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Feature Extraction System for Contextual Classification within Security Imaging Applications

机译:安全性成像应用中的上下文分类特征提取系统

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Throughout security imaging applications, there is a persistent need for accurate contextual classification of objects within the scene so proper subsequent decisions can be made. To generate a set of scene attributes necessary for this analysis, this paper presents a novel feature extraction system composed of three divisions: an edge detection system, a segmentation system, and a recognition system. System inputs are considered to be low resolution, low quality images, often collected from inexpensive security imaging cameras. This work concentrates on enhancing the accuracy of the detected boundaries and edge pixel locations within the edge detection system as a pre-processing step for the segmentation and recognition systems. The edge detection described here is based on Boolean derivatives, calculated using partial derivatives of Boolean functions in combination with fusion and binarization steps. This edge detection system allows overall subsequent improvements in the segmentation and recognition systems, producing a stronger overall feature extraction system for processing data within security imaging applications.
机译:在整个安全性成像应用程序中,持续需要对场景内的对象的准确上下文分类进行持久的需要,因此可以进行正确的后续决定。为了生成该分析所需的一组场景属性,本文提出了一种由三个部门组成的新颖特征提取系统:边缘检测系统,分段系统和识别系统。系统输入被认为是低分辨率,低质量图像,通常从廉价的安全性成像相机收集。这项工作专注于提高边缘检测系统内检测到的边界和边缘像素位置的准确性作为分割和识别系统的预处理步骤。这里描述的边缘检测基于布尔衍生物,使用布尔函数的部分导数与融合和二值化步骤组合计算。该边缘检测系统允许在分割和识别系统中整体改进,产生更强的整体特征提取系统,用于处理安全性成像应用程序内的数据。

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