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  1. Mahalanobis distance - Wikipedia

    The Mahalanobis distance is a measure of the distance between a point and a probability distribution , introduced by P. C. Mahalanobis in 1936. [1] The mathematical details of Mahalanobis distance first …

  2. Mahalanobis Distance: Simple Definition, Examples - Statistics How To

    The Mahalanobis distance (MD) is the distance between two points in multivariate space. In a regular Euclidean space, variables (e.g. x, y, z) are represented by axes drawn at right angles to each other; …

  3. The Ultimate Guide to Mahalanobis Distance

    May 14, 2025 · The Mahalanobis distance is a robust multivariate distance metric that transcends the limitations of the Euclidean distance by accounting for variable correlations and variations.

  4. Mahalanobis Distance - Understanding the math with examples …

    Mahalanobis distance is an effective multivariate distance metric that measures the distance between a point (vector) and a distribution. It has excellent applications in multivariate anomaly detection, …

  5. Mahalanobis Distance - Statistics by Jim

    Mahalanobis distance is a multivariate distance metric that measures how far a point is from the center of a distribution, taking into account correlations between variables.

  6. P.C. Mahalanobis | Biography, Education, & Facts | Britannica

    P.C. Mahalanobis, Indian statistician who devised the Mahalanobis distance and was instrumental in formulating India’s strategy for industrialization in the Second Five-Year Plan (1956–61).

  7. Mahalanobis Distance: The Mahalanobis Distance: A Multivariate …

    Apr 12, 2025 · The Mahalanobis Distance is a measure of distance that captures the essence of multivariate data like no other. It's not just about how far two points are from each other, but also how …

  8. This yields the local Mahalanobis distance, where for each point we compute neighbors using its local metric, defined using the local covariance matrix. This can be used to design an iterated kNN …

  9. Mahalanobis Metric - Princeton University

    We classify a feature vector x by measuring the Mahalanobis distance from x to each of the means, and assigning x to the class for which the Mahalanobis distance is minimum.

  10. Mahalanobis Distance - What Is It, Formula, Examples, Applications

    What Is Mahalanobis Distance? Mahalanobis distance is a statistical measure used to determine the similarity between two data points in a multidimensional space. It is instrumental in data analysis, …