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Mingleyang Li 李铭乐洋 I am a second-year undergraduate student at Peking University, majoring in Computer Science and Technology in the Turing Class. Before university, I focused on competitive programming and earned direct university admission eligibility through the National Olympiad in Informatics in 2023. My current research centers on world action models, with the goal of learning predictive representations that connect visual observations, robot actions, and future physical dynamics. I was fortunate to first encounter the field of robotics through Prof. Hao Dong. I was also fortunate to get to know Yuran Wang, and together, we have worked on quite a few interesting projects :> Chinese version (中文版本) |
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登高峯一秒 得獎一秒
再破紀錄的一秒
港灣晚燈 山頂破曉
摘下懷念 記住美妙
— Eason Chan,《沙龍》
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Research
My research currently centers on World Action Models (WAMs): predictive models that learn how the physical world evolves under robot actions. I am particularly interested in action-conditioned representations, model architectures, scalable training, and systematic evaluation, with the broader goal of building robot agents that can anticipate the consequences of their actions and interact more effectively with the real world.
Representative works are highlighted. |
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…, Mingleyang Li, … PaperProjectCode Under Review More detailsXPolicyLab is a unified standard and open ecosystem that reduces N-policy-to-M-environment integration from O(NM) to O(N+M), standardizing installation, serving, and evaluation for 42 robot policies across simulation and real-robot platforms. |
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Hao Shi, Zixuan Li, Yifan Hu, Yingsheng Zhang, Kaixuan Wang, Yue Chen, Hongcheng Wang, Renjing Xu, Ruihai Wu, Yao Mu, Yaodong Yang, Hao Dong†, Ping Luo† PaperProjectCode Under Review More detailsRMBench is a simulation benchmark comprising 9 manipulation tasks that span multiple levels of memory complexity, enabling systematic evaluation of policy memory capabilities in robotic manipulation. |
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Yue Chen, Yuran Wang, Shengqiang Xu, Mingleyang Li, Hao Dong, Ruihai Wu† PaperProjectCode Under Review More detailsHeteroGenManip is a task-conditioned two-stage manipulation framework that decouples grasping from interaction, routing each object to a category-specialized foundation model via a Multi-Foundation-Model Diffusion Policy to generalize across heterogeneous object interactions. |
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Yue Chen, Tianxing Chen, Jiaqi Liang, Zishun Shen, Haoran Lu, Ruihai Wu†, Hao Dong† PaperProjectCode ICRA 2026 More detailsGarmentPile++ is a novel garment retrieval pipeline that can not only follow language instruction to execute safe and clean retrieval but also guarantee exactly one garment is retrieved per attempt. |
Education |
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Undergraduate Student, Turing Class |
Selected Awards and Honors |
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Algorithm Competitions |
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This homepage is designed based on Jon Barron's website and deployed on Github Pages.
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