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时空梯度迭代的声纹对抗攻击算法STI-FGSM
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作者 李烁 顾益军 谭昊 《计算机工程与应用》 CSCD 北大核心 2023年第21期151-158,共8页
为了解决当前声纹对抗攻击算法梯度信息利用不足、迁移性较差等问题,针对说话人识别模型,提出一种时空迭代快速梯度符号法(space-time iterative fast gradient sign method,STI-FGSM)的声纹对抗攻击算法。该算法基于动量迭代快速梯度... 为了解决当前声纹对抗攻击算法梯度信息利用不足、迁移性较差等问题,针对说话人识别模型,提出一种时空迭代快速梯度符号法(space-time iterative fast gradient sign method,STI-FGSM)的声纹对抗攻击算法。该算法基于动量迭代快速梯度符号法(momentum iterative fast gradient sign method,MI-FGSM),融合动量和时序梯度信息,使用下一步观测梯度修正扰动更新方向。引入空间梯度信息,充分学习语音样本区域信息,实现不同区域的空间梯度动量累加。结合扰动集成的方法,充分利用已知的白盒模型,实现多模型扰动叠加,进一步提高黑盒攻击成功率。实验结果表明,STI-FGSM算法针对ResNetSE34V2、TDy_ResNet34_half、x-vector、ECAPA-TDNN四种说话人识别模型,均能取得较强的白盒攻击,并实现较高的黑盒攻击成功率,其性能优于其他算法。 展开更多
关键词 说话人识别 对抗攻击 梯度 扰动集成 白盒攻击 黑盒攻击 迁移性
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A SVD-based ensemble projection algorithm for calculating the conditional nonlinear optimal perturbation 被引量:5
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作者 CHEN Lei DUAN WanSuo XU Hui 《Science China Earth Sciences》 SCIE EI CAS CSCD 2015年第3期385-394,共10页
Conditional nonlinear optimal perturbation(CNOP) is an extension of the linear singular vector technique in the nonlinear regime.It represents the initial perturbation that is subjected to a given physical constraint,... Conditional nonlinear optimal perturbation(CNOP) is an extension of the linear singular vector technique in the nonlinear regime.It represents the initial perturbation that is subjected to a given physical constraint,and results in the largest nonlinear evolution at the prediction time.CNOP-type errors play an important role in the predictability of weather and climate.Generally,when calculating CNOP in a complicated numerical model,we need the gradient of the objective function with respect to the initial perturbations to provide the descent direction for searching the phase space.The adjoint technique is widely used to calculate the gradient of the objective function.However,it is difficult and cumbersome to construct the adjoint model of a complicated numerical model,which imposes a limitation on the application of CNOP.Based on previous research,this study proposes a new ensemble projection algorithm based on singular vector decomposition(SVD).The new algorithm avoids the localization procedure of previous ensemble projection algorithms,and overcomes the uncertainty caused by choosing the localization radius empirically.The new algorithm is applied to calculate the CNOP in an intermediate forecasting model.The results show that the CNOP obtained by the new ensemble-based algorithm can effectively approximate that calculated by the adjoint algorithm,and retains the general spatial characteristics of the latter.Hence,the new SVD-based ensemble projection algorithm proposed in this study is an effective method of approximating the CNOP. 展开更多
关键词 singular vector decomposition ensemble projection algorithm ENSO conditional nonlinear optimal perturbation
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