Multidimensional Cross Parity Check Codes as a Promising Solution to CubeSat Low Data Rate Downlinks

I. Veřtát, L. Dudáček
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引用次数: 4

Abstract

Simple cross parity check codes have been well known for decades in the areas of magnetic recording and radiation-hardened memory in space applications. However, the computational power requirements of higher dimensional cross codes mean that priority has been given to different forward error correction methods, with the result that cross parity check codes have not become sufficiently generalized to include a higher number of dimensions. In the last two decades, the focus has mainly been on Reed-Solomon codes, Hamming codes, BCH codes, convolutional codes and turbo codes. In this paper, the issues behind generalized multidimensional parity check codes are explored again in relation to current main-stream interest by covering parity check codes in the form of low-density parity checks. I will put forward a new solution to the multidimensional parity check code decoding process for low data rate downlinks in CubeSat satellites. I propose that the high computational power of software-defined radio can be utilized for iterative decoding of CubeSat satellite transmissions in ground control segments, ensuring that onboard multidimensional parity encoders are as simple to use as possible.
多维交叉奇偶校验码作为立方体卫星低数据速率下行链路的一种有前途的解决方案
几十年来,简单的交叉奇偶校验码在空间应用中的磁记录和辐射硬化存储器领域已经广为人知。然而,高维交叉码的计算能力要求意味着优先考虑不同的前向纠错方法,其结果是交叉奇偶校验码没有得到足够的推广,以包括更高的维数。在过去的二十年中,重点主要集中在里德-所罗门码、汉明码、BCH码、卷积码和涡轮码上。在本文中,通过以低密度奇偶校验的形式覆盖奇偶校验码,再次探讨了与当前主流兴趣相关的广义多维奇偶校验码背后的问题。本文将针对CubeSat卫星低数据速率下行链路的多维奇偶校验码解码过程提出一种新的解决方案。我建议将软件定义无线电的高计算能力用于地面控制段CubeSat卫星传输的迭代解码,确保板载多维奇偶编码器尽可能简单易用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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