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Resolution-aware Constrained Local Model with mixture of local experts

机译:解决本地专家混合的分辨率感知的本地模型

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Deformable model fitting to high-resolution facial images has been extensively studied for over two decades. However, due to the ill-posed problem caused by low-resolution images, most existing work cannot be applied directly and degrades quickly as the resolution decreases. To address this issue, this paper extends the Constrained Local Model (CLM) to a multi-resolution model consisting of a 4-level patch pyramid, and deploys various feature descriptors for the local patch experts as well. We evaluate the proposed work on the BioID, the MUCT and the Multi-PIE datasets. Superior results are achieved on almost all resolution levels, demonstrating the effectiveness and necessity of our resolution-aware approach for the low-resolution fitting. Improved performance of patch models employing several feature combinations over the single intensity feature under different conditions is also presented.
机译:两十年来,已经过度研究了高分辨率面部图像的可变形模型。 但是,由于低分辨率图像引起的不良问题,大多数现有的工作不能直接应用并随着分辨率的降低而快速降级。 为解决此问题,本文将受限本地模型(CLM)扩展到由4级修补程序金字塔组成的多分辨率模型,并为本地补丁专家部署各种特征描述符。 我们评估了BioID,Scuct和多派数据集的建议工作。 几乎所有分辨率水平都达到了优越的结果,展示了我们的决议感知方法对低分辨率拟合的有效性和必要性。 还提出了在不同条件下采用多个强度特征在单个强度特征上采用多个特征组合的补丁模型的改进性能。

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