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WAIC and WBIC with Python Stan

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WAIC and WBIC with Python Stan
Lowest price (incl. delivery)
49,99 USD
Typical price513,80 PLN
Lowest (90 days)25,19 PLN
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Last updatedمنذ أسبوع
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Price history (90 days)
Full history
2026-08-08 2026-08-15
سجل الأسعار
تاريخ التحديثالسعر
2026-08-0827,99
2026-08-1425,19
2026-08-1537,44
البائع Product price Delivery الإجمالي التوفر Updated
SP SpringerNatureLink Shop INT 34,99 USD 15,00 USD 49,99 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 38,49 USD 19,00 USD 57,49 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 38,49 USD 15,00 USD 53,49 USD متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 41,30 EUR 15,00 EUR 56,30 EUR متوفر منذ 3 أيام View offer
SP SpringerNatureLink Shop INT 7 149,00 JPY 29,00 JPY 7 178,00 JPY متوفر منذ 3 أيام View offer
SP Springer Nature Author 7 149,00 JPY 25,00 JPY 7 174,00 JPY متوفر منذ أسبوع View offer

قد تتغيّر الأسعار والتوفر. آخر تحديث: 08.08.2026 11:04.

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Master the art of machine learning and data science by diving into the essence of mathematical logic with this comprehensive textbook. This book focuses on the widely applicable information criterion (WAIC), also described as the Watanabe-Akaike information criterion, and the widely applicable Bayesian information criterion (WBIC), also described as the Watanabe Bayesian information criterion. The book expertly guides you through relevant mathematical problems while also providing hands-on experience with programming in Python and Stan. Whether you’re a data scientist looking to refine your model selection process or a researcher who wants to explore the latest developments in Bayesian statistics, this accessible guide will give you a firm grasp of Watanabe Bayesian Theory. The key features of this indispensable book include: A clear and self-contained writing style, ensuring ease of understanding for readers at various levels of expertise. 100 carefully selected exercises accompanied by solutions in the main text, enabling readers to effectively gauge their progress and comprehension. A comprehensive guide to Sumio Watanabe’s groundbreaking Bayes theory, demystifying a subject once considered too challenging even for seasoned statisticians. Detailed source programs and Stan codes that will enhance readers’ grasp of the mathematical concepts presented. A streamlined approach to algebraic geometry topics in Chapter 6, making Bayes theory more accessible and less daunting. Embark on your machine learning and data science journey with this essential textbook and unlock the full potential of WAIC and WBIC today!

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