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A technique for optimizing the placement of oceanographic sensors with example case studies for the New York Harbor region.

机译:一种针对纽约港区域的案例研究优化海洋传感器位置的技术。

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摘要

The work of this thesis presents a new technique for optimal placement of oceanographic sensors in a small scale, highly variable salinity field. The developed method addresses two fundamental objectives: (i) the accurate and efficient estimation of a synoptic salinity field from a limited number of irregularly spaced measurements, and (ii) the design of an optimization strategy to optimally place a limited number of sensors to produce an accurate estimate of the salinity field.;Objective analysis techniques were analyzed to determine an efficient and accurate method to estimate a complex salinity field in the New York Harbor Estuary from a limited number of sensor measurements. To design an efficient optimization strategy, the performance of various nonlinear optimization techniques to select an optimal set of sensor locations was evaluated. Optimization was carried out by minimizing the cost function defined as the RMS error between estimated salinity fields and ground truth salinity fields derived from a hydrodynamic model. A final optimization method was designed based on the results from initial simulation experiments. Accurate estimates of salinity fields at 1 and 12 hour periods at different depths were constructed, and a heuristic approach for extended time sensor deployments was defined. The final optimization method was selected by comparing it with a series of ground truth simulations. It was subsequently tested by trials in a real-ocean environment (non- simulated), in which a small number of sensor locations were used to develop accurate salinity maps for a complex region of the lower Hudson River. The capability of the optimization method was extended by development of a mobile version to optimally place a set of sensors for accurate estimates of a data field. The mobile version was developed for quick implementation in an unknown environment, with no hydrodynamic model data. A second field trial in a low variability environment in Key West, Florida was performed to test the mobile optimization technique. Results, including tests of accuracy, show that the new technique can select optimal sensor locations for a limited number of sensors and produce highly accurate salinity fields in different environments.
机译:本文的工作提出了一种在小范围,高度变化的盐度场中优化海洋传感器位置的新技术。所开发的方法解决了两个基本目标:(i)从有限数量的不规则间隔测量中准确而有效地估计天气盐度场,以及(ii)设计优化策略以最佳地放置有限数量的传感器来生产分析了客观的分析技术,以确定从有限数量的传感器测量值中估算纽约港河口复杂盐度场的有效而准确的方法。为了设计有效的优化策略,评估了各种非线性优化技术以选择一组最佳传感器位置的性能。通过最小化成本函数来进行优化,该成本函数定义为从水动力模型得出的估算盐度场与地面真实盐度场之间的RMS误差。根据初始模拟实验的结果,设计了最终的优化方法。构造了在不同深度的1和12个小时的盐度场的准确估计值,并定义了一种启发式方法来延长传感器的部署时间。通过与一系列地面真实情况仿真进行比较,选择了最终的优化方法。随后在真实海洋环境(非模拟)中通过试验对其进行了测试,在该环境中,少量传感器位置用于为哈德逊河下游的复杂区域绘制准确的盐度图。通过开发移动版本扩展了优化方法的功能,以最佳地放置一组传感器来精确估计数据字段。移动版本是为在未知环境中快速实施而开发的,没有流体动力学模型数据。在佛罗里达州基韦斯特的低变异性环境中进行了第二次现场试验,以测试移动优化技术。结果(包括准确性测试)表明,新技术可以为有限数量的传感器选择最佳传感器位置,并在不同环境中产生高度精确的盐度场。

著录项

  • 作者

    Rogowski, Peter.;

  • 作者单位

    Stevens Institute of Technology.;

  • 授予单位 Stevens Institute of Technology.;
  • 学科 Physical Oceanography.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 海洋物理学;
  • 关键词

  • 入库时间 2022-08-17 11:38:29

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