arXiv:2504.00435cs.SD2025-04被引 5

用耳塞采集咬合声实现高安全身份认证

User authentication on earable devices via bone-conducted occlusion sounds

  • 通过耳道骨传导声音检测咬合事件并提取个体特征
  • 在53人实验中准确率达98.6%,可抵御99.7%欺骗攻击
  • 适合对安全性要求高的可穿戴设备身份验证场景

随着移动设备发展和敏感数据激增,亟需安全便捷的移动身份认证技术。传统密码及指纹、语音、人脸等生物识别方法易受伪造攻击。本文研究基于牙齿咬合的新型生物特征,发现双耳道收集的骨传导咬合声蕴含个体牙齿与骨骼的独特信息。为此提出 TeethPass+ 认证系统:利用耳塞采集双耳道咬合声,采用基于频谱方差的事件检测方法识别声音,分析时频域特征以去除运动噪声,并从牙齿结构、骨骼结构、咬合位置和咬合声四方面提取用户唯一特征;最后训练三元组网络构建用户模板完成认证。在53名志愿者参与的多环境实验中,系统准确率达98.6%,可抵御99.7%的伪造攻击。

原文摘要 · Abstract (English)

With the rapid development of mobile devices and the fast increase of sensitive data, secure and convenient mobile authentication technologies are desired. Except for traditional passwords, many mobile devices have biometric-based authentication methods (e.g., fingerprint, voiceprint, and face recognition), but they are vulnerable to spoofing attacks. To solve this problem, we study new biometric features which are based on the dental occlusion and find that the bone-conducted sound of dental occlusion collected in binaural canals contains unique features of individual bones and teeth. Motivated by this, we propose a novel authentication system, TeethPass+, which uses earbuds to collect occlusal sounds in binaural canals to achieve authentication. First, we design an event detection method based on spectrum variance to detect bone-conducted sounds. Then, we analyze the time-frequency domain of the sounds to filter out motion noises and extract unique features of users from four aspects: teeth structure, bone structure, occlusal location, and occlusal sound. Finally, we train a Triplet network to construct the user template, which is used to complete authentication. Through extensive experiments including 53 volunteers, the performance of TeethPass+ in different environments is verified. TeethPass+ achieves an accuracy of 98.6% and resists 99.7% of spoofing attacks.

身份认证生物识别可穿戴音频安全

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