中山大学生命科学学院∥广州市城市景观生态演变重点实验室,广东,广州,510275
纸质出版日期:2016,
网络出版日期:2016-10-25,
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李淑圆, 周静妍, 余世孝. 基于高分辨率遥感影像的广州城市土地覆被分类系统[J]. 中山大学学报(自然科学版)(中英文), 2016,55(5):82-88.
LI Shuyuan, ZHOU Jingyan, YU Shixiao. Land cover classification system in the city of Guangzhou based on high-resolution remote sensor data[J]. Acta Scientiarum Naturalium Universitatis SunYatseni, 2016,55(5):82-88.
李淑圆, 周静妍, 余世孝. 基于高分辨率遥感影像的广州城市土地覆被分类系统[J]. 中山大学学报(自然科学版)(中英文), 2016,55(5):82-88. DOI:
LI Shuyuan, ZHOU Jingyan, YU Shixiao. Land cover classification system in the city of Guangzhou based on high-resolution remote sensor data[J]. Acta Scientiarum Naturalium Universitatis SunYatseni, 2016,55(5):82-88. DOI:
土地覆被分类系统是城市景观研究的基础。近年来对地观测技术发展迅速,遥感影像的质量与分辨率有了极大的提升,为土地覆被的研究提供了强大的基础数据,而科学合理的分类系统则是土地覆被研究的前提。根据不同的研究目的和遥感数据的特点,各国学者先后提出构建不同层次不同类型的土地覆被或土地利用分类系统,但迄今仍没有一个为国际学术界广泛认可和具有普适性的分类系统。本文基于多光谱与全色波段融合后的2 m分辨率高分一号影像数据,依据地物自然属性、形态及光谱特征,提出了一个适用于城市区域的土地覆被分类系统,并以广州市为例图示了分类结果。该分类系统着重于城市生态系统的特点,为非重叠的层级体系,第一、二层级有固定的类别与依据,第三层级为开放性层级。其中一级类别划分为建成区、植被、水体和裸地4类,二级类别分别划分为商住区、工业区、道路;林地、灌从、草地、农田;河流、库塘等9类。分类结果包含二级类别的全部土地覆被类型,总体精度达到90.1%,符合技术要求,具有推广意义。
Land cover classification system is the basis for urban landscape studies. In recent years
the rapid development of earth observation technique provides the researches of land cover with a great amount of remote sensing images with high resolution. Many scientists have established various types of systems base on the distinguishing features of different remotely sensed data
but none of which can be used pervasively or be widely recognized in the international academia. In this paper
we proposed a classification system based on the sharpened GF-1 data with 2 meter resolution and fit for the urban area. We took Guangzhou city as an example to illustrate the application of this classification system. In this classification system
we focus on the characteristics of urban ecosystem and make it a hierarchy system without overlapping within the classes. The first two layers of the system are solid and classified with certain scientific basis
and the third layer is open for different uses. We divided the first layer into 4 parts
which include: buildup area
vegetation
water and bare land. The second layer combined with residential and commercial area
industrial district
road; forest
bush
grass
paddy field; river
pond etc. The classification results reach the precision of 90.1% and cover all parts of layer two
which is technically practicable.
城市土地覆被分类系统高分一号景观分类
urban land coverclassification systemGF-1landscape classification
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