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Quotient space based multi-granular computing

机译:基于商空间的多粒度计算

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Summary form only given. One of the basic characteristics in human problem solving is the ability to conceptualize the world at different granularities and translate from one abstraction level to the others easily, i.e., the ability of multi-granular computing. The proposed quotient space theory is intended to provide a multi-granular computing model. In this paper, we address the following four problems. The traditional single-granular computing methodology usually confronts with high computational complexity when dealing with complex problems. The main aim of multi-granular computing is intended to reduce the computational complexity. By using the quotient space model, we show in what conditions the multi-granular computing could reduce the computational complexity. Second, based on the quotient space model, the characteristics of the top-down hierarchical problem solving are discussed. Third, the well-known multi-resolution signal analysis is managed under the framework of the quotient space model. And we show the close relationship between the quotient space based multi-resolution model and the second-generation wavelet transforms. This relationship may provide a new idea for signal analysis. Finally, a quotient space based hierarchical machine-learning model is discussed. And a new hierarchical constructive learning algorithm is presented.
机译:仅提供摘要表格。解决人类问题的基本特征之一是能够以不同的粒度对世界进行概念化并轻松地从一个抽象级别转换为另一个抽象级别的能力,即多粒度计算的能力。提出的商空间理论旨在提供一种多粒度计算模型。在本文中,我们解决了以下四个问题。当处理复杂问题时,传统的单粒度计算方法通常面临很高的计算复杂性。多粒度计算的主要目的旨在降低计算复杂度。通过使用商空间模型,我们证明了在什么条件下多粒度计算可以降低计算复杂度。其次,基于商空间模型,讨论了自上而下的分层问题解决的特点。第三,众所周知的多分辨率信号分析是在商空间模型的框架下进行的。并且我们展示了基于商空间的多分辨率模型与第二代小波变换之间的紧密关系。这种关系可以为信号分析提供新的思路。最后,讨论了基于商空间的分层机器学习模型。提出了一种新的层次构造学习算法。

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