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Multisensor integration for scene classification: an experiment in human form detection

机译:多传感器集成以进行场景分类:人体形态检测实验

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This paper presents a system for classification of scenes using a multisensor integration framework. Indoor scenes are imaged using a visual and an infrared sensor and the images processed in three stages to perform classification of sensed objects into two classes: human and background. Finally, information from individual classifiers is integrated in order to obtain an improved classification performance. Details of feature extraction and classification using neural network combining a multi-Bayesian framework are presented. Segmentation of the imaged scene is performed using existing techniques such as texture analysis and histogram modeling. Classification results on real-world data are presented. The system represents a first step in the development of improved, robust classifiers based on the concepts of neural networks and multisensor integration.
机译:本文提出了一种使用多传感器集成框架对场景进行分类的系统。使用视觉和红外传感器对室内场景进行成像,并分三个阶段对图像进行处理,以将感测到的物体分为两类:人和背景。最后,将来自各个分类器的信息进行集成,以获得改进的分类性能。提出了使用神经网络结合多贝叶斯框架进行特征提取和分类的详细信息。使用现有技术(例如纹理分析和直方图建模)执行成像场景的分割。给出了真实数据的分类结果。该系统代表了基于神经网络和多传感器集成概念的改进的,稳健的分类器开发的第一步。

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