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An area preserving method for improved categorical raster resampling

机译:改进分类栅格重采样的区域保存方法

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摘要

The raster data structure stores categorical and continuous field data for spatial analysis, environmental modeling, and resource planning. With rapidly advancing sensor networks, the spatial resolution of data is increasing, sometimes outpacing the optimum resolution for applications. Overcoming granularity differences between raw and "analysis ready" data often requires upscaling source data to a desired target map with the goal of maintaining the structure and spatial variance of the higher resolution data. Common strategies for resampling categorical data (nearest neighbor and majority rule) force users to choose between preserving map structure and map variety. A new method is presented here that integrates global and zonal class proportions to guide the optimal allocation of classified cells. This technique provides more representative maps with respect to variety and structure, better retains minority classes, and produces higher (or equal) levels of user's and producer's accuracy than the traditional methods. An R-based implementation is provided that has serviceable run times, and the performance of the algorithm is shown to be scalable, proving the tool widely usable.
机译:光栅数据结构存储用于空间分析,环境建模和资源规划的分类和连续现场数据。通过快速推进的传感器网络,数据的空间分辨率正在增加,有时会超出应用的最佳分辨率。克服原始和“分析就绪”数据之间的粒度差异通常需要升高源数据到所需的目标映射,其目的是保持更高分辨率数据的结构和空间方差。重新采样分类数据(最近邻居和多数规则)强制用户选择保留地图结构和映射品种的常见策略。此处提出了一种新方法,其集成了全局和区域类别比例以指导分类细胞的最佳分配。该技术提供了更多的代表性地图,涉及品种和结构,更好地保留少数群体类,并产生比传统方法更高(或等于)用户和生产者的准确性。提供了基于R基的实现,其具有可维修的运行时间,并且算法的性能显示可扩展,证明该工具可广泛使用。

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