ML Research Hub – Telegram
ML Research Hub
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Advancing research in Machine Learning – practical insights, tools, and techniques for researchers.

Admin: @HusseinSheikho || @Hussein_Sheikho
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This infographic delves deeper into the difference between Open Source and Closed Source LLMs.

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Vector Database by Hand ✍️ Make Your Own 👉 by-hand.ai/s/vecdb

Previously I shared a Google Sheet to make custom AI by Hand ✍️ exercises for the Transformer. Thousands of people made copies of the spreadsheet. Thank you! 🙏

Encouraged, I am following up with a similar tool for Vector Database. I am trying my best to match the layout of the matrices in the original exercise I shared earlier.

To make your own custom version, simply follow the link above to create a copy of the spreadsheet. Try changing some weights, biases, words, and even the word embeddings. See how the calculation changes accordingly.

If you are teaching a course, you can hide the answers and print a copy to challenge your students! I promise this will make you really popular! 😉

https://news.1rj.ru/str/DataScienceT
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🩵 940+ FPS Multi-Person Pose Estimation 💛

👉 RTMW (Real-Time Multi-person Whole-body pose estimation models) is a series of high-perf. models for 2D/3D body pose estimation. Over 940 FPS on #GPU! Code & models 💙

🟡 Review: https://t.ly/XkBmg

🟡 Paper: arxiv.org/pdf/2407.08634

🟡 Repo: github.com/open-mmlab/mmpose/tree/main/projects/rtmpose

https://news.1rj.ru/str/DataScienceT 🏆
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Support Vector Machine Notes 🗒️ .pdf
8.6 MB
Support Vector Machine Notes

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🙃 Prediction of the winning country of the 2024 Olympics

👨🏻‍💻 Our project is designed to predict the winner of the 2024 Olympics and use historical data to train a machine learning model.

📄 In this project, we train a machine learning model based on historical data by using the number of medals of countries participating in the 2021 Tokyo Olympics. This dataset includes information such as the number of medals, demographic information of countries and economic indicators. Then, based on the predicted medals, we will make a ranking to determine the winning country.

🖥 From the dataset and coding to analysis and project results, all are available in the following GitHub repo.👇

💸 Predictive Olympic Winner 2024
📃 Report
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Aligning Sight and Sound: Advanced Sound Source Localization Through Audio-Visual Alignment

🖥 Github: https://github.com/kaistmm/SSLalignment

📕 Paper: https://arxiv.org/abs/2407.13676v1

🚀 Dataset: https://paperswithcode.com/dataset/is3-interactive-synthetic-sound-source

https://news.1rj.ru/str/DataScienceT
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🎭 TRG: new SOTA in 6DoF Head 🎭

👉 ECE (Korea) unveils TRG, a novel landmark-based method for estimating a 6DoF head pose which stands out for its explicit bidirectional interaction structure. Experiments on ARKitFace & BIWI confirm it's the new SOTA. Source Code & Models to be released 💙

🤣 Review: https://t.ly/lOIRA

🤣 Paper: https://lnkd.in/dCWEwNyF

😏 Code: https://lnkd.in/dzRrwKBD

https://news.1rj.ru/str/DataScienceT
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📢 Zuckerberg Releases Free ChatGPT Competitor: Llama 3.1!

Mark Zuckerberg just launched Llama 3.1, a next-gen AI model with the largest dataset ever. Available in 8B, 70B, and 405B versions, it boasts a 128k token context size.

Key Highlights:

Performance: Outperforms GPT-4o and Claude 3.5 in general knowledge, math, and translation.
Accessibility: Downloadable by anyone, bringing advanced AI within reach.
Strategic Move: Meta applies pressure on OpenAI with this open-source release. You probably now understand why OpenAI showed GPT-4o mini a week ago and made it so cheap - soon we will have very smart models that run very fast on any hardware.

Try It Now:

• on Hugging Face: Llama 3.1 on Hugging Face
• on NVIDIA's website: NVIDIA’s website

This release represents a major development in open-source AI, potentially allowing broader access to advanced language models.

https://news.1rj.ru/str/DataScienceT
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Neural General Circulation Models for Weather and Climate

General circulation models (GCMs) are the foundation of weather and climate prediction. GCMs are physics-based simulators which combine a numerical solver for large-scale dynamics with tuned representations for small-scale processes such as cloud formation. Recently, machine learning (ML) models trained on reanalysis data achieved comparable or better skill than GCMs for deterministic weather forecasting. However, these models have not demonstrated improved ensemble forecasts, or shown sufficient stability for long-term weather and climate simulations. Here we present the first GCM that combines a differentiable solver for atmospheric dynamics with ML components, and show that it can generate forecasts of deterministic weather, ensemble weather and climate on par with the best ML and physics-based methods. NeuralGCM is competitive with ML models for 1-10 day forecasts, and with the European Centre for Medium-Range Weather Forecasts ensemble prediction for 1-15 day forecasts. With prescribed sea surface temperature, NeuralGCM can accurately track climate metrics such as global mean temperature for multiple decades, and climate forecasts with 140 km resolution exhibit emergent phenomena such as realistic frequency and trajectories of tropical cyclones. For both weather and climate, our approach offers orders of magnitude computational savings over conventional GCMs. Our results show that end-to-end deep learning is compatible with tasks performed by conventional GCMs, and can enhance the large-scale physical simulations that are essential for understanding and predicting the Earth system.

Paper: https://arxiv.org/pdf/2311.07222v3.pdf

Code: https://github.com/google-research/neuralgcm

Code: https://github.com/google-research/dinosaur

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LivePortrait: Efficient Portrait Animation with Stitching and Retargeting Control

Portrait Animation aims to synthesize a lifelike video from a single source image, using it as an appearance reference, with motion (i.e., facial expressions and head pose) derived from a driving video, audio, text, or generation. Instead of following mainstream diffusion-based methods, we explore and extend the potential of the implicit-keypoint-based framework, which effectively balances computational efficiency and controllability. Building upon this, we develop a video-driven portrait animation framework named LivePortrait with a focus on better generalization, controllability, and efficiency for practical usage. To enhance the generation quality and generalization ability, we scale up the training data to about 69 million high-quality frames, adopt a mixed image-video training strategy, upgrade the network architecture, and design better motion transformation and optimization objectives. Additionally, we discover that compact implicit keypoints can effectively represent a kind of blendshapes and meticulously propose a stitching and two retargeting modules, which utilize a small MLP with negligible computational overhead, to enhance the controllability.

page: https://liveportrait.github.io/

paper: https://arxiv.org/abs/2407.03168

code: https://github.com/KwaiVGI/LivePortrait

jupyter: https://github.com/camenduru/LivePortrait-jupyter

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