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Natural Language Processing with Java

You're reading from   Natural Language Processing with Java Techniques for building machine learning and neural network models for NLP

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Product type Paperback
Published in Jul 2018
Publisher
ISBN-13 9781788993494
Length 318 pages
Edition 2nd Edition
Languages
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Authors (2):
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Ashish Bhatia Ashish Bhatia
Author Profile Icon Ashish Bhatia
Ashish Bhatia
Richard M. Reese Richard M. Reese
Author Profile Icon Richard M. Reese
Richard M. Reese
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Toc

Table of Contents (14) Chapters Close

Preface 1. Introduction to NLP FREE CHAPTER 2. Finding Parts of Text 3. Finding Sentences 4. Finding People and Things 5. Detecting Part of Speech 6. Representing Text with Features 7. Information Retrieval 8. Classifying Texts and Documents 9. Topic Modeling 10. Using Parsers to Extract Relationships 11. Combined Pipeline 12. Creating a Chatbot 13. Other Books You May Enjoy

Scoring and term weighting


Term weighting deals with evaluating the importance of a term with respect to a document. A simple way is to think of this is that the term that appears more in the documents is an important term, apart from the stop words. A score from 0-1 can be assigned to each document. A score is a measurement that shows how well the term or query is matched in the document. A score of 0 means that the term does not exist in the document. As the frequency of the term increases in the document, the score moves from 0 toward 1. So, for a given term X, the scores for three documents, d1, d2, and d3 are 0.2, 0.3, and 0.5, respectively, which means that the match in d3 is more important than d2 and d1 is least important for the overall score. The same applies for the zones as well. How to assign such a score or weight to the term requires learning from some training set or continuously running and updating the score for terms.

The real-time query will be in the form of free text...

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