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The Accuracies of Smoothed Sea Surface Height Fields Constructed from Tandem Satellite Altimeter Datasets

机译:由串联卫星高度计数据集构建的平滑海面高度场的精度

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A technique previously developed for assessing the effects of sampling errors on sea surface height (SSH) fields constructed from satellite altimeter data is extended to include measurement errors, thus providing estimates of the total mean-squared error of the SSH fields. The measurement error contribution becomes an important consideration with the greater sampling density of a coordinated tandem satellite mission. Mean-squared errors are calculated for a variety of tandem altimeter sampling patterns. The resolution capability of each sampling pattern is assessed from a subjectively chosen but consistent set of criteria for the mean value and the spatial and temporal inhomogeneity of the root-mean-squared errors computed over a representative large collection of estimation times and locations. For a mean mapping error threshold tolerance criterion of 25% of the signal standard deviation, the filter cutoff wavelength and period defining the resolution capability of SSH fields constructed from a tandem TOPEX/ Poseidon (T/P) and Jason satellite sampling pattern with evenly spaced ground tracks are about 2.2° by 20 days. This can be compared with the resolution capability of about 6° by 20 days that can be obtained from a single altimeter in the T/P orbit. A tandem T/P-Jason mission with 0.75° spacing between simultaneously sampled parallel tracks that has been suggested for estimating geostrophic velocity yields an SSH mapping resolution capability of about 3.7° by 20 days. For the anticipated factor-of-2 larger orbit errors for ENVISAT compared with Jason, the resolution capability of a tandem Jason-ENVISAT scenario is about 3° by 20 days. For mapping the SSH field, the tandem T/P-Jason sampling patterns with evenly spaced, interleaved ground tracks and either a 5-day or a 0-day offset is far better than the other tandem altimeter mission scenarios considered here. For the highest-resolution mapping, the 5-day offset is preferable to the 0-day offset. The scientific benefits of such a tandem mission are discussed in the context of two specific examples: Rossby wave dispersion and investigation of eddy-mean flow interaction.
机译:先前开发的用于评估采样误差对由卫星高度计数据构建的海面高度(SSH)场的影响的技术已扩展为包括测量误差,从而提供了SSH场的总均方误差的估计。随着协作型串联卫星任务采样密度的提高,测量误差的贡献成为重要的考虑因素。针对各种串联高度计采样模式计算均方误差。从主观选择但一致的一组标准中评估每个采样模式的分辨能力,这些标准包括在估计时间和位置的代表性集合中计算出的均方根误差的平均值以及空间和时间不均匀性。对于信号映射标准偏差的25%的平均映射误差阈值容限标准,滤波器的截止波长和周期定义了由串联TOPEX / Poseidon(T / P)和Jason卫星采样模式(均匀间隔)构成的SSH域的分辨能力到20天时,地面轨道约为2.2°。这可以与从T / P轨道上的单个高度计获得的大约6°乘20天的分辨能力进行比较。串联T / P-Jason任务在同时采样的平行轨道之间具有0.75°的间距(建议用于估算地转速度)在20天时产生的SSH映射分辨率约为3.7°。对于与Jason相比ENVISAT的预期2因子更大的轨道误差,串联Jason-ENVISAT方案的分辨能力约为20天3°。为了映射SSH字段,具有均匀间隔的交错地面轨迹和5天或0天偏移的串联T / P-Jason采样模式比这里考虑的其他串联高度计任务方案要好得多。对于最高分辨率的映射,5天偏移量比0天偏移量更可取。在两个具体示例的背景下讨论了这种串联任务的科学益处:Rossby波频散和涡旋-均值流相互作用的研究。

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