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Enhancement of data oriented grid scheduling using dynamic error detection

机译:使用动态错误检测增强面向数据的网格调度

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Traditional distributed computing systems closely couple data handling and computation. The key features of the first batch scheduler specialized in data placement and data movement is Stork. Stork is especially designed to understand the semantics and characteristics of data placement tasks, which can include data transfer, storage allocation and de-allocation, data removal, metadata registration and replica location. The Stork also has its own drawbacks in detecting the failures resulting from back-end system level problems, like connectivity failure which is technically untraceable by users. Error messages are not logged efficiently, and sometimes are not relevant/useful from users' point-of-view. Our study explores the possibility of efficient error detection and reporting system for such environments. Besides, early error detection and error classification have great importance in organizing data placement jobs. It is necessary to have well defined error detection and error reporting methods to increase the usability and serviceability of existing data transfer protocols and data management systems.
机译:传统的分布式计算系统将数据处理和计算紧密地结合在一起。 Stork是第一个专门用于数据放置和数据移动的批处理调度程序的关键功能。 Stork专为了解数据放置任务的语义和特性而设计,其中可以包括数据传输,存储分配和取消分配,数据删除,元数据注册和副本位置。 Stork在检测后端系统级问题导致的故障方面也有其自身的缺点,例如用户无法从技术上跟踪的连接故障。错误消息没有被有效地记录,有时从用户的角度来看是不相关的/无用的。我们的研究探索了针对此类环境的有效错误检测和报告系统的可能性。此外,早期错误检测和错误分类在组织数据放置作业中也非常重要。必须具有定义明确的错误检测和错误报告方法,以增加现有数据传输协议和数据管理系统的可用性和可维护性。

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