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The Applied AI and Natural Language Processing Workshop

You're reading from   The Applied AI and Natural Language Processing Workshop Explore practical ways to transform your simple projects into powerful intelligent applications

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Product type Paperback
Published in Jul 2020
Publisher Packt
ISBN-13 9781800208742
Length 384 pages
Edition 1st Edition
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Authors (3):
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Ruze Richards Ruze Richards
Author Profile Icon Ruze Richards
Ruze Richards
Krishna Sankar Krishna Sankar
Author Profile Icon Krishna Sankar
Krishna Sankar
Jeffrey Jackovich Jeffrey Jackovich
Author Profile Icon Jeffrey Jackovich
Jeffrey Jackovich
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Table of Contents (8) Chapters Close

Preface
1. An Introduction to AWS 2. Analyzing Documents and Text with Natural Language Processing FREE CHAPTER 3. Topic Modeling and Theme Extraction 4. Conversational Artificial Intelligence 5. Using Speech with the Chatbot 6. Computer Vision and Image Processing Appendix

Topic Modeling with Latent Dirichlet Allocation (LDA)

The subjects or common themes of a set of documents can be determined with Amazon Comprehend. For example, you have a movie review website with two message boards, and you want to determine which message board is discussing two newly released movies (one about sport and the other about a political topic). You can provide the message board text data to Amazon Comprehend to discover the most prominent topics discussed on each message board.

The machine learning algorithm that Amazon Comprehend uses to perform Topic Modeling is called Latent Dirichlet Allocation (LDA). LDA is a learning-based model that's used to determine the most important topics in a collection of documents.

How LDA works is that it considers every document to be a combination of topics, and each word in the document is associated with one of these topics.

For example, if the first paragraph of a document consists of words such as eat, chicken, restaurant...

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