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Mutual information based registration of multimodal stereo videos for person tracking

机译:基于互信息的多模式立体声视频注册,以进行人跟踪

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摘要

Research presented in this paper deals with the systematic examination, development, and evaluation of a novel multimodal registration approach that can perform accurately and robustly for relatively close range surveillance applications. An analysis of multimodal image registration gives insight into the limitations of assumptions made in current approaches and motivates the methodology of the developed algorithm. Using calibrated stereo imagery, we employ maximization of mutual information in sliding correspondence windows that inform a disparity voting algorithm to demonstrate successful registration of objects in color and thermal imagery. Extensive evaluation of scenes with multiple objects at different depths and levels of occlusion shows high rates of successful registration. Ground truth experiments demonstrate the utility of the disparity voting techniques for multimodal registration by yielding qualitative and quantitative results that outperform approaches that do not consider occlusions. A basic framework for multimodal stereo tracking is investigated and promising experimental studies show the viability of using registration disparity estimates as a tracking feature.
机译:本文介绍的研究涉及一种新颖的多模式注册方法的系统检查,开发和评估,该方法可以针对相对近距离的监视应用程序准确而可靠地执行。多模式图像配准的分析可以洞悉当前方法中的假设限制,并可以激发开发算法的方法论。使用校准的立体图像,我们在滑动对应窗口中采用了互信息最大化,从而通知了视差投票算法以演示彩色和热图像中对象的成功配准。对具有不同深度和不同遮挡级别的多个对象的场景进行的广泛评估显示出成功的注册率很高。实地实验通过产生定性和定量结果,证明了视差表决技术在多模式注册中的效用,其结果优于不考虑遮挡的方法。研究了多模式立体声跟踪的基本框架,有前途的实验研究表明,使用配准差异估计作为跟踪功能的可行性。

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