Alibaba's LLM model was recently updated to version 72B after training on a staggering 3 trillion tokens of multilingual data.
This AI marvel can be run locally for complete control and privacy (and speed if you have a powerful GPU)
The image shows a comparison of the characteristics of Qwen 72B with Llama 70B, with GPT-3.5 and GPT-4
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📃SimTeG: A Frustratingly Simple Approach Improves Textual Graph Learning
🗓 Publish year: 2023
🧑💻Authors: Keyu Duan, Qian Liu,Tat-Seng Chua, Shuicheng Yan, Wei Tsang Ooi, Qizhe Xie, Junxian He
🏢Universities: ENational University of Singapore, The Hong Kong University of Science and Technology
📎 Study the paper
💻 Code
✅ https://news.1rj.ru/str/DataScienceT
🗓 Publish year: 2023
🧑💻Authors: Keyu Duan, Qian Liu,Tat-Seng Chua, Shuicheng Yan, Wei Tsang Ooi, Qizhe Xie, Junxian He
🏢Universities: ENational University of Singapore, The Hong Kong University of Science and Technology
📎 Study the paper
💻 Code
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✅ Machine learning interview questions and answers for data scientists
✅ Deep Learning Interview Questions and Answers for Data Scientists
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✅ Questions on probability theory
✅ Repository for a line of online courses on statistics
✅ Questions and answers for data scientists in Python
✅ SQL and DB Interview Questions and Answers for Data Scientists
Questions Based on Resumes
✅ Large Language Model (LLM) Interview Questions and Answers
✅ Questions and answers to interviews on computer vision part 1
✅ Computer vision interview questions and answers part 2
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Taming Stable Diffusion for Text to 360° Panorama Image Generation
🖥 Github: https://github.com/chengzhag/panfusion
📕 Paper: https://arxiv.org/abs/2404.07949v1
🔥 Dataset: https://chengzhag.github.io/publication/panfusion/
✅ https://news.1rj.ru/str/DataScienceT
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EventEgo3D: 3D Human Motion Capture from Egocentric Event Streams
🖥 Github: https://github.com/Chris10M/EventEgo3D
📕 Paper: https://arxiv.org/abs/2404.08640v1
🔥Dataset: https://paperswithcode.com/task/3d-human-pose-estimation
🖥 Github: https://github.com/Chris10M/EventEgo3D
📕 Paper: https://arxiv.org/abs/2404.08640v1
🔥Dataset: https://paperswithcode.com/task/3d-human-pose-estimation
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🔥Demo: https://huggingface.co/spaces/PixArt-alpha/PixArt-Sigma
🖥 Github: https://github.com/PixArt-alpha/PixArt-sigma
🔥Demo: https://huggingface.co/spaces/PixArt-alpha/PixArt-Sigma
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✨ HairFastGAN: Realistic and Robust Hair Transfer with a Fast Encoder-Based Approach
A new model for transferring a hairstyle from a reference image to a source photo for a virtual fitting room.
▪ Paper : https://arxiv.org/abs/2404.01094
▪ Code : https://github.com/AIRI-Institute/HairFastGAN
▪ Colab : https://colab.research.google.com/#fileId=https%3A//huggingface.co/AIRI-Institute/HairFastGAN/blob/main/notebooks/HairFast_inference.ipynb
✅ https://news.1rj.ru/str/DataScienceT
A new model for transferring a hairstyle from a reference image to a source photo for a virtual fitting room.
▪ Paper : https://arxiv.org/abs/2404.01094
▪ Code : https://github.com/AIRI-Institute/HairFastGAN
▪ Colab : https://colab.research.google.com/#fileId=https%3A//huggingface.co/AIRI-Institute/HairFastGAN/blob/main/notebooks/HairFast_inference.ipynb
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There are situations when life circumstances do not allow using ChatGPT and you have to deploy LLM locally.
What can be used in this case?
1. Proprietary models :
2. Open models :
Model estimates currently look something like this (pictured)
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⚡️ 💻 AutoCodeRover: Autonomous Program Improvement
AutoCodeRover is a fully automated tool for fixing bugs on GitHub (fixing bugs in the issues section and generating new features for the project).
AutoCodeRover works in two stages:
🔎 Context search: LLM analyzes the code to collect context.
💊 Patch generation: LLM rewrites code based on received context.
AutoCodeRover already solves ~16% of errors on the SWE-bench dataset and ~22% of errors in SWE-bench lite and continues to improve.
▪ Github
▪Paper
✅ https://news.1rj.ru/str/DataScienceT
AutoCodeRover is a fully automated tool for fixing bugs on GitHub (fixing bugs in the issues section and generating new features for the project).
AutoCodeRover works in two stages:
🔎 Context search: LLM analyzes the code to collect context.
💊 Patch generation: LLM rewrites code based on received context.
AutoCodeRover already solves ~16% of errors on the SWE-bench dataset and ~22% of errors in SWE-bench lite and continues to improve.
▪ Github
▪Paper
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Llama 3 released
Meta has released the new SOTA Llama 3 in two versions for 8B and 70B parameters.
Context length 8K, support 30 languages.
• HF : https://huggingface.co/spaces/ysharma/Chat_with_Meta_llama3_8b
• Blog : https://ai.meta.com/blog/meta-llama-3/
You can test
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