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Service Oriented Grid Computing Architecture for Distributed Learning Classifier Systems

机译:面向分布式学习分类器系统的面向服务的网格计算体系结构

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Grid computing architectures are suitable for solving the challenges in the area of data mining of distributed and complex data. Service oriented grid computing offer synchronous or asynchronous request and response based services between grid environment and end users. Gridclass is a distributed learning classifier system for data mining proposes and is the combination of different isolated tasks, e.g. managing data, executing algorithms, monitoring performance, and publishing results. This paper presents the design of a service oriented architecture to support the Gridclass tasks. Services are represented in three levels based on their functional criteria such as the user level services, learning grid services and basic grid services. The results of an experimental test on the performance of system are presented. The benefits of such approach are object of discussion.
机译:网格计算体系结构适合解决分布式和复杂数据的数据挖掘领域中的挑战。面向服务的网格计算在网格环境和最终用户之间提供基于同步或异步请求和响应的服务。 Gridclass是用于数据挖掘的分布式学习分类器系统,是不同隔离任务(例如管理数据,执行算法,监视性能以及发布结果。本文提出了一种支持Gridclass任务的面向服务的体系结构的设计。服务根据其功能标准分为三个级别,例如用户级别服务,学习网格服务和基本网格服务。给出了系统性能的实验测试结果。这种方法的好处是讨论的对象。

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