Modern Time Series Forecasting with Python: Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas
This practical, hands-on guide empowers you to build and deploy powerful time series forecasting models.
Modern Time Series Forecasting with Python: Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas
Nº de artículo: 99291537

Modern Time Series Forecasting with Python: Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas

Nº de artículo: 99291537

BOB 406

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This practical, hands-on guide empowers you to build and deploy powerful time series forecasting models.
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What Stands Out

Comprehensive Learning
Covers both machine learning and deep learning techniques, offering a deep dive into time series analysis, ensuring learners acquire industry-relevant skills for real-world applications.
Hands-on Approach
Utilizes PyTorch and pandas for practical coding examples, empowering readers to implement learned concepts effectively, making it suitable for both beginners and seasoned practitioners.
Updated Content
The 2nd edition includes the latest advancements in technology and methodologies, providing readers with current insights that enhance their understanding and execution of modern forecasting techniques.

Detalles de producto

Shop Modern Time Series Forecasting with Python: Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas online at a best price in Bolivia. B0D6G3SHD6
Publisher Packt Publishing
Publication date October 31, 2024
Edition 2nd ed.
Language English
Print length 658 pages
ISBN-10 1835883184
ISBN-13 978-1835883181
Item Weight 2.46 pounds (1.12 kg)
Dimensions 7.5 x 1.49 x 9.25 inches (19.1 x 3.8 x 23.5 cm)

Who Should Buy?

Suitable For
  • Data Scientists

    Ideal for data scientists wanting to enhance their time series analysis skills using Python frameworks like PyTorch.

  • Machine Learning Engineers

    Suitable for ML engineers seeking industry-ready techniques to implement sophisticated time series forecasting models.

  • Students & Researchers

    Beneficial for students and researchers studying time series analysis with practical, hands-on examples in Python.

Not Suitable For
  • Beginners

    Not suitable for absolute beginners without prior knowledge of Python, machine learning concepts, or time series basics.

DESCRIPCIÓN DEL PRODUCTO

Modern Time Series Forecasting with Python: Industry-ready machine learning and deep learning time series analysis with PyTorch and pandas

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Stochastic Modeling Editorial Review

**Editorial Review of "Modern Time Series Forecasting with Python"** "Modern Time Series Forecasting with Python" emerges as a vital resource for professionals and enthusiasts keen on mastering time series analysis and forecasting through modern programming tools. The second edition skillfully integrates contemporary machine learning and deep learning methods with traditional statistical techniques, making it an invaluable guide for practitioners in financial analytics, machine learning competitions, and other data-driven sectors. Readers have responded positively to the book's pedagogical approach, noting its layered presentation of information that simplifies complex topics. Several reviews highlighted the clear explanations paired with practical examples, allowing even those with some experience in Python and tools like Scikit-learn and PyTorch to navigate the material effectively. While the content is deemed advanced and not suitable for complete beginners, users with a foundation in programming can glean substantial insights and techniques from the text. The book’s structured build-up from foundational concepts to more intricate methods has also been praised. It provides readers with an array of applicable skills across diverse forecasting applications, from financial forecasting to demand predictions and even fraud detection. Many users reported that the book's methods made a significant impact on their real-world forecasting abilities and analytical skills, underscoring its relevance across various industries. In summary, "Modern Time Series Forecasting with Python" is positioned as a comprehensive and engaging resource, recognized for its clarity and practical focus. It promises to assist data scientists and engineers in addressing actual forecasting challenges, making it a valuable addition to any data-oriented professional's library. **

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ventajas

  • Well-structured, layered presentation of topics
  • Clear explanations make complex concepts accessible
  • Integrates practical examples with theoretical foundations
  • Covers both statistical and machine learning techniques
  • Particularly useful for professionals in finance and analytics

Contras

  • Not suitable for complete beginners

Product Price History

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