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LLMs can Schedule

13 Aug 2024arXiv:2408.06993archive 2025-07-28

Henrik Abgaryan, Ararat Harutyunyan, Tristan Cazenave

The job shop scheduling problem (JSSP) remains a significant hurdle in optimizing production processes. This challenge involves efficiently allocating jobs to a limited number of machines while minimizing factors like total processing time or job delays. While recent advancements in artificial intelligence have yielded promising solutions, such as reinforcement learning and graph neural networks, this paper explores the potential of Large Language Models (LLMs) for JSSP. We introduce the very first supervised 120k dataset specifically designed to train LLMs for JSSP. Surprisingly, our findings demonstrate that LLM-based scheduling can achieve performance comparable to other neural approaches. Furthermore, we propose a sampling method that enhances the effectiveness of LLMs in tackling JSSP.

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create_prompt_formats starjob42/datasetjsp/utils/data_preprocessing.py official repository ran no licence file found · pointer only · 3a1c00bf8981de32 · report
parse_solution starjob42/datasetjsp/utils/solution_generation.py official repository ran fingerprinted no licence file found · pointer only · d3439ab5ad72373a · report
preprocess_dataset starjob42/datasetjsp/utils/data_preprocessing.py official repository ran no licence file found · pointer only · cb71b262f560b386 · report
print_number_of_trainable_model_parameters starjob42/datasetjsp/utils/helping_functions.py official repository ran no licence file found · pointer only · d3bafeba41f1eef6 · report
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preprocess_batch starjob42/datasetjsp/utils/data_preprocessing.py official repository unverified no licence file found · pointer only · 65a6a91fb732b1b9 · report

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Job Shop SchedulingScheduling

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