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A MODIS-based estimation of chlorophyll a concentration using ANN model and in-situ measurements in the southern Caspian Sea

机译:基于MODIS的南里海南部地区基于ADIS模型和原位测量的叶绿素浓度估算

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摘要

Chlorophyll-a data of the MODIS sensor with in-situ chlorophyll measurements from the southern Caspian Sea (SCS) is compared in the present study. Analysis showed an overestimation of chlorophyll-a concentration by MODIS in the area. Results also indicated a root mean square (RMS) log error of 39.4%, for 53 coincident data points. An artificial neural network (ANN) with radial basis function was applied to the in-situ measurements and satellite imagery. It included physical-chemical properties of water as ancillary independent variables in the ANN procedure that enhanced the predictive capability of the model. Evaluation of the predictive capability of ANN approach was satisfying (RMS log error 18.9%). Results showed retrieving chlorophyll-a concentration in the SCS from satellite is possible and will be improved through application of ANN and explanatory environmental parameters.
机译:在本研究中,对来自南部里海(SCS)的具有原位叶绿素测量值的MODIS传感器的叶绿素a数据进行了比较。分析表明,该地区的MODIS高估了叶绿素-a的浓度。结果还表明,对于53个重合的数据点,均方根(RMS)对数误差为39.4%。具有径向基函数的人工神经网络(ANN)被应用于现场测量和卫星图像。它在ANN程序中将水的物理化学特性作为辅助自变量纳入其中,从而增强了模型的预测能力。对ANN方法的预测能力的评估令人满意(RMS对数误差为18.9%)。结果表明,从卫星中检索SCS中叶绿素a的浓度是可能的,并且将通过应用ANN和解释性环境参数来提高。

著录项

  • 来源
    《Indian Journal of Marine Sciences》 |2013年第7期|924-928|共5页
  • 作者单位

    Gorgan University of Agricultural Sciences and Natural Resources, P. O. Box: 386, Gorgan, Iran;

    Gorgan University of Agricultural Sciences and Natural Resources, P. O. Box: 386, Gorgan, Iran;

    Gorgan University of Agricultural Sciences and Natural Resources, P. O. Box: 386, Gorgan, Iran;

    Caspian Sea Ecology Research Centre (EACS), P. O. Box: 961, Sari, Iran;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    MODIS; Chlorophyll-a; ANNs; Southern Caspian Sea;

    机译:MODIS;叶绿素a;人工神经网络南里海;

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