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An objective image analysis method for estimation of canopy attributes from digital cover photography

机译:从数字封面摄影估计顶篷属性的客观图像分析方法

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摘要

Digital cover photography (DCP) is an increasingly popular method to estimate canopy attributes of forest canopies. Compared with other canopy photographic methods, DCP is fast, simple, and less sensitive to image acquisition and processing. However, the image processing steps used by default in DCP have a large substantial subjective component, particularly regarding the separation of canopy gaps into large gaps and small gaps. In this study, we proposed an objective procedure to analyse DCP based on the statistical distribution of gaps occurring in any image. The new method was tested in 11 deciduous forest stands in central Italy, with different tree composition, stand density, and structure, which is representative of the natural variation of these forest types. Results indicated that the new method removed the subjectivity of manual and semi-automated gap size classifications performed so far in cover photography. A comparison with direct LAI measurements demonstrated that the new method outperformed the previous approaches and increased the precision of LAI estimates. Results have important implications in forestry, because the simplicity of the method allowed objective, reliable, and highly reproducible estimates of canopy attributes, which are largely suitable in forest monitoring, where measures are routinely repeated. In addition, the use of a restricted field of view enables implementation of this photographic method in many devices, including smartphones, downward-looking cameras, and unmanned aerial vehicles.
机译:数字覆盖摄影(DCP)是估算森林冠层属性的一种越来越流行的方法。与其他冠层摄影方法相比,DCP方法快速、简单,对图像采集和处理的敏感性较低。然而,DCP中默认使用的图像处理步骤有很大的主观成分,尤其是关于将树冠间隙分为大间隙和小间隙。在这项研究中,我们提出了一个客观的程序来分析DCP的基础上的统计分布的差距发生在任何图像。新方法在意大利中部的11个落叶林中进行了试验,这些林分具有不同的树木组成、林分密度和结构,代表了这些森林类型的自然变异。结果表明,新方法消除了迄今为止在封面摄影中进行的手动和半自动间隙大小分类的主观性。与直接LAI测量的比较表明,新方法优于以前的方法,并提高了LAI估计的精度。研究结果对林业具有重要意义,因为该方法的简单性允许对冠层属性进行客观、可靠和高度可重复的估计,这在很大程度上适用于森林监测,因为在森林监测中,测量通常是重复的。此外,使用受限视野可以在许多设备上实现这种摄影方法,包括智能手机、俯视摄像头和无人机。

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