cs.AI updates on arXiv.org 10月07日 12:18
PolyNet:基于学习的组合优化问题解空间探索方法
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本文提出了一种名为PolyNet的新方法,通过学习互补的解策略来提高组合优化问题解空间的探索效率。与现有方法不同,PolyNet仅使用单一解码器,并通过训练方案而不是手工规则强制多样化解的产生,有效提升了求解质量。

arXiv:2402.14048v2 Announce Type: replace-cross Abstract: Reinforcement learning-based methods for constructing solutions to combinatorial optimization problems are rapidly approaching the performance of human-designed algorithms. To further narrow the gap, learning-based approaches must efficiently explore the solution space during the search process. Recent approaches artificially increase exploration by enforcing diverse solution generation through handcrafted rules, however, these rules can impair solution quality and are difficult to design for more complex problems. In this paper, we introduce PolyNet, an approach for improving exploration of the solution space by learning complementary solution strategies. In contrast to other works, PolyNet uses only a single-decoder and a training schema that does not enforce diverse solution generation through handcrafted rules. We evaluate PolyNet on four combinatorial optimization problems and observe that the implicit diversity mechanism allows PolyNet to find better solutions than approaches that explicitly enforce diverse solution generation.

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PolyNet 组合优化 解空间探索 强化学习 互补策略
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