Using fuzzy logic for improving clinical daily-care of β-thalassemia patients

Stefania Santini, A. Pescapé, A. S. Valente, V. Abate, G. Improta, M. Triassi, P. Ricchi, A. Filosa
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引用次数: 26

Abstract

The domain of medical decision making process is heavily affected by vagueness and uncertainty issues and — for copying with them — different type of Clinical Decision Support System (CDSS)s, simulating human expert clinician reasoning, have been designed in order to suggest decisions on treatment of patients. In this paper, we exploit fuzzy inference machines to improve the knowledge-based CDSS actually used in the day-by-day clinical care of β-thalassemia patients of the Rare Red Blood Cell Disease Unit (RRBCDU) at Cardarelli Hospital (Naples, Italy). All the designed functionalities were iteratively developed on the field, through requirement-adjustment/development/validation cycles executed by an interdisciplinary research team comprising doctors, clinicians and IT engineers. The paper shows exemplary results on the on-line evaluation of Iron Overload during the health status assessment and care management of β-Thalassemia patients.
应用模糊逻辑改进β-地中海贫血患者临床日常护理
医疗决策过程领域受到模糊性和不确定性问题的严重影响,为了复制这些问题,设计了不同类型的临床决策支持系统(CDSS),模拟人类专家临床医生的推理,以建议对患者的治疗决策。在本文中,我们利用模糊推理机来改进基于知识的CDSS,实际用于卡达雷利医院(那不勒斯,意大利)罕见红细胞疾病部门(RRBCDU) β-地中海贫血患者的日常临床护理。所有设计的功能都是由医生、临床医生和IT工程师组成的跨学科研究团队通过需求调整/开发/验证周期在现场迭代开发的。本文展示了β-地中海贫血患者健康状况评估和护理管理中铁超载在线评估的示范性结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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