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首页> 外文期刊>Geocarto international >Geospatial technologies for detection and monitoring of Ganoderma basal stem rot infection in oil palm plantations: a review on sensors and techniques
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Geospatial technologies for detection and monitoring of Ganoderma basal stem rot infection in oil palm plantations: a review on sensors and techniques

机译:油棕榈种植园Ganoderma基茎腐腐感染检测和监测地理空间技术:传感器与技术综述

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摘要

Basal stem rot (BSR) is a type of disease that induces oil palm death within a short span of the appearance of symptoms. BSR early detection would facilitate to curb this by adopting appropriate strategies. In this paper, a systematic review was undertaken to demonstrate the need for authentic health condition monitoring of oil palm plantations. The currently used remotely sensed (RS) techniques for BSR detection and classification were reviewed. Several kinds of RS techniques were exerted for BSR detection and its severity classification up to four levels. It was identified that applied geospatial technologies, including multispectral and hyperspectral remote sensing, terrestrial laser scanning, spatial maps, tomography images, intelligent e-nose and Microfocus X-ray fluorescence, were capable of distinguishing infected oil palms from the non-infected ones. Furthermore, some of them are able to categorize BSR severity level up to four levels as well as of its early detection.
机译:基础茎腐(BSR)是一种疾病,可在短期内诱导症状的短跨度。 BSR早期检测将有助于通过采用适当的策略来抑制这一点。 本文采取了系统审查,以证明对油棕种植园的真实健康状况监测的需求。 综述了目前使用的远程感测(RS)用于BSR检测和分类的技术。 对BSR检测进行了几种RS技术,其严重性分类可达四个级别。 它被确定为应用地理空间技术,包括多光谱和高光谱遥感,地面激光扫描,空间地图,断层摄影图像,智能电子鼻子和微焦科X射线荧光,能够将受感染的油棕榈树区分开。 此外,其中一些能够将BSR严重程度级别分类为4级以及早期检测。

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