4253HT 平滑器在四种不同噪声水平信号上的汉宁性能

Adie Safian, Ton Mohamed, Noor Izyan Mohamad, Adnan, Fadila Amira, Razali, Sharifah Norhuda, Syed Wahid, Q. N. Husain
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引用次数: 0

摘要

平滑是一种数据分析方法,旨在通过去除数据集中的噪声或非结构化模式,提供定义明确的模式或信号。为了获得干净平滑的数据,汉宁法是平滑法的重要组成部分之一。然而,汉宁并不能抵御异常值。因此,本研究旨在确定汉宁的最佳类型,以获得 4253HT 平滑器在信号恢复中的最大性能。在平滑处理过程中,使用了线性、复正弦、自定义脉冲序列和锯齿信号的函数作为信号,这些信号受到五级污染正常噪声的干扰。所有信号都被用于评估三种不同的汉宁类型,分别是 Tukey、Husain 和 Shitan。此外,还使用均方根误差 (RMSE) 作为评估指标,以确定和评估 4253HT 平滑器在使用替代汉宁时的性能。根据 4253HT 平滑器的整体性能,Husain Hanning 的结果最好,在所有噪声水平下都能最有效地工作,但在最低噪声(10%)下,Tukey Hanning 的效果更好。这项研究的结果可以帮助其他研究人员在进行预测和进一步分析之前决定使用哪种汉宁最好,从而提高预测的准确性。
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Hanning’s Performance in 4253HT Smoother on Four Signals of Different Noise Levels
Smoothing is a method of data analysis that aims to provide well-defined patterns or signals by removing noise or unstructured patterns from data sets. To obtain clean and smooth data, Hanning is applied as one of the important components in smoothing. However, Hanning is not resistant to outliers. Therefore, this study aims to determine the best type of Hanning that is able to obtain the greatest performance of 4253HT smoother in signal recovery. Functions of Linear, Complex Sinusoidal, Custom Pulse Train, and Sawtooth signals corrupted with five levels of contaminated normal noise were used as signals in the smoothing process. All signals were applied to assess three different Hanning types, which were Tukey, Husain and Shitan. Besides, a Root Mean Square Error (RMSE) was used as an evaluator to determine and assess the performance of 4253HT smoother when utilizing an alternative Hanning. Based on the overall performance of 4253HT smoother, Husain Hanning presented the best outcome and worked most efficiently at all levels of noise except at the lowest noise (10%), which Tukey Hanning executed better. The findings of this study could benefit other researchers to decide the best Hanning to be used before performing forecasting and further analysis to improve the accuracy of predicting.
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