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arxiv: 1004.0678 · v2 · pith:3R7KUTX5new · submitted 2010-04-05 · 📊 stat.AP · stat.ME

Construction and evaluation of classifiers for forensic document analysis

classification 📊 stat.AP stat.ME
keywords classifiersdocumentconstructioncross-validationdatanumberwriteraccuracy
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In this study we illustrate a statistical approach to questioned document examination. Specifically, we consider the construction of three classifiers that predict the writer of a sample document based on categorical data. To evaluate these classifiers, we use a data set with a large number of writers and a small number of writing samples per writer. Since the resulting classifiers were found to have near perfect accuracy using leave-one-out cross-validation, we propose a novel Bayesian-based cross-validation method for evaluating the classifiers.

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