Foreword
The title of Colleen M. Farrelly and Yaé Ulrich Gaba’s book, The Shape of Data, is as fitting and beautiful as the journey that the authors invite us to experience, as we discover the geometric shapes that paint the deeper meaning of our analytical data insights.
Enabling and combining common machine learning, data science, and statistical solutions, including the combinations of supervised/unsupervised or deep learning methods, by leveraging topological and geometric data analysis provides new insights into the underlying data problem. It reminds us of our responsibilities as data scientists, that with any algorithmic approach a certain data bias can greatly skew our expected results. As an example, the data scientist needs to understand ...
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