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Randomized Accuracy-Aware Program Transformations For Efficient Approximate Computations

机译:高效的近似计算的随机精度计算程序转换

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Despite the fact that approximate computations have come to dominate many areas of computer science, the field of program transformations has focused almost exclusively on traditional semantics-preserving transformations that do not attempt to exploit the opportunity, available in many computations, to acceptably trade off accuracy for benefits such as increased performance and reduced resource consumption. We present a model of computation for approximate computations and an algorithm for optimizing these computations. The algorithm works with two classes of transformations: substitution transformations (which select one of a number of available implementations for a given function, with each implementation offering a different combination of accuracy and resource consumption) and sampling transformations (which randomly discard some of the inputs to a given reduction). The algorithm produces a (1 + ε) randomized approximation to the optimal randomized computation (which minimizes resource consumption subject to a probabilistic accuracy specification in the form of a maximum expected error or maximum error variance).
机译:尽管事实上,近似计算已成为计算机科学的许多领域,但是程序转换领域几乎只专注于传统的保留语义的转换,这些转换并不试图利用许多计算中可用的机会来取舍准确性。获得诸如提高性能和减少资源消耗之类的好处。我们提出一种用于近似计算的计算模型和一种用于优化这些计算的算法。该算法可用于两类转换:替换转换(为给定功能选择多种可用实现中的一种,每种实现提供准确性和资源消耗的不同组合)和采样转换(随机丢弃某些输入)到给定的减少量)。该算法将生成一个(1 +ε)随机近似值,以最佳化随机计算(这将以最大预期误差或最大误差方差形式出现的概率精度指标最小化的资源消耗最小化)。

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