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Virtual Keyboard Logging Counter-Measures Using Human Vision Properties

机译:使用人类视觉属性的虚拟键盘记录对策

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This paper describes keylogging counter-measures for virtual keyboards, widely used to authenticate in various applications and contexts, such as online banking services or touch screen mobile devices. Due to this massive use and to the malware landscape, the security of a virtual keyboard at authentication time is fundamental. Our work is based upon several human vision properties like motion perception, visual as simulation and visual interpolation. We, first, generate a frame filled with noise and then we manipulate this noise in order to make a user see shapes, e.g. letters or digits. The recognition of these shapes by a malware would require high analysis capabilities to automatize. This way, we achieved to make a human-readable virtual keyboard resilient to a large scope of screenshot-based keylogging methods.
机译:本文介绍了虚拟键盘的键盘记录对策,该对策广泛用于在各种应用程序和上下文中进行身份验证,例如在线银行服务或触摸屏移动设备。由于这种大量使用以及恶意软件的影响,认证时虚拟键盘的安全至关重要。我们的工作基于多种人类视觉属性,例如运动感知,视觉模拟和视觉插值。首先,我们生成一个充满噪声的帧,然后我们处理该噪声,以使用户看到形状,例如字母或数字。恶意软件对这些形状的识别将需要高度的分析能力以实现自动化。通过这种方式,我们实现了使人类可读的虚拟键盘能够适应各种基于屏幕截图的键盘记录方法。

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