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The problem of scale in predicting biological responses to climate

机译:预测气候生物反应的规模问题

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Many analyses of biological responses to climate rely on gridded climate data derived from weather stations, which differ from the conditions experienced by organisms in at least two respects. First, the microclimate recorded by a weather station is often quite different to that near the ground surface, where many organisms live. Second, the temporal and spatial resolutions of gridded climate datasets derived from weather stations are often too coarse to capture the conditions experienced by organisms. Temporally and spatially coarse data have clear benefits in terms of reduced model size and complexity, but here we argue that coarse-grained data introduce errors that, in biological studies, are too often ignored. However, in contrast to common perception, these errors are not necessarily caused directly by a spatial mismatch between the size of organisms and the scale at which climate data are collected. Rather, errors and biases are primarily due to (a) systematic discrepancies between the climate used in analysis and that experienced by organisms under study; and (b) the non-linearity of most biological responses in combination with differences in climate variance between locations and time periods for which models are fitted and those for which projections are made. We discuss when exactly problems of scale can be expected to arise and highlight the potential to circumvent these by spatially and temporally down-scaling climate. We also suggest ways in which adjustments to deal with issues of scale could be made without the need to run high-resolution models over wide extents.
机译:许多对气候的生物反应分析依赖于源自气象站的包装的气候数据,这与生物体在至少两个方面所经历的条件不同。首先,由气象站记录的小微锁通常与地面附近的情况往往是完全不同的,其中许多生物都存在。其次,源自气象站的网格和气候数据集的时间和空间分辨率往往太粗糙,无法捕获生物体所经历的条件。在时间上和空间粗糙的数据在降低模型规模和复杂性方面具有明显的益处,但在这里,我们认为粗粒化数据引入错误,即在生物学研究中经常被忽视。然而,与常见感知相反,这些误差不一定是由生物体尺寸与收集气候数据的规模之间的空间失配直接引起的。相反,误差和偏差主要是由于(a)分析中使用的气候之间的系统差异,并且在研究中的生物体经历; (b)大多数生物响应的非线性结合地点与安装型号的地点与时间段之间的气候差异差异,以及制造投影的时间段。我们讨论究竟可以预期规模的问题,并且突出在空间和时间下脱模气候下突出这些潜力。我们还建议在没有必要在广泛的范围内运行高分辨率模型的情况下对处理规模问题进行处理的方式。

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