xml:id='sam11342-para-0001'> A new method is introduced for combining information from multiple sources to support one‐class classi'/> A statistical approach to combining multisource information in one‐class classifiers
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A statistical approach to combining multisource information in one‐class classifiers

机译:一种统计方法,将多源信息组合在单级分类器中

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xml:id="sam11342-para-0001"> A new method is introduced for combining information from multiple sources to support one‐class classification. The contributing sources may represent measurements taken by different sensors of the same physical entity, repeated measurements by a single sensor, or numerous features computed from a single measured image or signal. The approach utilizes the theory of statistical hypothesis testing, and applies Fisher's technique for combining p ‐values, modified to handle nonindependent sources. Classifier outputs take the form of fused p ‐values, which may be used to gauge the consistency of unknown entities with one or more class hypotheses. The approach enables rigorous assessment of classification uncertainties, and allows for traceability of classifier decisions back to the constituent sources, both of which are important for high‐consequence decision support. Application of the technique is illustrated in two challenge problems, one for skin segmentation and the other for terrain labeling. The method is seen to be particularly effective for relatively small training samples.
机译: xml:id =“sam11342-para-0001”> 介绍了一种新方法,用于将来自多个来源的信息组合以支持单级分类。贡献源可以表示通过相同物理实体的不同传感器,通过单个传感器重复测量的不同传感器,或者从单个测量图像或信号计算的许多特征。该方法利用统计假设检测理论,并应用Fisher的组合技术 p - 修改以处理非独立来源的值。分类器输出采取融合的形式 p -Values,可用于衡量未知实体的一致性与一个或多个级假设。该方法能够严格评估分类不确定性,并允许分类器决定的可追溯性回到组成来源,这两者都对于高后果决策支持很重要。该技术的应用在两个挑战问题中示出,一个用于皮肤分割,另一个用于地形标记。该方法被认为对相对较小的训练样本特别有效。

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