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GitHub - keon/jepa: implementing minimal versions of joint-embedding predictive architecture (JEPA)

Reddit r/ArtificialInteligence · 2026-05-12 Cached

A GitHub repository providing minimal, standalone PyTorch reimplementations of JEPA family models (I-JEPA, V-JEPA, V-JEPA 2, C-JEPA) for educational purposes, including tutorials and visualization tools.

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Sub-JEPA: Subspace Gaussian Regularization for Stable End-to-End World Models

Hugging Face Daily Papers · 2026-05-10 Cached

The authors introduce Sub-JEPA, a method using Subspace Gaussian Regularization to improve the stability of end-to-end world models like LeWM, showing consistent performance gains on continuous-control benchmarks.

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@heyrobinai: THE ENTIRE AI INDUSTRY JUST GOT HUMILIATED a tiny model trained in just a few hours on a single graphics card is planni…

X AI KOLs Timeline · 2026-05-08

Yann LeCun's team releases LeWorldModel, a tiny 15M-parameter physics model trained on a single GPU in hours that outperforms billion-dollar foundation models in planning speed and physical plausibility, challenging the dominant scaling paradigm.

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AeroJEPA: Learning Semantic Latent Representations for Scalable 3D Aerodynamic Field Modeling

arXiv cs.LG · 2026-05-08 Cached

This paper introduces AeroJEPA, a Joint-Embedding Predictive Architecture for scalable 3D aerodynamic field modeling. It addresses limitations in current surrogate models by predicting semantic latent representations of flow fields, enabling efficient high-fidelity analysis and design optimization.

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@cgtwts: > be Yann LeCun > spend years building JEPA at Meta > company focuses on LLaMA instead > his idea stays complicated and…

X AI KOLs Timeline · 2026-04-21 Cached

Yann LeCun reportedly left Meta after JEPA was sidelined for LLaMA, founding AMI Labs to build a simplified version on commodity hardware.

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LeWorldModel: Stable End-to-End Joint-Embedding Predictive Architecture from Pixels

Papers with Code Trending · 2026-03-13 Cached

LeWorldModel introduces a stable, end-to-end Joint-Embedding Predictive Architecture that trains directly from pixels with minimal hyperparameters and provable anti-collapse guarantees. It achieves significant speedups in planning compared to foundation models while maintaining competitive performance on robotic manipulation tasks.

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