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Building LLM Powered  Applications

Building LLM Powered Applications

By : Valentina Alto
4.2 (22)
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Building LLM Powered  Applications

Building LLM Powered Applications

4.2 (22)
By: Valentina Alto

Overview of this book

Building LLM Powered Applications delves into the fundamental concepts, cutting-edge technologies, and practical applications that LLMs offer, ultimately paving the way for the emergence of large foundation models (LFMs) that extend the boundaries of AI capabilities. The book begins with an in-depth introduction to LLMs. We then explore various mainstream architectural frameworks, including both proprietary models (GPT 3.5/4) and open-source models (Falcon LLM), and analyze their unique strengths and differences. Moving ahead, with a focus on the Python-based, lightweight framework called LangChain, we guide you through the process of creating intelligent agents capable of retrieving information from unstructured data and engaging with structured data using LLMs and powerful toolkits. Furthermore, the book ventures into the realm of LFMs, which transcend language modeling to encompass various AI tasks and modalities, such as vision and audio. Whether you are a seasoned AI expert or a newcomer to the field, this book is your roadmap to unlock the full potential of LLMs and forge a new era of intelligent machines.
Table of Contents (16 chapters)
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14
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15
Index

The latest trends in language models and generative AI

As we saw in the previous chapters, LLMs set the basis for extremely powerful applications. Starting with LLMs, over the last months we have witnessed an explosive advancement in generative models, from multimodality to newly born frameworks, to enable multi-agent applications. In the next sections, we will see some examples of these new releases.

GPT-4V(ision)

GPT-4V(ision) is a large multimodal model (LMM) developed by OpenAI and officially released in September 2023. It enables users to instruct GPT-4 to analyze image inputs provided by the user. This integration of image analysis into LLMs represents a significant advancement in AI research and development. Model multimodality was achieved by using a technique called image tokenization, which converts images into sequences of tokens that can be processed by the same model as text. This allows the model to handle different types of data, such as text and images, and...

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