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INViT: A Generalizable Routing Problem Solver with Invariant Nested View Transformer

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arxiv 2402.02317 v3 pith:FZVR5EW6 submitted 2024-02-04 cs.LG

classification cs.LG
keywords invariantinvitnesteddifferentdistributionslearningproblemproblems
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Recently, deep reinforcement learning has shown promising results for learning fast heuristics to solve routing problems. Meanwhile, most of the solvers suffer from generalizing to an unseen distribution or distributions with different scales. To address this issue, we propose a novel architecture, called Invariant Nested View Transformer (INViT), which is designed to enforce a nested design together with invariant views inside the encoders to promote the generalizability of the learned solver. It applies a modified policy gradient algorithm enhanced with data augmentations. We demonstrate that the proposed INViT achieves a dominant generalization performance on both TSP and CVRP problems with various distributions and different problem scales.

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Cited by 1 Pith paper

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  1. Beyond the Heatmap: A Rigorous Evaluation of Component Impact in MCTS-Based TSP Solvers

    cs.LG 2024-11 conditional novelty 5.0 of 10

    After per-heatmap tuning of MCTS hyperparameters, a simple k-nearest-neighbor heatmap (GT-Prior) matches or beats learned heatmaps on uniform, shifted-distribution, and TSPLIB benchmarks, while search settings alone s...

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