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Deep Learning for Search, Tommaso Teofili

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    IBAN UA943052990000026009026215754
Deep Learning for Search, Tommaso Teofili - фото 1 - id-p2187242471

Характеристики и описание

Друкчорно-білий
ЯзыкEnglish
ОбложкаМягкая
Папірбілий, офсет
Рік2019
Состояниенова книга
Сторінок328

Summary

Deep Learning for Search

teaches you how to improve the effectiveness of your search by implementing neural network-based techniques. By the time you're finished with the book, you'll be ready to build amazing search engines that deliver the results your users need and that get better as time goes on!

Foreword by Chris Mattmann.

About the Technology

Deep learning handles the toughest search challenges, including imprecise search terms, badly indexed data, and retrieving images with minimal metadata. And with modern tools like DL4J and TensorFlow, you can apply powerful DL techniques without a deep background in data science or natural language processing (NLP). This book will show you how.

About the Book

Deep Learning for Search

teaches you to improve your search results with neural networks. You'll review how DL relates to search basics like indexing and ranking. Then, you'll walk through in-depth examples to upgrade your search with DL techniques using Apache Lucene and Deeplearning4j. As the book progresses, you'll explore advanced topics like searching through images, translating user queries, and designing search engines that improve as they learn!

What's inside

Accurate and relevant rankings

Searching across languages

Content-based image search

Search with recommendations

About the Reader

For developers comfortable with Java or a similar language and search basics. No experience with deep learning or NLP needed.

About the Author

Tommaso Teofili

is a software engineer with a passion for open source and machine learning. As a member of the Apache Software Foundation, he contributes to a number of open source projects, ranging from topics like information retrieval (such as Lucene and Solr) to natural language processing and machine translation (including OpenNLP, Joshua, and UIMA).

He currently works at Adobe, developing search and indexing infrastructure components, and researching the areas of natural language processing, information retrieval, and deep learning. He has presented search and machine learning talks at conferences including BerlinBuzzwords, International Conference on Computational Science, ApacheCon, EclipseCon, and others. You can find him on Twitter at @tteofili.

Table of Contents

PART 1 - SEARCH MEETS DEEP LEARNING

Neural search

Generating synonyms

PART 2 - THROWING NEURAL NETS AT A SEARCH ENGINE

From plain retrieval to text generation

More-sensitive query suggestions

Ranking search results with word embeddings

Document embeddings for rankings and recommendations

PART 3 - ONE STEP BEYOND

Searching across languages

Content-based image search

A peek at performance

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