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A new interval type-2 fuzzy logic system under dynamic environment: Application to financial investment

机译:动态环境下的新间隔Type-2模糊逻辑系统:金融投资的应用

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摘要

This paper proposes a new interval type-2 fuzzy logic system (IT2 FLS) for financial investment with time-varying parameters adaptive to real-time data streams by using an on-line learning method based on a state-space framework. Particularly, our state-space approach regards the parameters of IT2 FLSs as state variables to sequentially learn by Bayesian filtering algorithms under dynamic environments, where time-series data are continuously observed with occasional structural changes. Moreover, our proposal is effective for financial investment, which often involves various practical complex constraints, because general state-space model makes it possible to flexibly deal with non-linearities. In our empirical experiment with time-series data of global financial assets, our approach is applied to on-line parameter learning of type-1 and type-2 FLSs for portfolio decision making. As a result, it is shown that the IT2 FLS holds its advantage against the type-1 FLS, even though both of the type-1 and type-2 models have the adaptive time-varying parameters, which is an unexplored topic for empirical studies of this area.
机译:本文提出了一种新的间隔Type-2模糊逻辑系统(IT2FL),用于使用基于状态空间框架的在线学习方法对实时数据流的时变参数。特别是,我们的状态空间方法将IT2的参数视为状态变量,以便在动态环境下顺序地通过贝叶斯滤波算法顺序学习,其中连续观察偶尔结构变化的时间序列数据。此外,我们的提案对于金融投资有效,这往往涉及各种实际复杂的限制,因为一般的状态空间模型使得可以灵活地处理非线性。在我们对全球金融资产的时间序列数据的实证实验中,我们的方法适用于1型-1的参数学习,并为投资组合决策制定。结果,表明IT2 FLS保持其优于1型FLS的优点,即使类型-1和Type-2型号都具有自适应时变参数,这是实证研究的未开发的主题这个地区。

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