الباحثون

Yi Li

المنشورات 4

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Diffusion Meta-Prompting and Steering for Generalizable Foundation Model Adaptation

Deepak Sridhar, Yi Li, Kartikeya Bhardwaj وآخرون · 2026

Prompt learning is a popular method for adapting foundation models, but learned prompts are typically task-specific and fail to generalize to new classes, domains, or compositions of tasks. In this paper, we introduce a Diffusion Meta-Prompt (DMP) model , a framework that models the distribution of learned prompts usin …

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Can AI Scientists Coordinate at Runtime?

Zijian Liu, Yangzhixin Luo, Junyu Lu وآخرون · 2026

Multi-agent AI scientists have shown improving performance across a diverse range of tasks. Yet a common approach is design-time agentic orchestration, which typically relies on fixed workflows. In contrast, human scientists coordinate and adjust their division of labor at runtime. We therefore ask: can AI scientists a …

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Inherit-MAS: Test-Time Evolution of Multi-Agent Systems through Workflow and Execution Inheritance

Songtao Wei, Yi Li, Zhichun Guo وآخرون · 2026

Multi-agent systems (MAS) built from large language models coordinate specialized agents to tackle complex tasks, but effective workflows are difficult to design in advance. Test-time evolution refines workflows using execution feedback, yet broad revisions can disturb useful components, while re-executing unchanged re …

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EngiWorld: What Can Frontier Agents Deliver in Professional Engineering Environments?

Hongcheng Gao, Hailong Qu, Yu Lei وآخرون · 2026

Autonomous agents have made rapid progress in general-purpose computer use, but reliable automation of professional industrial engineering remains out of reach, as engineering workflows demand reasoning over geometric and physical constraints and dependencies preserved across software and design stages. We present Engi …

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