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Deep-Agent/R1-V

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0 stele·0 fork-uri·3 vizualizări

R1 V

Features

  • Reasoning Models - Vision-capable reasoning model implementation.
  • Reinforcement Learning Frameworks - Reinforcement learning implementation for visual reasoning agents.

Istoric stele

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Întrebări frecvente

Care sunt principalele funcționalități ale deep-agent/r1-v?

Principalele funcționalități ale deep-agent/r1-v sunt: Reasoning Models, Reinforcement Learning Frameworks.

Care sunt câteva alternative open-source pentru deep-agent/r1-v?

Alternativele open-source pentru deep-agent/r1-v includ: modalminds/mm-eureka — MM-EUREKA: Exploring the Frontiers of Multimodal Reasoning with Rule-based Reinforcement Learning. inclusionai/areal — AReaL is a system for agent orchestration, distributed model training, and parameter-efficient tuning. It provides a… agentica-project/rllm — 🚀 Reinforcement Learning for Language Agents🌟. jiayi-pan/tinyzero — TinyZero is a reinforcement learning framework and implementation designed to train language models to develop… hiyouga/easyr1 — EasyR1 is a distributed model training system and reinforcement learning framework for large language and… om-ai-lab/vlm-r1 — VLM-R1 is a reasoning vision-language model and embodied AI framework designed to map visual inputs and language…

Alternative open-source pentru R1 V

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    TinyZero is a reinforcement learning framework and implementation designed to train language models to develop reasoning and self-verification abilities. It provides a training pipeline to optimize model performance on mathematical and logical tasks. The project serves as a minimal reproduction of the DeepSeek R1 architectural and training approach. It focuses on creating reasoning models that can solve structured problems through autonomous chain-of-thought discovery. The framework incorporates group relative policy optimization and reward-based self-correction to improve accuracy on logica

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