Generalizable and Animatable Gaussian Head Avatar
🖥 Github: https://github.com/xg-chu/gagavatar
📕 Paper: https://arxiv.org/abs/2410.07971v1
https://news.1rj.ru/str/DataScienceT🏵
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Efficiently Democratizing Medical LLMs for 50 Languages via a Mixture of Language Family Experts
💻 Github: https://github.com/freedomintelligence/apollomoe
🔖 Paper: https://arxiv.org/abs/2410.10626v1
🤗 Dataset: https://paperswithcode.com/dataset/mmlu
https://news.1rj.ru/str/DataScienceT🏵
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Forwarded from Machine Learning with Python
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Average earnings from 100$ a day
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WHAT YOU NEED TO WORK:
1. phone or computer
2. Free 15-20 minutes a day
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estimating body and hand motion from a pair of glasses 🤓
website: http://egoallo.github.io
code: http://github.com/brentyi/egoallo
https://news.1rj.ru/str/DataScienceT🏵
website: http://egoallo.github.io
code: http://github.com/brentyi/egoallo
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Benchmarking Agentic Workflow Generation"! ⭐️
ArXiv: https://arxiv.org/abs/2410.07869
Website: https://www.zjukg.org/project/WorFBench/
Data: https://huggingface.co/collections/zjunlp/worfbench-66fc28b8ac1c8e2672192ea1
Github: https://github.com/zjunlp/WorFBench
https://news.1rj.ru/str/DataScienceT⭐
ArXiv: https://arxiv.org/abs/2410.07869
Website: https://www.zjukg.org/project/WorFBench/
Data: https://huggingface.co/collections/zjunlp/worfbench-66fc28b8ac1c8e2672192ea1
Github: https://github.com/zjunlp/WorFBench
https://news.1rj.ru/str/DataScienceT
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Forwarded from Tomas
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SAM2Long: Enhancing SAM 2 for Long Video Segmentation with a Training-Free Memory Tree
🖥 Github: https://github.com/mark12ding/sam2long
📕 Paper: https://arxiv.org/abs/2410.16268v1
🤗 HF: https://huggingface.co/papers/2410.16268
🖥 Github: https://github.com/mark12ding/sam2long
📕 Paper: https://arxiv.org/abs/2410.16268v1
🤗 HF: https://huggingface.co/papers/2410.16268
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Don’t sleep on Vision Language Models (VLMs).
With the releases of Llama 3.2 and ColQwen2, multimodal models are gaining more and more traction.
VLMs are multimodal models that can handle image and text modalities:
Input: Image and text
Output: Text
They can be used for many use cases, including visual question answering or document understanding (as in the case of ColQwen2).
How do they work under the hood?
The main challenge in VLMs is to unify the image and text representations.
For this, a typical VLM architecture consists of the following components:
• image encoder (e.g., CLIP, SigLIP)
• embedding projector to align image and text representations
• text decoder (e.g., Vicuna, Gemma)
huggingface.co/blog/vlms
https://news.1rj.ru/str/DataScienceT
With the releases of Llama 3.2 and ColQwen2, multimodal models are gaining more and more traction.
VLMs are multimodal models that can handle image and text modalities:
Input: Image and text
Output: Text
They can be used for many use cases, including visual question answering or document understanding (as in the case of ColQwen2).
How do they work under the hood?
The main challenge in VLMs is to unify the image and text representations.
For this, a typical VLM architecture consists of the following components:
• image encoder (e.g., CLIP, SigLIP)
• embedding projector to align image and text representations
• text decoder (e.g., Vicuna, Gemma)
huggingface.co/blog/vlms
https://news.1rj.ru/str/DataScienceT
👍6❤2
Forwarded from Machine Learning with Python
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Forwarded from Data Science Library
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Dear subscriber, we would like to thank you very much for supporting our channel, and as a token of our gratitude we would like to provide you with free access to Lisa's investor channel, with the help of which you can earn today
T.me/Lisainvestor
Be sure to take advantage of our gift, admission is free, don't miss the opportunity, change your life for the better.
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Constrained Diffusion Implicit Models!
We use diffusion models to solve noisy inverse problems like inpainting, sparse-recovery, and colorization. 10-50x faster than previous methods!
Paper: arxiv.org/pdf/2411.00359
Demo: https://t.co/m6o9GLnnZF
https://news.1rj.ru/str/DataScienceT
We use diffusion models to solve noisy inverse problems like inpainting, sparse-recovery, and colorization. 10-50x faster than previous methods!
Paper: arxiv.org/pdf/2411.00359
Demo: https://t.co/m6o9GLnnZF
https://news.1rj.ru/str/DataScienceT
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Forwarded from Machine Learning with Python
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A Github repository with practical exercises, notebooks with code for developing, pre-training, and fine-tuning a GPT-type LLM model based on one of the best books on building an LLM from scratch.
In this book, you will learn and understand how large language models work from the inside, creating your own LLM step by step, with a detailed explanation of each stage in clear language, diagrams and examples.
The method described in the book demonstrates the approach used to create large fundamental models such as those underlying ChatGPT.
In the repository, each chapter of the book has several (3-4) applied examples in ipynb format or as an executable python noscript. The code is aimed at a wide audience, is designed to run on regular laptops and does not require specialized equipment.
Setting
Chapter 2: Working with Text Data
Chapter 3: Code of Attention Mechanisms
Chapter 4: Implementing the GPT Model from Scratch
Chapter 5: Pre-training on unlabeled data
Chapter 6: Fine-tuning for Classification
Chapter 7: Fine-tuning to Follow Instructions
https://news.1rj.ru/str/DataScienceT
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Docling Technical Report
Paper: https://arxiv.org/pdf/2408.09869v3.pdf
Code 1: https://github.com/DS4SD/docling
Code 2: https://github.com/DS4SD/docling-core
https://news.1rj.ru/str/DataScienceT✅
Paper: https://arxiv.org/pdf/2408.09869v3.pdf
Code 1: https://github.com/DS4SD/docling
Code 2: https://github.com/DS4SD/docling-core
https://news.1rj.ru/str/DataScienceT
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