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FANG: Fast and Efficient Successor-State Generation for Heuristic Optimization on GPUs

机译:方:GPU上启发式优化的快速高效的继任国家一代

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Many optimization problems (especially nonsmooth ones) are typically solved by genetic, evolutionary, or metaheuristic-based algorithms. However, these genetic approaches and other related papers typically assume the existence of a neighborhood or successor-state function N(x), where i is a candidate state. The implementation of such a function can become arbitrarily complex in the field of combinatorial optimization. Many N(x) functions for a huge variety of different domain-specific problems have been developed in the past to solve this general problem. However, it has always been a great challenge to port or realize these functions on a massively-parallel architecture like a Graphics Processing Unit (GPU). We present a GPU-based method called FANG that implements a generic and reusable N(x) for arbitrary domains in the field of combinatorial optimization. It can be customized to satisfy domain-specific requirements and leverages the underlying hardware in a fast and efficient way by construction. Moreover, our method has a high scalability with respect to the number of input states and the complexity of a single state. Measurements show significant performance improvements compared to traditional exploration approaches leveraging the CPU on our evaluation scenarios.
机译:许多优化问题(尤其是非光滑肌)通常由基于遗传,进化或成群质的算法来解决。然而,这些遗传方法和其他相关论文通常假设存在邻域或继承状态函数n(x),其中我是候选状态。这种函数的实现可以在组合优化领域任意复杂。在过去开发了许多N(x)用于各种不同域特定问题的功能,以解决这一普遍问题。但是,它始终是港口的巨大挑战,或者在像图形处理单元(GPU)这样的大规模架构上实现这些功能。我们介绍了一种名为fang的基于GPU的方法,它在组合优化领域的任意域实现了一种通用和可重用的n(x)。它可以自定义以满足特定于域的要求,并通过施工以快速有效的方式利用底层硬件。此外,我们的方法具有关于输入状态的数量和单个状态的复杂性的高可扩展性。与利用CPU的评估方案采用CPU的传统勘探方法,测量结果表现出显着的性能改进。

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