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Diversity-accuracy assessment of multiple classifier systems for the land cover classification of the Khumbu region in the Himalayas
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作者 Charisse Camacho HANSON Lars BRABYN sher bahadur gurung 《Journal of Mountain Science》 SCIE CSCD 2022年第2期365-387,共23页
Land cover classification of mountainous environments continues to be a challenging remote sensing problem,owing to landscape complexities exhibited by the region.This study explored a multiple classifier system(MCS)a... Land cover classification of mountainous environments continues to be a challenging remote sensing problem,owing to landscape complexities exhibited by the region.This study explored a multiple classifier system(MCS)approach to the classification of mountain land cover for the Khumbu region in the Himalayas using Sentinel-2 images and a cloud-based model framework.The relationship between classification accuracy and MCS diversity was investigated,and the effects of different diversification and combination methods on MCS classification performance were comparatively assessed for this environment.We present ten MCS models that implement a homogeneous ensemble approach,using the high performing Random Forest(RF)algorithm as the selected classifier.The base classifiers of each MCS model were developed using different combinations of three diversity techniques:(1)distinct training sets,(2)Mean Decrease Accuracy feature selection,and(3)‘One-vs-All’problem reduction.The base classifier predictions of each RFMCS model were combined using:(1)majority vote,(2)weighted argmax,and(3)a meta RF classifier.All MCS models reported higher classification accuracies than the benchmark classifier(overall accuracy with 95% confidence interval:87.33%±0.97%),with the highest performing model reporting an overall accuracy(±95% confidence interval)of 90.95%±0.84%.Our key findings include:(1)MCS is effective in mountainous environments prone to noise from landscape complexities,(2)problem reduction is indicated as a stronger method over feature selection in improving the diversity of the MCS,(3)although the MCS diversity and accuracy have a positive correlation,our results suggest this is a weak relationship for mountainous classifications,and(4)the selected diversity methods improve the discriminability of MCS against vegetation and forest classes in mountainous land cover classifications and exhibit a cumulative effect on MCS diversity for this context. 展开更多
关键词 Multiple classifier system Ensemble diversity Google Earth Engine Land Cover Classification HIMALAYAS Random Forest
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气候变化背景下青檀的潜在地理分布 被引量:1
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作者 张平平 李艳红 +4 位作者 朱文博 朱连奇 BALMUKUNDA Regmi NAVEED Ahmed sher bahadur gurung 《河南大学学报(自然科学版)》 CAS 2023年第5期537-550,共14页
气候是植物物种地理分布的决定因素.通过建模预测濒危物种的潜在适生区已成为评估生境适宜性的有用工具.青檀(Pteroceltis tatarinowii Maxim.)是第三纪古热带植物区系的孓遗植物,具有十分重要的经济价值和生态价值,通过对青檀的潜在地... 气候是植物物种地理分布的决定因素.通过建模预测濒危物种的潜在适生区已成为评估生境适宜性的有用工具.青檀(Pteroceltis tatarinowii Maxim.)是第三纪古热带植物区系的孓遗植物,具有十分重要的经济价值和生态价值,通过对青檀的潜在地理分布预测可以更好地为青檀的培育、管理和可持续利用提供科学依据.利用MaxEnt模型模拟当前(1970-2000年),预测未来2050s(2041-2060年)和2070s(2061-2080年)在3种不同排放浓度(RCP2.6、RCP4.5、RCP8.5)情景下青檀在中国的潜在地理分布,并对不同气候带、纬度和海拔下青檀适生区空间分布格局及其生境破碎化程度、质心移动轨迹进行分析.结果发现:(1)年降雨量(Bio12)是影响青檀分布的决定因子,最冷月的最低气温(Bio6)是仅次于年降雨量的次要因子;(2)当前青檀潜在适宜分布区主要分布在我国水热条件较为适宜的亚热带地区;(3)未来不同气候情景下青檀潜在适生区面积整体上呈减少趋势,其生境破碎化程度逐渐加剧;(4)青檀的潜在适生区的质心向西北方向偏移. 展开更多
关键词 青檀 MAXENT 气候变化 潜在适生区
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