概括
一个新的光子辅助系统结合了数字和模拟领域,以实现优越的多路径干扰 (MI) 取消. 这种方法可以防止模拟数字转换器 (ADC) 过度和,并优化光路径性能,以提高信号完整性.
科学领域:
- 光子学和光学通信技术
- 信号处理 信号处理
- 数字和模拟系统集成的整合.
背景情况:
- 多路径干扰 (MI) 在光通信系统中降低了信号质量.
- 现有的取消方法面临着像模拟数字转换器 (ADC) 过度和和光路径不稳定等挑战.
- 需要一种混合方法来克服这些局限性.
研究的目的:
- 提出并演示光子辅助的多路径干扰取消系统.
- 利用模拟和数字领域进行全面的干扰缓解.
- 分析小信号和大信号调制之间的性能差异.
主要方法:
- 混合模拟-数字光学辅助取消架构的开发.
- 使用修改后的维纳溶液,理论推导多路干扰余电量.
- 基于接收信号强度指标 (RSSI) 的自适应反控制算法的实现和模拟.
- 对调制器偏差点漂移的数字域补偿的分析.
主要成果:
- 拟议的系统通过结合模拟和数字领域技术,有效地取消多路径干扰.
- 在融合条件下,模拟的多路径干扰取消深度 (MICD) 达到48.4dB.
- 模拟域处理可以防止ADC信号过和.
- 数字域控制补偿光学路径变化和调制器偏差偏移.
结论:
- 光学辅助的混合系统为多路径干扰取消提供了强大的解决方案.
- 这种方法提高了光通信中的信号完整性和系统稳定性.
- 模拟预处理和数字自适应控制的组合提供了最佳的干扰缓解.
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