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Pragmatic Genetic Programming strategy for the problem of vehicle detection in airborne reconnaissance

机译:机载侦察中车辆检测问题的实用遗传编程策略

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摘要

A Genetic Programming (GP) method uses multiple runs, data decomposition stages, to evolve a hierarchical set of vehicle detectors for the automated inspection of infrared line scan imagery that has been obtained by a low flying aircraft. The performance on the scheme using two different sets of GP terminals (all are rotationally invariant statistics of pixel data) is compared on 10 images. The discrete Fourier transform set is found to be marginally superior to the simpler statistics set that includes an edge detector. An analysis of detector formulae provides insight on vehicle detection principles. In addition, a promising family of algorithms that take advantage of the GP method's ability to prescribe an advantageous solution architecture is developed as a post-processor. These algorithms selectively reduce false alarms by exploring context, and determine the amount of contextual information that is required for this task.
机译:遗传编程(GP)方法使用多个运行,数据分解阶段来发展一组层次的车辆检测器,以自动检查低空飞行器获得的红外线扫描图像。在10张图像上比较了使用两组不同的GP端子(全部都是像素数据的旋转不变统计量)的方案的性能。发现离散傅立叶变换集略微优于包括边缘检测器的简单统计集。对检测器公式的分析提供了有关车辆检测原理的见识。此外,利用GP方法规定有利的解决方案体系结构的能力的有前途的算法家族被开发为后处理器。这些算法通过浏览上下文有选择地减少了错误警报,并确定了此任务所需的上下文信息量。

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