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Analysis of application heartbeats: Learning structural and temporal features in time series data for identification of performance problems

机译:应用心跳分析:在时间序列数据中学习结构和时间特征,以确定性能问题

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Grids promote new modes of scientific collaboration and discovery by connecting distributed instruments, data and computing facilities. Because many resources are shared, application performance can vary widely and unexpectedly. We describe a novel performance analysis framework that reasons temporally and qualitatively about performance data from multiple monitoring levels and sources. The framework periodically analyzes application performance states by generating and interpreting signatures containing structural and temporal features from time-series data. Signatures are compared to expected behaviors and in case of mismatches, the framework hints at causes of degraded performance, based on unexpected behavior characteristics previously learned by application exposure to known performance stress factors. Experiments with two scientific applications reveal signatures that have distinct characteristics during well-performing versus poor-performing executions. The ability to automatically and compactly generate signatures capturing fundamental differences between good and poor application performance states is essential to improving the quality of service for Grid applications.
机译:网格通过连接分布式仪器,数据和计算设施来促进科学合作和发现的新模式。由于许多资源都是共享的,因此应用程序性能可能会很大而意外地变化。我们描述了一种新颖性能分析框架,其从多个监测级别和源中的性能数据进行时间和定性。该框架通过生成和解释包含时间序列数据的结构和时间特征的签名来定期分析应用程序性能状态。将签名与预期行为进行比较,并且在不匹配的情况下,基于先前通过应用程序暴露于已知性能应力因子的意外行为特征,框架提示降低性能的原因。两种科学应用的实验揭示了在表现良好与差的执行中具有明显特性的签名。自动和紧凑地生成签名捕获良好和差的应用程序性能状态之间的基本差异的能力对于提高网格应用的服务质量至关重要。

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