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首页> 外文期刊>Biological Conservation >Error propagation associated with benefits transfer-based mapping of ecosystem services.
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Error propagation associated with benefits transfer-based mapping of ecosystem services.

机译:与基于收益转移的生态系统服务绘图有关的错误传播。

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An increasing number of studies are taking the important first step in global efforts to conserve key ecosystem services by mapping their spatial distributions. However, a lack of primary data for most services in most places has largely forced such mapping exercises to be based on proxies. The common way of producing these proxies is through benefits transfer-based mapping, in which estimates of the values of services are obtained from a small region for particular land cover types, and then extrapolated to a larger area for these same types. However, the errors that may result from such extrapolations are poorly understood. Here, we separate the generalization errors associated with benefits transfer mapping into three constituent components - uniformity, sampling, and regionalization error - and evaluate their effects using primary data for four ecosystem services in England. Variation in ecosystem services within a particular land cover type (uniformity error) alone led to a poor fit to primary data for most services; sampling effects (sampling error) and extrapolating from a small region to a larger area (regionalization error) led to substantial, but highly variable, additional reductions in the fit to primary data. We also show that combining multiple ecosystem services into a single layer is likely to be even more problematic as it contains the errors in each of the constituent layers. These errors are sufficiently large to undermine decisions that might be based on such extrapolated maps. Greatly improved mapping of the actual distributions of ecosystem services is therefore needed to achieve the goal of conserving these vital assets.
机译:越来越多的研究正在迈出重要的第一步,即通过绘制空间分布图来保护关键生态系统服务的全球努力。但是,在大多数地方,大多数服务缺乏主要数据,这在很大程度上迫使此类映射练习基于代理。产生这些代理的常见方式是通过基于利益转移的映射,在该映射中,从小区域获取特定土地覆盖类型的服务价值估算,然后将其推算到这些相同类型的较大区域。但是,这种外推可能导致的错误了解得很少。在这里,我们将与收益转移映射相关的泛化误差分为三个组成部分-均匀性,抽样和区域化误差-并使用英格兰四个生态系统服务的原始数据评估其影响。仅在特定土地覆盖类型内的生态系统服务的变化(均匀度误差)就导致大多数服务无法很好地适应原始数据;采样效果(采样误差)和从小区域外推到较大区域(区域化误差)会导致对原始数据的拟合显着降低,但变化很大。我们还表明,将多个生态系统服务组合到单个层中可能会遇到更大的问题,因为它包含每个组成层中的错误。这些误差很大,足以破坏可能基于此类推断映射的决策。因此,需要大大改善对生态系统服务实际分布的绘图,以实现保护这些重要资产的目标。

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