MEASUREMENT OF RICE MOISTURE CONTENT BASED ON QUANTITATIVE ANALAYSIS FROM RADIO TOMOGRAPHY IMAGES

Nurul Amira Mohd Ramli, M. H. F. Rahiman, R. Abdul Rahim, L. Kamarudin, L. Mohamed, Ammar Zakaria, Mohammed Saeed Moqbel Abdullah
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Abstract

Inefficient storage of paddy and rice grains can lead to grain deterioration, resulting in post-harvest losses ranging from 10% to 30%. The quality of grains cannot be improved throughout the storage period. Therefore, following the mechanisation of agricultural industries, air dryers have been developed to control the crops’ moisture level by blowing ambient or heated air into the silo to improve the aeration and allow the grains to be preserved with minimal loss of quality until the appropriate time for managing and marketing processes. However, the conventional sampling method used to measure the moisture level is inefficient because it is very localised and only represents part of the moisture distribution inside the bulk grains. Additionally, incorporating advanced technologies can be a significant cost limitation for small-scale industries. Thus, to address the issue, this research study developed a radio tomographic imaging (RTI) system in a silo-scale prototype using 20 sensor nodes operating at 2.4 GHz to localise and monitor the moisture level constructively. The RTI system reconstructs the cross-sectional images across the rice silo by measuring radio frequency attenuation, in terms of received signal strength (RSS) quality, caused by the rice moisture phantoms within the wireless sensor network (WSN) area. A total of five phantoms’ profiles having a percentage of moisture content (MC) of 15%, 20% and 25% were reconstructed using four image reconstruction algorithms, Linear Back Projection (LBP), Filtered Back Projection (FBP), Newton’s One-step Error Reconstruction (NOSER) and Tikhonov Regularisation. 
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基于无线电断层扫描图像定量分析的水稻含水量测量方法
稻谷和大米的低效储存会导致谷物变质,造成 10%至 30%的收获后损失。谷物的质量在整个储存期间都无法得到改善。因此,随着农业机械化的发展,人们开发出了空气干燥机,通过向筒仓内吹入环境空气或加热空气来控制作物的湿度,从而改善通气状况,使谷物在质量损失最小的情况下保存到管理和销售流程的适当时间。然而,用于测量水分含量的传统取样方法效率很低,因为它非常局部,只能代表散装谷物内部水分分布的一部分。此外,采用先进技术对小规模工业的成本限制也很大。因此,为了解决这个问题,本研究在筒仓规模的原型中开发了一种无线电断层成像(RTI)系统,使用 20 个工作频率为 2.4 GHz 的传感器节点来定位和建设性地监测水分含量。RTI 系统通过测量无线传感器网络(WSN)区域内水稻湿度幻影造成的无线电频率衰减(以接收信号强度(RSS)质量表示),重建整个稻仓的横截面图像。利用四种图像重建算法,即线性背投影(LBP)、滤波背投影(FBP)、牛顿一步误差重建(NOSER)和提霍诺夫正则化,重建了含水率(MC)分别为 15%、20% 和 25% 的五个幻影剖面图。
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