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Dynamic Scene Stitching Driven by Visual Cognition Model

机译:可视认知模型驱动的动态场景拼接

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Dynamic scene stitching still has a great challenge in maintaining the global key information without missing or deforming if multiple motion interferences exist in the image acquisition system. Object clips, motion blurs, or other synthetic defects easily occur in the final stitching image. In our research work, we proceed from human visual cognitive mechanism and construct a hybrid-saliency-based cognitive model to automatically guide the video volume stitching. The model consists of three elements of different visual stimuli, that is, intensity, edge contour, and scene depth saliencies. Combined with the manifold-based mosaicing framework, dynamic scene stitching is formulated as a cut path optimization problem in a constructed space-time graph. The cutting energy function for column width selections is defined according to the proposed visual cognition model. The optimum cut path can minimize the cognitive saliency difference throughout the whole video volume. The experimental results show that it can effectively avoid synthetic defects caused by different motion interferences and summarize the key contents of the scene without loss. The proposed method gives full play to the role of human visual cognitive mechanism for the stitching. It is of high practical value to environmental surveillance and other applications.
机译:如果在图像采集系统中存在多个运动干扰,则动态场景拼接仍然存在巨大的挑战,而不会丢失或变形而不会丢失或变形。对象夹,运动模糊或其他合成缺陷容易发生在最终缝合图像中。在我们的研究工作中,我们从人类视觉认知机制进行,并构建基于混合显着性的认知模型,以自动引导视频体积缝合。该模型由三种不同视觉刺激的元素组成,即强度,边缘轮廓和场景深度施放。结合基于歧管的镶嵌框架,在构造的时效图中将动态场景拼接作为切割路径优化问题。根据所提出的视觉认知模型定义列宽度选择的切割能功能。最佳切割路径可以最小化整个视频体积的认知显着差。实验结果表明,它可以有效避免由不同运动干扰引起的合成缺陷,并总结场景的关键内容而不会损失。该方法充分发挥人类视觉认知机制对缝合的作用。它对环境监测和其他应用具有很高的实用价值。

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