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Time Series Forecasting Using Foundation Models - by  Marco Peixeiro (Paperback) - 1 of 1

Time Series Forecasting Using Foundation Models - by Marco Peixeiro (Paperback)

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About this item

Highlights

  • Make accurate time series predictions with powerful pretrained foundation models!
  • 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.
  • 256 Pages
  • Computers + Internet,

Description



Book Synopsis



Make accurate time series predictions with powerful pretrained foundation models!

You don't need to spend weeks--or even months--coding and training your own models for time series forecasting. Time Series Forecasting Using Foundation Models shows you how to make accurate predictions using flexible pretrained models.

In Time Series Forecasting Using Foundation Models you will discover:

- The inner workings of large time models
- Zero-shot forecasting on custom datasets
- Fine-tuning foundation forecasting models
- Evaluating large time models

Time Series Forecasting Using Foundation Models teaches you how to do efficient forecasting using powerful time series models that have already been pretrained on billions of data points. You'll appreciate the hands-on examples that show you what you can accomplish with these amazing models. Along the way, you'll learn how time series foundation models work, how to fine-tune them, and how to use them with your own data.

About the technology

Time-series forecasting is the art of analyzing historical, time-stamped data to predict future outcomes. Foundational time series models like TimeGPT and Chronos, pre-trained on billions of data points, can now effectively augment or replace painstakingly-built custom time-series models.

About the book

Time Series Forecasting Using Foundation Models explores the architecture of large time models and shows you how to use them to generate fast, accurate predictions. You'll learn to fine-tune time models on your own data, execute zero-shot probabilistic forecasting, point forecasting, and more. You'll even find out how to reprogram an LLM into a time series forecaster--all following examples that will run on an ordinary laptop.

What's inside

- How large time models work
- Zero-shot forecasting on custom datasets
- Fine-tuning and evaluating foundation models

About the reader

For data scientists and machine learning engineers familiar with the basics of time series forecasting theory. Examples in Python.

About the author

Marco Peixeiro builds cutting-edge open-source forecasting Python libraries at Nixtla. He is the author of Time Series Forecasting in Python.

Table of Contents

Part 1
1 Understanding foundation models
2 Building a foundation model
Part 2
3 Forecasting with TimeGPT
4 Zero-shot probabilistic forecasting with Lag-Llama
5 Learning the language of time with Chronos
6 Moirai: A universal forecasting transformer
7 Deterministic forecasting with TimesFM
Part 3
8 Forecasting as a language task
9 Reprogramming an LLM for forecasting
Part 4
10 Capstone project: Forecasting daily visits to a blog

Get a free eBook (PDF or ePub) from Manning as well as access to the online liveBook format (and its AI assistant that will answer your questions in any language) when you purchase the print book.



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. He is an active contributor to Towards Data Science, an instructor on Udemy, and on YouTube in collaboration with freeCodeCamp.
Dimensions (Overall): 9.31 Inches (H) x 7.31 Inches (W) x .81 Inches (D)
Weight: .8 Pounds
Suggested Age: 22 Years and Up
Number of Pages: 256
Genre: Computers + Internet
Publisher: Manning Publications
Format: Paperback
Author: Marco Peixeiro
Language: English
Street Date: December 16, 2025
TCIN: 1006584211
UPC: 9781633435896
Item Number (DPCI): 247-02-1630
Origin: Made in the USA or Imported
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Shipping details

Estimated ship dimensions: 0.81 inches length x 7.31 inches width x 9.31 inches height
Estimated ship weight: 0.8 pounds
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Q: Are there hands-on examples in the book?

submitted by AI Shopping Assistant - 2 months ago
  • A: Yes, the book includes hands-on examples to demonstrate the capabilities of the pretrained models.

    submitted byAI Shopping Assistant - 2 months ago
    Ai generated

Q: What is the focus of this book?

submitted by AI Shopping Assistant - 2 months ago
  • A: The book focuses on making accurate time series predictions using powerful pretrained foundation models.

    submitted byAI Shopping Assistant - 2 months ago
    Ai generated

Q: Who is the author of the book?

submitted by AI Shopping Assistant - 2 months ago
  • A: The author is Marco Peixeiro, a data science instructor and experienced data scientist.

    submitted byAI Shopping Assistant - 2 months ago
    Ai generated

Q: What skills will the reader acquire?

submitted by AI Shopping Assistant - 2 months ago
  • A: Readers will learn to fine-tune models, perform zero-shot forecasting, and evaluate large time models.

    submitted byAI Shopping Assistant - 2 months ago
    Ai generated

Q: What technology does the book primarily discuss?

submitted by AI Shopping Assistant - 2 months ago
  • A: It discusses foundational time series models such as TimeGPT and Chronos for effective forecasting.

    submitted byAI Shopping Assistant - 2 months ago
    Ai generated

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