WO2013127321A1 - Dispositif de commutation de bande de base et procédé de commutation associé - Google Patents

Dispositif de commutation de bande de base et procédé de commutation associé Download PDF

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Publication number
WO2013127321A1
WO2013127321A1 PCT/CN2013/071870 CN2013071870W WO2013127321A1 WO 2013127321 A1 WO2013127321 A1 WO 2013127321A1 CN 2013071870 W CN2013071870 W CN 2013071870W WO 2013127321 A1 WO2013127321 A1 WO 2013127321A1
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Prior art keywords
data
baseband
interface
test
protocol
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PCT/CN2013/071870
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English (en)
Chinese (zh)
Inventor
邓猛
马卫国
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电信科学技术研究院
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Publication of WO2013127321A1 publication Critical patent/WO2013127321A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic

Definitions

  • the present invention relates to the field of wireless communication technologies, and in particular, to a baseband switching device and a method for performing the same. Background technique
  • test instruments In the process of developing wireless communication devices, in order to speed up the development process, many test instruments are needed to test the devices or parts of the devices under development, including function verification, performance testing, and error location. Commonly used test instruments include frequency analyzers, signal analyzers, signal sources, oscilloscopes, channel simulators, and the like.
  • the common connection method of the current wireless communication device using the test instrument is mainly to connect the radio frequency interface (antenna interface) of the remote radio unit (RRU) of the base station to the radio interface of the test instrument through the radio frequency cable, and the connection method is as shown in FIG. 1A. .
  • the wireless communication device is mainly composed of a baseband unit (BBU) and a radio frequency unit.
  • BBU baseband unit
  • the radio frequency unit is respectively developed and tested, and then the joint test is performed. Testing and verification of equipment requires the use of test equipment for testing. Since the standard interface of the more commonly used test instruments on the market is the RF signal interface, the current wireless communication equipment should be tested using these general test instruments. It can be tested after both the baseband unit and the RF unit have been developed.
  • the baseband signal interface of the universal test instrument currently on the market cannot be directly connected to the baseband signal interface of the baseband unit.
  • the baseband unit of the base station Before the radio unit is not developed, the baseband unit of the base station has no way to test it separately using a universal test instrument, and the baseband is verified in advance.
  • the functional correctness of the unit limits the development time of the baseband unit.
  • the baseband unit and the radio unit are tested together, once an error (BUG) occurs, it takes a long time to determine which unit the error is caused, which increases the difficulty of the problem location.
  • a baseband switching device and a method for performing the same according to embodiments of the present invention are provided to solve the problem that the baseband unit existing in the prior art cannot be connected to the testing device, thereby limiting the development time of the baseband unit and appearing Increase after error Added the difficulty of locating the wrong unit.
  • a baseband data conversion module configured to convert baseband data from the device under test received by the wireless baseband interface module into an interface protocol of the test device, and send the converted baseband data to the test device through the test baseband interface module, and pass the test
  • the baseband data received by the baseband interface module is converted into an interface protocol of the device under test, and the converted baseband data is sent to the device under test through the wireless baseband interface module;
  • the wireless baseband interface module is configured to forward the transmitted baseband data between the baseband data conversion module and the device under test; and the test baseband interface module is configured to forward the transmitted baseband data between the baseband data conversion module and the test device.
  • a baseband switching device provided by an embodiment of the present invention includes:
  • the baseband data conversion module is configured to convert the baseband data received through the internal interface module into an interface protocol of the peer device, and send the converted baseband data to the peer device through the external interface module, and the received data received through the external interface module
  • the baseband data of the peer device is converted into an internally supported interface protocol, and the converted baseband data is sent through the internal interface module
  • An external interface module configured to forward the transmitted baseband data between the baseband switching device and the peer device.
  • the received baseband data from the test device is converted into an interface protocol of the device under test, and the converted baseband data is transmitted to the device under test.
  • the baseband unit can be connected to the test equipment, the development time of the baseband unit is shortened, and the difficulty of locating the wrong unit after the error is reduced;
  • FIG. 1A is a schematic diagram of a baseband signal connection in the background art
  • 1B is a schematic diagram of a baseband signal connection according to an embodiment of the present invention.
  • FIG. 2 is a schematic structural diagram of a first baseband switching device according to an embodiment of the present invention.
  • FIG. 3 is a schematic structural diagram of a second baseband switching device according to an embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of a third baseband switching device according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of a device under test according to an embodiment of the present invention
  • FIG. 6 is a schematic structural diagram of a test device according to an embodiment of the present invention
  • FIG. 7 is a schematic flow chart of a method for performing baseband digital signal switching according to an embodiment of the present invention.
  • the baseband data conversion module in the baseband switching device of the embodiment of the present invention converts the baseband data from the device under test received by the wireless baseband interface module into an interface protocol of the test device, and sends the test to the test device through the test baseband interface module.
  • the converted baseband data, and the interface protocol for converting the baseband data from the test device received by the test baseband interface module into the device under test, and transmitting the converted baseband data to the device under test through the wireless baseband interface module. Since the baseband unit can be connected to the test equipment, the development time of the baseband unit is shortened, and the difficulty of locating the wrong unit after the error is reduced is reduced.
  • the signal transmitted between the device under test and the baseband switching device is a baseband digital signal; and/or the signal transmitted between the test device and the baseband switching device is a baseband digital signal;
  • the baseband switching device obtains baseband data from the baseband digital signal.
  • the baseband switching device is connected to the device under test through a plurality of optical fibers or other data lines; and is connected to the test device through the data line.
  • the baseband switching device of the embodiment of the present invention can be connected to a time division duplex (TDD) mode wireless communication device, and can also be connected to a frequency division duplex (FDD) mode wireless communication device, and can simultaneously It supports full-duplex mode and supports connection of wireless communication devices with multi-antenna function.
  • TDD time division duplex
  • FDD frequency division duplex
  • the baseband data has multiple channels of data, and each channel corresponds to the data of one antenna.
  • a first baseband switching device includes: a baseband data conversion module 20, a wireless baseband interface module 21, and a test baseband interface module 22.
  • the baseband data conversion module 20 is configured to convert the baseband data from the device under test received by the wireless baseband interface module 21 into an interface protocol of the test device, and send the converted baseband data to the test device by testing the baseband interface module 22, and Converting the baseband data from the test device received by the test baseband interface module 22 into an interface protocol of the device under test, and transmitting the converted baseband data to the device under test through the wireless baseband interface module 21; the wireless baseband interface module 21, for Forwarding the transmitted baseband data between the baseband data conversion module 20 and the device under test;
  • the test baseband interface module 22 is configured to forward the transmitted baseband data between the baseband data conversion module 20 and the test equipment.
  • the baseband data conversion module 20 of the embodiment of the present invention may be a programmable device or a dedicated integrated circuit (ASIC), such as a Field-Programmable Gate Array (FPGA) module. Digital Signal Processor (DSP) module.
  • ASIC programmable device
  • FPGA Field-Programmable Gate Array
  • DSP Digital Signal Processor
  • the protocols supported by the wireless baseband interface module 21 include, but are not limited to, the following protocols:
  • Time Division Synchronous Code Division Multiple Access Digital Cellular Mobile Communication Network Distributed Base Station IR (TD-SCDMA IR) Interface Protocol, Common Public Radio Interface (CPRI) Protocol, China Communications Standards Association (CCSA) Defined Time Division Synchronous Code Division Multiple Access Long Term Evolution Digital Cellular Mobile Communication Network Distributed Base Station IR (TD-LTE I) interface protocol, interface protocol between mobile terminal baseband and radio frequency IC (DigRF interface protocol), connection C-RA
  • TD-SCDMA IR Time Division Synchronous Code Division Multiple Access Digital Cellular Mobile Communication Network Distributed Base Station IR
  • DIgRF interface protocol interface protocol between mobile terminal baseband and radio frequency IC
  • connection C-RA The PCIe interface of the DU device and the baseband unit of the wireless communication device and other interface protocols of the radio unit.
  • the protocols supported by the test baseband interface module 22 include, but are not limited to, the following protocols:
  • SCSI Small Computer System Interface
  • Z-DOK+ interface protocol Z-DOK+ interface protocol
  • the test baseband interface module 22 can be any of the commonly used short-range digital signal transmission interfaces, and can be serial or parallel. In the implementation, the corresponding matching interface can be selected according to the type of interface supported by the test instrument.
  • the transmit function and the receive function in the test baseband interface module 22 can also be divided into two modules.
  • the test baseband interface module 22 may further include: a test baseband output interface module 220 and a test baseband input interface module 221.
  • the test baseband output interface module 220 is configured to transmit data of the baseband data conversion module 20 to the test device; and the test baseband input interface module 221 is configured to transmit data of the test device to the baseband data conversion module 20.
  • the baseband data conversion module 20 converts the baseband data from the device under test into a protocol supported by the test device interface according to the conversion parameter, and converts the baseband data from the test device into the interface of the device under test according to the conversion parameter. protocol.
  • the interface protocol of the device under test is CPRI protocol
  • the support protocol of the test device interface is the SCSI protocol.
  • the function of the baseband data conversion module 20 is described in detail.
  • the baseband data conversion module 20 parses the data in the control and management (Control & Management, C&M) channel and the S channel and the I/Q data in the baseband data received through the wireless baseband interface module according to the conversion parameters; /Q data is divided into multiple groups, wherein each group of data belongs to the same RF channel; for a group of data, the group of data is sent through the corresponding interface in the test baseband interface module;
  • C&M Control & Management
  • the baseband data received by each interface in the test baseband interface module is composed of I/Q data; the data in the C&M channel and the S channel is filled according to the CPRI protocol data format; and the C&M channel and the S channel are Data and I/Q data are sent through the tested baseband interface module.
  • the conversion parameters used by the baseband data conversion module 20 include, but are not limited to, some or all of the following information. Department:
  • the number of antennas of the device under test the interface rate of each protocol, the base station side or the terminal side.
  • the CPRI protocol data link layer (layer 2) provides three data service interfaces: S AP!Q, SAP CM and SAP S , SAP CM and SAP S interfaces are also called C&M channels, S channels.
  • SAP IQ is a business data interface through which business data is sent and received.
  • SAP CM is a control and management data interface through which data that is controlled and managed is sent and received.
  • SAP S is a synchronous data interface, CPRI interface. The devices at both ends synchronize the data that needs to be transmitted and send and receive through the service interface.
  • the data of the SAP IQ data interface is arranged as follows: ( I , Q)1 . , (I , Q) » , ( ⁇ , Q) o , ( ⁇ , Q) ° , (1, Q) (1, Q) ⁇ (1, Q) , (1, Q), (1, Q) ; (1, Q) ⁇ (1, Q) (1, 0) (1, Q) ( ⁇ , Q)i , (i, Q, (i, Q)l, (i, Q), (i, Q), ..., (i, Q), ...
  • dividing the I/Q data into multiple groups includes:
  • the baseband data conversion module 20 outputs 8 pieces of data to the test baseband interface module 22, and each part of the data corresponds to one SCSI.
  • each pair and Q data have 2*M bits, which are expressed as In, I M-2, I M-3 '> 2, I 1 ' 1 (1, QM-1, QM-2, QM-3 ', Q 2 , Q lt Qoo
  • the number of pins used to transmit data by the SCSI interface is not less than 2*M, if The number of pins is more than (1, the number of bits of Q (the number of bits here represents the total number of bits of a pair of I/Q data, and here is assumed to be 2M), then the two data of I and Q are separately symbol-expanded so that The number of bits is equal to the number of pins.
  • Table 2 S indicates symbolic data of sign extension
  • Table 2 is only an example. As long as it can ensure that each bit of data can have at least one pin corresponding, the correspondence between any data bit and SCSI pin is applicable to the embodiment of the present invention.
  • the process of converting the SCSI data format into the CPRI data format is the inverse process described above.
  • the baseband data conversion module 20 needs to be filled according to the data format of the CPRI, and the filled content can be set, for example, It is the control and management data required by the CPRI protocol, or the feedback data required by the CPRI protocol process, or any other data; the CPRI data format can be found in the CPRI Specification V4.2 protocol.
  • the conversion parameters used by the baseband data conversion module 20 may be pre-stored in the baseband data conversion module 20; or may be set as needed.
  • the third baseband switching device of the embodiment of the present invention includes: a control and synchronization module 23.
  • the control and synchronization module 23 is configured to configure a conversion parameter for the baseband data conversion module 20 according to the configuration information.
  • the tester inputs configuration information including the conversion parameters to the control and synchronization module 23 through the human-machine interface. After receiving the configuration information, the control and synchronization module 23 can configure the conversion parameters for the baseband data conversion module 20.
  • the control and synchronization module 23 is further configured to configure, for the baseband data conversion module 20, the interface of the device under test according to the configuration information.
  • control and synchronization module 23 can synchronize according to the synchronization data (ie, the data in the S channel) in the baseband data received by the baseband data conversion module 20 through the wireless baseband interface module;
  • the control and synchronization module 23 can also synchronize according to the synchronization signal received via the synchronization interface.
  • the baseband switching device of the embodiment of the present invention may further include a built-in power module for supplying power to the baseband switching device; and the baseband switching device may be directly powered by the external power source.
  • the baseband switching device of the embodiment of the present invention may be a device under test or a test device.
  • the baseband data conversion module 20 converts the baseband data received by the internal interface module into an interface protocol of the peer device, and transmits the converted baseband data to the peer device through the external interface module, and receives the received baseband module through the external interface module.
  • the baseband data from the peer device is converted into an internally supported interface protocol, and the converted baseband data is sent through the internal interface module;
  • An external interface module configured to forward the transmitted baseband data between the baseband switching device and the peer device.
  • the baseband switching device is a device under test
  • the peer device is a test device
  • the external interface module is a test baseband interface module 21, as shown in FIG. 5;
  • the baseband switching device is a test device
  • the peer device is a device under test
  • the external interface module is a wireless baseband interface module 22 as shown in FIG.
  • the baseband data conversion module 20 converts the baseband data received through the internal interface module into an interface protocol of the peer device according to the conversion parameter, and converts the baseband data from the opposite device received through the external interface module according to the conversion parameter.
  • An internally supported interface protocol is an internally supported interface protocol.
  • the baseband switching device is a device under test, and the external interface module is a SCSI protocol;
  • the baseband data conversion module 20 parses the data in the C&M channel and the S channel and the I/Q data in the baseband data received through the internal interface module according to the conversion parameters; and divides the I/Q data into a plurality of groups according to the conversion parameters, wherein each The group data belongs to the same RF channel; for a group of data, the group of data is sent through the corresponding interface in the external interface module; and the baseband data received through each interface in the external interface module is composed of I/ according to the conversion parameter.
  • Q data fills the data in the C&M channel and the S channel according to the CPRI protocol data format; and sends the data in the C&M channel and the S channel and the I/Q data through the internal interface module.
  • the baseband data conversion module 20 parses the data in the C&M channel and the S channel in the baseband data received through the external interface module according to the conversion parameter, and /Q data; according to the conversion parameters, the I/Q data is divided into multiple groups, wherein each group of data belongs to the same RF channel; for a group of data, the group of data is sent through the corresponding interface in the internal interface module;
  • the parameter, the baseband data received through each interface in the internal interface module is composed of I/Q data; the data in the C&M channel and the S channel is filled according to the CPRI protocol data format; and the data in the C&M channel and the S channel and I /Q data is sent via the external interface module.
  • control and synchronization module 23 configures the conversion parameters for the baseband data conversion module 20 according to the configuration information; correspondingly, if the baseband switching device is the device under test, the control and synchronization module 23 configures the baseband data conversion module according to the configuration information.
  • the control and synchronization module 23 configures the protocol supported by the interface of the device under test for the baseband data conversion module based on the configuration information.
  • the current connection method can only directly test and measure the RF signal of the device under test, and cannot directly test and measure the baseband signal of the device under test. This makes the test measurement of the baseband unit equipment affected by the development progress of the RF unit, which affects the development cycle of the product to some extent. Since the embodiment of the present invention can realize the connection between the baseband unit and the test equipment, the development time of the baseband unit is shortened
  • the current connection method cannot test and measure the baseband unit separately. It can only test and measure the whole baseband unit and the RF unit. It can not effectively locate the error or deviation and increase the test positioning time. Since the embodiment of the present invention enables the baseband unit to be connected to the test equipment, it is difficult to locate the wrong unit after an error occurs.
  • the former connection method requires that the test instrument must have a radio frequency unit, thereby increasing the cost of the test instrument and increasing the cost of using the test instrument by the equipment manufacturer. Since the embodiment of the present invention can realize the transmission of the baseband signal between the test instrument and the device under test, the cost of the test instrument is reduced.
  • a method for performing the handover is also provided in the embodiment of the present invention.
  • the principle of solving the problem is similar to the baseband switching device in the embodiment of the present invention. Therefore, the implementation of the method can be referred to the implementation of the device. The repetitions are not repeated here.
  • the method for performing handover in the embodiment of the present invention includes the following steps:
  • Step 701 Convert the received baseband data from the device under test into an interface protocol of the test device, and send the converted baseband data to the test device;
  • Step 702 Convert the received baseband data from the test device into an interface protocol of the device under test, and send the converted baseband data to the device under test.
  • step 701 is performed. If the baseband data of the test device is received, step 702 is performed. That is to say, step 701 and step 702 may be performed simultaneously, or step 701 may be performed first, or step 702 may be performed first.
  • step 701 the baseband data from the device under test is converted into a protocol supported by the test device interface according to the conversion parameter;
  • the baseband data from the test device is converted into a protocol supported by the device under test interface according to the conversion parameter.
  • the interface protocol of the device under test is the CPRI protocol
  • the support protocol of the test device interface is the SCSI protocol:
  • the received C&M channel and the S channel in the baseband data from the device under test are parsed according to the conversion parameters.
  • Data in and I/Q data; according to conversion parameters, I/Q data is divided into groups, each of which The data belongs to the same RF channel; each set of data is sent to the test equipment separately.
  • the interface protocol of the device under test is the CPRI protocol
  • the support protocol of the test device interface is the SCSI protocol:
  • the received sets of data from the test device are combined into I/Q data according to the conversion parameters;
  • the data in the C&M channel and the S channel are filled according to the CPRI protocol data format;
  • the data in the C&M channel and the S channel and the I/Q data are sent to the device under test.
  • the method further includes:
  • Synchronization is based on the received sync signal.
  • embodiments of the present invention can be provided as a method, system, or computer program product. Accordingly, the present invention may take the form of an entirely hardware embodiment, an entirely software embodiment, or a combination of software and hardware. Moreover, the invention can take the form of a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer usable program code.
  • a computer program product embodied on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer usable program code.
  • the computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing device to operate in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture comprising the instruction device.
  • the apparatus implements the functions specified in one or more blocks of a flow or a flow and/or block diagram of the flowchart.
  • These computer program instructions can also be loaded onto a computer or other programmable data processing device such that a series of operational steps are performed on a computer or other programmable device to produce computer-implemented processing for execution on a computer or other programmable device.
  • the instructions provide steps for implementing the functions specified in one or more of the flow or in a block or blocks of a flow diagram.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

Certains modes de réalisation de la présente invention concernent le domaine technique des communications sans fil et plus particulièrement un dispositif de commutation de bande de base et procédé de commutation destiné au dispositif de commutation de bande de base, qui sont utilisés pour remédier au problème associé à l'art antérieur selon lequel une unité de bande de base ne peut pas se connecter à un dispositif de test, limitant ainsi le temps de développement de l'unité de bande de base, et augmentant les difficultés de positionnement d'une unité erronée après qu'une erreur se soit produite. Conformément à un mode de réalisation de la présente invention, le dispositif de commutation de bande de base comprend un module de conversion de données de bande de base destiné à convertir des données de bande de base reçues d'un dispositif à tester par l'intermédiaire d'un module d'interface de bande de base sans fil en un protocole d'interface du dispositif de test, à transmettre le protocole d'interface au dispositif de test par l'intermédiaire d'un module d'interface de bande de base de test, à convertir les données de bande de base reçues du dispositif de test par l'intermédiaire du module d'interface de bande de base de test en un protocole d'interface du dispositif à tester, et à transmettre le protocole d'interface au dispositif à tester par l'intermédiaire du module d'interface de bande de base sans fil. Comme l'unité de bande de base peut être connectée au dispositif de test, le temps de développement de l'unité de bande de base est réduit et la difficulté de positionnement d'une unité erronée après qu'une erreur s'est produite est réduite.
PCT/CN2013/071870 2012-02-29 2013-02-26 Dispositif de commutation de bande de base et procédé de commutation associé WO2013127321A1 (fr)

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Families Citing this family (7)

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Publication number Priority date Publication date Assignee Title
CN102594829B (zh) * 2012-02-29 2014-08-06 电信科学技术研究院 一种基带转接设备及其进行转接的方法
CN104053174B (zh) * 2014-05-29 2018-03-27 大唐移动通信设备有限公司 基于fpga基带单元设备rru接口协议自适应的方法及装置
CN104994090A (zh) * 2015-06-29 2015-10-21 上海华为技术有限公司 一种数据帧转换方法及装置、通信节点、通信***
CN110062437B (zh) * 2018-01-19 2020-11-06 大唐移动通信设备有限公司 一种射频拉远单元rru快速接入基站的方法及基站
CN109257117A (zh) * 2018-09-26 2019-01-22 郑州云海信息技术有限公司 一种通用公共无线接口测试方法和***
CN113395715B (zh) * 2020-03-12 2023-04-07 中移(成都)信息通信科技有限公司 基站物理层的测试方法、装置、设备及存储介质
CN115001600A (zh) * 2022-05-30 2022-09-02 Oppo广东移动通信有限公司 一种射频发射***测试方法、***和设备

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101183900A (zh) * 2007-11-23 2008-05-21 深圳国人通信有限公司 一种基带拉远射频子***rru测试方法、***及模拟bbu装置
CN101360311A (zh) * 2007-07-30 2009-02-04 大唐移动通信设备有限公司 一种测试维护***及方法
WO2011124175A2 (fr) * 2011-05-12 2011-10-13 华为技术有限公司 Station de base
CN102594829A (zh) * 2012-02-29 2012-07-18 电信科学技术研究院 一种基带转接设备及其进行转接的方法

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101360311A (zh) * 2007-07-30 2009-02-04 大唐移动通信设备有限公司 一种测试维护***及方法
CN101183900A (zh) * 2007-11-23 2008-05-21 深圳国人通信有限公司 一种基带拉远射频子***rru测试方法、***及模拟bbu装置
WO2011124175A2 (fr) * 2011-05-12 2011-10-13 华为技术有限公司 Station de base
CN102594829A (zh) * 2012-02-29 2012-07-18 电信科学技术研究院 一种基带转接设备及其进行转接的方法

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