الباحثون

Zhuokai Zhao

المنشورات 4

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SplitJEPA: Learning Invariant and Variant Latent Worlds without Reconstruction

Ruijin Hua, Zichuan Liu, Zhuokai Zhao وآخرون · 2026

Understanding a dynamical world calls for more than a latent state that summarizes its observations: the state should also be organized into the factors that stay shared across related observations and the factors that vary between them. For example, a robot pushing a cube to a goal should take the same action when the …

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Verify Less, Evolve More: Training Idea-Level Critics for Verification-Efficient ML Evolving Agents

Jiamu Bai, Lizhu Zhang, Xin Yu وآخرون · 2026

As large language models become more powerful, self-evolving agents are able to tackle challenging tasks including AI for machine learning (AI4ML). In AI4ML, while empirical verification is available, it often requires computationally costly model training and evaluation, limiting the speed and scale of agent evolution …

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Discovered, Not Designed: Population Evolution for Collaborative and Compute-Intensive Model Discovery

Bo Peng, Lizhu Zhang, Yuhang Zhou وآخرون · 2026

LLM-driven evolution enables iterative model development, but two practical goals remain underexplored: finding model designs that transfer across related tasks and sustaining improvement when training is expensive. We introduce Population Evolution (PE), a collaborative, hierarchical framework that connects ongoing lo …

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Mixture of Self-Improving Branches For Agent Harness Optimization

Haoyu Dong, Yuhang Zhou, Zihao Lin وآخرون · 2026

Harness optimization provides a practical setting for recursive self-improvement (RSI), where agent-generated modifications inform subsequent changes through execution feedback. Recent work such as Meta-Harness implements this process through iterative code generation and evaluation, but retains a fixed development set …

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