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Modern Time Series Forecasting with Python
Modern Time Series Forecasting with Python

Modern Time Series Forecasting with Python: Explore industry-ready time series forecasting using modern machine learning and deep learning

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Profile Icon Manu Joseph
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€11.99 per month
Full star icon Full star icon Full star icon Full star icon Half star icon 4.2 (30 Ratings)
Paperback Nov 2022 552 pages 1st Edition
eBook
€31.99
Paperback
€39.99
Subscription
Free Trial
Renews at €11.99p/m
Arrow left icon
Profile Icon Manu Joseph
Arrow right icon
€11.99 per month
Full star icon Full star icon Full star icon Full star icon Half star icon 4.2 (30 Ratings)
Paperback Nov 2022 552 pages 1st Edition
eBook
€31.99
Paperback
€39.99
Subscription
Free Trial
Renews at €11.99p/m
eBook
€31.99
Paperback
€39.99
Subscription
Free Trial
Renews at €11.99p/m

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Key benefits

  • Explore industry-tested machine learning techniques used to forecast millions of time series
  • Get started with the revolutionary paradigm of global forecasting models
  • Get to grips with new concepts by applying them to real-world datasets of energy forecasting

Description

We live in a serendipitous era where the explosion in the quantum of data collected and a renewed interest in data-driven techniques such as machine learning (ML), has changed the landscape of analytics, and with it, time series forecasting. This book, filled with industry-tested tips and tricks, takes you beyond commonly used classical statistical methods such as ARIMA and introduces to you the latest techniques from the world of ML. This is a comprehensive guide to analyzing, visualizing, and creating state-of-the-art forecasting systems, complete with common topics such as ML and deep learning (DL) as well as rarely touched-upon topics such as global forecasting models, cross-validation strategies, and forecast metrics. You’ll begin by exploring the basics of data handling, data visualization, and classical statistical methods before moving on to ML and DL models for time series forecasting. This book takes you on a hands-on journey in which you’ll develop state-of-the-art ML (linear regression to gradient-boosted trees) and DL (feed-forward neural networks, LSTMs, and transformers) models on a real-world dataset along with exploring practical topics such as interpretability. By the end of this book, you’ll be able to build world-class time series forecasting systems and tackle problems in the real world.

Who is this book for?

The book is for data scientists, data analysts, machine learning engineers, and Python developers who want to build industry-ready time series models. Since the book explains most concepts from the ground up, basic proficiency in Python is all you need. Prior understanding of machine learning or forecasting will help speed up your learning. For experienced machine learning and forecasting practitioners, this book has a lot to offer in terms of advanced techniques and traversing the latest research frontiers in time series forecasting.

What you will learn

  • Find out how to manipulate and visualize time series data like a pro
  • Set strong baselines with popular models such as ARIMA
  • Discover how time series forecasting can be cast as regression
  • Engineer features for machine learning models for forecasting
  • Explore the exciting world of ensembling and stacking models
  • Get to grips with the global forecasting paradigm
  • Understand and apply state-of-the-art DL models such as N-BEATS and Autoformer
  • Explore multi-step forecasting and cross-validation strategies

Product Details

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Publication date, Length, Edition, Language, ISBN-13
Publication date : Nov 24, 2022
Length: 552 pages
Edition : 1st
Language : English
ISBN-13 : 9781803246802
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Product Details

Publication date : Nov 24, 2022
Length: 552 pages
Edition : 1st
Language : English
ISBN-13 : 9781803246802
Category :
Languages :
Concepts :

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Customer reviews

Top Reviews
Rating distribution
Full star icon Full star icon Full star icon Full star icon Half star icon 4.2
(30 Ratings)
5 star 70%
4 star 10%
3 star 0%
2 star 10%
1 star 10%
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Machiel Kruger Feb 22, 2024
Full star icon Full star icon Full star icon Full star icon Full star icon 5
Feefo Verified review Feefo
Kumar A. Dec 02, 2022
Full star icon Full star icon Full star icon Full star icon Full star icon 5
It covers all the aspects of modern time series forecasting. The worked examples are easy to understand and explains the concepts well.This book will help practitioners who will be working with real world time series forecasting problems. Candidates will also find it useful for interview preparations in this field.
Amazon Verified review Amazon
Faris Jul 06, 2023
Full star icon Full star icon Full star icon Full star icon Full star icon 5
Well written, explainations are detailed enough to get you where you need to go.
Amazon Verified review Amazon
Kindle Customer Dec 25, 2022
Full star icon Full star icon Full star icon Full star icon Full star icon 5
The book takes the reader on a journey from the most basic of TS concepts and models, all the way to the advanced level.The best part about the book for me is that, the author has not just explained the topics but has also tried to equip the reader with the tools and explanations, that can help one understand the concepts intuitively. Have come across many books that leave you with the formulas, but not many that bring them home. This book bridges that gap to a very large extent.10/10 a must read!
Amazon Verified review Amazon
yedunathan May 10, 2023
Full star icon Full star icon Full star icon Full star icon Full star icon 5
This is a great book for any who wants to learn practical approach to time series.This book addresses the domain specific challenges as well very clearly.
Amazon Verified review Amazon
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