cs.AI updates on arXiv.org 10月13日
随机化HyperSteiner在超空间Steiner树构建中的应用
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本文研究了在超空间中构建Steiner最小树(SMTs)的问题,提出了一种名为Randomized HyperSteiner(RHS)的随机Delaunay三角剖分启发式算法,并通过实验证明其在多种数据模式下的有效性和鲁棒性。

arXiv:2510.09328v1 Announce Type: cross Abstract: We study the problem of constructing Steiner Minimal Trees (SMTs) in hyperbolic space. Exact SMT computation is NP-hard, and existing hyperbolic heuristics such as HyperSteiner are deterministic and often get trapped in locally suboptimal configurations. We introduce Randomized HyperSteiner (RHS), a stochastic Delaunay triangulation heuristic that incorporates randomness into the expansion process and refines candidate trees via Riemannian gradient descent optimization. Experiments on synthetic data sets and a real-world single-cell transcriptomic data show that RHS outperforms Minimum Spanning Tree (MST), Neighbour Joining, and vanilla HyperSteiner (HS). In near-boundary configurations, RHS can achieve a 32% reduction in total length over HS, demonstrating its effectiveness and robustness in diverse data regimes.

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Steiner树 超空间 随机算法 启发式 优化
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