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Arth Shukla

@arth.website

PhDing @HaoSuLabUCSD and @Hillbot | Robot Learning and Computer Vision | 2 Cat 2 Dad | arth.website

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07.11.2024
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Latest posts by Arth Shukla @arth.website

Excited to share that I’ll be joining UC San Diego for my PhD, advised by Professor Hao Su!

Many thanks to everyone who helped me along my research journey so far — I’m looking forward to continuing research in robot learning, manipulation, and simulation!

07.02.2025 02:07 👍 8 🔁 1 💬 0 📌 0

Accepted to ICLR 2025! :D

22.01.2025 17:47 👍 1 🔁 0 💬 0 📌 0

ManiSkill-HAB is my first first-author work, and it would not have been possible without the mentorship, guidance, and support of @stonet2000.bsky.social and Hao Su, and I'm incredibly thankful! I'm also thankful for the feedback provided by the Hillbot and Hao Su Lab teams.

19.12.2024 22:49 👍 2 🔁 0 💬 0 📌 0
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ManiSkill-HAB: A Benchmark for Low-Level Manipulation in Home Rearrangement Tasks High-quality benchmarks are the foundation for embodied AI research, enabling significant advancements in long-horizon navigation, manipulation and rearrangement tasks. However, as frontier tasks in r...

🔓 Everything is open source!

• Paper: arxiv.org/abs/2412.13211
• Code: github.com/arth-shukla/mshab
• Models: huggingface.co/arth-shukla/mshab_checkpoints
• Datasets: arth-shukla.github.io/mshab/#dataset-section

We hope our environments, baselines, and dataset are useful to the community :)
(5/5)

19.12.2024 22:47 👍 3 🔁 0 💬 1 📌 0
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📊 We're releasing a massive dataset and generation tools to help the community solve these tasks

• 466GB of RGBD + state data
• 44K episodes
• 8.8M transitions
• Detailed event labeling + trajectory filtering

Download: arth-shukla.github.io/mshab/#dataset-section
(4/5)

19.12.2024 22:47 👍 2 🔁 0 💬 1 📌 0
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🤖 We provide extensive RL & IL baselines and model checkpoints for whole-body control, tackling complex, very long-horizon rearrangement tasks. Each task chains multiple skills (Pick, Place, Open, Close) with simultaneous navigation & manipulation. (3/5)

19.12.2024 22:46 👍 2 🔁 0 💬 1 📌 0
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⚡️ MS-HAB provides a GPU-accelerated implementation of the Home Assistant Benchmark (HAB) with realistic low-level control for successful grasping, manipulation, & interaction, all while achieving 3x the speed of prior work at similar GPU memory usage. (2/5)

19.12.2024 22:46 👍 2 🔁 0 💬 1 📌 0
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📢 Introducing ManiSkill-HAB: A benchmark for low-level manipulation in home rearrangement tasks!

- GPU-accelerated simulation
- Extensive RL/IL baselines
- Vision-based, whole-body control robot dataset

All open-sourced: arth-shukla.github.io/mshab
🧵(1/5)

19.12.2024 22:45 👍 15 🔁 1 💬 1 📌 2