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Personalized AI agents can achieve up to 20.9% better task success by learning from user feedback in real-time, reshaping the landscape of human-AI collaboration.
TMI uncovers the hidden structure of concurrent tasks in computer-use traces, achieving unprecedented accuracy in task model induction.
Closed-loop memory optimization can boost software engineering agents' success rates by over 5% while slashing computational costs by nearly 10%.
Stop guessing when humans want to take over: modeling user intervention styles in web agents boosts their usefulness by 26.5%.