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Direct Hallucination: Direct Locality Preserving Projections (DLPP) for Face Super-Resolution

机译:直接幻觉:面部超分辨率的直接定位占地面积(DLPP)

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Faces captured by surveillance cameras are often of very low resolution. This significantly deteriorates face recognition performance. Super-resolution techniques have been proposed in the past to mitigate this.This paper proposes the novel use of a Locality Preserving Projections (LPP) algorithm called Direct Locality Preserving Projections (DLPP) for super resolution of facial images, or “face hallucination” in other words. Because DLPP doesn’t require any dimensionality reduction preprocessing via Principle Component Analysis (PCA), it retains more discriminating power in its feature space than LPP.Combined with non-parametric regression using a generalized regression neural network (GRNN), the proposed work can render high-resolution face image from an image of resolution as low as 8x7 with a large zoom factor of 24. The resulting technique is powerful and efficient in synthesizing faces similar to ground-truth faces. Simulation results show superior results compared to other well-known schemes.
机译:由监控摄像机捕获的面部通常具有非常低的分辨率。这显着恶化了面部识别性能。过去已经提出了超级分辨率技术来减轻本文。本文提出了一种新颖的使用称为直接局部保留投影(DLPP)的地区保留投影(LPP)算法的用于超级分辨率,或“面部幻觉”也就是说。因为DLPP不需要通过原理分量分析(PCA)的任何维度预处理,所以它通过使用广义回归神经网络(GRNN)的非参数回归来保留其特征空间中的更具辨别力而不是LPP。所提出的工作可以从分辨率的图像低至与24大变焦因子8×7所得的技术是在合成类似于地面实况面孔的面孔强大而高效呈现高分辨率的面部图像。与其他公知的方案相比,仿真结果显示出优异的结果。

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