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Scene context dependency of pattern constancy of time series imagery

机译:时间序列图像的模式恒定性的场景上下文相关性

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A fundamental element of future generic pattern recognition technology is the ability to extract similar patterns for the same scene despite wide ranging extraneous variables, including lighting, turbidity, sensor exposure variations, and signal noise. In the process of demonstrating pattern constancy of this kind for retinex/visual servo (RVS) image enhancement processing, we found that the pattern constancy performance depended somewhat on scene content. Most notably, the scene topography and, in particular, the scale and extent of the topography in an image, affects the pattern constancy the most. This paper will explore these effects in more depth and present experimental data from several time series tests. These results further quantify the impact of topography on pattern constancy. Despite this residual inconstancy, the results of overall pattern constancy testing support the idea that RVS image processing can be a universal front-end for generic visual pattern recognition. While the effects on pattern constancy were significant, the RVS processing still does achieve a high degree of pattern constancy over a wide spectrum of scene content diversity, and wide ranging extraneousness variations in lighting, turbidity, and sensor exposure.
机译:未来通用模式识别技术的基本要素是能够为相同场景提取相似的模式,尽管存在范围广泛的无关变量,包括照明,浊度,传感器曝光变化和信号噪声。在为retinex /视觉伺服(RVS)图像增强处理演示这种模式恒定性的过程中,我们发现模式恒定性在某种程度上取决于场景内容。最值得注意的是,场景的地形,尤其是图像中的地形的比例和范围,对图案的恒定性影响最大。本文将更深入地探讨这些影响,并提供一些时间序列测试的实验数据。这些结果进一步量化了地形对图案稳定性的影响。尽管存在这种残留的不稳定性,但总体图案稳定性测试的结果仍支持RVS图像处理可以成为通用视觉图案识别的通用前端的想法。尽管对图案恒定性的影响非常明显,但RVS处理仍在广泛的场景内容多样性范围内以及在照明,浊度和传感器曝光的广泛范围的无关性变化上实现了高度的图案恒定性。

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