发明名称 KERNELS AND METHODS FOR SELECTING KERNELS FOR USE IN LEARNING MACHINES
摘要 Kernels (206) for use in learning machines, such as support vector machines, and methods are provided for selection and construction of such kernels are controlled by the nature of the data to be analyzed (203). In particular, data which may possess characteristics such as structure, for example DNA sequences, documents; graphs, signals, such as ECG signals and microarray expression profiles; spectra; images; spatio-temporal data; and relational data, and which may possess invariances or noise components that can interfere with the ability to accurately extract the desired information. Where structured datasets are analyzed, locational kernels are defined to provide measures of similarity among data points (210). The locational kernels are then combined to generate the decision function, or kernel. Where invariance transformations or noise is present, tangent vectors are defined to identify relationships between the invariance or noise and the data points (222). A covariance matrix is formed using the tangent vectors, then used in generation of the kernel.
申请公布号 WO02091211(A1) 申请公布日期 2002.11.14
申请号 WO2002US14311 申请日期 2002.05.07
申请人 BIOWULF TECHNOLOGIES, LLC;BARTLETT, PETER;ELLISSEEFF, ANDRE;SCHOELKOPF, BERNARD;CHAPELLE, OLIVIER 发明人 BARTLETT, PETER;ELLISSEEFF, ANDRE;SCHOELKOPF, BERNARD
分类号 G06F7/00;G06F15/18;G06F17/00;G06F19/24;G06K9/00;G06K9/62;(IPC1-7):G06F15/18 主分类号 G06F7/00
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