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Physical AI: Learning by Following Along for Everyone

The era of Physical AI, as mentioned by Jensen Huang in 2025, is coming—alongside Perception AI, Generative AI, and Agentic AI. Experience Physical AI firsthand, quickly and easily. Explore Physical AI using Hugging Face's LeRobot library and actual physical robots.

(5.0) 1 reviews

15 learners

Level Beginner

Course period Unlimited

Python
Python
AI
AI
Python
Python
AI
AI

What you will gain after the course

  • Trying out the LeRobot library

  • Experiencing various VLAs with SO-ARM

  • Trying out various VLAs with single-arm robots, dual-arm robots, and mobile manipulator robots

Let's explore LeRobot, a leading library in the field of Physical AI.


“This curriculum is based on a robot kit and will be continuously updated alongside the book's publication.”


You can run various VLA models through the LeRobot library released by HuggingFace.

  • There are many cases where technologies published in research papers cannot be implemented because of the lack of a robot.

  • Experience the LeRobot library using an affordable robot arm.

What you will learn

So-Arm Assembly and Setup

To learn the LeRobot library and run various VLA models, a physical robot is required. We will be using the most affordable SO-ARM robot.
We will learn how to set up the robot to get it operational.


Understanding the LeRobot Library

Python Let's take a look at this library written in .

LeRobot

ACT

We will look into ACT, which is the most basic and fastest model to implement.

And then, run it yourself. This is the model that allows you to experience actual physical AI in the fastest way possible.



Notes before taking the course

Practice Environment

  • Operating System and Version (OS): OS types and versions such as Windows, macOS, Linux, Ubuntu, Android, iOS, etc.

  • Tools used: Software/hardware versions required for practice, billing plans, whether virtual machines are used, etc.

  • PC Specifications: Recommended specifications for running programs, including CPU, memory, disk, graphics card, etc.

Learning Materials

  • Format of the provided learning materials (PPT, cloud links, text, source code, assets, programs, example problems, etc.)

  • Quantity and capacity, characteristics of other learning materials, and precautions, etc.

Prerequisite Knowledge and Precautions

  • Whether essential prerequisite knowledge is required, considering the learning difficulty level

  • Content directly related to taking the course, such as lecture video quality (audio/video), and recommended learning methods.

  • Information regarding Q&A and future updates

  • Notice regarding copyrights of lectures and learning materials

Recommended for
these people

Who is this course right for?

  • Those who want to transition from the AI field to Physical AI and robotics.

  • Anyone interested in VLA (Vision-Language-Action) Models?

Hello
This is roboseasy

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1 reviews

5.0

1 reviews

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