Soil moisture retrieval using fuzzy logic based on UWB signals

Fangqi Zhu, Huaiyuan Liu, Jing Liang
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引用次数: 5

Abstract

A fuzzy logic approach to retrieve the soil moisture from the ultra-wideband (UWB) radar measurements is investigated in this paper. A monostatic UWB radar module is applied to collect the reflected signals from subsurface of bare soil and sand with different volume water contents (VWCs). Meanwhile, VWCs' data are collected by a time domain reflectometer (TDR). Traditionally, the channel modeling, from the statistical point of view, is able to retrieve the soil moisture. However, the statistical information lacks the ability to disclose the direct relation between the waveform and soil moisture. In this work, we try to model the problem as a time-series forecasting problem. The reflected signals are divided into training data and testing data. The training data are imported into the type-1 fuzzy logic system (T1FLS) to forecast the testing data. After that, we extract the parameters of membership functions in the final iteration and obtain the VWC value based on a recognition strategy.
基于超宽带信号的模糊逻辑土壤水分反演
研究了一种从超宽带雷达测量数据中提取土壤水分的模糊逻辑方法。采用单站超宽带雷达模块采集不同体积含水量裸土和裸砂的地下反射信号。同时,利用时域反射仪(TDR)采集vwc的数据。传统的河道建模,从统计的角度来看,是能够提取土壤水分的。然而,统计信息缺乏揭示波形与土壤湿度之间直接关系的能力。在这项工作中,我们试图将这个问题建模为一个时间序列预测问题。反射信号分为训练数据和测试数据。将训练数据导入1型模糊逻辑系统(T1FLS),对测试数据进行预测。然后,在最后的迭代中提取隶属函数的参数,并根据识别策略获得VWC值。
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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