Multi-Type Attention for Solving Multi-Depot Vehicle Routing Problems

被引:1
|
作者
Li, Jinqi [1 ]
Dai, Bing Tian [2 ]
Niu, Yunyun [1 ]
Xiao, Jianhua [3 ]
Wu, Yaoxin [4 ]
机构
[1] China Univ Geosci Beijing, Sch Informat Engn, Beijing 100083, Peoples R China
[2] Singapore Management Univ, Sch Comp & Informat Syst, Singapore 178902, Singapore
[3] Nankai Univ, Res Ctr Logist, Tianjin 300071, Peoples R China
[4] Eindhoven Univ Technol, Fac Ind Engn & Innovat Sci, Dept Informat Syst, NL-5612 AZ Eindhoven, Netherlands
基金
中国国家自然科学基金;
关键词
Vehicle routing; Transformers; Heuristic algorithms; Decoding; Decision making; Computer architecture; Training; Deep reinforcement learning; learning to optimize; multi-depot vehicle routing problem; multi-depot open vehicle routing problem; attention mechanism; transformer model; TABU SEARCH;
D O I
10.1109/TITS.2024.3413077
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In recent years, there has been a growing trend towards using deep reinforcement learning (DRL) to solve the NP-hard vehicle routing problems (VRPs). While much success has been achieved, most of the previous studies solely focused on single-depot VRPs, which became less effective in handling more practical scenarios, such as multi-depot VRPs. Although there are many preprocessing measures, such as natural decomposition, those scenarios are still more challenging to optimize. To resolve this issue, we propose the multi-depot multi-type attention (MD-MTA) to solve the multi-depot VRP (MDVRP) and multi-depot open VRP (MDOVRP), respectively. We design a multi-type attention in the network to combine different types of embeddings and the state of the environment at each step, so as to accurately select the next node to visit and construct the route. We introduce a depot rotation augmentation to enhance solution decoding. Results show that it performs favorably against various representative traditional baselines and DRL-based baselines.
引用
收藏
页码:17831 / 17840
页数:10
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