יום ראשון, 4 באוקטובר 2026 LIVE
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כתבה arXiv cs.LG ·

למידת GUI אגנטים נאמנים תחת ידע לא מושלם

Learning Reliable GUI Agents under Imperfect Priors
אגנטי GUI עדיין נתקלים במשימות לא ידועות; פרקטיקה חדשה לומדת לפעול תחת ידע לא מושלם.
תקציר מקורי באנגליתarXiv:2609.39547v1 Announce Type: new Abstract: GUI agents built on large language and vision-language models still struggle on unseen applications and complex multi-step tasks, as completing real GUI tasks depends on app-specific, temporally volatile operational knowledge that is scarce in pretraining corpora. Retrieval-augmented execution offers a natural remedy but faces two coupled bottlenecks: knowledge at scale is hard to acquire, and self-collected priors inevitably drift from the live environment due to version updates, promotions, ads, A/B tests, and personalization. We therefore argue that GUI agents should not pursue perfect knowledge but learn to act correctly under imperfect priors, and propose our framework that couples knowledge acquisition with noise-robust utilization: a s
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