遥测带宽压缩的采样数据预测

J. Medlin
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引用次数: 19

摘要

最近在洛克希德导弹和空间公司进行的一项探索性调查的一部分,描述了各种数据压缩预测技术的比较有效性。在IBM 7094数字计算机上进行了模拟比较,使用了在典型卫星发射期间接收到的大约150,000个实际车辆遥测数据样本,以及合成遥测数据。所讨论的压缩技术采用了零阶、一阶和二阶多项式预测器或其修改。结果表明,零阶技术之一(实现起来相对简单)在消除数据冗余方面是最有效的。尽管这些数据在范围和数量上都有一定的限制,但结果倾向于支持对多项式预测器经常重复的反对意见,即与提供最新样本相比,过分强调远离预测点的样本点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sampled-Data Prediction for Telemetry Bandwidth Compression
A portion of an exploratory investigation conducted recently at Lockheed Missiles and Space Company, Sunnyvale, Calif., into the comparative effectiveness of various prediction techniques for data compression is described. The comparisons were made by simulation with an IBM 7094 digital computer with the use of approximately 150,000 samples of actual vehicle telemetry data received during a typical satellite launching, in addition to synthetic telemetry data. The compression techniques discussed employed zero-, first-, and second-order polynomial predictors, or modifications thereof. The results showed that one of the zero-order techniques (one which would be relatively simple to implement) was the most effective in removing redundancy from the data. Although these data were somewhat limited both in scope and quantity, the results tend to support the oft-repeated objection to polynomial predictors that an inordinate amount of emphasis is given to sample points far removed from the point to be predicted, compared to that afforded the most recent samples.
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