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Fully Convolutional Network with Superpixel Parsing for Fashion Web Image Segmentation

机译:完全卷积的网络与Superpixel解析时尚网页图像分割

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In this paper we introduce a new method for extracting deformable clothing items from still images by extending the output of a Fully Convolutional Neural Network (FCN) to infer context from local units (superpixels). To achieve this we optimize an energy function, that combines the large scale structure of the image with the local low-level visual descriptions of superpixels, over the space of all possible pixel labellings. To assess our method we compare it to the unmodified FCN network used as a baseline, as well as to the well-known Paper Doll and Co-parsing methods for fashion images.
机译:本文介绍了一种通过将完全卷积神经网络(FCN)的输出扩展到从本地单元(SuperPixels)推断上下文来引入从静止图像中提取可变形服装项目的新方法。为了实现这一目标,我们优化了能量函数,将图像的大规模结构与超像素的局部低级视觉描述相结合,在所有可能的像素贴标的空间上。为了评估我们的方法,我们将其与作为基线的未修改的FCN网络进行比较,以及用于时尚图像的知名纸娃娃和共同解析方法。

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