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Education & Reference - Data Mining and Exploration: From Traditional Statistics to Modern Data Science

Description

Book Synopsis: This book introduces both conceptual and procedural aspects of cutting-edge data science methods, such as dynamic data visualization, artificial neural networks, ensemble methods, and text mining. There are at least two unique elements that can set the book apart from its rivals.First, most students in social sciences, engineering, and business took at least one class in introductory statistics before learning data science. However, usually these courses do not discuss the similarities and differences between traditional statistics and modern data science; as a result learners are disoriented by this seemingly drastic paradigm shift. In reaction, some traditionalists reject data science altogether while some beginning data analysts employ data mining tools as a “black box”, without a comprehensive view of the foundational differences between traditional and modern methods (e.g., dichotomous thinking vs. pattern recognition, confirmation vs. exploration, single method vs. triangulation, single sample vs. cross-validation etc.). This book delineates the transition between classical methods and data science (e.g. from p value to Log Worth, from resampling to ensemble methods, from content analysis to text mining etc.). Second, this book aims to widen the learner’s horizon by covering a plethora of software tools. When a technician has a hammer, every problem seems to be a nail. By the same token, many textbooks focus on a single software package only, and consequently the learner tends to fit the problem with the tool, but not the other way around. To rectify the situation, a competent analyst should be equipped with a tool set, rather than a single tool. For example, when the analyst works with crucial data in a highly regulated industry, such as pharmaceutical and banking, commercial software modules (e.g., SAS) are indispensable. For a mid-size and small company, open-source packages such as Python would come in handy. If the research goal is to create an executive summary quickly, the logical choice is rapid model comparison. If the analyst would like to explore the data by asking what-if questions, then dynamic graphing in JMP Pro is a better option. This book uses concrete examples to explain the pros and cons of various software applications.

Details

Looking to take your data analysis skills to the next level? Look no further than our comprehensive guide, "Data Mining and Exploration: From Traditional Statistics to Modern Data Science." This groundbreaking book not only introduces cutting-edge data science methods, but also bridges the gap between traditional statistics and modern data science, ensuring you have a solid foundation for success.

One of the key differentiators of our book is its focus on the similarities and differences between traditional statistics and modern data science. We understand that transitioning from traditional methods to data science can be overwhelming, which is why this book provides a comprehensive view of the foundational differences. Say goodbye to dichotomous thinking and embrace the power of pattern recognition. Explore the world of data with a holistic approach that combines exploration and confirmation. With this book, you'll learn how to leverage the power of multiple methods and cross-validation for more accurate results.

Equipped with a diverse tool set, you'll be ready to tackle any data analysis challenge. Unlike other textbooks that focus on a single software package, "Data Mining and Exploration" covers a plethora of software tools. Whether you're working in a highly regulated industry or a nimble startup, you'll find the right tools for the job. Learn how to leverage commercial software modules like SAS for crucial data in industries like pharmaceutical and banking. Discover the power of open-source packages like Python for mid-size and small companies. And when you need to create executive summaries or explore data with what-if questions, we've got you covered with rapid model comparison and dynamic graphing in JMP Pro.

Don't miss out on this invaluable resource for data analysts and aspiring data scientists. Take your skills to new heights and unlock the true potential of your data. Start your journey today with "Data Mining and Exploration: From Traditional Statistics to Modern Data Science." Get your copy now!

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