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Modified HALS Algorithm for Image Completion and Recommendation System

机译:用于图像完成和推荐系统的修改HALS算法

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The paper is concerned with the task of reconstructing missing values in an observed incomplete matrix, assuming its low-rank approximation. The problem has important applications, especially in image processing and social sciences. In our approach, we focus on the problem of recovering missing pixels in images perturbed with impulse noise in a transmission channel as well as estimating unknown ratings in a recommendation system. For solving these problems, we used the modified version of the Hierarchical Least Squares Algorithm (HALS), including the smoothed version, and compared them with other algorithm, such as the SPC-QV. The numerical experiments are carried out for various cases of incomplete data. For image processing, the incomplete images are obtained by removing random pixels and regular grid lines from test images. For recommendation systems, we used real rating matrices from the MovieLens database that contains five-star movie recommendation ratings. The best performance is obtained if nonnegativity and smoothing constraints are imposed onto the estimated low-rank factors.
机译:本文涉及假设其低秩近似在观察到的不完整矩阵中重建缺失值的任务。问题具有重要的应用,特别是在图像处理和社会科学中。在我们的方法中,我们专注于在传输信道中扰乱脉冲噪声的图像中恢复丢失像素的问题以及在推荐系统中估计未知的额定值。为了解决这些问题,我们使用了分层最小二乘算法(HALS)的修改版本,包括平滑版本,并将其与其他算法(例如SPC-QV)进行比较。对不完全数据的各种情况进行了数值实验。对于图像处理,通过从测试图像中移除随机像素和常规网格线来获得不完整的图像。对于推荐系统,我们使用了来自Movielens数据库的实际评级矩阵,其中包含五星电影推荐额定值。如果非承认和平滑约束施加到估计的低秩因子上,则获得最佳性能。

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