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Timing analysis for Diffie Hellman Key Exchange In U-BOOT using Raspberry pi

机译:使用Raspberry Pi在U-BOOT中进行Diffie Hellman密钥交换的时序分析

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In Diffie-Hellman Key Exchange (DHKE), two parties need to communicate to each other by sharing their secret key (cipher text) over an unsecure communication channel. An adversary or cryptanalyst can easily get their secret keys but cannot get the information (plaintext). Brute force is one the common tools used to obtain the secret key, but when the key is too large (etc. 1024 bits and 2048 bits) this tool is no longer suitable. Thus timing attacks have become more attractive in the new cryptographic era where networked embedded systems security present several vulnerabilities such as lower processing power and high deployment scale. Experiments on timing attacks are useful in helping cryptographers make security schemes more resistant. In this work, we timed the computations of the Discrete Log Hard Problem of the Diffie Hellman Key Exchange (DHKE) protocol implemented on an embedded system network and analyzed the timing patterns of 1024-bit and 2048-bit keys that was obtained during the attacks. We have chosen to implement the protocol on the Raspberry-pi board over U-BOOT Bare Metal and we used the GMP bignum library to compute numbers greater than 64 bits on the embedded system.
机译:在Diffie-Hellman密钥交换(DHKE)中,两方需要通过不安全的通信通道共享其秘密密钥(密文)来相互通信。攻击者或密码分析者可以轻松获取其秘密密钥,但无法获取信息(明文)。暴力破解是获取密钥的常用工具之一,但是当密钥太大(例如1024位和2048位)时,此工具将不再适用。因此,定时加密在新的加密时代已变得更具吸引力,在新的加密时代,网络嵌入式系统的安全性存在一些漏洞,例如较低的处理能力和较高的部署规模。定时攻击的实验有助于帮助密码学家提高安全性。在这项工作中,我们对在嵌入式系统网络上实现的Diffie Hellman密钥交换(DHKE)协议的离散日志硬问题的计算进行了计时,并分析了在攻击过程中获得的1024位和2048位密钥的时序模式。我们选择在U-BOOT Bare Metal的Raspberry-pi板上实现该协议,并使用GMP bignum库在嵌入式系统上计算大于64位的数字。

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