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Data Mining Algorithms In C++ - Data Patterns And Algorithms For Modern Applications

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Data mining secrets revealed with practical code

This book is perfect for anyone interested in unlocking the hidden patterns and relationships within their data. With its collection of effective data-mining algorithms, it provides an intuitive explanation of how these algorithms work, along with essential equations and references for more in-depth understanding. The highlight of this book is its practical applicability, demonstrated through commented C++ source code that can easily be implemented in any program. Moreover, the inclusion of the DATAMINE program allows readers to experiment with the techniques before incorporating them into their own work. Whether you're a professional or a data enthusiast, this book will equip you with the tools to assess relationships, rank variables, cluster data, and more. Discover the secrets of data mining and take your analysis to the next level.

Sale

Data Mining Algorithms In C++ - Data Patterns And Algorithms For Modern Applications

Regular price RM28.88 MYR RM14.26 MYR 51% off
Unit price
per
ISBN: 9781484233146
Authors: Timothy Masters
Publisher: Apress
Date of Publication: 2017-12-19
Format: Paperback
Related Collections: Science, Computer Science, Mathematics
Goodreads rating: 3.0
(rated by 1 readers)

Description

Discover hidden relationships among the variables in your data, and learn how to exploit these relationships. This book presents a collection of data-mining algorithms that are effective in a wide variety of prediction and classification applications. All algorithms include an intuitive explanation of operation, essential equations, references to more rigorous theory, and commented C++ source code. Many of these techniques are recent developments, still not in widespread use. Others are standard algorithms given a fresh look. In every case, the focus is on practical applicability, with all code written in such a way that it can easily be included into any program. The Windows-based DATAMINE program lets you experiment with the techniques before incorporating them into your own work. What you'll learnMonte-Carlo permutation tests provide statistically sound assessment of relationships present in your data.Combinatorially symmetric cross validation reveals whether your model has true power or has just learned noise by overfitting the data.Feature weighting as regularized energy-based learning ranks variables according to their predictive power when there is too little data for traditional methods. The eigenstructure of a dataset enables clustering of variables into groups that exist only within meaningful subspaces of the data. Plotting regions of the variable space where there is disagreement between marginal and actual densities, or where contribution to mutual information is high, provides visual insight into anomalous relationships. Who this book is for The techniques presented in this book and in the DATAMINE program will be useful to anyone interested in discovering and exploiting relationships among variables. Although all code examples are written in C++, the algorithms are described in sufficient detail that they can easily be programmed in any language.
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Data mining secrets revealed with practical code

This book is perfect for anyone interested in unlocking the hidden patterns and relationships within their data. With its collection of effective data-mining algorithms, it provides an intuitive explanation of how these algorithms work, along with essential equations and references for more in-depth understanding. The highlight of this book is its practical applicability, demonstrated through commented C++ source code that can easily be implemented in any program. Moreover, the inclusion of the DATAMINE program allows readers to experiment with the techniques before incorporating them into their own work. Whether you're a professional or a data enthusiast, this book will equip you with the tools to assess relationships, rank variables, cluster data, and more. Discover the secrets of data mining and take your analysis to the next level.