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Totally secure classical communication utilizing Johnson (-like) noise and Kirchoff's law

机译:利用约翰逊式噪声和基尔霍夫定律,完全安全的经典通信

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摘要

An absolutely secure, fast, inexpensive, robust, maintenance-free and low-power-consumption communication is proposed. The states of the information bit are represented by two resistance values. The sender and the receiver have such resistors available and they randomly select and connect one of them to the channel at the beginning of each clock period. The thermal noise voltage and current can be observed but Kirchoff's law provides only a second-order equation. A secure bit is communicated when the actual resistance values at the sender's side and the receiver's side differ. Then the second order equation yields the two resistance values but the eavesdropper is unable to determine the actual locations of the resistors and to find out the state of the sender's bit. The receiver knows that the sender has the inverse of his bit, similarly to quantum entanglement. The eavesdropper can decode the message if, for each bits, she inject current in the wire and measures the voltage change and the current changes in the two directions. However, in this way she gets discovered by the very first bit she decodes. Instead of thermal noise, proper external noise generators should be used when the communication is not aimed to be stealth. (c) 2005 Elsevier B.V. All rights reserved.
机译:提出了一种绝对安全,快速,廉价,健壮,免维护和低功耗的通信。信息位的状态由两个电阻值表示。发送器和接收器都有可用的电阻,它们在每个时钟周期的开始随机选择一个并将其连接到通道。可以观察到热噪声电压和电流,但是基尔霍夫定律仅提供了一个二阶方程。当发送方和接收方的实际电阻值不同时,将传送安全位。然后,二阶方程得出两个电阻值,但窃听者无法确定电阻器的实际位置,也无法找出发送器位的状态。接收器知道发送器具有与比特纠缠相似的位的倒数。如果对于每个位,窃听者可以将消息注入电线并测量两个方向上的电压变化和电流变化,则窃听者可以解码该消息。但是,通过这种方式,她在解码的第一位就被发现了。当通信并非旨在隐蔽时,应使用适当的外部噪声发生器代替热噪声。 (c)2005 Elsevier B.V.保留所有权利。

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