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AAM-based palm segmentation in unrestricted backgrounds and various postures for palmprint recognition

机译:基于AAM的手掌分割在不受限制的背景和各种姿势下进行手掌识别

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摘要

In this paper, the AAM method with novel palm model is proposed for robust palm segmentation. The main advantages of this approach are the ability of efficient palm segmentation on the cluttered backgrounds and making a decision on whether the object in the scene is a palm with high accuracy. Especially, the proposed palm model eliminates the requirement that the whole hand image has to appear in the scene. The performance of the method is measured with two metrics which give more meaningful and quantitative results: the modified point-to-curve distance and a novel margin width suggested in this work. Furthermore, a novel device which performs the online palm image acquisition without any restriction has been developed. Experimental results on our palm image database denote that the proposed method is skillful for the palm segmentation and it can be used for further works.
机译:本文提出了一种具有新颖手掌模型的AAM方法来进行鲁棒的手掌分割。这种方法的主要优点是能够在杂乱的背景上进行有效的手掌分割,并能够确定场景中的对象是否是具有高精度的手掌。特别地,提出的手掌模型消除了整个手图像必须出现在场景中的要求。该方法的性能通过两个指标来衡量,这些指标给出了更有意义和更定量的结果:修改后的点到曲线距离和本工作中建议的新边距宽度。此外,已经开发了一种新颖的设备,该设备可以无限制地执行在线手掌图像获取。在我们的手掌图像数据库上的实验结果表明,所提出的方法对于手掌分割是熟练的,并且可以用于进一步的工作。

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