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On Privacy of Encrypted Speech Communications

机译:论加密语音通信的隐私

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摘要

Silence suppression, an essential feature of speech communications over the Internet, saves bandwidth by disabling voice packet transmissions when silence is detected. However, silence suppression enables an adversary to recover talk patterns from packet timing. In this paper, we investigate privacy leakage through the silence suppression feature. More specifically, we propose a new class of traffic analysis attacks to encrypted speech communications with the goal of detecting speakers of encrypted speech communications. These attacks are based on packet timing information only and the attacks can detect speakers of speech communications made with different codecs. We evaluate the proposed attacks with extensive experiments over different type of networks including commercial anonymity networks and campus networks. The experiments show that the proposed traffic analysis attacks can detect speakers of encrypted speech communications with high accuracy based on traces of 15 minutes long on average.
机译:静默抑制是Internet上语音通信的基本功能,它在检测到静默时通过禁用语音数据包传输来节省带宽。但是,静默抑制使对手能够从数据包定时恢复通话模式。在本文中,我们通过静音抑制功能来调查隐私泄漏。更具体地说,我们提出了一种针对加密语音通信的新型流量分析攻击,其目的是检测加密语音通信的说话者。这些攻击仅基于数据包定时信息,并且攻击可以检测使用不同编解码器进行的语音通信的说话者。我们通过在包括商业匿名网络和校园网络在内的不同类型的网络上进行的广泛实验来评估所提议的攻击。实验表明,所提出的流量分析攻击可以基于平均15分钟的痕迹来高精度检测加密语音通信的说话者。

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