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Extended nearest shrunken centroid classification: A new method for open-set authorship attribution of texts of varying sizes

2011/01/18 by G. Bruce Schaalje, Paul J. Fields, Marc Roper +1 · 1 citation
Computer Science · Social Sciences · Engineering · #Authorship Attribution and Profiling #Natural Language Processing Techniques #Names, Identity, and Discrimination Research #Stylometry #Centroid #Set (abstract data type) #Computer science #Authorship attribution #Range (aeronautics) #Artificial intelligence #k-nearest neighbors algorithm #Data mining #Pattern recognition (psychology) #Engineering

paper · doi:10.1093/llc/fqq029

openalex publication_date 2011/01/18 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/22

Abstract

The nearest shrunken centroid (NSC) methodology, originally developed for high-dimensional genomics problems, was recently applied in a stylometric study. Although NSC has many advantages, stylometric problems usually differ from genomics problems in several important ways: texts are of a wide range of sizes, a large series of texts are often the subjects for classification, and most importantly the set of candidate authors cannot usually be assumed to be closed. Consequently, naïve application of NSC methodology can produce misleading results. We extend the NSC methodology for more general application to stylometry. Reanalysis of the Book of Mormon using the open-set NSC method produced dramatically different results from a closed-set NSC analysis.

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