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Deep Learning for Natural Language Processing

You're reading from   Deep Learning for Natural Language Processing Solve your natural language processing problems with smart deep neural networks

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Product type Paperback
Published in Jun 2019
Publisher
ISBN-13 9781838550295
Length 372 pages
Edition 1st Edition
Languages
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Authors (4):
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Karthiek Reddy Bokka Karthiek Reddy Bokka
Author Profile Icon Karthiek Reddy Bokka
Karthiek Reddy Bokka
Monicah Wambugu Monicah Wambugu
Author Profile Icon Monicah Wambugu
Monicah Wambugu
Tanuj Jain Tanuj Jain
Author Profile Icon Tanuj Jain
Tanuj Jain
Shubhangi Hora Shubhangi Hora
Author Profile Icon Shubhangi Hora
Shubhangi Hora
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Toc

Table of Contents (11) Chapters Close

About the Book 1. Introduction to Natural Language Processing FREE CHAPTER 2. Applications of Natural Language Processing 3. Introduction to Neural Networks 4. Foundations of Convolutional Neural Network 5. Recurrent Neural Networks 6. Gated Recurrent Units (GRUs) 7. Long Short-Term Memory (LSTM) 8. State-of-the-Art Natural Language Processing 9. A Practical NLP Project Workflow in an Organization 1. Appendix

Fundamentals of Deploying a Model as a Service

The purpose of deploying a model as a service is for other people to view and access it with ease, and in other ways besides just looking at your code on GitHub. There are different types of model deployments, depending on why you've created the model in the first place. You could say there are three types—a streaming model (one that constantly learns as it is constantly fed data and then makes predictions), an analytics as a service model (AaaS—one that is open for anyone to interact with) and an on-line model (one which is only accessible by people working within the same company).

The most common way of showcasing your work is through a web application. There are multiple deployment platforms that aid and allow you to deploy your models through them, such as Deep Cognition, MLflow, and others.

Flask is the easiest micro web framework to use to deploy your own model without using an existing platform. It is written in Python...

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