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Source channel @githubtrending · Post #14845 · Jun 20

#jupyter_notebook#ai#artificial_intelligence#chatgpt#deep_learning#from_scratch#gpt#language_model#large_language_models#llm#machine_learning#python#pytorch#transformer You can learn how to build your own large language model (LLM) like GPT from scratch with clear, step-by-step guidance, including coding, training, and fine-tuning, all explained with examples and diagrams. This approach mirrors how big models like ChatGPT are made but is designed to run on a regular laptop without special hardware. You also get access to code for loading pretrained models and fine-tuning them for tasks like text classification or instruction following. This helps you deeply understand how LLMs work inside and lets you create your own functional AI assistant, gaining practical skills in AI development[1][2][3][4]. https://github.com/rasbt/LLMs-from-scratch

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AI & Law

@ai_and_law · Post #377 · 08/19/2024, 07:04 AM

MIT CSAIL Unveils Groundbreaking AI Risk Repository MIT's Computer Science and Artificial Intelligence Laboratory (CSAIL) has launched its first-ever AI Risk Repository, setting a new standard for understanding and managing AI risks. This comprehensive database, encompassing over 700 identified risks from 43 existing frameworks, is poised to become an essential tool for stakeholders across the AI ecosystem. The AI Risk Repository is divided into three key components: ✅ AI Risk Database - a detailed compilation of risks, complete with references. ✅ Causal Taxonomy of AI Risks - an analytical framework that explains how, when, and why these risks manifest. ✅ Domain Taxonomy of AI Risks - categorizes these risks into seven domains and 23 subdomains. This repository offers an invaluable resource for researchers, developers, policymakers, and regulators, providing a unified reference point for identifying, analyzing, and mitigating AI-related risks. #AIandLaw#AIrisks#MITCSAIL#AIregulation#ResponsibleAI