Statistical Inference from High Dimensional Data - Carlos Fernandez-Lozano - Books - MDPI AG - 9783036509440 - April 28, 2021
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Statistical Inference from High Dimensional Data

Carlos Fernandez-Lozano

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Statistical Inference from High Dimensional Data

- Real-world problems can be high-dimensional, complex, and noisy - More data does not imply more information - Different approaches deal with the so-called curse of dimensionality to reduce irrelevant information - A process with multidimensional information is not necessarily easy to interpret nor process - In some real-world applications, the number of elements of a class is clearly lower than the other. The models tend to assume that the importance of the analysis belongs to the majority class and this is not usually the truth - The analysis of complex diseases such as cancer are focused on more-than-one dimensional omic data - The increasing amount of data thanks to the reduction of cost of the high-throughput experiments opens up a new era for integrative data-driven approaches - Entropy-based approaches are of interest to reduce the dimensionality of high-dimensional data

Media Books     Hardcover Book   (Book with hard spine and cover)
Released April 28, 2021
ISBN13 9783036509440
Publishers MDPI AG
Pages 314
Dimensions 170 × 244 × 25 mm   ·   875 g
Language English