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Feature extraction, selection and classification code for power line scene recognition

机译:电力线场景识别的功能提取,选择和分类码

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Detection and avoiding of power lines and cables is a critical issue in aircraft flight safety. Despite various improvements in image analysis literature, most of the safety issues depend on visual capabilities of pilots. It is aimed that proper scene detection methods may help the pilot by igniting alarms. The presented work basically considers frequency based features (in the real valued discrete cosine transform — DCT domain) as candidates of signatures for existence of power lines in the image. Since DCT provides spectral distribution along all frequencies, a domain-search method is adopted to see where in DCT samples the most signatures are carried. The developed software searches most candidates of DCT regions, compares them with performances of other saliency-based popular methods (such as LBP and HOG), and tests their representation powers via various classifiers. Image pre-processing and feature extraction parts are implemented in MATLAB? R2013b simulation environment, the classification step was implemented on WEKA 3.8.0. A flowchart is formed where pre-processing is sequentially performed, and features are simultaneously extracted; finally, the outputs are fed to WEKA environment for classification evaluation.
机译:电力线路和电缆的检测和避免是飞机飞行安全的一个关键问题。尽管图像分析文献中有各种改进,但大多数安全问题都依赖于飞行员的视觉功能。旨在通过点燃警报来帮助飞行员来帮助飞行员。所呈现的工作基本上考虑了基于频率的特征(在真实值离散余弦变换 - DCT域中),作为图像中电力线存在的签名的候选者。由于DCT提供了沿所有频率的光谱分布,因此采用域搜索方法来查看DCT样本中的位置最多签名。开发的软件搜索DCT区域的大多数候选地区,将它们与其他基于显着性的流行方法(例如LBP和Hog)的表演进行比较,并通过各种分类器测试其表示功率。图像预处理和特征提取部件在Matlab中实现? R2013B仿真环境,分类步骤在Weka 3.8.0上实现。形成流程图,其中顺序执行预处理,并且同时提取特征;最后,输出被馈送到Weka环境以进行分类评估。

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