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🔄
In a Training Loop
Jiaqi Tang
PRO
Jiaqi-hkust
7
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34 followers
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27 following
https://jqt.me/
jqtangust
jqtnpu
AI & ML interests
Multimodal Large Language Model
Recent Activity
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🧠 Remember-R1: Our fix for MLLMs forgetting the image during long reasoning We noticed a frustrating problem: when multimodal models reason over long chains, they gradually stop looking at the image—and start hallucinating based on their own text. So we built Remember‑R1, a simple RL framework that directly supervises visual attention on the original reasoning trajectory—no inference overhead, no proxy tasks. We use three complementary rewards: coverage, persistence, and focus. They encourage the model to keep attending to relevant visual evidence even in later reasoning steps. Results across 7 benchmarks and 2 model sizes: better reasoning, and—more importantly—visual attention decays much more slowly during generation. No extra cost at inference, just cleaner supervision where it counts. 📄 Paper: https://arxiv.org/abs/2608.01314 💻 Code: https://github.com/Ch921-cell/Remember-R1 Happy to answer any questions and receive feedback! #MultimodalAI #RL #MLLM #CoT #VisualReasoning
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🧠 Remember-R1: Our fix for MLLMs forgetting the image during long reasoning We noticed a frustrating problem: when multimodal models reason over long chains, they gradually stop looking at the image—and start hallucinating based on their own text. So we built Remember‑R1, a simple RL framework that directly supervises visual attention on the original reasoning trajectory—no inference overhead, no proxy tasks. We use three complementary rewards: coverage, persistence, and focus. They encourage the model to keep attending to relevant visual evidence even in later reasoning steps. Results across 7 benchmarks and 2 model sizes: better reasoning, and—more importantly—visual attention decays much more slowly during generation. No extra cost at inference, just cleaner supervision where it counts. 📄 Paper: https://arxiv.org/abs/2608.01314 💻 Code: https://github.com/Ch921-cell/Remember-R1 Happy to answer any questions and receive feedback! #MultimodalAI #RL #MLLM #CoT #VisualReasoning
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about 3 hours ago
🧠 Remember-R1: Our fix for MLLMs forgetting the image during long reasoning We noticed a frustrating problem: when multimodal models reason over long chains, they gradually stop looking at the image—and start hallucinating based on their own text. So we built Remember‑R1, a simple RL framework that directly supervises visual attention on the original reasoning trajectory—no inference overhead, no proxy tasks. We use three complementary rewards: coverage, persistence, and focus. They encourage the model to keep attending to relevant visual evidence even in later reasoning steps. Results across 7 benchmarks and 2 model sizes: better reasoning, and—more importantly—visual attention decays much more slowly during generation. No extra cost at inference, just cleaner supervision where it counts. 📄 Paper: https://arxiv.org/abs/2608.01314 💻 Code: https://github.com/Ch921-cell/Remember-R1 Happy to answer any questions and receive feedback! #MultimodalAI #RL #MLLM #CoT #VisualReasoning
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Organizations
Jiaqi-hkust
's models
6
Sort: Recently updated
Jiaqi-hkust/Robust-U1-SFT
Any-to-Any
•
15B
•
Updated
Jun 13
•
6
•
1
Jiaqi-hkust/Robust-U1
Any-to-Any
•
15B
•
Updated
Jun 13
•
10
•
1
Jiaqi-hkust/Robust-U1-RL
Any-to-Any
•
15B
•
Updated
Jun 13
•
10
•
1
Jiaqi-hkust/Robust-R1-SFT
4B
•
Updated
Dec 22, 2025
•
147
•
5
Jiaqi-hkust/Robust-R1-RL
4B
•
Updated
Dec 22, 2025
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27
•
2
Jiaqi-hkust/hawk
Updated
Feb 26, 2025
•
3