基于主动外观模型的人脸图像去识别

J. Prinosil, Petr Kriz, K. Říha, M. Dutta, Ashish Issac
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引用次数: 2

摘要

如今,保存公共音像记录中存在的个人资料的任务变得更加重要。本文介绍了一种基于人脸图像的视觉个人数据去识别的图像处理方法。许多原始方法鲁棒性都很高,但去识别数据的图像质量往往很差。该方法的优点包括对原始图像数据的质量保持效果非常好,并且可以从去识别的数据中重建部分图像。通过在已创建的数据库上对主动外观模型算法进行测试,达到了主要目的,自动识别工具的总体成功率约为0.8%。去身份化的图像数据看起来也很真实,可以确定去身份化的人的表情或性别。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facial image de-identification using active appearance model
Nowadays, the task of preservation of personal data present in public audio-visual records becomes more important. This paper describes an image processing method for de-identification of visual personal data based on a facial image. There are many primitive methods with high robustness but image quality of de-identified data is usually very poor. The advantages of this proposed method include especially very good results in quality preservation of the original image data and the possibility of a partial image reconstruction from de-identified data. The main objective has been achieved by using Active Appearance Model algorithm tested on a created database with the overall success rate of automatic recognition tool around 0.8 %. The de-identified image data look also authentic and it is possible to determine the expression or gender of the de-identified person.
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