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Tree species identification on large-scale aerial photographs in a tropical rain forest, French Guiana--application for management and conservation

机译:法属圭亚那热带雨林大规模航空照片上的树种识别-管理和保护应用

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Management and conservation planning of any ecosystem requires knowledge of species composition. This is a real challenge in tropical rain forests that are characterised by very high species richness and canopy access limitations. The possibility of approaching trees from remote sensing on large-scale aerial photographs, takes on its full significance in this context. Results of tree species identification by photo-interpretation in a French Guianan forest canopy are discussed, as well as an overviewof the part of the forest accessible from the photographs. Two sets of aerial photographs were used. One set (1:3700 colour slides) covers 15 ha of primary forest, divided into a training set (TS, 5 ha) and a validation set (VS 1: 10 ha). Another validation set, taken in different conditions of acquisition, scale and season, is available for an adjacent area (VS 2: 6.5 ha). Aerial photographs captured a quarter of the tree community (dbh = 10 cm) on average, and about 45% of the SGS (Species or Groupof Species) on the training set. The crown appearance of 12 major canopy SGS, including commercial species and species of ecological interest, had been described in a previous work on the same training set. Following these descriptions, two photo-interpreters separately identified 309 tree crowns overall on VS 1, with a good agreement in their respective judgements. After their interpretations were checked in the field, the overall average identification success was high (87%) but the results varied according to the SGS. The results on VS 2 showed that some species displayed major seasonal and scale variations and were hardly recognized, whereas some others could be identified without modifying the learning process. The results are encouraging and thiswork will be extended as the identification of tropical rain forest trees from remote sensing has many applications, ranging from fundamental ecological knowledge of canopy species to the management and conservation of such highly diverse and hardly inventoried ecosystems.
机译:任何生态系统的管理和保护计划都需要了解物种组成。在以物种丰富度高和树冠可进入性限制为特征的热带雨林中,这是一个真正的挑战。在这种情况下,从大型航空照片上通过遥感接近树木的可能性具有其全部意义。讨论了在法国的圭亚那森林冠层中通过照片解释进行树木物种识别的结果,并概述了从这些照片可进入的森林部分。使用了两组航空照片。一套(1:3700彩色幻灯片)覆盖了15公顷的原始森林,分为一个培训集(TS,5公顷)和一个验证集(VS 1:10公顷)。在相邻区域(VS 2:6.5公顷)可以使用在不同采集,规模和季节的不同条件下进行的另一套验证集。航拍照片平均捕获了四分之一的树木群落(dbh> = 10厘米),约占训练集上SGS(物种或物种组)的45%。在以前的同一培训中,已经描述了12个主要树冠SGS的树冠外观,包括商业树种和具有生态意义的树种。根据这些描述,两个照片解释器分别在VS 1上总共确定了309棵树冠,在各自的判断中有很好的一致性。在现场检查了他们的解释后,总体平均识别成功率很高(87%),但结果根据SGS有所不同。 VS 2的结果表明,某些物种表现出主要的季节和规模变化,几乎不被识别,而其他物种则可以在不改变学习过程的情况下被识别出来。结果令人鼓舞,这项工作将得到扩展,因为从遥感中识别热带雨林树木有许多应用,从冠层物种的基本生态知识到此类高度多样化且几乎没有清单的生态系统的管理和保护。

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