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高可信度传感器内加密技术在图像加密与认证中的应用。

Highly Trustworthy In-Sensor Cryptography for Image Encryption and Authentication.

机构信息

Department of Applied Physics, The Hong Kong Polytechnic University, Hong Kong 999077, People's Republic of China.

The Hong Kong Polytechnic University Shenzhen Research Institute, Shenzhen 518055, People's Republic of China.

出版信息

ACS Nano. 2023 Jun 13;17(11):10291-10299. doi: 10.1021/acsnano.3c00487. Epub 2023 May 15.

Abstract

The prevailing transmission of image information over the Internet of Things demands trustworthy cryptography for high security and privacy. State-of-the-art security modules are usually physically separated from the sensory terminals that capture images, which unavoidably exposes image information to various attacks during the transmission process. Here we develop in-sensor cryptography that enables capturing images and producing security keys in the same hardware devices. The generated key inherently binds to the captured images, which gives rise to highly trustworthy cryptography. Using the intrinsic electronic and optoelectronic characteristics of the 256 molybdenum disulfide phototransistor array, we can harvest electronic and optoelectronic binary keys with a physically unclonable function and further upgrade them into multiple-state ternary and double-binary keys, exhibiting high uniformity, uniqueness, randomness, and coding capacity. This in-sensor cryptography enables highly trustworthy image encryption to avoid passive attacks and image authentication to prevent unauthorized editions.

摘要

物联网中图像信息的主要传输需要可靠的密码学来实现高安全性和隐私性。最先进的安全模块通常与捕获图像的传感终端物理分离,这不可避免地会在传输过程中使图像信息暴露于各种攻击之下。在这里,我们开发了一种传感器内加密技术,可在相同的硬件设备中实现图像捕获和安全密钥生成。生成的密钥本质上与捕获的图像绑定,从而提供高度可信的加密。利用 256 层二硫化钼光电晶体管阵列的固有电子和光电二进制特性,我们可以采集具有物理不可克隆功能的电子和光电二进制密钥,并将其进一步升级为多态三进制和双二进制密钥,具有高度的均匀性、唯一性、随机性和编码容量。这种传感器内加密技术可实现高度可信的图像加密,以避免被动攻击,以及图像认证,以防止未经授权的版本。

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