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首页> 外文期刊>Human-Machine Systems, IEEE Transactions on >Assistive Clothing Pattern Recognition for Visually Impaired People
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Assistive Clothing Pattern Recognition for Visually Impaired People

机译:视障人士的辅助服装模式识别

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摘要

Choosing clothes with complex patterns and colors is a challenging task for visually impaired people. Automatic clothing pattern recognition is also a challenging research problem due to rotation, scaling, illumination, and especially large intraclass pattern variations. We have developed a camera-based prototype system that recognizes clothing patterns in four categories (plaid, striped, patternless, and irregular) and identifies 11 clothing colors. The system integrates a camera, a microphone, a computer, and a Bluetooth earpiece for audio description of clothing patterns and colors. A camera mounted upon a pair of sunglasses is used to capture clothing images. The clothing patterns and colors are described to blind users verbally. This system can be controlled by speech input through microphone. To recognize clothing patterns, we propose a novel Radon Signature descriptor and a schema to extract statistical properties from wavelet subbands to capture global features of clothing patterns. They are combined with local features to recognize complex clothing patterns. To evaluate the effectiveness of the proposed approach, we used the CCNY Clothing Pattern dataset. Our approach achieves 92.55% recognition accuracy which significantly outperforms the state-of-the-art texture analysis methods on clothing pattern recognition. The prototype was also used by ten visually impaired participants. Most thought such a system would support more independence in their daily life but they also made suggestions for improvements.
机译:对于视觉障碍者来说,选择具有复杂图案和颜色的衣服是一项艰巨的任务。由于旋转,缩放,照明,尤其是类内图案变化较大,因此自动服装图案识别也是一个具有挑战性的研究问题。我们开发了基于相机的原型系统,该系统可以识别四种类别(格子,条纹,无图案和不规则)的服装图案,并识别11种服装颜色。该系统集成了一个摄像头,一个麦克风,一台计算机和一个蓝牙耳机,用于描述服装图案和颜色的音频。安装在太阳镜上的照相机用于捕获衣物图像。服装图案和颜色是为盲目的使用者描述的。该系统可以通过麦克风输入语音来控制。为了识别服装图案,我们提出了一种新颖的Radon Signature描述符和一种从小波子带中提取统计属性以捕获服装图案全局特征的方案。它们与当地特色相结合,可以识别出复杂的服装图案。为了评估所提出方法的有效性,我们使用了CCNY Clothing Pattern数据集。我们的方法可达到92.55%的识别精度,大大优于服装图案识别方面的最新纹理分析方法。十名视障参与者也使用了该原型。大多数人认为这样的系统将支持他们日常生活中的更多独立性,但他们也提出了改进建议。

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