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WebSight: A Vision-First Architecture for Robust Web Agents

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arxiv 2508.16987 v1 pith:3VL6MYWT submitted 2025-08-23 cs.AI cs.CV

classification cs.AIcs.CV
keywords websightmodelwebsight-7bachievesagentagentsarchitecturebenchmark
verification ladder T0 review T1 audit T2 compute T3 formal
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We introduce WebSight, a vision-based autonomous web agent, designed to interact with web environments purely through visual perception, eliminating dependence on HTML or DOM-based inputs. Central to our approach we introduce our new model, WebSight-7B, a fine-tuned vision-language model optimized for UI element interaction, trained using LoRA on a web-focused subset of the Wave-UI-25K dataset. WebSight integrates this model into a modular multi-agent architecture, comprising planning, reasoning, vision-action, and verification agents, coordinated through an episodic memory mechanism. WebSight-7B achieves a top-1 accuracy of 58.84% on the Showdown Clicks benchmark, outperforming several larger generalist models while maintaining lower latency. The full WebSight agent achieves a 68.0% success rate on the WebVoyager benchmark, surpassing systems from labs such as OpenAI (61.0%) and HCompany (Runner H, 67.0%). Among tasks completed, WebSight answers correctly 97.14% of the time, indicating high precision. Together, WebSight and WebSight-7B establish a new standard for interpretable, robust, and efficient visual web navigation.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. WebCoderBench: Benchmarking Web Application Generation with Comprehensive and Interpretable Evaluation Metrics

    cs.SE 2026-01 conditional novelty 6.0 of 10

    A benchmark of 1,572 real user web-app requests with 24 rule-based and LLM-judge metrics shows no single model currently dominates web app generation.

  2. Plover: Steering GUI Agents through Plan-Centric Interaction

    cs.AI 2026-07 conditional novelty 5.0 of 10

    An expert repairing visible plans rescued 23 of 26 failed GUI automation runs, turning 17 into full and 6 into partial successes.

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