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Smartphone-Based Distributed Data Collection Enables Rapid Assessment of Shorebird Habitat Suitability

机译:基于智能手机的分布式数据收集可快速评估水鸟栖息地的适宜性

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摘要

Understanding and managing dynamic coastal landscapes for beach-dependent species requires biological and geological data across the range of relevant environments and habitats. It is difficult to acquire such information; data often have limited focus due to resource constraints, are collected by non-specialists, or lack observational uniformity. We developed an open-source smartphone application called iPlover that addresses these difficulties in collecting biogeomorphic information at piping plover (Charadrius melodus) nest sites on coastal beaches. This paper describes iPlover development and evaluates data quality and utility following two years of collection (n = 1799 data points over 1500 km of coast between Maine and North Carolina, USA). We found strong agreement between field user and expert assessments and high model skill when data were used for habitat suitability prediction. Methods used here to develop and deploy a distributed data collection system have broad applicability to interdisciplinary environmental monitoring and modeling.
机译:要了解和管理依赖海滩的物种的动态沿海景观,就需要跨相关环境和栖息地范围的生物学和地质数据。很难获得这种信息;由于资源的限制,数据通常只受到有限的关注,是由非专家收集的,或者缺乏观测的统一性。我们开发了一个名为iPlover的开源智能手机应用程序,该应用程序解决了在沿海海滩上的管道pl(Charadrius melodus)巢点收集生物地貌信息时遇到的这些困难。本文介绍了iPlover的开发,并评估了收集了两年后的数据质量和实用性(n = 1799个数据点,位于缅因州和美国北卡罗来纳州之间1500公里的海岸上)。当将数据用于栖息地适宜性预测时,我们发现现场用户与专家评估以及高水平的模型技能之间有着强烈的共识。此处用于开发和部署分布式数据收集系统的方法对跨学科的环境监视和建模具有广泛的适用性。

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