手写体字母识别的ICP算法研究

Juarez Paulino da Silva Júnior, M. V. Lamar, J. Bordim
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引用次数: 2

摘要

由于手语识别在处理大量复杂、模糊的手势时对准确性和效率的要求很高,对基于视觉的系统来说仍然是一个难题。基于RGB-D传感器获取的深度图像,本文提出了一种识别美国手语手语字母的新方法,该方法基于对迭代最近点(ICP)算法的详细分析,该算法在此应用于三维形状匹配过程。对ICP技术的输入和输出的评估与对所进行实验的解释相结合,通过确定在哪些条件下可以使用符合模式识别要求的校准,对提高技术水平做出了重大贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A study of the ICP algorithm for recognition of the hand alphabet
Due to high demands of accuracy and efficiency while dealing with lots of complex and ambiguous gestures, the sign language recognition is still a hard problem to vision-based systems. From depth images acquired by a recent RGB-D sensor, this paper proposes a novel methodology for the recognition of the American Sign Language hand alphabet, which is underlain by a detailed analysis of the Iterative Closest Point (ICP) algorithm, applied here as a tridimensional shape matching procedure. The evaluation of the inputs and outputs of the ICP technique combined with the interpretation of the conducted experiments contribute significantly for advancing the state of the art, by identifying in which conditions the alignment can be used in compliance with the requirements of the pattern recognition.
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