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Instruction Cache Prediction Using Bayesian Networks

机译:使用贝叶斯网络的指令缓存预测

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Storing instructions in caches has led to dramatic increases in the speed at which programs can execute. However, this has also made it harder to reason about the time needed for execution in those domains where temporal behaviour of code is important. This paper presents a novel approach to predicting which instructions will be found in the cache when required using machine learning. More specifically, we demonstrate a method in which a Bayesian network is inferred from examples of a program running and is then used to predict the presence of instructions in the cache when the same program is run with unknown inputs.
机译:存储缓存中的说明导致速度增加了程序可以执行的速度。但是,这也使得在代码的时间行为重要性中的那些域中执行所需的时间更加困难。本文介绍了一种新的方法,可以预测使用机器学习时在高速缓存中找到的指令。更具体地,我们展示了一种方法,其中从运行的程序的示例推断出贝叶斯网络,然后用于在使用未知输入运行时预测高速缓存中的指令的存在。

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