一个基于生成对抗网络的精确面具面部识别模型,使用双尺度自适应高效注意力网络.
Jafar A Alzubi1, Kiran Sree Pokkuluri2, Rajesh Arunachalam3
1Faculty of Engineering, Al-Balqa Applied University, Salt, 19117, Jordan.
Scientific reports
|May 21, 2025
概括
这项研究引入了一个深度学习框架,用于准确的面具面部识别,这对于安全和身份验证至关重要. 该模型有效地识别个人,即使他们的脸被面具部分掩盖.
科学领域:
- 计算机科学 计算机科学
- 人工智能的人工智能
- 生物识别信息 生物识别信息
背景情况:
- 面罩在各种职业中很常见,这给传统的面部识别系统带来了挑战.
- 准确识别蒙面人员对于安全和认证目的至关重要.
- 现有的面部识别方法难以检测蒙面面孔,需要先进的解决方案.
研究的目的:
- 开发一个深度学习辅助的框架,用于准确的面具面部识别.
- 在涉及面罩的场景中加强生物识别验证流程.
- 解决当前面部识别技术在识别蒙面个人的局限性.
主要方法:
- 使用生成对抗网络 (GAN) 来生成无面具版本的蒙面面孔和无面具面孔的蒙面版本.
- 采用双级自适应高效注意网络 (DS-AEAN) 进行特征提取和人脸识别.
- 使用增强的Addax优化算法 (EAOA) 优化了模型的性能.
主要成果:
- 开发的框架证明了有效地识别蒙面面孔.
- 整合GAN和DS-AEAN提高了生物识别验证的准确性.
- 绩效评估显示,与现有方法相比,该模型的功能更好.
结论:
- 拟议的深度学习模型为面具面部识别提供了可靠的解决方案.
- 这一框架通过使用蒙面面孔进行精确的身份验证来增强安全性.
- 该研究为各种现实应用中的生物识别身份验证提供了一个强大的方法.
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