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Time Series Forecasting in Python, Paperback by Peixeiro, Marco, Like New Use...

Description: Time Series Forecasting in Python, Paperback by Peixeiro, Marco, ISBN 161729988X, ISBN-13 9781617299889, Like New Used, Free shipping in the US Build predictive models from time-based patterns in your data. Master statistical models including new deep learning approaches for time series forecasting. In Time Series Forecasting in Python you will learn how to:     Recognize a time series forecasting problem and build a performant predictive model     Create univariate forecasting models that account for seasonal effects and external variables     Build multivariate forecasting models to predict many time series at once     Leverage large datasets by using deep learning for forecasting time series     Automate the forecasting process Time Series Forecasting in Python teaches you to build powerful predictive models from time-based data. Every model you create is relevant, useful, and easy to implement with Python. You’ll explore interesting real-world datasets like Google’s daily stock price and economic data for the USA, quickly progressing from the basics to developing large-scale models that use deep learning tools like TensorFlow. Purchase of the print book includes a free in , , and ePub formats from Manning Publications. About the technology You can predict the future—with a little help from Python, deep learning, and time series data! Time series forecasting is a technique for modeling time-centric data to identify upcoming events. New Python libraries and powerful deep learning tools make accurate time series forecasts easier than ever before. About th Time Series Forecasting in Python teaches you how to get immediate, meaningful predictions from time-based data such as logs, customer analytics, and other event streams. In this accessibl, you’ll learn statistical and deep learning methods for time series forecasting, fully demonstrated with annotated Python code. Develop your skills with projects like predicting the future volume of drug prescriptions, and you’ll soon be ready to build your own accurate, insightful forecasts. What's inside     Create models for seasonal effects and external variables     Multivariate forecasting models to predict multiple time series     Deep learning for large datasets     Automate the forecasting process About the reader For data scientists familiar with Python and TensorFlow. About the author Marco Peixeiro is a seasoned data science instructor who has worked as a data scientist for one of Canada’s largest banks. Table of Contents PART 1 TIME WAITS FOR NO ONE 1 Understanding time series forecasting 2 A naive prediction of the future 3 Going on a random walk PART 2 FORECASTING WITH STATISTICAL MODELS 4 Modeling a moving average process 5 Modeling an autoregressive process 6 Modeling complex time series 7 Forecasting non-stationary time series 8 Accounting for seasonality 9 Adding external variables to our model 10 Forecasting multiple time series 11 Capstone: Forecasting the number of antidiabetic drug prescriptions in Australia PART 3 LARGE-SCALE FORECASTING WITH DEEP LEARNING 12 Introducing deep learning for time series forecasting 13 Data windowing and creating baselines for deep learning 14 Baby steps with deep learning 15 Remembering the past with LSTM 16 Filtering a time series with CNN 17 Using predictions to make more predictions 18 Capstone: Forecasting the electric power consumption of a household PART 4 AUTOMATING FORECASTING AT SCALE 19 Automating time series forecasting with Prophet 20 Capstone: Forecasting the monthly average retail price of steak in Canada 21 Going above and beyond

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Time Series Forecasting in Python, Paperback by Peixeiro, Marco, Like New Use...

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Book Title: Time Series Forecasting in Python

Number of Pages: 456 Pages

Language: English

Publication Name: Time Series Forecasting in Python

Publisher: Manning Publications Co. LLC

Subject: Data Processing, Databases / Data Mining

Publication Year: 2022

Item Height: 1.1 in

Type: Textbook

Item Weight: 29.6 Oz

Subject Area: Computers

Author: Marco Peixeiro

Item Length: 9.2 in

Item Width: 7.3 in

Format: Trade Paperback

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