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A comparative study of the performance of seven- and 63-chip optical code-division multiple-access encoders and decoders based on superstructured fiber Bragg gratings

机译:基于超结构光纤布拉格光栅的七芯片和63芯片光码分多址编码器和解码器性能的比较研究

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摘要

We report a range of elementary optical coding and decoding experiments employing superstructured fiber Bragg grating (SSFBG) components: first, we perform a comparative study of the relative merits of bipolar and unipolar coding: decoding schemes and show that the SSFBG approach allows high-quality unipolar and bipolar coding. A performance close to that-theoretically predicted for seven-chip, 160-Gchip/s M-sequence codes is obtained. Second, we report the fabrication and performance of 63-chip, 160-Gchip/s, bipolar Gold sequence grating pairs. These codes are at least eight times longer than those generated by any other scheme based on fiber grating technology so far reported. Last, we describe a range of transmission system experiments for both the seven- and 63-bit bipolar grating pairs. Error-free performance is obtained over transmission distances of ~25 km of standard fiber. In addition, we have demonstrated error-free performance under multiuser operation (two simultaneous users). Our results highlight the precision and flexibility of our particular grating writing process and show that SSFBG technology represents a promising technology not just for optical code division multiple access (OCDMA) but also for an extended range of other pulse-shaping optical processing applications
机译:我们报告了一系列使用超结构光纤布拉格光栅(SSFBG)组件的基本光学编码和解码实验:首先,我们对双极性和单极性编码的相对优点进行了比较研究:解码方案,并证明了SSFBG方法可实现高质量单极性和双极性编码。获得的性能接近理论上针对七片160 Gchip / s M序列码所预测的性能。其次,我们报告了63芯片,160 Gchip / s双极Gold序列光栅对的制造和性能。这些代码至少比迄今为止报道的任何其他基于光纤光栅技术的方案生成的代码长八倍。最后,我们描述了针对7位和63位双极光栅对的一系列传输系统实验。在约25 km的标准光纤传输距离上可获得无错误的性能。此外,我们已经展示了在多用户操作(两个同时用户)下的无错误性能。我们的结果突出了我们特定光栅写入过程的精度和灵活性,并表明SSFBG技术代表了一种有前途的技术,不仅适用于光码分多址(OCDMA),而且适用于扩展的其他脉冲整形光学处理应用

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