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Relatable Clothing: Detecting Visual Relationships between People and Clothing

机译:可关联的衣服:检测人与衣服之间的视觉关系

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Detecting visual relationships between people and clothing in an image has been a relatively unexplored problem in the field of computer vision and biometrics. The lack of readily available public dataset for "worn" and "unworn" classification has slowed the development of solutions for this problem. We present the release of the Relatable Clothing Dataset which contains 35287 person-clothing pairs and segmentation masks for the development of "worn" and "unworn" classification models. Additionally, we propose a novel soft attention unit for performing "worn" and "unworn" classification using deep neural networks. The proposed soft attention models have an accuracy of upward 98.55% ± 0.35% on the Relatable Clothing Dataset and demonstrate high generalizable, allowing us to classify unseen articles of clothing such as high visibility vests as "worn" or "unworn".
机译:在图像中检测人与人之间的视觉关系是计算机视觉和生物识别技术领域的一个相对未开发的问题。 “佩戴”和“未磨损”分类缺乏可用的公共数据集减缓了解决问题的解决方案的发展。 我们介绍了可关联的服装数据集,其中包含35287人服装对和分割面罩,用于开发“佩戴”和“未磨损”的分类模型。 此外,我们提出了一种新颖的软注意单元,用于使用深神经网络执行“佩戴”和“未磨损”分类。 所提出的软注意力模型在可关联的服装数据集上具有上向上98.55%±0.35%,并表现出高度更广泛的,允许我们将诸如“佩戴”或“未磨损”或“未经”或“未磨损”等高可见性背心的衣物缩写。

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