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      Style Transfer Via Image Component Analysis

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          Image quilting for texture synthesis and transfer

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            Image analogies

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              Face photo-sketch synthesis and recognition.

              In this paper, we propose a novel face photo-sketch synthesis and recognition method using a multiscale Markov Random Fields (MRF) model. Our system has three components: 1) given a face photo, synthesizing a sketch drawing; 2) given a face sketch drawing, synthesizing a photo; and 3) searching for face photos in the database based on a query sketch drawn by an artist. It has useful applications for both digital entertainment and law enforcement. We assume that faces to be studied are in a frontal pose, with normal lighting and neutral expression, and have no occlusions. To synthesize sketch/photo images, the face region is divided into overlapping patches for learning. The size of the patches decides the scale of local face structures to be learned. From a training set which contains photo-sketch pairs, the joint photo-sketch model is learned at multiple scales using a multiscale MRF model. By transforming a face photo to a sketch (or transforming a sketch to a photo), the difference between photos and sketches is significantly reduced, thus allowing effective matching between the two in face sketch recognition. After the photo-sketch transformation, in principle, most of the proposed face photo recognition approaches can be applied to face sketch recognition in a straightforward way. Extensive experiments are conducted on a face sketch database including 606 faces, which can be downloaded from our Web site (http://mmlab.ie.cuhk.edu.hk/facesketch.html).
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                Author and article information

                Journal
                IEEE Transactions on Multimedia
                IEEE Trans. Multimedia
                Institute of Electrical and Electronics Engineers (IEEE)
                1520-9210
                1941-0077
                November 2013
                November 2013
                : 15
                : 7
                : 1594-1601
                Article
                10.1109/TMM.2013.2265675
                f0f06fef-2205-4be9-bd26-5fc6203856b2
                © 2013
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