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Robust Lip Contours Localization and Tracking Using Multi Features - Statistical Shape Models

机译:使用多种功能进行可靠的嘴唇轮廓定位和跟踪-统计形状模型

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摘要

We propose and evaluate methods for enhancing performances of lip contours localization and tracking, which are based on the concepts of Statistical Shape Models (e.g. Active Shape Models, Hybrid Active Shape Models) and optimization of multi features. A single feature-based ASM gets good performance only in particular conditions but gets stuck in local minimum or gives bad performance in noisy conditions. In this paper, we propose to use 3 features: Normal Profile, Grey Level Patches and Gabor Wavelets and combine them by using a voting approach to derive a robust method (MF-ASM) on lip contours detection. Since the original ASM does not take into account the temporal information from previous frames, the lip contours are tracked by replacing the standard ASM with our hybrid ASM which is capable to take advantage of temporal information. Initial experimental results using popular audio-visual database show that our methods are more robust to the local minimum problem and give higher accuracy than traditional single feature-based ASM in lip contours detection and tracking.
机译:我们基于统计形状模型(例如活动形状模型,混合活动形状模型)和多特征优化的概念,提出并评估用于增强嘴唇轮廓定位和跟踪性能的方法。单个基于功能的ASM仅在特定条件下才能获得良好的性能,但会陷入局部最小值,或者在嘈杂的条件下会导致性能下降。在本文中,我们建议使用3种特征:法线轮廓,灰度斑块和Gabor小波,并通过投票方法将它们组合起来,以得出一种针对嘴唇轮廓检测的鲁棒方法(MF-ASM)。由于原始ASM没有考虑来自先前帧的时间信息,因此通过将标准ASM替换为能够利用时间信息的混合ASM来跟踪嘴唇轮廓。使用流行的视听数据库的初步实验结果表明,与传统的基于单个特征的ASM相比,我们的方法在嘴唇轮廓检测和跟踪方面比局部最小问题更鲁棒,并且具有更高的准确性。

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  • 来源
  • 会议地点 Juan-les-Pins(FR);Juan-les-Pins(FR)
  • 作者单位

    Institute of Intelligent Systems and Robotics, University Pierre and Marie Curie 'Saint-Raphaeel' - 3 rue Galilee 94200 Ivry sur Seine, Paris, France;

    Institute of Intelligent Systems and Robotics, University Pierre and Marie Curie 'Saint-Raphaeel' - 3 rue Galilee 94200 Ivry sur Seine, Paris, France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计算机网络;
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