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Mobile Devices based Eavesdropping of Handwriting

机译:基于手写的移动设备窃听

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When filling out privacy-related forms in public places such as hospitals or clinics, people usually are not aware that the sound of their handwriting leaks personal information. In this paper, we explore the possibility of eavesdropping on handwriting via nearby mobile devices based on audio signal processing and machine learning. By presenting a proof-of-concept system, WritingHacker, we show the usage of mobile devices to collect the sound of victims' handwriting, and to extract handwriting-specific features for machine learning based analysis. WritingHacker focuses on the situation where the victim's handwriting follows certain print style. An attacker can keep a mobile device, such as a common smartphone, touching the desk used by the victim to record the audio signals of handwriting. Then, the system can provide a word-level estimate for the content of the handwriting. To reduce the impacts of various writing habits and writing locations, the system utilizes the methods of letter clustering, dictionary filtering and letter time length based offsetting. Moreover, if the relative position between the device and the handwriting is known, a hand motion tracking method can be further applied to enhance the system's performance. Our prototype system's experimental results show that the accuracy of word recognition reaches around 70 - 80 percent under certain conditions, which reveals the danger of privacy leakage through the sound of handwriting.
机译:在医院或诊所等公共场所填写隐私相关表格时,人们通常并不意识到其手写的声写泄漏了个人信息。在本文中,我们探讨了基于音频信号处理和机器学习的附近移动设备窃听手写窃听的可能性。通过呈现概念证明系统,写作Hadker,我们展示了移动设备的用法来收集受害者的手写的声音,并提取基于机器学习的分析的手写特定功能。写作海岸侧重于受害者手写遵循某些打印风格的情况。攻击者可以保留移动设备,例如常见的智能手机,触摸受害者使用的桌面以记录手写的音频信号。然后,系统可以提供手写内容的单词级估计。为减少各种写作习惯和写作位置的影响,系统利用字母群集的方法,字典过滤和基于字母的时间长度的偏移。此外,如果已知设备和手写之间的相对位置,则可以进一步应用手动跟踪方法以增强系统的性能。我们的原型系统的实验结果表明,在某些条件下,单词识别的准确性达到约70-80%,这揭示了通过手写声音泄漏的危险。

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