论文标题

时空方法用于估计对热带气旋的地下海洋热反应

Spatio-temporal methods for estimating subsurface ocean thermal response to tropical cyclones

论文作者

Hu, Addison J., Kuusela, Mikael, Lee, Ann B., Giglio, Donata, Wood, Kimberly M.

论文摘要

由空气和海洋之间的热量交换驱动的热带气旋(TCS)对世界上许多社区构成了重大风险。对TC通道的地下海洋热响应的准确表征对于准确的TC强度预测和理解TCS在全球气候系统中所起的作用至关重要。然而,这种表征因高噪声海洋环境,时空数据的固有相关性,原位观测的相对稀缺性以及与季节性信号的TC诱导信号的纠缠所固有的相关性。我们提出了一个通用的方法论框架,该框架解决了这些困难,将现有技术集成到季节平均野外估计,高斯过程建模和非参数回归中。重要的是,我们通过适当处理季节性,提供严格的不确定性量化并将时间视为连续变量,而不是产生及时归纳的估计值,从而改善了过去的工作。该ANOVA模型是使用多步骤的Argo Argo Floet Freet的原位地下温度曲线估算的,该过程(1)(1)表征了TC季节上海洋季节性变化; (2)对温度观测的变异性建模; (3)使用可变性估计值适合薄板条,以说明观测值之间的异质性和相关性。该样条拟合揭示了海洋对TC通道的热响应。通过这个框架,我们在全球范围内获得了TCS与海洋之间相互作用的新科学见解,包括沿TC风暴轨道的近地面和地下冷却的三维表征以及轨道右侧的混合引起的地下变暖。

Tropical cyclones (TCs), driven by heat exchange between the air and sea, pose a substantial risk to many communities around the world. Accurate characterization of the subsurface ocean thermal response to TC passage is crucial for accurate TC intensity forecasts and for an understanding of the role that TCs play in the global climate system. However, that characterization is complicated by the high-noise ocean environment, correlations inherent in spatio-temporal data, relative scarcity of in situ observations, and the entanglement of the TC-induced signal with seasonal signals. We present a general methodological framework that addresses these difficulties, integrating existing techniques in seasonal mean field estimation, Gaussian process modeling, and nonparametric regression into an ANOVA decomposition model. Importantly, we improve upon past work by properly handling seasonality, providing rigorous uncertainty quantification, and treating time as a continuous variable, rather than producing estimates that are binned in time. This ANOVA model is estimated using in situ subsurface temperature profiles from the Argo fleet of autonomous floats through a multi-step procedure, which (1) characterizes the upper ocean seasonal shift during the TC season; (2) models the variability in the temperature observations; (3) fits a thin plate spline using the variability estimates to account for heteroskedasticity and correlation between the observations. This spline fit reveals the ocean thermal response to TC passage. Through this framework, we obtain new scientific insights into the interaction between TCs and the ocean on a global scale, including a three-dimensional characterization of the near-surface and subsurface cooling along the TC storm track and the mixing-induced subsurface warming on the track's right side.

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