Yueming Jin

133 posts

Yueming Jin

Yueming Jin

@JinYueming

Asst Prof in @NUSingapore / Former senior research fellow @WEISS_UCL, Ph.D. CUHK. Multi-modal AI in Healthcare; Surgical Data Science; Surgical Robotics

Katılım Eylül 2017
332 Takip Edilen867 Takipçiler
Yueming Jin retweetledi
JUNDE WU
JUNDE WU@JundeMorsenWu·
Introducing OneContext. I built it for myself but now I can’t work without it, so it felt wrong not to share. OneContext is an Agent Self-Managed Context Layer across different sessions, devices, and coding agents (Codex / Claude Code). How it works: 1. Open Claude Code/Codex inside OneContext as usual, it automatically manages your context and history into a persistent context layer. 2. Start a new agent under the same context, it remembers everything about your project. 3. Share the context via link, anyone can continue building on the exact same shared context. Install with: npm i -g onecontext-ai And open with: onecontext Give it a try!
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JUNDE WU
JUNDE WU@JundeMorsenWu·
Thrilled that I've reached 3000 citations in my 2nd year PhD at Oxford! 🎉 let's keep going 🫡
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Yuyin Zhou
Yuyin Zhou@yuyinzhou_cs·
Thanks @omarsar0 for the great summarization of our work "KNOWLEDGE or REASONING ? A Close Look at How LLMs Think Across Domains"! How can we build more reliable LLMs? 🤔 We focus on ensuring not just accurate final answers, but also high-quality reasoning 💡 & knowledge utilization 🧠 at every single step! Here’s what we found & advocate for: ➡️ Evaluate step-wise knowledge (Knowledge Index) & reasoning (InfoGain), not just the final output. ➡️ SFT boosts knowledge (vital for domains like medicine!) but can make reasoning verbose, sometimes reducing its quality. ➡️ RL enhances reasoning quality & can prune incorrect knowledge from reasoning paths, improving overall knowledge correctness. Paper: arxiv.org/abs/2506.02126 Project: ucsc-vlaa.github.io/ReasoningEval/ Code: github.com/UCSC-VLAA/Reas…
elvis@omarsar0

Knowledge or Reasoning? Evaluation matters, and even more so when using reasoning LLMs. Look at final response accuracy, but also pay attention to thinking trajectories. Lots of good findings on this one. Here are my notes:

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Yueming Jin
Yueming Jin@JinYueming·
Large Vision-Language Models (#VLMs) have shown promising performance in various natural domain applications. While for medical, especially the surgical domain, VLMs are still largely underexplored. We hope this work can help alleviate this gap. 4/
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Yueming Jin
Yueming Jin@JinYueming·
🥤The workshop will feature: Best Paper Award, Best Abstract Award, Panel Discussion, Perspective Survey Organizers: @QiDou_ , Yutong Ban, Yueming Jin, @SophiaBano, @MathiasUnberath
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Low Chang Han
Low Chang Han@lowchanghan99·
I am thrilled to share our latest work: “SurgRAW: Multi-Agent Chain-of-Thought Reasoning for Surgical Intelligence” Arxiv: arxiv.org/abs/2503.10265 Special thanks to Prof @JinYueming and @AI_Ziyue and all collaborators who made this work possible.
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JUNDE WU
JUNDE WU@JundeMorsenWu·
🔥Introducing Open-Janus: a fully open-source and reproducible training pipeline for Janus. Janus—@DeepSeek_AI’s powerful vision-language model—unifies multimodal understanding and generation in one framework. We’re strong believers that this is a promising path toward truly generalized vision-language intelligence. But while the model weights were released, the training code wasn’t.🫠. So we rebuilt it from scratch. And now it’s open for everyone!🥳 Check it out 👉 github.com/jinlab-imvr/Op… We've already achieved image understanding performance very close to DeepSeek’s Janus, and rapidly closing the gap on the others. Contributions welcome! Grateful for the work by Fang Zheng @meaw041524005 and the guidance of @JinYueming, which made it possible. #MultimodalAI #VisionLanguage #OpenSource #LLM #Janus #DeepLearning
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Abdullah Hamdi
Abdullah Hamdi@Eng_Hemdi·
📢Happy to share our MedSAM-2, a novel way for segmenting medical images as videos based on SAM-2. STRONGEST model for promptable medical image segmentation for both 2D and 3D images (+500 GH stars) joint work with collaborators from @UniofOxford and NUS a thread 🧵 1/n
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Haofeng Liu
Haofeng Liu@Hever_Law·
Excited to share our work: "Surgical SAM 2: Real-time Segment Anything in Surgical Video by Efficient Frame Pruning" at the AIM-FM workshop, NeurIPS 2024. We look forward to continuing our exploration and contributions to the research community. #NeurIPS2024 #SurgicalAI
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Haofeng Liu@Hever_Law

We are excited to share our latest work: “Surgical SAM 2: Real-time Segment Anything in Surgical Video by Efficient Frame Pruning”. Arxiv: arxiv.org/abs/2408.07931 Huggingface: huggingface.co/papers/2408.07… #SurgicalAI #SugicalDataScience #SAM #SAM2

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