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SVM Based Indoor/Mixed/Outdoor Classification for Digital Photo Annotation in a Ubiquitous Computing Environment

机译:基于SVM的室内/混合/室外分类在无处不在的计算环境中进行数字照片注释

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This paper extends our previous framework for digital photo annotation by adding noble approach of indoor/mixed/outdoor image classification. We propose the best feature vectors for a support vector machine based indoor/mixed/ outdoor image classification. While previous research classifies photographs into indoor and outdoor, this study extends into three types, including indoor, mixed, and outdoor classes. This three-class method improves the performance of outdoor classification. This classification scheme showed 5--10% higher performance than previous research. This method is one of the components for digital image annotation. A digital camera or an annotation server connected to a ubiquitous computing network can automatically annotate captured photos using the proposed method.
机译:本文通过添加高贵的室内/混合/室外图像分类方法,扩展了我们以前的数字照片注释框架。我们为基于室内/混合/室外图像分类的支持向量机提出了最佳特征向量。虽然先前的研究将照片分为室内和室外,但这项研究扩展为三种类型,包括室内,混合和室外。这种三级方法提高了户外分类的性能。该分类方案显示出比以前的研究高出5--10%的性能。此方法是数字图像注释的组件之一。连接到无处不在的计算网络的数码相机或注释服务器可以使用提出的方法自动注释捕获的照片。

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