Advanced Forecasting with Python
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Advanced Forecasting with Python, Apress
Mastering Modern Forecasting Techniques with Machine Learning and Cloud Tools
Von Joos Korstanje, im heise shop in digitaler Fassung erhältlich
Produktinformationen "Advanced Forecasting with Python"
Advanced Forecasting with Python, Second Edition, is a comprehensive and
practical guide to mastering modern forecasting techniques using Python.
Designed for data scientists, analysts, and machine learning practitioners, this
updated edition bridges the gap between classical forecasting models and
cutting-edge, AI-powered techniques that are reshaping the field.
The book begins with foundational models like AR, MA, ARIMA, and SARIMA,
offering intuitive and mathematical explanations alongside hands-on Python
implementations. It then expands into multivariate models (VAR, VARMAX),
supervised machine learning (Random Forests, XGBoost, LightGBM, CatBoost), and
deep learning architectures such as LSTMs, NBEATS, and Transformers. Each
chapter not only teaches the theory and code but also tracks model performance
using MLflow, enabling efficient benchmarking and experimentation management.
The second edition stands out for its extensive new content. Readers will now
explore Orbit by Uber, AutoGluon by AWS, Prophet by Meta, Microsoft Azure
AutoML, Google GCP AutoML, and TimeGPT by Nixtla, equipping them with the latest
tools from top cloud providers. These additions make sure that readers stay
current in an ever-evolving landscape. Moreover, the new chapters highlight
practical deployment strategies and trade-offs between performance,
explainability, and scalability.
Whether you are just beginning your forecasting journey or seeking to enhance
your expertise with state-of-the-art tools and cloud-based solutions, this book
offers a rich, hands-on learning experience. With step-by-step Python examples,
detailed model insights, and modern forecasting workflows, it is an
indispensable resource for staying ahead in the realm of predictive analytics.
You Will:
- Build robust forecasting solutions using Python
- Gain both intuitive and mathematical insights into traditional and cutting-edge forecasting models
- Master model evaluation through cross-validation, backtesting, and MLflow-based tracking
- Leverage cloud-based platforms and Model-as-a-Service tools for scalable forecasting deployments
Artikel-Details
- Anbieter:
- Apress
- Autor:
- Joos Korstanje
- Artikelnummer:
- 9798868820281
- Veröffentlicht:
- 24.11.25
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