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1.
Comput Methods Programs Biomed ; 113(1): 301-13, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-24184111

RESUMO

This paper deals with application of fuzzy intelligent systems in diagnosing severity level and recommending appropriate therapies for patients having Benign Prostatic Hyperplasia. Such an intelligent system can have remarkable impacts on correct diagnosis of the disease and reducing risk of mortality. This system captures various factors from the patients using two modules. The first module determines severity level of the Benign Prostatic Hyperplasia and the second module, which is a decision making unit, obtains output of the first module accompanied by some external knowledge and makes an appropriate treatment decision based on its ontology model and a fuzzy type-1 system. In order to validate efficiency and accuracy of the developed system, a case study is conducted by 44 participants. Then the results are compared with the recommendations of a panel of experts on the experimental data. Then precision and accuracy of the results were investigated based on a statistical analysis.


Assuntos
Lógica Fuzzy , Hiperplasia Prostática/patologia , Hiperplasia Prostática/terapia , Humanos , Masculino , Índice de Gravidade de Doença
2.
J Med Syst ; 36(4): 2071-83, 2012 Aug.
Artigo em Inglês | MEDLINE | ID: mdl-21399914

RESUMO

This paper discusses the capacities of artificial intelligence in the process of asthma diagnosing and asthma treatment. Developed intelligent systems for asthma disease have been classified in five categories including diagnosing, evaluating, management, communicative facilities, and prediction. Considering inputs, results, and methodologies of the systems show that by focusing on meticulous analysis of quality of life as an input variable and developing patient-based systems, under-diagnosing and asthma morbidity and mortality would decrease significantly. Regard to the importance of accurate evaluation in accurate prescription and expeditious treatment, the methodology of developing a fuzzy expert system for evaluating level of asthma exacerbation is presented in this paper too. The performance of this system has been tested in Asthma, Allergy, and Immunology Center of Iran using 25 asthmatic patients. Comparison between system's results and physicians' evaluations using Kappa coefficient (K) reinforces the value of K = 1. In addition this system assigns a degree in gradation (0-10) to every patient representing the slight differences between patients assigned to a specific category.


Assuntos
Asma/diagnóstico , Asma/fisiopatologia , Lógica Fuzzy , Asma/tratamento farmacológico , Humanos , Índice de Gravidade de Doença
3.
J Med Syst ; 36(3): 1707-17, 2012 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-21128097

RESUMO

Prescription medicine for asthma at primary stages is based on asthma severity level. Despite major progress in discovering various variables affecting asthma severity levels, disregarding some of these variables by physicians, variables' inherent uncertainty, and assigning patients to limited categories of decision making are the major causes of underestimating asthma severity, and as a result low quality of life in asthmatic patients. In this paper, we provide a solution of intelligence fuzzy system for this problem. Inputs of this system are organized in five modules of respiratory symptoms, bronchial obstruction, asthma instability, quality of life, and asthma severity. Output of this system is degree of asthma severity in score (0-10). Evaluating performance of this system by 28 asthmatic patients reinforces that the system's results not only correspond with evaluations of physicians, but represent the slight differences of asthmatic patients placed in specific category introduced by guidelines.


Assuntos
Asma/fisiopatologia , Sistemas Inteligentes , Lógica Fuzzy , Índice de Gravidade de Doença , Asma/classificação , Asma/tratamento farmacológico , Humanos , Avaliação de Programas e Projetos de Saúde , Qualidade de Vida
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