Deplace AI

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Deplace AI

Deplace AI

@DeplaceAI

The Physical AI deployment layer

Paris, France เข้าร่วม Nisan 2025
23 กำลังติดตาม99 ผู้ติดตาม
Omnia
Omnia@omnia_io·
@IlirAliu_ @DeplaceAI Pair it with data coming from AR sessions. Imagine how much you can do with POVs from normal people wearing smart glasses
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Ilir Aliu
Ilir Aliu@IlirAliu_·
You will soon be able to teach robots what human are doing… using natural language. I spoke to one of the founders a couple of months ago on my podcast: An API that takes raw human videos and returns detailed language annotations describing the motion. @DeplaceAI is building something wild: Not just basic labels, it captures: ✅ motion semantics ✅ relative positions ✅ cause and effect ✅ task outcomes ✅ and more It’s built on top of research in point tracking, segmentation, and learning from demos; all to make it easier to train robots and embodied agents without manual labeling. They’re offering early access and sharing some of the datasets they collected via their global network of video collectors. Thanks for sharing, @MilcentPedro ! 🔗 forms.gle/sSHTPBDVkBtnHh… One of the most interesting motion-to-language interfaces I’ve seen. If you’re working in robotics, vision, or LfD, it’s worth checking out.
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Deplace AI
Deplace AI@DeplaceAI·
Thank you for sharing our work @IlirAliu_ Human motion holds a lot of knowledge to fuel Physical AI!
Ilir Aliu@IlirAliu_

You will soon be able to teach robots what human are doing… using natural language. I spoke to one of the founders a couple of months ago on my podcast: An API that takes raw human videos and returns detailed language annotations describing the motion. @DeplaceAI is building something wild: Not just basic labels, it captures: ✅ motion semantics ✅ relative positions ✅ cause and effect ✅ task outcomes ✅ and more It’s built on top of research in point tracking, segmentation, and learning from demos; all to make it easier to train robots and embodied agents without manual labeling. They’re offering early access and sharing some of the datasets they collected via their global network of video collectors. Thanks for sharing, @MilcentPedro ! 🔗 forms.gle/sSHTPBDVkBtnHh… One of the most interesting motion-to-language interfaces I’ve seen. If you’re working in robotics, vision, or LfD, it’s worth checking out.

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Pedro Milcent
Pedro Milcent@MilcentPedro·
We have been seeing great progress in using human demos in Physical AI models. This paper by @ryan_hoque, @peide_huang, and team shows how a large-scale dataset can help scale this: 800+ hours of human demos for manipulation. 📄: arxiv.org/abs/2505.11709
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Pedro Milcent
Pedro Milcent@MilcentPedro·
DexWild is a great new paper by @pathak2206, @mohansrirama, @_tonytao_ , and team. It introduces the DexWild system to collect human demos at scale, enabling robust #robot policies that generalize to novel environments, tasks, and embodiments. Highly relevant to our data work at @DeplaceAI 🤖
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Pedro Milcent
Pedro Milcent@MilcentPedro·
New paper from @pabbeel, @junyi42 & team! They show how visual imitation enables context-learning for humanoids, using a Real2Sim2Real pipeline that turns videos into transferable skills 📹 👉 videomimic.net
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Pedro Milcent
Pedro Milcent@MilcentPedro·
Chatted with @IlirAliu_ about what we’re building @DeplaceAI, how our team got together, and the founder life in the Paris #robotics scene. Check it out 👇
Ilir Aliu@IlirAliu_

🎙️ Episode #62 of @builddeeptech! With @MilcentPedro, Co-Founder of @DeplaceAI; data collection & curation for robotics and physical AI: In this episode, I chat with Pedro Milcent, a French-Brazilian founder building something new in the world of robotics and AI. Pedro’s story starts unconventionally, as he finished high school at 14, went straight to law school, then pivoted to business, earning a full-ride scholarship to USC before diving into the startup world. Pedro’s first startup, Payby, tackled payments in Brazilian restaurants. Now, he’s co-founded Deplace AI, a company solving one of the hardest problems in robotics: large-scale, low-cost data collection for physical AI. Think human demonstrations, imitation grippers, motion capture, and making it all accessible. We talk about building a team with deep expertise, landing their first client just months in, and what Pedro sees coming next for physical AI in Europe and beyond. He’s got bold views and clear insights, hope you enjoy the episode as much as I did recording it. Episode 62 – Build Deep Tech "Physical AI Has a Data Problem" With Pedro Milcent, Co-Founder of Deplace AI 🎥 YouTube: youtu.be/VdMENTpAH4s 🎧 Spotify: open.spotify.com/episode/1bo44t… 🎧 Apple: podcasts.apple.com/us/podcast/bui…

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