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Classification of forest change by integration of remote sensing data with Neural Network techniques

机译:通过将遥感数据与神经网络技术集成来对森林变化进行分类

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摘要

Forest is a major resource and play vital role in maintaining the ecological balance and environmental setup. Over utilization of forest resources has resulted in the depletion. The changes in forest cover (encroachment) are the matter of global concern due to its ability of promoting role in carbon cycle. This paper will focus into the application of artificial intelligence used in remote sensing such as Neural Network worldwide for assessing and monitoring the changes in forest cover (encroachment). However, advances in the spectral resolutions of sensors are available for ecologist which mainly feasible, to study the certain aspects of biological diversity through direct remote sensing. Global and regional scale of multispectral remote sensed data such as QuickBird, will be used in this study for monitoring the changes in forest cover (encroachment) over the last few decades. Monitoring the changes in forest cover at global and regional scale can contribute to reducing the uncertainties in estimates of emissions of green house gases from forest encroachment. Remote sensing coupled with one of artificial intelligence techniques will use as a potential tool, for classification of the forest encroachment at regional as well as global scale in developing countries such as Malaysia; mainly this research will assist many sectors to monitoring and identify forest encroachment.
机译:森林是一种主要资源,在维持生态平衡和环境设置方面起着至关重要的作用。森林资源过度利用导致资源枯竭。森林覆盖率的变化(侵占)由于具有促进碳循环作用的能力而成为全球关注的问题。本文将重点介绍人工智能技术在遥感中的应用,例如全球神经网络,用于评估和监测森林覆盖率(侵占)的变化。然而,传感器的光谱分辨率的进步对于生态学家来说是主要可行的,这主要是通过直接遥感研究生物多样性的某些方面。本研究将使用诸如QuickBird之类的多光谱遥感数据的全球和区域规模来监测过去几十年的森林覆盖率(侵蚀)变化。在全球和区域范围内监测森林覆盖率的变化可有助于减少森林侵占造成的温室气体排放估算的不确定性。遥感与一种人工智能技术相结合,将作为一种潜在工具,用于对马来西亚等发展中国家的区域和全球规模的森林入侵进行分类;主要是这项研究将协助许多部门监测和识别森林侵占。

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