计算机科学
物理层
加密
传输(电信)
电子工程
安全传输
安全通信
信号(编程语言)
调制(音乐)
键控
光学(聚焦)
混乱的
窃听
通信安全
包络线(雷达)
光通信
通信系统
计算机网络
振动
方案(数学)
钥匙(锁)
密码学
实时计算
信号处理
脉冲位置调制
数字水印
保密
压缩传感
正交频分复用
生存能力
作者
Tiankai Wang,Hongpeng Liang,Xing Li,Peng Hou,Yuehua An,Anbang Wang,Songnian Fu,Yuncai Wang,yuwen qin,Zhensen Gao
摘要
The integration of sensing capabilities into secure optical transmission systems is emerging as a pivotal strategy for proactive security threat warning and anomaly detection. However, existing integrated sensing and communication (ISAC) schemes primarily focus on resource sharing, often overlooking the intrinsic security of the communication signals themselves. To address this critical gap, we propose and experimentally demonstrate a novel, to our knowledge, integrated secure communication and sensing (ISCAS) scheme based on simultaneous chaotic encryption and vibration detection utilizing a specially designed random envelope fluctuation linear frequency modulation signal. This uniquely designed signal serves a dual purpose: its random envelope facilitates physical layer encryption, while its LFM nature enables high-precision sensing. As a proof-of-principle demonstration, a 28 Gb/s on-off keying (OOK) confidential signal is securely transmitted over a 20 km single-mode fiber link. Simultaneously, a 1 kHz sinusoidal vibration applied at the 18 km point is detected and localized with an error of only 11.45 m. Our work validates an integrated solution that concurrently ensures information confidentiality and channel-sensing capability, paving the way for more resilient and intelligent optical networks.
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