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Hands-On Python Natural Language Processing

You're reading from   Hands-On Python Natural Language Processing Explore tools and techniques to analyze and process text with a view to building real-world NLP applications

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Product type Paperback
Published in Jun 2020
Publisher Packt
ISBN-13 9781838989590
Length 316 pages
Edition 1st Edition
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Authors (2):
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Mayank Rasu Mayank Rasu
Author Profile Icon Mayank Rasu
Mayank Rasu
Aman Kedia Aman Kedia
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Aman Kedia
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Table of Contents (16) Chapters Close

Preface 1. Section 1: Introduction
2. Understanding the Basics of NLP FREE CHAPTER 3. NLP Using Python 4. Section 2: Natural Language Representation and Mathematics
5. Building Your NLP Vocabulary 6. Transforming Text into Data Structures 7. Word Embeddings and Distance Measurements for Text 8. Exploring Sentence-, Document-, and Character-Level Embeddings 9. Section 3: NLP and Learning
10. Identifying Patterns in Text Using Machine Learning 11. From Human Neurons to Artificial Neurons for Understanding Text 12. Applying Convolutions to Text 13. Capturing Temporal Relationships in Text 14. State of the Art in NLP 15. Other Books You May Enjoy

Exploring the biology behind neural networks

Neural networks were based on the functioning of neurons in the brain. Dendrites in the brain receive input signals from the neighboring neurons. Each dendrite has a weight associated with it and the signal coming in from a specific dendrite gets multiplied by its corresponding weight. These incoming signals are then summed up in the cell body. As this summed-up value reaches a particular threshold, the summed-up signal is then sent across through the neuron's axon and is further propagated forward. The weights associated with a dendrite dictate the importance of the signal coming in through a particular dendrite. These values get changed dynamically. ANNs build upon the same context. Let's look at the structure of a basic ANN in the next section.

Neurons

An ANN is an interconnected network of neurons. Each neuron, as shown in the diagram at the end of this section, receives n input signals that are nothing but a set of features,...

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