基于k均值聚类和椭圆拟合的唇形轮廓提取方法的改进

B. Singh, S. Sahoo, Vinod Kumar, Ashish Issac, M. Dutta
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引用次数: 4

摘要

视觉语音识别系统完全依赖于唇轮廓的正确提取。提取的唇形轮廓可用于视觉语音识别中唇形运动的跟踪。通过正确的唇形提取,可以提高系统的精度。本文提出了一种从人脸图像中自动提取唇形轮廓的计算机视觉方法。该技术采用维奥拉·琼斯算法对图像中的人脸和嘴巴进行定位。与现有的方法不同,Viola Jones使用的合并阈值是迭代和自适应的,这使得它对输入图像的质量保持不变。颜色空间转换和聚类方法将唇像素与非唇像素分离,并进一步进行形态学运算和椭圆拟合,从而有效地提取唇轮廓。该方法已在VidTimit数据库的4000张图像上进行了测试,结果表明,与现有的唇轮廓提取方法相比,该方法在唇轮廓分割方面有显著改善。该方法计算效率高,鲁棒性好,可用于实时应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Improved lip contour extraction using K-means clustering and ellipse fitting
A Visual Speech Recognition system is completely dependent on correct extraction of lip contours. The extracted lip contour can be useful in tracking the lip movements in Visual Speech Recognition. The accuracy of the system can be improved by correct extraction of the lip contours. In this paper, a computer vision approach is proposed to automatically extract lip contour from the face image. The proposed technique uses Viola Jones algorithm to localize the face and mouth in the image. Unlike existing methods merge thresholds used in Viola Jones are made iterative and adaptive which makes it invariant to the quality of input image. The colour space conversion and clustering method results in separation of lip from non lip pixels which are further subjected to morphological operations and ellipse fitting for an efficient lip contour extraction. The proposed method has been tested on 4000 images from the VidTimit database and results showed significant improvement in lip segmentation than some of the existing methods for lip contour extraction. The proposed method is computationally efficient and robust and can be used for real time applications.
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