用简单遗传模糊系统评价资料质量对日本稻(Oryzias latipes)生境偏好的影响

S. Fukuda
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引用次数: 7

摘要

本研究比较了模糊生境偏好模型(FHPM)对日本米卡鱼(Oryzias latipes)的生境偏好曲线(HPCs)和预测能力,以阐明对数转换鱼类种群密度(LOG)和存在-缺失(P/A)两种不同类型数据的影响。结果因使用的数据集和数据类型而异,其中基于log的模型在校准方面更好,而基于P/的模型在验证方面更好。每种类型的数据都有优点和缺点。需要进一步的研究来改进目前的模式,以便在使用LOG或P/A数据的生境评价中得出同样的结论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of data quality on habitat preference evaluation for Japanese medaka (Oryzias latipes) using a simple genetic fuzzy system
This study compared the habitat preference curves (HPCs) and prediction ability of fuzzy habitat preference models (FHPM) for Japanese medaka (Oryzias latipes) so as to clarify the effect of two different types of data: log-transformed fish population density (LOG) and presence-absence (P/A) data. The results differed by the data sets used and types of data, in which LOG-based models were found to be better in calibration, while P/A-based models were better in validation. Each type of data has merits and demerits. Further studies would be needed to improve present models so that same conclusion could be derived in habitat evaluation using either LOG or P/A data.
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