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The role of single valued neutrosophic sets and rough sets in smart city: Imperfect and incomplete information systems

机译:单价中性梭形套和粗糙集在智能城市中的作用:不完美和不完整的信息系统

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摘要

During the recent years the smart cities knows a great extension as a modern shape of sustainable expansion. It's a urban area that utilize various devices connected with internet and integrates them with ICTs to promote goodness and execution of services for the best interaction among citizens and city's government. The basic for smart cities is distributed and independent information infrastructure. Using information effectively is going to be a main factor for success in the smart cities. The sources of information's (models, experts, and sensors) must be reason, perfect and complete. The generated information from independent and distributed sources can be imprecise, uncertain, and/or incomplete in real life. Any deficiency in gathered information will have a negative effect on the performance of services and decision making process within smart cities. So, we need a general framework to represent all types of imperfect and incomplete information. Since the classical methods fails to deal with vague, inconsistent and incomplete information, the fuzzy set was introduced to solve this drawback. The fuzzy set was not the perfect method for dealing with these drawbacks because it considers only truthiness and fails to deal with indeterminacy. The efficient mathematical tool for dealing with uncertain, vague and inconsistent objects is rough sets theory which introduced by Pawlak. The theory of neutrosophic rough sets is powerful for dealing with incompleteness and neutrosophic set deals with indeterminate and inconsistent data efficiently through considering truthiness, indeterminacy and falsity degrees. So, in this research we will propose a general framework for dealing with imperfect and incomplete information through using single valued neutrosophic and rough set theories. The combination of two sets will deal with all aspects of vagueness, inconsistency and incompleteness of data and information, and then will enhance the quality of introduced services and decisions from smart cities to their citizens. As experimentation, we applied the proposed framework for modeling imperfect and incomplete data in healthcare field.
机译:在近年来,智慧城市知道作为现代可持续扩张形状的延伸。它是一个与互联网相关的各种设备的城市地区,并将其与信息通信技术集成,以促进善良和执行服务,以获得公民和城市政府的最佳互动。智能城市的基本是分布式和独立信息基础架构。有效地使用信息将成为智能城市成功的主要因素。信息来源(模型,专家和传感器)必须是理性,完美和完整。来自独立和分布式源的生成的信息可以在现实生活中不精确,不确定和/或不完整。收集信息的任何不足会对智能城市的服务和决策过程的绩效产生负面影响。因此,我们需要一般框架来代表所有类型的不完美和不完整的信息。由于经典方法未能处理模糊,不一致和不完整的信息,因此引入了模糊集以解决此缺点。模糊集不是处理这些缺点的完美方法,因为它仅考虑了真实性,并不能处理不确定性。用于处理不确定,模糊和不一致的物体的有效数学工具是Pawlak引入的粗糙集理论。中性学粗糙集的理论是为了处理不完整和中性学案件,通过考虑真实,不确定和虚假程度有效地处理不完整和中性学性集合。因此,在本研究中,我们将通过使用单值的中性学和粗糙设定理论来提出一个通用框架,用于处理不完全和不完整的信息。两组的组合将处理数据和信息的模糊,不一致和不完整的各个方面,然后将提高智能城市向其公民的引入服务和决策的质量。作为实验,我们应用了拟议的框架,用于在医疗领域建模不完美和不完整数据。

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