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Titlebook: Data Analytics; Models and Algorithm Thomas A. Runkler Textbook 20121st edition Vieweg+Teubner Verlag | Springer Fachmedien Wiesbaden 2012

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發(fā)表于 2025-3-21 19:30:30 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱Data Analytics
副標(biāo)題Models and Algorithm
編輯Thomas A. Runkler
視頻videohttp://file.papertrans.cn/263/262675/262675.mp4
概述A comprehensive introduction.Enabling the reader to design and implement data analytics solutions for real-world applications.Successfully used for more than 10 years.Includes supplementary material:
圖書封面Titlebook: Data Analytics; Models and Algorithm Thomas A. Runkler Textbook 20121st edition Vieweg+Teubner Verlag | Springer Fachmedien Wiesbaden 2012
描述This book is a comprehensive introduction to the methods and algorithms and approaches of modern data analytics. It covers data preprocessing, visualization, correlation, regression, forecasting, classification, and clustering. It provides a sound mathematical basis, discusses advantages and drawbacks of different approaches, and enables the reader to design and implement data analytics solutions for real-world applications. The text is designed for undergraduate and graduate courses on data analytics for engineering, computer science, and math students. It is also suitable for practitioners working on data analytics projects. This book has been used for more than ten years in numerous courses at the Technical University of Munich, Germany, in short courses at several other universities, and in tutorials at scientific conferences. Much of the content is based on the results of industrial research and development projects at Siemens.
出版日期Textbook 20121st edition
關(guān)鍵詞Classification; business intelligence; data mining; knowledge discovery; machine learning; data structure
版次1
doihttps://doi.org/10.1007/978-3-8348-2589-6
isbn_ebook978-3-8348-2589-6
copyrightVieweg+Teubner Verlag | Springer Fachmedien Wiesbaden 2012
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https://doi.org/10.1007/978-0-387-88849-1, image data, and biomedical data. We define the terms data analytics, data mining, knowledge discovery, and the KDD and CRISP-DM processes. Typical data analysis projects can be divided into several phases: preparation, preprocessing, analysis, and postprocessing. The chapters of this book are stru
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The Many Faces of the Single-Tuned Circuitnted for because certain mathematical operations are only appropriate for specific scales. Numerical data can be represented by sets, vectors, or matrices. Data analysis is often based on dissimilarity measures (like inner product norms, Lebesgue/Minkowski norms) or on similarity measures (like cosi
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Circuits, Systems and Signal Processing heterogeneous information sources.We distinguish deterministic and stochastic errors. Deterministic errors can sometimes be easily corrected. Outliers need to be identified and removed or corrected. Outliers or noise can be reduced by filtering. We distinguish many different filtering methods with
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Basic Concepts in Signals and Systems. To visualize high-dimensional data, projection methods are necessary. We present linear projection (principal component analysis, Karhunen-Lo`eve transform, singular value decomposition, eigenvector projection, Hotelling transform, proper orthogonal decomposition) and nonlinear projection methods
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The Circular Economy and Business Challengesinear correlation methods are robust and computationally efficient but detect only linear dependencies. Nonlinear correlationmethods are able to detect nonlinear dependencies but need to be carefully parametrized. As a popular example for nonlinear correlation we present the chi-square test for inde
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Sergei Yu. Venyaminov,Jen Tsi Yangy or a Moore machine. This leads to recurrent or auto-regressive models. Building forecasting models is essentially a regression task. The training data sets for forecasting models are generated by finite unfolding in time. Popular linear forecasting models are auto-regressive models (AR) and genera
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https://doi.org/10.1007/978-981-19-0549-0 define numerous indicators to quantify classifier performance. Pairs of indicators are considered to assess classification performance.We illustrate this with the receiver operating characteristic and the precision recall diagram. Several different classifiers with specific features and drawbacks a
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