Toward Unification of Source Attribution Processes and Techniques

Foaad Khosmood, Robert Levinson · 2006

Automatic source attribution refers to the ability for an autonomous process to determine the source of a previously unexamined piece of writing. Statistical methods for source attribution have been the subject of scholarly research for well over a century. The field, however, is still missing a definitive currency of established or agreed-upon classes of features, methods, techniques and nomenclature. This paper represents continuation of research into the basic attribution problem, as well as work towards an eventual source attribution standard. We augment previous work which utilized in-common, non-trivial word frequencies with neural networks on a more standardized data set. We also use two other techniques: phrase-based feature sets evaluated with naive Bayesians and bi-gram feature sets evaluated with the nearest neighbor algorithm. We compare the three and explore methods of combining the techniques in order to achieve better results

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