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Source channel @githubtrending · Post #14909 · Jul 3

#other#agent#llm#rag Happy-LLM is a free, open-source learning project that helps you deeply understand large language models (LLMs) from basics to advanced training and applications. It teaches you key concepts like NLP, Transformer architecture, pretraining, and how to build and train your own LLaMA2 model step-by-step. You also learn practical skills like fine-tuning and using cutting-edge techniques such as Retrieval-Augmented Generation (RAG) and intelligent agents. This project is ideal if you know some Python and deep learning, and it offers both theory and hands-on code to help you master LLM development and apply it in real-world AI tasks. This can boost your skills and confidence in AI model building and research. https://github.com/datawhalechina/happy-llm

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AI & Law

@ai_and_law · Post #256 · 03/07/2024, 08:04 AM

Mozilla Foundation Study Raises Concerns on Watermarking AI Content Hello everyone! In a study released by the Mozilla Foundation, the challenges of identifying synthetic content online have been brought to light. Titled "In Transparency We Trust? Evaluating Watermarking and Labeling AI-Generated Content," the study delves into the effectiveness of various methods, including watermarking and labeling, in differentiating between synthetic and authentic content. The study, which conducted a comprehensive assessment of seven methods, both machine-readable and human-facing, revealed alarming findings: none of the methods were rated as "good," indicating significant hurdles in accurately identifying synthetic content. Despite efforts to implement watermarking and labeling, the study underscores the persistent difficulties faced in combatting the proliferation of AI-generated content. #MozillaFoundation#AIContent#Watermarking