Lab for Learning and Planning in Robotics

20 posts

Lab for Learning and Planning in Robotics

Lab for Learning and Planning in Robotics

@LLPR_NEU

Multi-Agent Reinforcement Learning 🤖🤖 | Partially Observable RL | Robotics | Led by Chris Amato @cjdamato @KhouryCollege @Northeastern

Boston, Massachusetts Katılım Mayıs 2022
22 Takip Edilen77 Takipçiler
Lab for Learning and Planning in Robotics retweetledi
Multi Agent Learning Seminar
Multi Agent Learning Seminar@MALSeminar·
This Friday (02 Feb) we will have @LyuXueguang presenting his work on Centralized Critics. See y'all on Friday 9AM (PT)/12noon (ET).
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Hai Nguyen
Hai Nguyen@HaiNguy69482974·
Happy to share our #CoRL23 paper about leveraging symmetry for POMDPs. We formulate group-invariant POMDPs that are symmetric in the history space. As expected, equivariant recurrent policies shine in solving them. For more, please see sites.google.com/view/equi-rl-p….
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Enrico Marchesini
Enrico Marchesini@_emarche·
Looking for novel ways to improve value approximation and analyzing the effects on Deep Policy Gradient algorithms? Check out our "Improving Deep Policy Gradients with Value Function Search" paper at @iclr_conf with @cjdamato ! iclr.cc/virtual/2023/p…
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Rupali Bhati
Rupali Bhati@BhatiRupali·
I am thrilled to announce that I will be joining @Northeastern University for the PhD in CS program with @cjdamato! Super excited to join this lab!
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Chris Amato
Chris Amato@cjdamato·
Congrats to my PhD student Sammie Katt for passing his defense titled "Bayesian Partial Observable Reinforcement Learning." Very cool work, Sammie! (with @faoliehoek, @RobotPlatt, and Lawson Wong).
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Yuchen Xiao
Yuchen Xiao@YuchenXiao5·
We(@cjdamato) recently published MacroMARL(github.com/yuchen-x/Macro…), including both value-based and policy-gradient-based algorithms for multi-agent asynchronous learning and execution, as well as three macro-action-based multi-agent domains. To find more, please check it out!
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Hai Nguyen
Hai Nguyen@HaiNguy69482974·
Interested in partial observability? Come to my online poster session at @CoRL2022 (online session 2, Sunday, Dec 18, 7:30-8.00 AM, Auckland time, i.e., Saturday, Dec 17, 1:30 - 2:00 PM, EST time) w/ @RobotPlatt @cjdamato @DianWang1007 @AndreaBaisero @LLPR_NEU @HelpingHandsLab.
Hai Nguyen@HaiNguy69482974

Glad to share our #CoRL22 paper arxiv.org/abs/2211.01991 about using MDP solutions to efficiently learn POMDPs during offline training. We proposed a SAC-like agent that balances between acting like an MDP expert and for environment rewards.

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Yuchen Xiao
Yuchen Xiao@YuchenXiao5·
Tmr(Thurs), 4-6pm, Hall J 613 #NeurIPS2022, my advisor Chris @cjdamato is going to present how we enable agents to asynchronously learn and execute. Please stop by to check the details and know more about the lab @LLPR_NEU. Also, feel free to contact me for any questions!
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Yuchen Xiao@YuchenXiao5

I am very excited to share that our paper "Asynchronous Actor-Critic for Multi-Agent Reinforcement Learning" (arxiv.org/abs/2209.10113) has been accepted to #NeurIPS2022. A step towards asynchronous and hierarchical behaviors in real-world multi-agent/robot systems.

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Khoury College of Computer Sciences
Are you curious about pursuing a PhD in CS with a focus in software, programming languages, or systems and formal methods? Join our fourth PhD info session hosted by professor Steven Holtzen, @zengola, on November 21! Register now at the link below. bit.ly/3VcXLcQ
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Chris Amato
Chris Amato@cjdamato·
I'm looking for PhD students for Fall 2023! Anyone interested in partially observable or multi-agent reinforcement learning (MARL) is welcome to apply but I'm particularly looking for people with a background and interest in MARL for multi-robot systems. khoury.northeastern.edu/apply/phd-appl…
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Hai Nguyen
Hai Nguyen@HaiNguy69482974·
Glad to share our #CoRL22 paper arxiv.org/abs/2211.01991 about using MDP solutions to efficiently learn POMDPs during offline training. We proposed a SAC-like agent that balances between acting like an MDP expert and for environment rewards.
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