Demystifying AI

£94.99

Demystifying AI

Data Science and Machine Learning Using IBM SPSS Modeler

Probability and statistics Automatic control engineering Information technology: general topics Algorithms and data structures Programming and scripting languages: general Software Engineering Data mining Artificial intelligence

Author: Dothang Truong

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Collection: Chapman & Hall/CRC Data Mining and Knowledge Discovery Series

Language: English

Published by: Chapman and Hall/CRC

Published on: 16th December 2025

Format: LCP-protected ePub

ISBN: 9781040437605


Introduction

As artificial intelligence advances at an exponential pace, understanding data science and machine learning has become increasingly essential. Yet, the wide range of available resources can be daunting, posing challenges for beginners.

About the Book

This second book builds on the foundation laid in the first, Data Science and Machine Learning for Non-Programmers: Using SAS Enterprise Miner, providing similar fundamental knowledge of data science and machine learning in an accessible way. It is specifically designed to cater to readers who prefer a hands-on guide using IBM SPSS Modeler, a widely popular software that does not require coding or programming skills.

Focus and Approach

Like the first book, this volume helps learners from various non-technical fields gain practical insight into machine learning but shifts the focus to a different tool for those seeking alternatives to coding. In this book, readers are guided through practical implementations using real datasets and IBM SPSS Modeler, a user-friendly data mining tool.

The approach remains consistent with a focus on application, providing step-by-step instructions for all stages of the data mining process using two large datasets, ensuring continuity and reinforcing concepts in a cohesive project framework. This book also offers practical advice on presenting data mining results effectively, aiding readers in communicating insights clearly to stakeholders.

Target Audience

Together with the first book, this volume is a companion for beginners and experienced practitioners alike. It targets a broad audience, including students, lecturers, researchers, and industry professionals. It offers flexibility in learning pathways and deepens understanding of data science using easy-to-follow, software-based approaches.

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