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利用遗传编程预测藻类水华。

Prediction of algal blooms using genetic programming.

机构信息

Department of Civil Engineering, Kalasalingam University, Krishnankoil, Tamil Nadu, India.

出版信息

Mar Pollut Bull. 2010 Oct;60(10):1849-55. doi: 10.1016/j.marpolbul.2010.05.020. Epub 2010 Jun 26.

Abstract

In this study, an attempt was made to mathematically model and predict algal blooms in Tolo Harbor (Hong Kong) using genetic programming (GP). Chlorophyll plays a vital role in blooms and was used in this model as a measure of algal bloom biomass, and eight other variables were used as input for its prediction. It has been observed that GP evolves multiple models with almost the same values of errors-of-measure. Previous studies on GP modeling have primarily focused on comparing GP results with actual values. In contrast, in this study, the main aim was to propose a systematic procedure for identifying the most appropriate GP model from a list of feasible models (with similar error-of-measure) using a physical understanding of the process aided by data interpretation. Evaluation of the GP-evolved equations shows that they correctly identify the ecologically significant variables. Analysis of the final GP-evolved mathematical model indicates that, of the eight variables assumed to affect algal blooms, the most significant effects are due to chlorophyll, total inorganic nitrogen and dissolved oxygen for a 1-week prediction. For longer lead predictions (biweekly), secchi-disc depth and temperature appear to be significant variables, in addition to chlorophyll.

摘要

本研究尝试利用遗传编程(GP)对香港吐露港的水华现象进行数学建模和预测。叶绿素在水华现象中起着至关重要的作用,因此本模型将叶绿素作为藻类生物量的衡量标准,同时还使用了其他八个变量作为预测输入。研究发现,GP 可以生成多个具有几乎相同误差值的模型。之前关于 GP 建模的研究主要集中在比较 GP 结果与实际值上。相比之下,本研究的主要目的是提出一种系统的方法,以便根据对过程的物理理解(辅以数据解释),从一系列可行模型(误差值相似)中选择最合适的 GP 模型。对 GP 进化方程的评估表明,它们可以正确识别具有生态意义的变量。对最终的 GP 进化数学模型的分析表明,在所假设的影响藻类水华的八个变量中,对于 1 周的短期预测,叶绿素、总无机氮和溶解氧的影响最大。对于更长时间的预测(两周),除了叶绿素之外,透明度盘深度和温度似乎也是重要的变量。

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