Browsing Like Human: A Multimodal Web Agent with Experiential Fast-and-Slow Thinking
Haohao Luo, Jiayi Kuang, Wei Liu, Ying Shen, Jian Luan, Yang Deng
Abstract
Automating web navigation which aims to build a web agent that follows user instructions to complete tasks like booking flights by inter-acting with websites, has received increasing attention due to its practical value. Although existing web agents are mostly equipped with visual perception, planning, and memory abilities, their reasoning process are still deviate from human cognition. In this work, we study the human thought pattern to empower agent with more human-like abilities in web navigation. To tackle this problem, we propose a novel multimodal web agent framework called WebExperT, which is designed to emulate the human planning process of "thinking fast and slow" to effectively decompose complex user instructions. Furthermore, WebExperT leverages experiential learning by reflecting from failure for continuously refining planning and decision-making outcomes. Experimental re-sults on the M IND 2W EB benchmark demonstrate the superiority of WebExperT in both supervised and unsupervised settings.
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