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Real-Time Model-Based Hand Localization for Unsupervised Palmar Image Acquisition

机译:基于实时模型的手部定位在无监督手掌图像采集中的应用

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摘要

Unsupervised and touchless image acquisition are two problems that have recently emerged in biometric systems based on hand features. We have developed a real-time model-based hand localization system for palmar image acquisition and ROI extraction. The system operates on video sequences and produces a set of palmprint regions of interest (ROIs) for each sequence. Hand candidates are first located using Viola-Jones approach and then the best candidate is selected using model-fitting approach. Experimental results demonstrate the feasibility of the system for unsupervised palmar image acquisition in terms of speed and localization accuracy.
机译:无监督和非接触式图像采集是基于手部特征的生物识别系统中最近出现的两个问题。我们已经开发了基于实时模型的手部定位系统,用于手掌图像采集和ROI提取。该系统对视频序列进行操作,并为每个序列生成一组感兴趣的掌纹区域(ROI)。首先使用Viola-Jones方法定位候选手,然后使用模型拟合方法选择最佳候选者。实验结果证明了该系统在速度和定位精度方面对无监督手掌图像采集的可行性。

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