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Python Natural Language Processing

Python Natural Language Processing

By : Jalaj Thanaki
3.6 (5)
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Python Natural Language Processing

Python Natural Language Processing

3.6 (5)
By: Jalaj Thanaki

Overview of this book

This book starts off by laying the foundation for Natural Language Processing and why Python is one of the best options to build an NLP-based expert system with advantages such as Community support, availability of frameworks and so on. Later it gives you a better understanding of available free forms of corpus and different types of dataset. After this, you will know how to choose a dataset for natural language processing applications and find the right NLP techniques to process sentences in datasets and understand their structure. You will also learn how to tokenize different parts of sentences and ways to analyze them. During the course of the book, you will explore the semantic as well as syntactic analysis of text. You will understand how to solve various ambiguities in processing human language and will come across various scenarios while performing text analysis. You will learn the very basics of getting the environment ready for natural language processing, move on to the initial setup, and then quickly understand sentences and language parts. You will learn the power of Machine Learning and Deep Learning to extract information from text data. By the end of the book, you will have a clear understanding of natural language processing and will have worked on multiple examples that implement NLP in the real world.
Table of Contents (13 chapters)
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Algorithms used by neural networks

Here, we will look at the structure of individual neurons. We will also look into the details about the two algorithms, thus, we will understand how word2vec generates vectors from words.

Structure of the neurons

We have seen the overall neural network structure, but we haven't yet seen what each neuron is made of and what the structure of the neurons is. So, in this section, we will look at the structure of each single input neuron.

We will look at the following structures:

  • Basic neuron structure
  • Training a single neuron
  • Single neuron application
  • Multi-layer neural network
  • Backpropagation
  • Mathematics behind the word2vec model

In this, we will heavily include the mathematical formulas...

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Python Natural Language Processing
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