用双流动态挑战机制,防伪眼生物识别攻击
A Dual-Stream Challenge-Response Protocol for Ocular Liveness Verification
- 设计双流挑战响应系统,融合注视追踪与瞳孔反射
- 通过时空变化刺激,实现真假反应的时序同步检测
- 理论验证可区分深度伪造,适合高安全场景
眼生物识别系统易受高分辨率视频回放和实时生成式深度伪造等复杂呈现攻击。现有活体检测框架多依赖独立生理指标(如注视追踪或瞳孔光反射),易被单独欺骗。本文提出一种空间-亮度传感器融合协议,构建双流挑战响应机制,将多种生理指标统一为同步认证挑战。通过生成随机、时变的空间轨迹与亮度强度的视觉刺激,建立数学耦合的状态空间似然模型——同步矩阵,评估平滑追踪与瞳孔收缩之间的连续交叉相关性。基于文献中延迟分布的蒙特卡洛模拟,证明了真实与伪造条件间的理论可分性,并表明多轮挑战在存在非零渲染延迟间隙时能有效提升对生成式深度伪造的检测能力。本工作为下一代动态防伪提供仿真支持的理论框架,人类受试验证是未来部署前必要步骤。
原文摘要 · Abstract (English)
Ocular biometric systems face sophisticated presentation attacks, including high-resolution video replays and real-time generative deepfakes, which easily bypass static liveness checks. Current Presentation Attack Detection (PAD) frameworks typically rely on isolated physiological metrics, such as gaze tracking or the Pupillary Light Reflex (PLR), which can be spoofed independently. This paper proposes a Spatio-Luminance Sensor Fusion protocol, which introduces a dual-stream challenge-response framework for ocular liveness verification by uniting these metrics into a simultaneous authentication challenge. By generating a randomized, time-varying visual stimulus that fluctuates in both spatial trajectory and luminance intensity, we construct a mathematically coupled state-space likelihood model, termed the Synchronization Matrix, to evaluate the continuous cross-correlation between the expected biological latencies of smooth pursuit tracking and pupillary constriction. Using Monte Carlo simulation grounded in literature-derived latency distributions, we demonstrate theoretical separability between genuine and simulated attack conditions, and show that a multi-round challenge design improves the detection of generative deepfakes when a non-zero rendering-latency gap exists. This work provides a simulation-supported theoretical framework for next-generation dynamic spoofing defense in ocular and iris biometrics; human-subject validation is identified as necessary future work before deployment claims can be made.
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