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This book discusses the psychological traits associated with drug consumption through the statistical analysis of a new database with information on 1885 respondents and use of 18 drugs. After reviewing published works on the psychological profiles of drug users and describing the data mining and machine learning methods used, it demonstrates that the personality traits (five factor model, impulsivity, and sensation seeking) together with simple demographic data make it possible to predict the risk of consumption of individual drugs with a sensitivity and specificity above 70% for most drugs. It also analyzes the correlations of use of different substances and describes the groups of drugs with correlated use, identifying significant differences in personality profiles for users of different drugs. The book is intended for advanced undergraduates and first-year PhD students, as well as researchers and practitioners. Although no previous knowledge of machine learning,advanced data mining concepts or modern psychology of personality is assumed, familiarity with basic statistics and some experience in the use of probabilities would be helpful. For a more detailed introduction to statistical methods, the book provides recommendations for undergraduate textbooks.
This is a digital product.
Personality Traits and Drug Consumption: A Story Told by Data is written by Elaine Fehrman; Vincent Egan; Alexander N. Gorban; Jeremy Levesley; Evgeny M. Mirkes; Awaz K. Muhamm and published by Springer. The Digital and eTextbook ISBNs for Personality Traits and Drug Consumption are 9783030104429, 3030104427 and the print ISBNs are 9783030104412, 3030104419.
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