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Matching Evolving Hilbert Spaces and Language for Semantic Access to Digital Libraries

机译:匹配演化的希尔伯特空间和语言,用于对数字图书馆的语义访问

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Extended by function (Hilbert) spaces, the 5S model of digital libraries (DL) [1] enables a physical interpretation of vectors and functions to keep track of the evolving semantics and usage context of the digital objects by support vector machines (SVM) for text categorization (TC). For this conceptual transition, three steps are necessary: (1) the application of the formal theory of DL to Lebesgue (function, L2) spaces; (2) considering semantic content as vectors in the physical sense (i.e. position and direction vectors) rather than as in linear algebra, thereby modeling word semantics as an evolving field underlying classifications of digital objects; (3) the replacement of vectors by functions in a new compact support basis function (CSBF) semantic kernel utilizing wavelets for TC by SVMs.
机译:通过功能(希尔伯特)空格,5S数字图书馆(DL)[1]的模型可以通过支持向量机(SVM)来跟踪数字对象的不断发展的语义和使用情况来跟踪数字对象的实际解释。文本分类(TC)。对于这种概念过渡,需要三个步骤:(1)将DL的正式理论应用于Lebesgue(功能,L2)空间; (2)将语义内容视为物理意义上的矢量(即位置和方向向量)而不是在线性代数中的矢量,从而将字语义建模为数字对象的底层分类的不断变化的字段; (3)通过SVMS使用针对TC的小波的新的紧凑型支撑基函数(CSBF)语义内核的函数替换vector。

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