概括
这项研究为光学直角频率分割多重复合 (OFDM) 传输提供了一个新的四维星座,在2公里范围内实现51.49Gb/s的速度. 新设计提高了接收器的灵敏度和错误性能,用于短距离通信.
科学领域:
- 光学通信是指光学通信的应用.
- 信号处理 信号处理
- 信息理论是信息理论.
背景情况:
- 在高速光学传输中,直角频率分割多重复合 (OFDM) 是至关重要的.
- 增强星座映射是提高数据速率和接收器灵敏度的关键.
- 目前的方法在光谱效率和错误性能方面存在局限性.
研究的目的:
- 为OFDM光学传输引入一种新的四维概率星座映射.
- 将几何和概率造型与颜色编码结合起来,以增强星座功绩图 (CFM).
- 为了评估接收器灵敏度和错误率的性能增长.
主要方法:
- 使用颜色编码开发一个四维星座结构.
- 基于二维反向快速里叶变换 (2D-IFFT) 的OFDM系统的实施.
- 通过2公里长的七核光纤进行信号的实验传输.
主要成果:
- 在2公里长的七核光纤上以51.49Gb/s成功传输了OFDM信号.
- 与传统的4D,3D-OFDM和2D-OFDM相比,获得了0.85 dB,1.33 dB和1.83 dB的接收器灵敏度增长.
- 在4.4位/符号中,在均分布的星座上显示了1.36dB的接收器灵敏度增长.
结论:
- 拟议的配色编码的四维星座显著提高了接收器的灵敏度和错误性能.
- 该系统显示了未来短距离光通信应用的前景.
- 结合的几何和概率塑造方法有效地改善了CFM.
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