Dynamic Prediction of Recidivism in Violence in Community-Based Schizophrenia Spectrum Disorder Patients: A Joint Model
To construct a model for predicting recidivism in violence in community-based schizophrenia spectrum disorder patients (SSDP) by adopting a joint modeling method. Based on the basic data on severe mental illness in Southwest China between January 2017 and June 2018, 4565 community-based SSDP with ba...
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Veröffentlicht in: | Sichuan da xue xue bao. Journal of Sichuan University. Yi xue ban 2024-07, Vol.55 (4), p.918 |
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Format: | Artikel |
Sprache: | chi |
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Zusammenfassung: | To construct a model for predicting recidivism in violence in community-based schizophrenia spectrum disorder patients (SSDP) by adopting a joint modeling method.
Based on the basic data on severe mental illness in Southwest China between January 2017 and June 2018, 4565 community-based SSDP with baseline violent behaviors were selected as the research subjects. We used a growth mixture model (GMM) to identify patterns of medication adherence and social functioning. We then fitted the joint model using a zero-inflated negative binomial regression model and compared it with traditional static models. Finally, we used a 10-fold training-test cross validation framework to evaluate the models' fitting and predictive performance.
A total of 157 patients (3.44%) experienced recidivism in violence. Medication compliance and social functioning were fitted into four patterns. In the counting model, age, marital status, educational attainment, economic status, historical types of violence, and medication compliance pat |
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ISSN: | 1672-173X |
DOI: | 10.12182/20240760504 |