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Globally consistent image mosaicing

机译:全球一致的图像拼接

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摘要

Image mosaicing is widely used in computer vision applications. Accurate and consistent alignment of sequence images is the key issue to image mosaicing. In this paper, a globally consistent image mosaicing is proposed by taking account of various uncertainties. The problem of global alignment of a sequence of images is considered as a stochastic estimation problem. The transformation parameters of images are considered as system state. System augmentation model and system observation model are constructed. The global homographies parameters of sequence images are estimated recursively with augmented Kalman filter in a common state vector and covariance matrix. The proposed image alignment method can handle the uncertainty efficiently and is globally consistent. Some experimental results are provided to validate the performance of the proposed method.
机译:图像镶嵌广泛用于计算机视觉应用中。准确且一致的序列图像对准是图像拼接的关键问题。在本文中,通过考虑各种不确定性来提出全球一致的图像镶嵌。一系列图像的全局对准的问题被认为是随机估计问题。图像的转换参数被视为系统状态。构建系统增强模型和系统观察模型。在公共状态向量和协方差矩阵中,在共同的卡尔曼滤波器递归地估计序列图像的全局识别参数。所提出的图像对准方法可以有效地处理不确定性,并且是全球化的。提供了一些实验结果以验证所提出的方法的性能。

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