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Decision Tree-based Throughput Estimation to Accelerate Design Space Exploration for Multi-Core Applications

机译:基于决策树的吞吐量估计,以加速多核应用的设计空间探索

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This paper presents a new approach to estimate the throughput of real-world dataflow applications mapped to multi-core systems based on decision trees. Design Space Exploration (DSE) is employed to explore the mapping alternatives of a given application to a multi-core architecture to find the highest throughput solutions. Here, a fast evaluation of the throughput of a single implementation is required. However, simulation-based as well as measurement-based evaluation approaches impose often unaffordably high evaluation times. During a DSE, this evaluation time is particularly critical, as typically thousands of solutions need to be evaluated. Obviously, there exists a trade-off between evaluation accuracy and time for evaluating the throughput of an implementation. This paper presents a solution exploiting this trade-off by proposing a decision tree-based approach consisting of a trained decision tree model used as a throughput evaluator by the DSE. We show that a well-trained evaluator is able to estimate the throughput of an implementation about 20x faster than using a measurement-based evaluation. Moreover, in order to deliver a sufficient accuracy, our DSE approach uses decision tree-based valuations 90% of the time and measurement-based evaluations for the remaining 10%. On average, the resulting DSE approach is able to find Pareto-fronts about 8x faster than a reference DSE using measurements only with equal quality.
机译:本文介绍了一种新方法来估算基于决策树映射到多核系统的现实数据流量应用的吞吐量。设计空间探索(DSE)被用于探索给定应用程序的映射替代品,以找到最高吞吐量解决方案。这里,需要快速评估单个实现的吞吐量。然而,基于仿真的和基于测量的评估方法普遍不足的高评价时间。在DSE期间,该评估时间特别关键,通常需要评估数千个解决方案。显然,评估准确性和时间之间存在权衡,以评估实施吞吐量。本文通过提出由DSE用作吞吐量评估器的训练决策树模型组成的基于树的方法,提出了一种利用此权衡的解决方案。我们表明,训练有素的评估员能够估计比使用基于测量的评估更快的实现的吞吐量。此外,为了提供足够的准确性,我们的DSE方法利用基于决策树的估值来实现90%的时间和基于测量的评估。平均而言,由此产生的DSE方法能够比仅具有相同质量的测量值更快地找到比参考DSE快8倍的静脉前线。

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