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Serverless Machine Learning with Amazon Redshift ML

Serverless Machine Learning with Amazon Redshift ML

By : Debu Panda, Phil Bates, Bhanu Pittampally, Sumeet Joshi
5 (3)
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Serverless Machine Learning with Amazon Redshift ML

Serverless Machine Learning with Amazon Redshift ML

5 (3)
By: Debu Panda, Phil Bates, Bhanu Pittampally, Sumeet Joshi

Overview of this book

Amazon Redshift Serverless enables organizations to run petabyte-scale cloud data warehouses quickly and in a cost-effective way, enabling data science professionals to efficiently deploy cloud data warehouses and leverage easy-to-use tools to train models and run predictions. This practical guide will help developers and data professionals working with Amazon Redshift data warehouses to put their SQL knowledge to work for training and deploying machine learning models. The book begins by helping you to explore the inner workings of Redshift Serverless as well as the foundations of data analytics and types of data machine learning. With the help of step-by-step explanations of essential concepts and practical examples, you’ll then learn to build your own classification and regression models. As you advance, you’ll find out how to deploy various types of machine learning projects using familiar SQL code, before delving into Redshift ML. In the concluding chapters, you’ll discover best practices for implementing serverless architecture with Redshift. By the end of this book, you’ll be able to configure and deploy Amazon Redshift Serverless, train and deploy machine learning models using Amazon Redshift ML, and run inference queries at scale.
Table of Contents (19 chapters)
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1
Part 1:Redshift Overview: Getting Started with Redshift Serverless and an Introduction to Machine Learning
5
Part 2:Getting Started with Redshift ML
11
Part 3:Deploying Models with Redshift ML

What is Amazon Forecast?

Amazon Forecast, like Amazon Redshift ML, requires no ML experience to use. Time-series forecasts are generated using various ML and statistical algorithms based on historical data. As a user, you simply send data to Amazon Forecast and it will examine the data and automatically identify what is meaningful and produces a forecasting model.

With Amazon Redshift ML, you can leverage Amazon Forecast to create and train forecasting models from your time-series data and use these models to generate forecasts. For forecasting, we require a target time-series dataset. In target time-series forecasting, we predict the future value of a variable using the past data or previous values, which is often called univariate time series because the data is sequential over equal time increments. Currently, Redshift ML supports target time-series datasets with a custom domain. The dataset in your data warehouse must contain the frequency or interval at which you capture your...

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