Manuel Amunategui Mehdi Roopaei Amunategui Monetizing Machine Learning

Monetizing Machine Learning

von Manuel Amunategui Mehdi Roopaei

Quickly Turn Python ML Ideas into Web Applications on the Serverless Cloud

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Beschreibung

Take your Python machine learning ideas and create serverless web applications accessible by anyone with an Internet connection. Some of the most popular serverless cloud providers are covered in this book—Amazon, Microsoft, Google, and PythonAnywhere.

You will work through a series of common Python data science problems in an increasing order of complexity. The practical projects presented in this book are simple, clear, and can be used as templates to jump-start many other types of projects. You will learn to create a web application around numerical or categorical predictions, understand the analysis of text, create powerful and interactive presentations, serve restricted access to data, and leverage web plugins to accept credit card payments and donations. You will get your projects into the hands of the world in no time.

Each chapter follows three steps: modeling the right way, designing and developing a local web application, and deploying onto a popular andreliable serverless cloud provider. You can easily jump to or skip particular topics in the book. You also will have access to Jupyter notebooks and code repositories for complete versions of the code covered in the book.

What You’ll Learn:


Take your Python machine learning ideas and create serverless web applications accessible by anyone with an Internet connection. Some of the most popular serverless cloud providers are covered in this book—Amazon, Microsoft, Google, and PythonAnywhere.

You will work through a series of common Python data science problems in an increasing order of complexity. The practical projects presented in this book are simple, clear, and can be used as templates to jump-start many other types of projects. You will learn to create a web application around numerical or categorical predictions, understand the analysis of text, create powerful and interactive presentations, serve restricted access to data, and leverage web plugins to accept credit card payments and donations. You will get your projects into the hands of the world in no time.

Each chapter follows three steps: modeling the right way, designing and developing a local web application, and deploying onto a popular and reliable serverless cloud provider. You can easily jump to or skip particular topics in the book. You also will have access to Jupyter notebooks and code repositories for complete versions of the code covered in the book.

What You’ll Learn

Who This Book Is For

Those with some programming experience with Python, code editing, and access to an interpreter in working order. The book is geared toward entrepreneurs who want to get their ideas onto the web without breaking the bank, small companies without an IT staff, students wanting exposure and training, and for all data science professionals ready to take things to the next level.


Ties together three different knowledge sets—machine learning/statistics, prototyping via web applications, and working with cloud providers Provides a simple, cloud-brand and technology-agnostic guide on extending Python modeling work to the world stage as quickly as possible and with little compromise Discusses the systematic art of rapid prototyping of statistics and modeling work onto the web

Autor*in

Manuel Amunategui

Themen in »Monetizing Machine Learning«

Machine learning Machine Intelligence TensorFlow Deep learning Google Cloud Platform Cloud computing Web Application Python Cloud Hosting Serverless Flask Modeling Small Business Natural Language Processing NLP

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Details

ISBN: 9781484238738
Verlag: APRESS
Erscheinung: 12.09.2018

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