Statistical Learning from a Regression Perspective

Statistical Learning from a Regression Perspective

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Jun 30, 2021 · 英語 · ペーパーバック (460 ページ)
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本の詳細

形式 ペーパーバック
ページ数 460
言語 英語
公開されました Jun 30, 2021
出版社 Springer
3rd ed. 2020
ISBN-10 3030429237
ISBN-13 9783030429232

説明

In this comprehensive exploration of statistical learning, Richard A. Berk delves into the nuances of regression analysis, providing a robust framework for understanding its applications. The book seamlessly blends theoretical underpinnings with practical insights, making complex concepts accessible to both students and practitioners. Berk emphasizes the importance of regression in analyzing relationships within data, guiding readers through a journey that highlights its significance in various fields.

Throughout the chapters, readers encounter a variety of examples that illustrate the power of statistical learning techniques. Berk draws upon real-world scenarios to demonstrate how regression models can inform decision-making and enhance predictive accuracy. This hands-on approach not only enhances comprehension but also encourages critical thinking about the assumptions and limitations inherent in statistical models.

Berk's engaging writing style and clear explanations make the book a valuable resource for anyone looking to deepen their understanding of regression analysis. By the end of the journey, readers are equipped with the tools and knowledge needed to navigate the complexities of statistical learning with confidence.

ジャンル

科学&技術 健康とウェルネス 心理学

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