Literature DB >> 16400472

Decision support system for the diagnosis of schizophrenia disorders.

D Razzouk1, J J Mari, I Shirakawa, J Wainer, D Sigulem.   

Abstract

Clinical decision support systems are useful tools for assisting physicians to diagnose complex illnesses. Schizophrenia is a complex, heterogeneous and incapacitating mental disorder that should be detected as early as possible to avoid a most serious outcome. These artificial intelligence systems might be useful in the early detection of schizophrenia disorder. The objective of the present study was to describe the development of such a clinical decision support system for the diagnosis of schizophrenia spectrum disorders (SADDESQ). The development of this system is described in four stages: knowledge acquisition, knowledge organization, the development of a computer-assisted model, and the evaluation of the system's performance. The knowledge was extracted from an expert through open interviews. These interviews aimed to explore the expert's diagnostic decision-making process for the diagnosis of schizophrenia. A graph methodology was employed to identify the elements involved in the reasoning process. Knowledge was first organized and modeled by means of algorithms and then transferred to a computational model created by the covering approach. The performance assessment involved the comparison of the diagnoses of 38 clinical vignettes between an expert and the SADDESQ. The results showed a relatively low rate of misclassification (18-34%) and a good performance by SADDESQ in the diagnosis of schizophrenia, with an accuracy of 66-82%. The accuracy was higher when schizophreniform disorder was considered as the presence of schizophrenia disorder. Although these results are preliminary, the SADDESQ has exhibited a satisfactory performance, which needs to be further evaluated within a clinical setting.

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Year:  2005        PMID: 16400472     DOI: 10.1590/s0100-879x2006000100014

Source DB:  PubMed          Journal:  Braz J Med Biol Res        ISSN: 0100-879X            Impact factor:   2.590


  6 in total

Review 1.  Clinical decision support systems in child and adolescent psychiatry: a systematic review.

Authors:  Roman Koposov; Sturla Fossum; Thomas Frodl; Øystein Nytrø; Bennett Leventhal; Andre Sourander; Silvana Quaglini; Massimo Molteni; María de la Iglesia Vayá; Hans-Ulrich Prokosch; Nicola Barbarini; Michael Peter Milham; Francisco Xavier Castellanos; Norbert Skokauskas
Journal:  Eur Child Adolesc Psychiatry       Date:  2017-04-28       Impact factor: 4.785

2.  An AI-based Decision Support System for Predicting Mental Health Disorders.

Authors:  Salih Tutun; Marina E Johnson; Abdulaziz Ahmed; Abdullah Albizri; Sedat Irgil; Ilker Yesilkaya; Esma Nur Ucar; Tanalp Sengun; Antoine Harfouche
Journal:  Inf Syst Front       Date:  2022-05-28       Impact factor: 5.261

3.  Nurses' psychosocial barriers to suicide risk management.

Authors:  Sharon Valente
Journal:  Nurs Res Pract       Date:  2011-06-01

4.  Artificial Intelligence-Based Differential Diagnosis: Development and Validation of a Probabilistic Model to Address Lack of Large-Scale Clinical Datasets.

Authors:  Shahrukh Chishti; Karan Raj Jaggi; Anuj Saini; Gaurav Agarwal; Ashish Ranjan
Journal:  J Med Internet Res       Date:  2020-04-28       Impact factor: 5.428

5.  Management of Computerized Cognitive Training Programs in Children with ADHD: The Effective Role of Decision Support Systems.

Authors:  Marjan Ghazisaeedi; Leila Shahmoradi; Sharareh R Niakan Kalhori; Azadeh Bashiri
Journal:  Iran J Public Health       Date:  2018-10       Impact factor: 1.429

6.  Telepsychiatry clinical decision support system used by non-psychiatrists in remote areas: Validity & reliabilityof diagnostic module.

Authors:  Savita Malhotra; Subho Chakrabarti; Ruchita Shah; Minali Sharma; Kanu Priya Sharma; Akanksha Malhotra; Suneet K Upadhyaya; Mushtaq A Margoob; Dar Maqbool; Gopal D Jassal
Journal:  Indian J Med Res       Date:  2017-08       Impact factor: 2.375

  6 in total

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