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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Assessing the utility of airborne hyperspectral and LiDAR data for species distribution mapping in the coastal Pacific Northwest, Canada
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Assessing the utility of airborne hyperspectral and LiDAR data for species distribution mapping in the coastal Pacific Northwest, Canada

机译:评估机载高光谱和LiDAR数据对加拿大西北太平洋沿海地区物种分布图的实用性

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To effectively manage forested ecosystems an accurate characterization of species distribution is required. In this study we assess the utility of hyperspectral Airborne Imaging Spectrometer for Applications (AISA) imagery and small footprint discrete return Light Detection and Ranging (LiDAR) data for mapping 11 tree species in and around the Gulf Islands National Park Reserve, in coastal South-western Canada. Using hyperspectral imagery yielded producer's and user's accuracies for most species ranging from > 52-95.4 and > 63-87.8%, respectively. For species dominated by definable growth stages, pixel-level fusion of hyperspectral imagery with LiDAR-derived height and volumetric canopy profile data increased both producer's (+. 5.1-11.6%) and user's (+. 8.4-18.8%) accuracies. McNemar's tests confirmed that improvements in overall accuracies associated with the inclusion of LiDAR-derived structural information were statistically significant (p<0.05). This methodology establishes a specific framework for mapping key species with greater detail and accuracy then is possible using conventional approaches (i.e., aerial photograph interpretation), or either technology on its own. Furthermore, in the study area, acquisition and processing costs were lower than a conventional aerial photograph interpretation campaign, making hyperspectral/LiDAR fusion a viable replacement technology.
机译:为了有效管理森林生态系统,需要准确描述物种分布。在这项研究中,我们评估了高光谱机载成像光谱仪(AISA)图像和小足迹离散返回光检测和测距(LiDAR)数据的实用性,用于绘制南海岸沿岸墨西哥湾国家公园保护区及其周围的11种树种加拿大西部。使用高光谱图像得出大多数物种的生产者和使用者的准确度分别为> 52-95.4和> 63-87.8%。对于以可确定的生长阶段为主的物种,高光谱图像与LiDAR衍生的高度和体积冠层轮廓数据的像素级融合提高了生产者(+。5.1-11.6%)和用户(+。8.4-18.8%)的准确性。 McNemar的测试证实,与包含LiDAR衍生的结构信息相关的总体准确度的改善具有统计学意义(p <0.05)。该方法论建立了用于更详细和准确地绘制关键物种的特定框架,然后可以使用常规方法(即航空照片解释)或单独使用任何一种技术。此外,在研究领域,采集和处理成本低于传统的航空摄影解释运动,这使得高光谱/ LiDAR融合成为可行的替代技术。

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