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Automatic Methods for Generation of Type-1 and Interval Type-2 Fuzzy Membership Functions

机译:自动生成类型1和间隔类型2模糊隶属函数的方法

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摘要

Generation of membership functions is an important step in construction of fuzzy systems. Since membership functions reflect what is known about the variables involved in a problem, when they are correctly modeled the system will behave in the manner that is expected in the context of the problem being addressed. Since their creation, type-1 membership functions have been used in domains characterized by uncertainty. Nevertheless, use of type-2 membership functions has been expanding over recent years because they are considered more appropriate for this application. Both types of membership function can be generated with the aid of automatic methods that implement generation of membership functions from data. These methods are convenient for situations in which it is not possible to obtain all the information needed from an expert or when the problem in question is complex. The aim of this study is to present a review of the most important automatic methods for generation of membership functions, both type 1 and interval type-2, highlighting the principal characteristics of each approach.
机译:隶属函数的生成是构建模糊系统的重要步骤。由于隶属函数反映了有关问题中变量的已知信息,因此,在对它们进行正确建模时,系统将以在解决问题的上下文中预期的方式运行。自创建以来,类型1隶属度函数已用于具有不确定性的域中。然而,由于认为2型隶属函数对本应用程序更合适,因此近年来它们的使用在不断扩大。两种类型的隶属度函数都可以借助实现从数据生成隶属度函数的自动方法来生成。这些方法适用于无法从专家那里获得所有所需信息的情况,或者在所涉及的问题很复杂的情况下。这项研究的目的是介绍最重要的自动生成隶属函数的方法,类型1和区间类型2,突出每种方法的主要特征。

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