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Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition
Quick Start Guide to Large Language Models 2nd Edition

Quick Start Guide to Large Language Models 2nd Edition

Tình trạng: Còn hàng
Tác giả: Addison-Wesley Professional
Loại: Artificial Intelligence

In Quick Start Guide to Large Language Models 2nd Edition, pioneering data scientist and AI entrepreneur Sinan Ozdemir clears away those obstacles and provides a guide to working with, integrating, and deploying LLMs to solve practical problems.

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📚📚 I. THÔNG TIN SẢN PHẨM
📒 Mã sản phẩm :  STT1521
📒 Nhà xuất bản : Addison-Wesley Professional; 2nd edition (October 13, 2024)
📒 Tác giả : Sinan Ozdemir 
📒 Ngôn ngữ :   Tiếng Anh
📒 ISBN      : 0135346568
📒 Số trang :  384 trang
📒 Hình thức : Bìa Mềm, IN ĐEN TRẮNG
📒 Loại : Sách gia công đóng gáy keo chắc chắn chất lượng cao
📒 Giấy in : Giấy ngoại định lượng 70msg, viết vẽ và hightlight thoải mái.
📒 Chất lượng : Bản in rõ nét, giá rất tốt cho mọi người.


📚📚 II. MÔ TẢ SẢN PHẨM
📒 1.Mô tả sản phẩm

The Practical, Step-by-Step Guide to Using LLMs at Scale in Projects and Products

Large Language Models (LLMs) like Llama 3, Claude 3, and the GPT family are demonstrating breathtaking capabilities, but their size and complexity have deterred many practitioners from applying them. In Quick Start Guide to Large Language Models, Second Edition, pioneering data scientist and AI entrepreneur Sinan Ozdemir clears away those obstacles and provides a guide to working with, integrating, and deploying LLMs to solve practical problems.

Ozdemir brings together all you need to get started, even if you have no direct experience with LLMs: step-by-step instructions, best practices, real-world case studies, and hands-on exercises. Along the way, he shares insights into LLMs' inner workings to help you optimize model choice, data formats, prompting, fine-tuning, performance, and much more. The resources on the companion website include sample datasets and up-to-date code for working with open- and closed-source LLMs such as those from OpenAI (GPT-4 and GPT-3.5), Google (BERT, T5, and Gemini), X (Grok), Anthropic (the Claude family), Cohere (the Command family), and Meta (BART and the LLaMA family).

  • Learn key concepts: pre-training, transfer learning, fine-tuning, attention, embeddings, tokenization, and more
  • Use APIs and Python to fine-tune and customize LLMs for your requirements
  • Build a complete neural/semantic information retrieval system and attach to conversational LLMs for building retrieval-augmented generation (RAG) chatbots and AI Agents
  • Master advanced prompt engineering techniques like output structuring, chain-of-thought prompting, and semantic few-shot prompting
  • Customize LLM embeddings to build a complete recommendation engine from scratch with user data that outperforms out-of-the-box embeddings from OpenAI
  • Construct and fine-tune multimodal Transformer architectures from scratch using open-source LLMs and large visual datasets
  • Align LLMs using Reinforcement Learning from Human and AI Feedback (RLHF/RLAIF) to build conversational agents from open models like Llama 3 and FLAN-T5
  • Deploy prompts and custom fine-tuned LLMs to the cloud with scalability and evaluation pipelines in mind
  • Diagnose and optimize LLMs for speed, memory, and performance with quantization, probing, benchmarking, and evaluation frameworks

📒 2. Tác giả

Sinan Ozdemir is currently the founder and CTO of LoopGenius and an advisor to several AI companies. Sinan is a former lecturer of Data Science at Johns Hopkins University and the author of multiple textbooks on data science and machine learning. Additionally, he is the founder of the recently acquired Kylie.ai, an enterprise-grade conversational AI platform with RPA capabilities. He holds a master's degree in Pure Mathematics from Johns Hopkins University and is based in San Francisco, CA.

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