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- W3180173190 abstract "The diagnosis of Schizophrenia is mainly based on qualitative characteristics. With the usage of portable devices which measure activity of humans, the diagnosis of Schizophrenia can be enriched through quantitative features. The goal of this work is to classify between schizophrenic and non-schizophrenic subjects based on their measured activity over a certain amount of time. To do so, the periods in which a subject was resting or active were identified by the application of a Hidden Markov model (HMM). The trained model parameters of the HMM, such as the mean or variance of activity during the state of rest or activity, are used as classification features for a logistic regression model. Our results indicate that the features from the HMM are significant in classifying between schizophrenic and non-schizophrenic subjects. Moreover, the features outperform the features derived through other methods in literature in terms of goodness-of-fit and classification performance." @default.
- W3180173190 created "2021-07-19" @default.
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- W3180173190 date "2021-06-01" @default.
- W3180173190 modified "2023-10-18" @default.
- W3180173190 title "Diagnosing Schizophrenia from Activity Records using Hidden Markov Model Parameters" @default.
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- W3180173190 doi "https://doi.org/10.1109/cbms52027.2021.00048" @default.
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