LLM4AD: A Platform for Algorithm Design with Large Language Model

Fuente: arXiv
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Main Authors: Liu, Fei, Zhang, Rui, Xie, Zhuoliang, Sun, Rui, Li, Kai, Hu, Qinglong, Guo, Ping, Lin, Xi, Tong, Xialiang, Yuan, Mingxuan, Wang, Zhenkun, Lu, Zhichao, Zhang, Qingfu
Format: Preprint
Published: 2024
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author Liu, Fei
Zhang, Rui
Xie, Zhuoliang
Sun, Rui
Li, Kai
Hu, Qinglong
Guo, Ping
Lin, Xi
Tong, Xialiang
Yuan, Mingxuan
Wang, Zhenkun
Lu, Zhichao
Zhang, Qingfu
author_facet Liu, Fei
Zhang, Rui
Xie, Zhuoliang
Sun, Rui
Li, Kai
Hu, Qinglong
Guo, Ping
Lin, Xi
Tong, Xialiang
Yuan, Mingxuan
Wang, Zhenkun
Lu, Zhichao
Zhang, Qingfu
contents We introduce LLM4AD, a unified Python platform for algorithm design (AD) with large language models (LLMs). LLM4AD is a generic framework with modularized blocks for search methods, algorithm design tasks, and LLM interface. The platform integrates numerous key methods and supports a wide range of algorithm design tasks across various domains including optimization, machine learning, and scientific discovery. We have also designed a unified evaluation sandbox to ensure a secure and robust assessment of algorithms. Additionally, we have compiled a comprehensive suite of support resources, including tutorials, examples, a user manual, online resources, and a dedicated graphical user interface (GUI) to enhance the usage of LLM4AD. We believe this platform will serve as a valuable tool for fostering future development in the merging research direction of LLM-assisted algorithm design.
format Preprint
id arxiv_https___arxiv_org_abs_2412_17287
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle LLM4AD: A Platform for Algorithm Design with Large Language Model
Liu, Fei
Zhang, Rui
Xie, Zhuoliang
Sun, Rui
Li, Kai
Hu, Qinglong
Guo, Ping
Lin, Xi
Tong, Xialiang
Yuan, Mingxuan
Wang, Zhenkun
Lu, Zhichao
Zhang, Qingfu
Artificial Intelligence
We introduce LLM4AD, a unified Python platform for algorithm design (AD) with large language models (LLMs). LLM4AD is a generic framework with modularized blocks for search methods, algorithm design tasks, and LLM interface. The platform integrates numerous key methods and supports a wide range of algorithm design tasks across various domains including optimization, machine learning, and scientific discovery. We have also designed a unified evaluation sandbox to ensure a secure and robust assessment of algorithms. Additionally, we have compiled a comprehensive suite of support resources, including tutorials, examples, a user manual, online resources, and a dedicated graphical user interface (GUI) to enhance the usage of LLM4AD. We believe this platform will serve as a valuable tool for fostering future development in the merging research direction of LLM-assisted algorithm design.
title LLM4AD: A Platform for Algorithm Design with Large Language Model
topic Artificial Intelligence
url https://arxiv.org/abs/2412.17287