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Linear and incremental acquisition of invariant shape models from image sequences

机译:从图像序列线性和增量获取不变形状模型

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摘要

We show how to automatically acquire Euclidian shape representations of objects from noisy image sequences under weak perspective. The proposed method is linear and incremental, requiring no more than pseudoinverse. A nonlinear, but numerically sound preprocessing stage is added to improve the accuracy of the results even further. Experiments show that attention to noise and computational techniques improves the shape results substantially with respect to previous methods proposed for ideal images.
机译:我们展示了如何在弱视点下自动从嘈杂的图像序列中获取对象的欧几里得形状表示。所提出的方法是线性的和增量的,只需要伪逆即可。添加了非线性但数值合理的预处理阶段,以进一步提高结果的准确性。实验表明,与针对理想图像提出的先前方法相比,对噪声和计算技术的关注大大改善了形状结果。

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