配方法的流程图,如图4a所示,该流程包括如下步骤:
步骤402,局端接收到动态时间调整DTA更新请求消息;
步骤404,该局端执行以下操作至少之一:依据该DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;
步骤406,该局端将DTA配置消息发送至终端。
通过上述步骤,终端接收到DRA发送的DTA更新请求消息;该终端执行以下操作至少之一:依据该DTA更新请求消息确定更新的时分双工TDD帧配置参数,和/或确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置信息发送至局端。采用上述技术方案,解决了相关技术中动态时间调整过程中,线对之间产生串扰的问题,局端等设备采用上述方案进行通信,大幅降低了线对之间产生的串扰,提升了通信效率。
在一实施例中,该DTA更新请求消息对应的DTA包括以下之一:独立动态时间分配(Independent Dynamic time assignment,iDTA)或协调动态时间分配(Coordinated DTA,cDTA)。
在一实施例中,该更新请求消息,包括以下信息至少之一:待更新的TDD帧或逻辑帧的下行符号数;指示采用更新的TDD帧配置信息的第一个TDD帧或逻辑帧信息;用于确定协调组或向量组中每个终端是否已经收到该DTA配置消息的指示信息。在一实施例中,该协调组或向量组可以是DRA中的局端组成的。
在一实施例中,该DTA配置消息包括以下信息至少之一:待更新的TDD帧或逻辑帧的下行符号数;DTA帧递减计数值;用于确定协调组或向量组中每个终端是否已经收到该DTA配置指令的第一指示信息。
在一实施例中,该局端在将该第一指示信息发送至终端之后,该方法还包括:该局端接收到发送的用于确定协调组或向量组中每个终端已经收到DTA配置消息的第二指示信息;该局端将该第二指示信息发送至该终端。
在一实施例中,该DTA配置消息包括以下至少之一:待更新的TDD帧下行符号数、同步信息。
在一实施例中,该同步信息包括以下至少之一:DTA帧递减计数值;用于指示协调组或向量组中每个终端是否已经收到DTA配置消息的第一指示信息。
在一实施例中,该用于减少线对之间串扰的特定传输模式,包括:该局端在TDD帧或逻辑帧中预先设置的发送符号区域内执行以下操作至少之一:发送闲置符号;发送安静符号;停止发送符号;在非健壮管理信道RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号。
在一实施例中,依据该DTA配置消息确定更新时分双工TDD帧配置的时间,以及确定是否启动减少线对之间串扰的特定传输模式,包括以下之一:该局端在帧递减计数值为零时,在该局端已经确认协调组或向量组中每个终端已经接收到DTA配置消息的情况下,依据该更新请求消息启动更新后的TDD帧进行通信,在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号;该局端在帧递减计数值为零时,在该局端未确认每个终端已经收到DTA配置消息的情况下,执行以下操作之一:依据该更新请求消息启动更新后的TDD帧进 行通信;在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号;采用该用于减少线对之间串扰的特定传输模式。
在一实施例中,在局端采用该特定传输模式进行通信之后,该方法还包括:
在该局端确定协调组或向量组中每个终端已经收到DTA配置指令消息的情况下,停止采用该特定传输模式,在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号。
在一实施例中,该局端包括位于远程站点的FAST收发器FTU-O;该终端包括位于光网络单元的FAST收发器FTU-R。
根据本公开的另一个实施例,还提供了一种时间分配方法,图4b是根据本公开实施例的另一种时间分配方法的流程图,参见图4b,该方法包括以下步骤:
步骤4100,终端接收局端发送的动态时间调整DTA配置消息;
步骤4200,依据该DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
在一实施例中,该方法还包括以下之一:当帧递减计数值为零时,在该终端确定协调组或向量组中每个终端已经接收到该DTA配置消息的情况下,该终端依据该DTA配置消息启动更新后的TDD帧或逻辑帧进行通信,以及在更新后的上行符号个数的上行符号内,发送数据符号或RMC符号;当帧递减计数值为零时,在该终端未能确认协调组或向量组中每个终已经接收到该DTA配置消息的情况下,该终端依据该DTA配置消息启动更新后的TDD帧或逻辑帧通信,以及采用第一特定传输模式进行通信。
在一实施例中,该第一特定传输模式,包括:该终端在TDD帧或逻辑帧中预先设置的上行符号区域内执行以下操作至少之一:发送闲置符号;发送安静符号;停止发送符号;在非健壮管理信道RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号。
在一实施例中,该第一特定传输模式包括以下至少之一:
在Mds.new>Mds的情况下,该终端从上行的第一个符号,到第(cDTA_SMax-(Mds.new-Mds))或(Mus.new-Mus.min)个符号上执行以下操作至少之一:发 送闲置符号;发送安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在RMC符号位置发送RMC符号;
在Mds.new<Mds的情况下,该终端从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))或(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;发送安静符号;停止发送符号;;在非RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号;
其中,Mds表示原有的下行符号数,所述Mus表示原有的上行符号数,Mds.new表示更新后的下行符号数,cDTA_SMax表示cDTA允许Mds或Mus一次调整的最大符号数;Mus.min是指通信系统设定的最小上行符号数。
在一实施例中,本申请文件中(Mds.new-Mds))等表示前后二者的差值,(cDTA_SMax+(Mds.new-Mds))等式中是加号,表示前后二者的和。
在一实施例中,在Mds.new>Mds的情况下,当Mus-cDTA_SMax≥Mus.min时,该终端从上行的第一个符号,到第(cDTA_SMax-(Mds.new-Mds))个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号;
在Mds.new>Mds的情况下,当Mus-cDTA_SMax<Mus.min时,该终端从上行的第一个符号,到第(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;不发送数据;在非RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号;
在Mds.new<Mds的情况下,当Mus-cDTA_SMax≥Mus.min时,该终端从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号;
在Mds.new<Mds的情况下,当Mus-cDTA_SMax<Mus.min时,该终端从上行的第一个符号到第(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号,且在RMC符号位置发送RMC符号;
其中,所述Mds表示原有的下行符号数,所述Mus表示原有的上行符号数,所述Mds.new表示更新后的下行符号数,所述cDTA_SMax表示协调动态时间分配cDTA允许Mds或Mus一次调整的最大符号数;所述Mus.min是指通信系统设定的最小上行符号数。
在一实施例中,该方法还包括:
该终端在预设最小数据周期的TDD帧或逻辑帧内,未接收到该DTA配置消息的情况下,该终端采用第二特定传输模式进行通信。
在一实施例中,该第二特定传输模式包括:
在(Mus-cDTA_SMax)>Mus.min的情况下,该终端从Symbol.Mus+cDTA_SMax开始只发送(Mus-cDTA_SMax)个上行安静符号或闲置符号,不发送数据符号或RMC符号;
在(Mus-cDTA_SMax)<Mus.min的情况下,该终端从Symbol.Mus+(Mus-Mus.min)开始只发送Mus.min个上行安静符号或闲置符号,不发送数据符号或RMC符号;
其中,Mus表示原有的上行符号数,cDTA_SMax表示cDTA允许Mds或Mus一次调整的最大符号数;Symbol.Mus表示原有Mus对应的第一个上行符号位置;Mus.min是指通信系统设定的最小上行符号数。
根据本公开的另一个实施例,还提供了一种时间分配方法,图4c是根据本公开实施例的又一种时间分配方法的流程图,如图4c所示,包括:
步骤41000,动态资源管理器DRA向局端发送DTA更新请求消息,其中,该更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
在一实施例中,该方法还包括:确认协调组或向量组中每个终端已经接收到局端发送的DTA配置消息;将用于确认协调组或向量组中每个终端已经接收到DTA配置消息的第二指示信息发送至该局端。
动态资源管理器(Dynamic Resource Allocation,DRA)向协调组或向量(vectoring)组中的所有FTU-O发送DTA更新请求消息,cDTA更新请求指令包括新的时分双工(Time Division Dupxing,TDD)帧(或逻辑帧)配置参数, 即待更新的TDD帧下行符号数、同步信息等;
FTU-O向FTU-R发送新的TDD帧(或逻辑帧)配置指令(即DTA配置消息),其中,DTA配置消息包括待更新的TDD帧(或逻辑帧)下行符号数、DTA帧递减计数值(DTA the Frame Decrement count,DTAFDC),用于指示待启动的基于新TDD帧配置信息的第一个TDD帧或逻辑帧的信息),和/或,用于确认每个FTU-R是否已经收到DTA配置消息的指示信息。
FTU-O和/或FTU-R根据同步信息来决定何时启动基于新的TDD帧配置信息进行TDD帧的通信以及是否启动采用避免或减少线对之间串扰的特定传输模式。
其中,同步信息包括:用于指示启用新TDD帧配置信息的第一个TDD帧或逻辑帧信息、每个FTU-R是否已经收到DTA配置消息。DTA帧递减计数值对应着再经过几个TDD帧(或逻辑帧)周期就启动新的TDD帧配置信息,每经过一个TDD帧(或逻辑帧)周期DTA帧递减计数值就减一。在一实施例中,用于确认每个FTU-R是否已经收到DTA配置消息的指示信息以Ack(all)表示:当Ack(all)=0时表示未确认每个FTU-R已经收到DTA配置消息;当Ack(all)=1时表示已确认每个FTU-R已经收到DTA配置消息。采用避免或减少线对之间串扰的特定传输模式是指FTU-O或FTU-R在TDD帧(或逻辑帧)中预先配置或设定的发送符号区域内发送闲置符号(idle symbols),或安静符号(quiet symbols),或停止发送符号,保留参考测量信道(Reference Measuring Channel,RMC)符号或者不保留RMC符号,以避免或减少潜在的线对之间的串扰。
FTU-R决定何时启动基于新的TDD帧配置信息进行TDD帧的通信以及是否启动采用避免或减少线对之间串扰的特定传输模式的判断依据如下:
(1)当FTU-R在帧递减计数值为零前收到DTA配置消息,并且确认每个FTU-R已经收到DTA配置消息,则在帧递减计数值为零时,启动基于新的TDD帧配置信息进行TDD帧的通信,并且采用正常的传输模式(即在Mus.new(更新的上行符号数)个上行符号内发送数据符号或RMC符号)而不采用用于避免或减少潜在线对之间串扰的特定传输模式。
(2)当FTU-R在帧递减计数值为零前收到DTA配置消息,但其中的Ack(all)=0(即表示头端未确认每个FTU-R已经收到DTA配置消息),则在帧递 减计数值为零时,启动基于新的TDD帧配置信息进行TDD帧的通信,并且采用用于避免或减少潜在线对之间串扰的特定传输模式;只有当确认每个FTU-R已经收到DTA配置消息,则才从用于避免或减少潜在线对之间串扰的特定传输模式转为正常的传输模式。
(3)FTU-R在设定的最小数目周期的TDD帧(或逻辑帧)周期内都未收到DTA配置消息,则采用用于避免或减少潜在线对之间串扰的特定传输模式,即在预先配置或设定的发送符号区域内发送闲置符号(idle symbols),或安静符号(quiet symbols),或停止发送符号。特定传输模式可包括:当(Mus-cDTA_SMax)>Mus.min时FTU-R从Symbol.Mus+cDTA_SMax开始只发送(Mus-cDTA_SMax)个上行quiet symbols,不发送数据符号或RMC符号;当(Mus-cDTA_SMax)<Mus.min时FTU-R从Symbol.Mus+(Mus-Mus.min)开始只发送Mus.min个上行quiet symbols,不发送数据符号或RMC符号。其中,Mus表示原有的上行符号数,cDTA_SMax表示cDTA允许Mds(或Mus)一次调整的最大符号数(步幅)。Symbol.Mus表示原有Mus对应的第一个上行符号位置。Mus.min是指系统允许或设定的最小上行符号数。
FTU-O决定何时启动基于新的TDD帧配置信息进行TDD帧的通信以及是否启动采用避免或减少线对之间串扰的特定传输模式的依据如下:
(1)当FTU-O在帧递减计数值为零前已确认每个FTU-R已经收到DTA配置消息,则在帧递减计数值为零时,启动基于新的TDD帧配置信息进行TDD帧的通信,并且采用正常的传输模式而不采用用于避免或减少潜在线对之间串扰的特定传输模式。
(2)当FTU-O在帧递减计数值为零前未确认每个FTU-R已经收到DTA配置消息,则在帧递减计数值为零时,启动基于新的TDD帧配置信息进行TDD帧的通信,或者直接采用正常的传输模式(即在Mds.new(更新的下行符号数)个下行符号内发送数据符号或RMC符号);或者采用用于避免或减少潜在线对之间串扰的特定传输模式,只有当FTU-O确认每个FTU-R都已经收到DTA配置消息,则才从用于避免或减少潜在线对之间串扰的特定传输模式转为正常的传输模式。
下面是本公开实施例的实施方式
在一实施例中,刚置零的含义是种临界状态,DAT帧递减计数值将要置零的意思。
实施方式1:
图5是根据本公开提供的一种cDTA更新流程示意图,是在Mds.new>Mds情形下DTAFDC刚置零而Ack(all)=0时的cDTA更新流程示意图,如图5所示,在该实施例中,待更新的TDD帧配置参数中的下行符号数(Mds.new)大于原来的下行符号数(Mds),流程如下所述。
(1)FTU-O向FTU-R发送新的TDD帧(或逻辑帧)配置指令(即DTA配置消息),其中DTA配置消息包括待更新的TDD帧下行符号数(Mds.new)、DTA帧递减计数值(DTAFDC)、用于确认每个FTU-R是否已经收到DTA配置消息的指示信息(以Ack(all)表示,初始值为0)。
(2)随着每经过一个TDD帧(或逻辑帧)周期DTAFDC减一,当DTAFDC达到零时,而此时Ack(all)=0(即表示未确认所有的FTU-R都收到DTA配置消息):
1)对于线路1、线路2、线路3的FTU-O,直接启动基于新的TDD帧配置信息Mds.new发送下行符号;
2)对于线路1与线路2的FTU-R,收到了DTA配置消息,并且得到的Ack(all)信息为零,因此启动基于新的TDD帧配置信息进行TDD帧的通信,并且采用用于避免或减少潜在线对之间串扰的特定传输模式,即从上行的第一个符号到第(cDTA_SMax-(Mds.new-Mds))个符号发送安静符号(quiet symbols),不发送数据符号。其中cDTA_SMax是指cDTA允许Mds一次调整的最大符号数。
3)对于线路3的FTU-R,由于未收到DTA配置消息,启动用于避免或减少潜在线对之间串扰的特定传输模式,即只发送(Mus-cDTA_SMax)个上行quiet symbols。
(3)当线路3的FTU-R收到DTA配置消息(DTAFDC=0,Ack(all)=0),启动基于新的TDD帧配置信息进行TDD帧的通信,即上行符号数为Mus.new,并且采用用于避免或减少潜在线对之间串扰的特定传输模式,即从上行的第一个符号到第(cDTA_SMax-(Mds.new-Mds))个符号发送安静符号(quiet symbols), 不发送数据。
(4)当头端确认每个FTU-R已经收到DTA配置消息,则每个FTU-O发送DTA配置消息(DTAFDC=0,Ack(all)=1),一旦FTU-R收到该配置指令后,启动正常的传输模式,即在Mus.new个符号内发送数据符号或RMC符号。
实施方式2:
图6是根据本公开提供的另一种cDTA更新流程示意图,是在Mds.new<Mds情形下DTAFDC刚置零而Ack(all)=0时的cDTA更新流程示意图,如图6所示,在该实施例中,待更新的TDD帧配置参数中的下行符号数(Mds.new)小于原来的下行符号数(Mds),流程如下所述。
(1)FTU-O向FTU-R发送新的TDD帧(或逻辑帧)配置指令(即DTA配置消息),其中DTA配置消息包括待更新的TDD帧下行符号数(Mds.new)、DTA帧递减计数值(DTAFDC)、用于确认每个FTU-R是否已经收到DTA配置消息的指示信息(以Ack(all)表示,初始值为0)。
(2)随着每经过一个TDD帧(或逻辑帧)周期DTAFDC减一,当DTAFDC达到零时,而此时Ack(all)=0(即表示未确认所有的FTU-R都收到DTA配置消息):
1)对于线路1、线路2、线路3的FTU-O,直接启动基于新的TDD帧配置信息Mds.new发送下行符号;
2)对于线路1与线路2的FTU-R,收到了DTA配置消息,并且得到的Ack(all)信息为零,因此启动基于新的TDD帧配置信息进行TDD帧的通信,并且采用用于避免或减少潜在线对之间串扰的特定传输模式,即从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))个符号发送安静符号(quiet symbols),不发送数据。其中,cDTA_SMax是指cDTA允许Mds一次调整的最大符号数。
3)对于线路3的FTU-R,由于未收到DTA配置消息,启动用于避免或减少潜在线对之间串扰的特定传输模式,即只发送(Mus-cDTA_SMax)个上行quiet symbols。
(3)当线路3的FTU-R收到DTA配置消息(DTAFDC=0,Ack(all)=0),启动基于新的TDD帧配置信息进行TDD帧的通信,即上行符号数为Mus.new, 并且采用用于避免或减少潜在线对之间串扰的特定传输模式,即从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))个符号发送安静符号(quiet symbols),不发送数据。
(4)当头端确认每个FTU-R已经收到DTA配置消息,则每个FTU-O发送DTA配置消息(DTAFDC=0,Ack(all)=1),FTU-R收到该配置指令后,启动正常的传输模式,即在Mus.new个符号内发送数据符号或RMC符号。
实施方式3:
图7是根据本公开提供的还一种cDTA更新流程示意图,是在Mds.new>Mds情形下DTAFDC刚置零且Ack(all)=1时的cDTA更新流程示意图,如图7所示,在该实施例中,待更新的TDD帧配置参数中的下行符号数(Mds.new)大于原来的下行符号数(Mds),流程如下所述:
(1)FTU-O向FTU-R发送新的TDD帧(或逻辑帧)配置指令(即DTA配置消息),其中DTA配置消息包括待更新的TDD帧下行符号数(Mds.new)、DTA帧递减计数值(DTAFDC)、用于确认每个FTU-R是否已经收到DTA配置消息的指示信息(以Ack(all)表示,初始值为0)。
(2)随着每经过一个TDD帧(或逻辑帧)周期DTAFDC减一,当DTAFDC达到零时,而此时Ack(all)=1(即表示已确认所有的FTU-R都收到DTA配置消息):
1)对于线路1、线路2、线路3的FTU-O,直接启动基于新的TDD帧配置信息Mds.new发送下行符号;
2)对于线路2与线路3的FTU-R,收到了带有Ack(all)=1的DTA配置消息,因此启动基于新的TDD帧配置信息进行TDD帧的通信,并且直接启动基于新的TDD帧配置信息Mus.new发送上行数据符号或RMC符号。
(3)当线路1的FTU-R未收到DTA配置消息(DTAFDC=0,Ack(all)=1),启动基于新的TDD帧配置信息进行TDD帧的通信,即上行符号数为Mus.new,并且采用用于避免或减少潜在线对之间串扰的特定传输模式,即从上行的第一个符号到第(cDTA_SMax-(Mds.new-Mds))个符号发送安静符号(quiet symbols),不发送数据。
(4)当线路1的FTU-R收到带有Ack(all)=1的DTA配置消息后,启动正常的传输模式,即在Mus.new个符号内发送数据符号或RMC符号。
采用上述技术方案,有效提高了cDTA更新的可靠性与健壮性,避免或减少了潜在的线对之间近端串扰与远端串扰,同时,也保证了cDTA更新的高效性,以能尽快地完成TDD帧传输参数的动态调整,有利于线路能基于上下行流量情况快速进行上下行符号数的调整。
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根据上述实施例的方法可借助软件加通用硬件平台的方式来实现,当然也可以通过硬件。基于这样的理解,本公开的技术方案本质上或者说对相关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一个存储介质(如只读存储器(Read Only Memory,ROM)/随机存取存储器(Random Access Memory,RAM)、磁碟、光盘)中,包括多个指令用以使得一台终端(可以是手机,计算机,服务器,或者网络设备等)执行本公开一个或多个实施例所述的方法。
实施例二
在本实施例中还提供了一种时间分配装置,该装置用于实现上述实施例及实施方式,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件和/或硬件的组合。尽管以下实施例所描述的装置可以以软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
根据本公开的一个实施例,提供了一种时间分配装置,该装置可应用于FTU-O,该装置包括:
第一接收模块,设置为接收到动态时间调整DTA更新请求消息;
第一执行模块,设置为执行以下操作至少之一:依据该DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;以及
将DTA配置消息发送至位于远程站点的FAST收发器终端。
上述装置可以执行由局端执行的实施例所述的方法。
根据本公开的一个实施例,提供了一种时间分配装置,该装置可应用用于 FTU-R,该装置包括:
第二接收模块,设置为接收位于光网络单元的FAST收发器局端发送的动态时间调整DTA配置消息;
确定模块,设置为依据该DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
上述装置可以执行由终端执行的实施例所述的方法。
根据本公开的另一个实施例,还提供了一种时间分配装置,包括:
发送模块,设置为向局端发送更新请求消息,其中,该更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
上述装置可以执行由DRA执行的实施例所述的方法。
在一实施例中,上述一个或多个模块是可以通过软件或硬件来实现的,对于后者,可以通过以下方式实现,但不限于此:上述模块均位于同一处理器中;或者,上述一个或多个模块以任意组合的形式分别位于不同的处理器中。
实施例三
根据本公开的另一个实施例,还提供了一种存储介质,所述存储介质包括存储的程序,其中,所述程序运行时执行上述实施例所述的方法。
实施例四
根据本公开的另一个实施例,还提供了一种处理器,所述处理器设置为运行程序,其中,所述程序运行时执行上述实施例所述的方法。
实施例五
根据本公开的一个实施例,还提供了一种时间分配系统,图8为本公开实施例提供的一种时间分配系统的结构示意图,如图8所示,包括动态资源管理器DRA 810,局端820和终端830:
动态资源管理器DRA810设置为:向局端820发送DTA更新请求消息;
局端820设置为:接收该DTA更新请求消息,执行以下操作至少之一:依 据该DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置消息发送至终端830;
终端830设置为:接收到该DTA配置消息,依据该DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
在一实施例中,可以在该系统中运行上述实施例的方案。
上述的本公开的至少一个模块或至少一个步骤可以用通用的计算装置来实现,它们可以集中在单个的计算装置上,或者分布在多个计算装置所组成的网络上,在一实施例中,它们可以用计算装置可执行的程序代码来实现,从而,可以将它们存储在存储装置中由计算装置来执行,并且在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤,或者将它们分别制作成一个或多个集成电路模块,或者将它们中的多个模块或步骤制作成单个集成电路模块来实现。这样,本公开不限制于任何特定的硬件和软件结合。

Claims (26)

  1. 一种时间分配方法,包括:
    局端接收到动态时间调整DTA更新请求消息;
    所述局端执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;
    将DTA配置消息发送至终端。
  2. 根据权利要求1所述的方法,其中,所述DTA更新请求消息对应的DTA、所述DTA配置消息对应的DTA均包括以下之一:独立动态时间分配iDTA;协调动态时间分配cDTA。
  3. 根据权利要求1所述的方法,其中,所述更新请求消息,包括以下信息至少之一:
    待更新的TDD帧或逻辑帧的下行符号数;
    指示采用更新的TDD帧配置信息的第一个TDD帧或逻辑帧信息;
    用于确定协调组或向量组中每个终端是否已经收到所述DTA配置消息的指示信息。
  4. 根据权利要求1所述的方法,其中,所述DTA配置消息包括以下信息至少之一:
    待更新的TDD帧或逻辑帧的下行符号数;
    DTA帧递减计数值;
    用于确定协调组或向量组中每个终端是否已经收到所述DTA配置指令的第一指示信息。
  5. 根据权利要求4所述的方法,在所述局端将所述第一指示信息发送至终端之后,还包括:
    所述局端接收到用于确定协调组或向量组中每个终端已经收到DTA配置消息的第二指示信息;
    所述局端将所述第二指示信息发送至所述终端。
  6. 根据权利要求1所述的方法,其中,所述DTA配置消息包括以下至少之一:
    待更新的TDD帧下行符号数、同步信息。
  7. 根据权利要求6所述的方法,其中,所述同步信息包括以下至少之一:
    DTA帧递减计数值;用于指示协调组或向量组中每个终端是否已经收到DTA配置消息的第一指示信息。
  8. 根据权利要求1所述的方法,其中,所述用于减少线对之间串扰的特定传输模式,包括:
    所述局端在TDD帧或逻辑帧中预先设置的发送符号区域内执行以下操作至少之一:
    发送闲置符号;
    发送安静符号;
    停止发送符号;
    在非健壮管理信道RMC符号位置发送安静符号或闲置符号,且在所述RMC符号位置发送RMC符号。
  9. 根据权利要求1所述的方法,其中,依据所述DTA配置消息确定更新时分双工TDD帧配置的时间,以及确定是否启动减少线对之间串扰的特定传输模式,包括以下之一:
    当所述局端在帧递减计数值为零时,在所述局端已经确认协调组或向量组中每个终端已经接收到DTA配置消息的情况下,依据所述DTA更新请求消息启动更新后的TDD帧进行通信,在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号;
    当所述局端在帧递减计数值为零时,在所述局端未确认每个终端已经收到DTA配置消息的情况下,执行以下操作之一:依据所述DTA更新请求消息启动更新后的TDD帧进行通信;在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号;采用所述用于减少线对之间串扰的特定传输模式。
  10. 根据权利要求9所述的方法,在局端采用所述特定传输模式进行通信之后,还包括:
    在所述局端确定协调组或向量组中每个终端已经收到DTA配置指令消息的情况下,停止采用所述特定传输模式,在更新后的下行符号个数的下行符号内,发送数据符号或RMC符号。
  11. 根据权利要求1至10任一项中所述的方法,其中:
    所述局端包括位于光网络单元的快速接入用户终端收发器FTU-0;
    所述终端包括位于远程站点的快速接入用户终端收发器FTU-R。
  12. 一种时间分配方法,包括:
    终端接收局端发送的动态时间调整DTA配置消息;
    所述终端依据所述DTA配置消息确定以下信息至少之一:是否更新时分双工TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
  13. 根据权利要求12所述的方法,还包括以下之一:
    当在帧递减计数值为零时,在所述终端确定协调组或向量组中每个终端已经接收到所述DTA配置消息的情况下,所述终端依据所述DTA配置消息启动更新后的TDD帧或逻辑帧进行通信,以及在更新后的上行符号个数的上行符号内,发送数据符号或非健壮管理信道RMC符号;
    当在帧递减计数值为零时,在所述终端未能确认协调组或向量组中每个终端已经接收到所述DTA配置消息的情况下,所述终端依据所述DTA配置消息启动更新后的TDD帧或逻辑帧通信,以及采用第一特定传输模式进行通信。
  14. 根据权利要求13所述的方法,其中,所述第一特定传输模式,包括:
    所述终端在TDD帧或逻辑帧中预先设置的上行符号区域内执行以下操作至少之一:
    发送闲置符号;
    发送安静符号;
    停止发送符号;
    在非健壮管理信道RMC符号位置发送安静符号或闲置符号,且在所述RMC符号位置发送RMC符号。
  15. 根据权利要求13所述的方法,其中,所述第一特定传输模式包括以下至少之一:
    在Mds.new>Mds的情况下,所述终端从上行的第一个符号到第(cDTA_SMax-(Mds.new-Mds))或(Mus.new-Mus.min)个符号上执行以下操作至少之一: 发送闲置符号;发送安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    在Mds.new<Mds的情况下,所述终端从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))或(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;发送安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    其中,所述Mds表示原有的下行符号数,所述Mus表示原有的上行符号数,所述Mds.new表示更新后的下行符号数,所述cDTA_SMax表示协调动态时间分配cDTA允许Mds或Mus一次调整的最大符号数;所述Mus.min是指通信系统设定的最小上行符号数。
  16. 根据权利要求15所述的方法,包括以下至少之一:
    在Mds.new>Mds的情况下,当Mus-cDTA_SMax≥Mus.min时,所述终端从上行的第一个符号到第(cDTA_SMax-(Mds.new-Mds))个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    在Mds.new>Mds的情况下,当Mus-cDTA_SMax<Mus.min时,所述终端从上行的第一个符号到第(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;不发送数据;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    在Mds.new<Mds的情况下,当Mus-cDTA_SMax≥Mus.min时,所述终端从上行的第一个符号到第(cDTA_SMax+(Mds.new-Mds))个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    在Mds.new<Mds的情况下,当Mus-cDTA_SMax<Mus.min时,所述终端从上行的第一个符号到第(Mus.new-Mus.min)个符号上执行以下操作至少之一:发送闲置符号;安静符号;停止发送符号;在非RMC符号位置发送安静符号或闲置符号且在所述RMC符号位置发送RMC符号;
    其中,所述Mds表示原有的下行符号数,所述Mus表示原有的上行符号数,所述Mds.new表示更新后的下行符号数,所述cDTA_SMax表示协调动态时间分 配cDTA允许Mds或Mus一次调整的最大符号数;所述Mus.min是指通信系统设定的最小上行符号数。
  17. 根据权利要求13所述的方法,还包括:
    所述终端在预设最小数据周期的TDD帧或逻辑帧内,未接收到所述DTA配置消息的情况下,所述终端采用第二特定传输模式进行通信。
  18. 根据权利要求17所述的方法,其中,所述第二特定传输模式包括:
    在(Mus-cDTA_SMax)>Mus.min的情况下,所述终端从Symbol.Mus+cDTA_SMax开始只发送(Mus-cDTA_SMax)个上行安静符号或闲置符号,不发送数据符号或RMC符号;
    在(Mus-cDTA_SMax)<Mus.min的情况下,所述终端从Symbol.Mus+(Mus-Mus.min)开始只发送Mus.min个上行安静符号或闲置符号,不发送数据符号或RMC符号;
    其中,所述Mus表示原有的上行符号数,所述cDTA_SMax表示cDTA允许Mds或Mus一次调整的最大符号数;所述Symbol.Mus表示原有Mus对应的第一个上行符号位置;所述Mus.min是指通信系统设定的最小上行符号数。
  19. 一种时间分配方法,包括:
    动态资源管理器DRA向局端发送DTA更新请求消息,其中,所述所述更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
  20. 根据权利要求19所述的方法,还包括:
    确认协调组或向量组中每个终端是否已经接收到局端发送的DTA配置消息;
    将用于确认协调组或向量组中每个终端是否已经接收到DTA配置消息的第二指示信息发送至所述局端。
  21. 一种时间分配装置,包括:
    接收模块,设置为接收到动态时间调整DTA更新请求消息;
    执行模块,设置为执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;以及
    将DTA配置消息发送至终端。
  22. 一种时间分配装置,包括:
    接收模块,设置为接收局端发送的动态时间调整DTA配置消息;
    确定模块,设置为依据所述DTA配置消息确定以下信息至少之一:是否更新时分双工TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
  23. 一种时间分配装置,包括:
    发送模块,设置为向局端发送更新请求消息,其中,所述更新请求消息用于确定以下至少之一:更新的时分双工TDD帧配置参数,确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式。
  24. 一种时间分配系统,包括动态资源管理器DRA,局端和终端:
    所述动态资源管理器DRA设置为向所述局端发送动态时间调整DTA更新请求消息;
    所述局端设置为接收所述DTA更新请求消息,执行以下操作至少之一:依据所述DTA更新请求消息确定更新的时分双工TDD帧配置参数,依据所述DTA更新请求消息确定在更新TDD帧时是否启动用于减少线对之间串扰的特定传输模式;将DTA配置消息发送至终端;
    所述终端设置为:接收到所述DTA配置消息,依据所述DTA配置消息确定以下信息至少之一:是否更新TDD帧或逻辑帧,更新后的TDD帧或逻辑帧配置参数,在更新TDD帧或逻辑帧时是否启动用于减少线对之间串扰的特定传输模式。
  25. 一种存储介质,所述存储介质包括存储的程序,其中,所述程序运行时执行上述权利要求1至20任一项中所述的方法。
  26. 一种处理器,所述处理器设置为运行程序,其中,所述程序运行时执行上述权利要求1至20任一项中所述的方法。
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