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Research on the high resolution remote sensing image classification algorithm based on improved neural network model

机译:基于改进神经网络模型的高分辨率遥感图像分类算法研究

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Mapping the spatiotemporal attributes of swampland which is wetland that is forested has essential criticalness to the investigation of swampland environment and numerous related widely varied vegetation. Manuscript discusses innovative strategy in view of incorporation of BP and GA, supposed IBPGA, is suggested for high determination plotting of swampland collection (HSA) from multispectral RSI. The IBGHSA algorithm is produced, including the wellness capacity and incorporation look technique. IBGHSA was assessed utilizing Landsat symbolism from the swampland of a state. Contrasted and conventional HSA techniques, IBGHSA reliably accomplished more precise determination mapping brings about terms of visual and quantitative assessments. In correlation with GAHSA, IBGHSA enhanced the exactness of HSA, as well as quickened the joining velocity of the algorithm. The affectability examination of IBGHSA in connection to standard hybrid rate, Back Propagation hybrid rate and rate of change was likewise completed to talk about the algorithm execution.
机译:绘制沼泽地的时空属性,沼泽地被森林被森林被植物,对沼泽地环境的调查以及许多相关广泛种类的植被来说具有重要效力。稿件鉴于GP和GA的纳入,所谓的IBPGA讨论了创新策略,建议从多光谱RSI的SWAMPLAND收集(HSA)的高决定绘制。生产IBGHSA算法,包括健康能力和融合技术。利用州的SWAMPLAND评估IBGHSA的评估。对比和传统的HSA技术,IBGHSA可靠地完成了更精确的确定映射,带来了视觉和定量评估的方面。在与Gahsa相关的情况下,IBGHSA增强了HSA的确切性,以及加快算法的连接速度。同样完成了对标准混合速率,回到传播混合速率和变化率的IBGHSA的可变性性检查是为了讨论算法的执行。

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