WO2011160377A1 - Procédé et appareil de mise en œuvre de plateforme uniforme multicoeur et multinorme - Google Patents

Procédé et appareil de mise en œuvre de plateforme uniforme multicoeur et multinorme Download PDF

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Publication number
WO2011160377A1
WO2011160377A1 PCT/CN2010/078286 CN2010078286W WO2011160377A1 WO 2011160377 A1 WO2011160377 A1 WO 2011160377A1 CN 2010078286 W CN2010078286 W CN 2010078286W WO 2011160377 A1 WO2011160377 A1 WO 2011160377A1
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Prior art keywords
base station
version
forwarding
policy
mode
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PCT/CN2010/078286
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English (en)
Chinese (zh)
Inventor
杜建华
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中兴通讯股份有限公司
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Publication of WO2011160377A1 publication Critical patent/WO2011160377A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/08Access point devices
    • H04W88/10Access point devices adapted for operation in multiple networks, e.g. multi-mode access points

Definitions

  • the invention belongs to the field of data communication, and particularly relates to a method and device for implementing a multi-core multi-system unified platform applied to a multi-mode base station.
  • the platform supports a single system, and the platform system is mainly carried in the VxWorks operating system.
  • the platform system is mainly carried in the VxWorks operating system.
  • the single system cannot realize the mutual integration of various standard base stations. Since the existing platform system is hosted on the VxWorks operating system, its characteristics determine that the platform system can only host one resource running entity (ie, software version or software process), so multi-mode systems cannot be implemented.
  • resource running entity ie, software version or software process
  • the object of the present invention is to overcome the deficiencies of the prior art, and provide a method and a device for implementing a multi-core multi-system unified platform applied to an existing base station, so that the base station platform system can realize mutual integration of various standard base stations, and is suitable for multi-core. System, improve scalability.
  • the present invention provides a method for implementing a multi-core multi-standard unified platform, including: Develop a variety of base station standards, multiple systems for multi-core application strategies, and multiple system packet forwarding policies, and configure separate interfaces for various base station standards, application policies, and forwarding policies.
  • the version information after calling the corresponding base station standard according to the base station standard information, constructing a corresponding base station standard version according to the build version information;
  • the corresponding microprocessor is bound according to the invoked application policy, and the packet is forwarded according to the invoked forwarding policy.
  • the base station system information and the build version information of the base station are acquired, and the corresponding base station system is invoked according to the base station standard information, and the corresponding base station standard version is constructed according to the build version information.
  • the steps include:
  • the corresponding base station standard version is constructed according to the called base station system and the corresponding build version information.
  • the step of running the base station version includes:
  • the various base station version versions of the build are loaded on a running third party platform.
  • the plurality of base station formats include: a time division multiple access system, a frequency division multiple access system, and a code division multiple access system; and the application strategies of the multiple systems applied to the multi-core include: the operating unit does not bind the microprocessor policy, the operating unit Partially bound microprocessor strategy and running unit fully bound microprocessor strategy;
  • the forwarding policies of the multiple system messages include: a symmetric multi-processing mode distribution policy, a user media access control mode distribution policy, and an operating system RMIOS mode distribution policy.
  • the build version information includes: an operation mode and a forwarding mode, where the The line mode includes a time division duplex mode and a frequency division duplex mode; the forwarding mode includes: a symmetric multi-processing forwarding mode, a user media access control forwarding mode, and an RMIOS forwarding mode;
  • the step of constructing the corresponding base station system version according to the build version information further includes: when constructing the base station standard version by using the symmetric multi-processing forwarding mode or the user media access control forwarding mode, carrying the base station standard version
  • the platform system depends on the operating system
  • the platform system carrying the base station version does not depend on the operating system.
  • the present invention also provides a device for implementing a multi-core multi-system unified platform, including:
  • a policy module is set up, which is configured to: formulate a plurality of base station standards, apply a plurality of systems to a multi-core application policy, and forward a plurality of system message forwarding strategies, and configure a unified interface for each base station standard, application policy, and forwarding policy;
  • a build version module which is connected to the development policy module, and configured to: acquire base station system information and build version information of the base station, invoke a corresponding base station standard according to the base station standard information, and construct a corresponding base station standard according to the build version information.
  • a policy module which is connected to the policy-making module and the build version module, and is configured to: after running the base station version, invoke a corresponding application policy and forwarding policy through a corresponding interface;
  • a running module which is connected to the build version module and the call policy module, and configured to: run the base station version; and bind a corresponding microprocessor according to the application policy, and perform “ ⁇ according to the forwarding policy Forwarding of the text.
  • the build version module includes:
  • An obtaining unit configured to acquire various base station system information of the base station and build version information corresponding to various base station systems
  • a calling unit which is connected to the obtaining unit, and configured to respectively invoke a corresponding base station system according to the various base station system information;
  • the configuration version information includes: an operation mode and a forwarding mode, where the operation mode includes a time division duplex mode and a frequency division duplex mode; and the forwarding mode includes: a symmetric multi-processing forwarding mode, user media access Controlling the forwarding mode and the operating system RMIOS forwarding mode, wherein the building version module is further configured to: if the base station system version is constructed by using the symmetric multi-processing forwarding mode or the user media access control forwarding mode, The platform version of the platform system depends on the operating system;
  • the build version module is further configured to: if the base station system version is constructed by using the RMIOS forwarding mode, the platform system carrying the base station version is not dependent on the operating system.
  • the running module includes: an operating unit and a loading unit, where
  • the operating unit is configured to trigger the loading unit after running the constructed base station version or running a third-party platform;
  • the loading unit is configured to load other base station system versions on the running base station system version, or load the constructed base station system versions on the running third party platform.
  • the various base station standards formulated by the policy formulation module include: a time division multiple access system, a frequency division multiple access system, and a code division multiple access system;
  • the application strategy of the multi-core system developed by the formulating policy module includes: a running unit unbound microprocessor strategy, a running unit partially bound microprocessor strategy, and a running unit fully bound microprocessor strategy;
  • the forwarding policies of the plurality of system messages formulated by the policy module include: a symmetric multi-processing mode distribution policy, a user media access control mode distribution policy, and an RMIOS mode distribution policy.
  • the method and apparatus for implementing a multi-core multi-system unified platform have the following beneficial effects: enabling a base station platform system to implement mutual integration of various standard base stations, suitable for multi-mode base stations, and suitable for multi-core systems;
  • the system interface is unified, the corresponding standards are formulated, and the platform system has good scalability;
  • the platform system is applicable to a wide range of applications, compatible with single-core systems, and is applicable to multi-core systems, that is, applicable to single-mode base stations and multi-mode base stations. It can also be used to implement multi-mode on one physical board or multiple physical boards. It can also be used to implement multi-mode base stations on one board.
  • the base station platform system can implement multi-mode multi-standard version management independently of each other, that is, one system version of the base station version upgrade, update, and rollback does not affect the operation of the base station version of another mode.
  • FIG. 1 is a schematic diagram of an apparatus for implementing a multi-core multi-system unified platform according to the present invention
  • FIG. 2 is a flow chart of a method for implementing a multi-core multi-system unified platform according to the present invention.
  • FIG. 1 is a schematic diagram of an apparatus for implementing a multi-core multi-system unified platform according to the present invention.
  • the apparatus of the present invention may include: a policy module 110, a build version module 120, a call policy module 130, and an operation module 140. among them,
  • the policy-making module 110 can be configured to: formulate a plurality of base station standards, apply a plurality of systems to the multi-core application policy, and forward a plurality of system messages, and configure a unified interface for each of the base station, application, and forwarding policies.
  • the established base station system may include: time division multiple access system, frequency division multiple access system and code division multiple access system, for example, Global System for Mobile Communications (GSM) standard, long term evolution (Long Term Evolution) , referred to as LTE), Code Division Multiple Access (CDMA), and so on.
  • GSM Global System for Mobile Communications
  • LTE Long Term Evolution
  • CDMA Code Division Multiple Access
  • the application strategy of the system applied to the multi-core may include: the operating unit does not bind the microprocessor policy, the operating unit partially binds the microprocessor policy, and the operating unit fully-bound microprocessor policy.
  • the forwarding policy of the system packet may include: symmetric multiprocessing (Symmetric)
  • the build version module 120 may be configured to: obtain base station system information and build version information of the base station, invoke a corresponding base station system according to the base station standard information, and construct a corresponding base station standard version according to the build version information.
  • the calling policy module 130 may be configured to: after running the base station version, invoke the corresponding application policy and forwarding policy through the corresponding interface.
  • the running module 140 may be configured to: bind the corresponding microprocessor according to the invoked application policy, and then forward the file according to the invoked forwarding policy.
  • the build version module 120 may include: an obtaining unit 121, a calling unit 122, and a building unit 123.
  • the obtaining unit 121 may be configured to acquire various base station system information of the base station and build version information corresponding to various base station formats;
  • the calling unit 122 is connected to the obtaining unit 121, and may be configured to respectively invoke a corresponding base station system according to the various base station system information;
  • the constructing unit 123 is connected to the obtaining unit 121 and the calling unit 122, and can be configured to respectively construct a corresponding base station standard version according to the called base station system and the corresponding build version information.
  • the configuration version information includes: an operation mode and a forwarding mode, where the operation mode includes a time division duplex mode and a frequency division duplex mode; the forwarding mode includes: a symmetric multi-processing forwarding mode, and a user media access control Forward mode and RMIOS forwarding mode. among them,
  • the running module 140 may include: an operating unit 141 and a loading unit 142.
  • the running unit 141 may be configured to run a built base station version or run a third-party platform, and then trigger the loading unit 142.
  • the loading unit 142 may be configured to Loading other base station standard versions on the constructed base station standard version, or loading the constructed base stations on a running third party platform Standard version.
  • FIG. 2 is a flowchart of a method for implementing a multi-core multi-system unified platform according to the present invention. As shown in FIG. 2, the method of the present invention may include the following steps:
  • Step 200 formulate a multi-core multi-system strategy.
  • the multi-core multi-standard policy may include: a base station system, a software system corresponding to the base station system, and a multi-core application policy and a system packet forwarding policy (a distribution policy forwarded to the corresponding core when the system receives the message).
  • Software systems of different base station formats may be different or identical.
  • the base station system may include two or more systems, for example, GSM, LTE, CDMA, and the like.
  • the LTE can be divided into a time division (TD)-LTE and a frequency division (FD)-LTE.
  • the application strategy applied to the multi-core system includes two or more strategies, for example, the micro-CPU that does not bind the multi-core to the running unit, the micro-CPU that binds the multi-core to the running unit, and the micro-CPU that is fully bound to the multi-core by the operating unit.
  • the unit of operation here refers to a thread or process.
  • a system of base stations whose software system corresponds to one process or multiple processes.
  • the system packet forwarding policy may include: an SMP mode distribution policy, a USER MAC mode distribution policy, and a RMIOS method distribution policy.
  • SMP mode distribution strategy It is well known in the industry. The software system runs on the operating system, and the forwarding is mainly carried out through the port number of the transport layer and through the protocol stack.
  • the USER MAC mode distribution policy is that the software system runs on the operating system, and the forwarding is forwarded at the underlying driver or interrupted packet, without going through the protocol stack.
  • the RMIOS method distribution strategy is that the software system runs on the CPU core, and the forwarding policy is directly forwarded to the corresponding micro CPU.
  • the method is configured to make the forwarding policy correspond to the application policy, for example, if the application policy is not bound, the forwarding policy is an SMP mode distribution policy; and the application policy is partially bound or fully bound, where any standard base station is used. You can choose any standard forwarding policy. Among them, the operator can formulate a multi-core multi-system strategy on the platform system, the background network management or the external entity. Step 201: Configure a unified interface for the multi-core multi-standard policy formulated above.
  • the unified base station standard includes two to three standard standards, for example, GSM, TD-LTE, CDMA, etc.; unified application policy standards include two or more Application strategy criteria, for example, CPU - NO - BINDING (running unit does not bind multi-core micro-CPU), CPU - PART - BINDING (running unit partially bound multi-core micro-CPU), CPU - ALL - BINDING (running unit completely Bind a multi-core micro CPU).
  • the unified forwarding policy standard includes two or more forwarding policy standards, such as CPU SMP RECEIVEING, CPU USERMAC RECEIVEING, and CPU_RMIOS_RECEIVEING.
  • the configuration of the unified interface can include: Configuring a unified base station interface, binding the corresponding core interface and packet forwarding policy interface according to the application policy.
  • the application policy is bound to the interface of the corresponding core and the forwarding policy interface of the corresponding core, so that the running unit binds the microprocessor, and the specific information of the interface that binds the corresponding core by the application policy includes at least the process name, the process identifier, and the thread name. , thread identification, CPU nucleotary code value and other information. Among them, the CPU affinity code value represents the running entity binding the corresponding microprocessor.
  • Step 202 Obtain base station system information and build version information of the base station, and build a version of the base station system by constructing version information.
  • the information of the base station build version may mainly include: base station standard information, operation mode information, and forwarding mode information.
  • the specific implementation of the base station standard version includes: calling the corresponding base station according to the base station standard information
  • the system, and the corresponding base station version is constructed according to the operation mode information and the forwarding mode information.
  • the base station is a single-system base station, such as GSM.
  • GSM Global System for Mobile communications
  • the base station sends its own base station system information, operation mode information, and forwarding mode information to the platform, for example, GSM, Time Division Duplexing. , referred to as TDD) and SMP forwarding mode.
  • the platform After the platform obtains information such as GSM, TDD, and SMP forwarding modes, it calls the established GSM base station standard, uses the TDD method to construct the GSM version, and the GSM version runs the platform system to be carried on the operating system.
  • GSM Global System for Mobile Communications
  • the base station is a two-standard base station, for example, including GSM and TD-LTE.
  • the base station sends its own multi-base station system information, operation mode information, and forwarding mode information to the platform, for example, GSM, TDD and SMP forwarding modes; TD-LTE, TDD and USER MAC forwarding modes.
  • the GSM version and the TD-LTE version are respectively constructed as described above. If the base station is a base station having two or more standards, the operation principle is the same as that of the above-mentioned two-standard base station, and the details are not described herein again.
  • the TD-LTE is invoked, and the TD-LTE version is built by using the TDD method, and the platform system carrying the TD-LTE version is carried on the operating system. And has the USER MAC function.
  • the FD-LTE is set up, and the FD-LTE version is built by using the Frequency Division Duplex (FDD) method to carry the FD.
  • FDD Frequency Division Duplex
  • Step 203 Run the constructed base station version.
  • the platform system hosting the version needs to depend on the operating system.
  • the application policy defaults to the running unit without binding the microprocessor, and the forwarding policy defaults to CPU-SMP-RECEIVEING. Since the GSM uplink and downlink rate is less than 10 Mbps, the SMP mode distribution policy can reach a rate of 20-50 Mbps. Therefore, using the operating system in a multi-core system The supplied interface is processed to meet the demand.
  • the platform system hosting the version needs to depend on the operating system and have the USER MAC function.
  • the USER MAC function takes precedence over the SMP mode function.
  • the default forwarding policy can run unit-part bound or fully-bound microprocessors, and the forwarding policy defaults to CPU—USER MAC—RECEIVEING. Since the TD-LTE uplink and downlink rate needs to reach 300 Mbps, and the SMP mode rate can reach 20--50 Mbps, the USER MAC mode can reach 200 M---600 Mbps. Therefore, the SMP mode cannot meet the requirement, and the forwarding policy preferably uses USER. MAC mode.
  • this version of the platform system does not need to rely on the operating system, and it has RMIOS functionality.
  • the FD-LTE uplink and downlink rate needs to reach 500Mbps, while the USER MAC mode can reach 200M---600Mbps, and the RMIOS can reach the speed limit of 900Mbps. Therefore, the forwarding strategy is more suitable for the RMIOS mode.
  • multiple base station standards are built on the platform system, they can be run independently, for example, the GSM version and the TD-LTE version respectively; or one of the versions can be run first, and another version can be loaded on the running version; It is also possible to load the GSM version and the TD-LTE version through a third-party platform. After running the GSM version and the TD-LTE version, the corresponding application policies and forwarding policies are respectively invoked.
  • Step 204 Invoking the corresponding application policy and forwarding policy respectively, and the platform system is loaded and bound to the corresponding multi-core processor according to the application policy.
  • the forwarding policy is SMP mode distribution policy
  • the corresponding CPU affinity code is 0x0001, indicating: The micro CPU is not bound, and the CPU affinity code is invalid.
  • the application policy is partially bound, the forwarding policy is USER MAC mode, and the corresponding CPU affinity code is 0x0002, indicating: The running unit is bound to the second CPU.
  • the application policy is fully bound
  • the forwarding policy is RMIOS mode
  • the corresponding CPU affinity code is OxOOOf, indicating:
  • the running unit is bound to CPUs No. 1, 2, 3, and 4.
  • Step 205 The platform system forwards the packet according to the corresponding forwarding policy. For example, after running the GSM version, the SMP mode distribution policy is invoked, and the platform system carrying the GSM version runs on the operating system. When there is a corresponding service to be forwarded, the port number of the transport layer is mainly forwarded by the port number of the transport layer. After the protocol stack.
  • the USER MAC mode is used to distribute the policy, and the platform system that carries the TD-LTE version runs on the operating system.
  • the underlying driver or the interrupted packet needs to be used. Packet forwarding is performed without going through the protocol stack.
  • the RMIOS method is used to distribute the policy.
  • the platform system that carries the FD-LTE version runs on the CPU core.
  • the packet is directly forwarded to the corresponding micro CPU. on.
  • the version management of each base station system on the platform system is independent of each other, that is, the upgrade, update, and rollback of a base station version of one mode does not affect the base station version operation of another mode.
  • the method and device for realizing the multi-core multi-system unified platform enable the base station platform system to realize mutual integration of various standard base stations, and is suitable for multi-mode base stations, and is suitable for multi-core systems; the platform system interface is unified, and corresponding Standard, platform system scalability is good; the platform system is applicable to a wide range of applications, compatible with single-core systems, and suitable for multi-core systems, that is, for single-mode base stations and multi-mode base stations.
  • the method and device for realizing the multi-core multi-system unified platform enable the base station platform system to realize the mutual integration of various standard base stations, and is suitable for multi-mode base stations, and is suitable for multi-core systems; the platform system interface is unified, and the corresponding Standard, platform system scalability is good; the platform system is applicable to a wide range of applications, compatible with single-core systems, and suitable for multi-core systems, that is, for single-mode base stations and multi-mode base stations.

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

Abstract

La présente invention porte sur un procédé et un appareil appliqués à une station de base existante pour mettre en œuvre une plateforme uniforme multicoeur et multinorme, le procédé consistant à : établir une pluralité de normes de station de base, une pluralité de stratégies d'application appliquées par un système à une pluralité de cœurs et une pluralité de stratégies d'acheminement de messages système, et configurer une interface uniforme pour chaque norme de station de base, chaque stratégie d'application et chaque stratégie d'acheminement respectivement; acquérir les informations de norme de station de base et les informations de version de construction pour la station de base, et après invocation de la norme de station de base établie correspondante sur la base des informations de la norme de station de base, construire une version de norme correspondante de la station de base sur la base des informations de version de construction; exécuter la version de la norme de station de base; invoquer la stratégie d'application et la stratégie d'acheminement établies correspondantes par l'intermédiaire d'une interface correspondante; associer un microprocesseur correspondant sur la base de la stratégie d'application invoquée, et ensuite acheminer un message sur la base de la stratégie d'acheminement invoquée. La présente invention permet à un système de plateforme de station de base de mettre en œuvre la fusion mutuelle pour des stations de base de diverses normes, et elle est applicable à un système multicoeur et augmente également l'extensibilité.
PCT/CN2010/078286 2010-06-23 2010-11-01 Procédé et appareil de mise en œuvre de plateforme uniforme multicoeur et multinorme WO2011160377A1 (fr)

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