提出一种改进的启发式算法来解决大尺寸稀疏图中的steiner - minimum -tree问题

C. Tran
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引用次数: 0

摘要

Steiner最小树(SMT)是一个组合优化问题,在科学和工程中有许多重要的应用。这是一个np困难类问题。近几十年来,出现了一系列基于精确解(如动态规划、分支定界)和近似解(如启发式算法、元启发式算法)方法求解SMT问题的科学论文。本文对PD-Steiner和SPT-Steiner两种启发式算法进行了改进,以解决边权不超过10的大型稀疏图中的SMT问题,并在100,000个顶点的大型稀疏图上进行了验证。这些实验结果为SMT问题的进一步研究提供了有益的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Proposing to improve the Heuristic Algorithms to Solve a Steiner-minimal-tree Problem in Large Size Sparse Graphs
Steiner Minimal Tree (SMT) is a combinatorial optimization problem that has many important applications in science and engineering; this is an NP-hard class problem. In recent decades, there have been a series of scientific papers published for solving the SMT problem based on the approaches of exact solutions (such as dynamic programming, branch and bound) and approximate solutions (such as heuristic algorithm, metaheuristic algorithm). This paper proposes an improvement for two heuristic algorithms PD-Steiner and SPT-Steiner to solve a SMT problem in large size sparse graphs with edge weight not exceeding 10 and verify this proposal on large-size sparse graphs up to 100000 vertices. These experimental results are useful information for further research on the SMT problem.
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