Large Action Models: From Inception to Implementation
Lu Wang, Fangkai Yang, Chaoyun Zhang, Junting Lu, Jiaxu Qian, Shilin, He, Pu Zhao, Bo Qiao, Ray Huang, Si Qin, Qisheng Su, Jiayi Ye, Yudi Zhang,, Jian-Guang Lou, Qingwei Lin, Saravan Rajmohan, Dongmei Zhang, Qi Zhang

TL;DR
This paper introduces a comprehensive framework for developing Large Action Models (LAMs), detailing their creation, deployment, and potential to enable AI agents to perform real-world actions, marking progress toward artificial general intelligence.
Contribution
It provides a systematic, step-by-step workflow for building LAMs, including data collection, training, environment integration, grounding, and evaluation, with a case study on Windows OS.
Findings
Developed a generalizable LAM development workflow
Demonstrated LAM capabilities through a Windows OS-based case study
Identified current limitations and future research directions
Abstract
As AI continues to advance, there is a growing demand for systems that go beyond language-based assistance and move toward intelligent agents capable of performing real-world actions. This evolution requires the transition from traditional Large Language Models (LLMs), which excel at generating textual responses, to Large Action Models (LAMs), designed for action generation and execution within dynamic environments. Enabled by agent systems, LAMs hold the potential to transform AI from passive language understanding to active task completion, marking a significant milestone in the progression toward artificial general intelligence. In this paper, we present a comprehensive framework for developing LAMs, offering a systematic approach to their creation, from inception to deployment. We begin with an overview of LAMs, highlighting their unique characteristics and delineating their…
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Taxonomy
TopicsSimulation Techniques and Applications · Complex Systems and Decision Making
