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首页> 外文期刊>Energy research journal >Weed Detection over Between-Row of Sugarcane Fields Using Machine Vision with Shadow Robustness Technique for Variable Rate Herbicide Applicator
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Weed Detection over Between-Row of Sugarcane Fields Using Machine Vision with Shadow Robustness Technique for Variable Rate Herbicide Applicator

机译:机器视觉结合阴影稳健技术在甘蔗田间行间杂草检测

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Problem statement: Uniformly herbicide rate is used as a conventional practice in Thailand for controlling weeds in sugarcane fields. Since weeds usually grow in certain areas with non-uniformly distribution, uniform herbicide rate approach is not suitable and non-sustainable agricultural technique both in terms of economic an environmental aspect. To address these issues, Variable Herbicide Rate (VHR) was introduced. The VHR composes of two main components, which are weed monitoring and real-time spraying. Approach: This study investigated with a development of a fast and robust weed monitoring system for VHR using over between-row of sugarcane fields. The proposed method was designed to work under natural illumination condition. The near-ground images were captured using a typical web camera without any assistant light diffuser. The proposed weed monitoring is a machine vision based approach. The Non Green Subtraction (NGS) technique was proposed for soil background segmentation. Results: The proposed technique exploited variations among three triplets, which are red, green and blue under bright and dull lighting condition to achieve better background segmentation results. The non-background pixels were then classified into weeds and non-weeds using the Offset Excessive Green (OEG) technique. Conclusion: From our experimental results, the proposed method is robust under illumination variations such as in sunny and after raining day conditions. Weeds under different lighting conditions are reliably detects. The approach is less sensitive to chosen threshold value comparing to the OEG technique. The proposed method is very effective especially in spare weeds condition. It is fast, suitable for using in real-time application.
机译:问题陈述:在泰国,除草剂用量统一是一种常规做法,用于控制甘蔗田中的杂草。由于杂草通常在某些地区生长且分布不均匀,因此从经济和环境两个方面来看,统一的除草剂施用率方法既不适合也不宜采用不可持续的农业技术。为了解决这些问题,引入了可变除草剂比率(VHR)。 VHR由两个主要部分组成,即杂草监测和实时喷洒。方法:本研究调查了使用甘蔗田间行间快速,稳健的VHR杂草监测系统的发展。该方法旨在在自然光照条件下工作。使用不带任何辅助光漫射器的典型网络摄像头捕获近地面图像。拟议的杂草监测是一种基于机器视觉的方法。提出了非绿色减法(NGS)技术用于土壤背景分割。结果:所提出的技术利用了在明亮和暗淡的照明条件下红色,绿色和蓝色三个三元组之间的差异,以获得更好的背景分割结果。然后,使用偏移过度绿色(OEG)技术将非背景像素分为杂草和非杂草。结论:从我们的实验结果来看,该方法在光照变化下(例如在晴天和雨天之后)是鲁棒的。可以可靠地检测到在不同光照条件下的杂草。与OEG技术相比,该方法对所选阈值不太敏感。所提出的方法特别有效,特别是在多余的杂草条件下。它速度快,适合在实时应用中使用。

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