Packt Publishing
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Build end-to-end industrial-strength NLP models using advanced morphological and syntactic features in spaCy to create real-world applications with ease
Key Features:
Book Description:
spaCy is an industrial-grade, efficient NLP Python library. It offers various pre-trained models and ready-to-use features. Mastering spaCy provides you with end-to-end coverage of spaCys features and real-world applications.
Youll begin by installing spaCy and downloading models, before progressing to spaCys features and prototyping real-world NLP apps. Next, youll get familiar with visualizing with spaCys popular visualizer displaCy. The book also equips you with practical illustrations for pattern matching and helps you advance into the world of semantics with word vectors. Statistical information extraction methods are also explained in detail. Later, youll cover an interactive business case study that shows you how to combine all spaCy features for creating a real-world NLP pipeline. Youll implement ML models such as sentiment analysis, intent recognition, and context resolution. The book further focuses on classification with popular frameworks such as TensorFlows Keras API together with spaCy. Youll cover popular topics, including intent classification and sentiment analysis, and use them on popular datasets and interpret the classification results.
By the end of this book, youll be able to confidently use spaCy, including its linguistic features, word vectors, and classifiers, to create your own NLP apps.
What You Will Learn:
Who this book is for:
This book is for data scientists and machine learners who want to excel in NLP as well as NLP developers who want to master spaCy and build applications with it. Language and speech professionals who want to get hands-on with Python and spaCy and software developers who want to quickly prototype applications with spaCy will also find this book helpful. Beginner-level knowledge of the Python programming language is required to get the most out of this book. A beginner-level understanding of linguistics such as parsing, POS tags, and semantic similarity will also be useful.
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