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Explaining Zipf's law via a mental lexicon
Armen E Allahverdyan1, Weibing Deng2, Q A Wang3
1Laboratoire de Physique Statistique et Systèmes Complexes, ISMANS, 44 ave. Bartholdi, 72000 Le Mans, France and Yerevan Physics Institute, Alikhanian Brothers Street 2, Yerevan 375036, Armenia.
Abstract:
Zipf's law is the major regularity of statistical linguistics that has served as a prototype for rank-frequency relations and scaling laws in natural sciences. Here we show that Zipf's law-together with its applicability for a single text and its generalizations to high and low frequencies including hapax legomena-can be derived from assuming that the words are drawn into the text with random probabilities. Their a priori density relates, via the Bayesian statistics, to the mental lexicon of the author who produced the text.
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