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1.
InSAR地形重建中大气效应的估计和去除   总被引:1,自引:0,他引:1  
万青  张路  蒋厚军  王腾  廖明生 《遥感学报》2012,16(5):1074-1088
有效估计和消除大气效应的影响是提高InSAR应用能力的关键之一。本文对重复轨道干涉模式下大气相位产生的原因及其时空分布规律进行分析研究,提出了一种利用外部低分辨率DEM数据辅助改正大气相位的方法,通过对比大气改正前后结果DEM的高程精度验证了方法的有效性。  相似文献   

2.
InSAR是获取全球DEM的重要手段。然而InSAR地形测绘过程中极易受各类干涉要素的影响,其中基线是重要的干涉要素之一。本文采用天津地区40景TerraSAR-X影像构成的780个干涉对,定量分析了时空基线对InSAR地形测绘的影响,试验结果表明,空间基线越大,高程精度越高,两者呈幂函数关系;时间基线越大,高程精度越低,两者呈线性函数关系。因此在地形测绘过程中,应在确保相干性的前提下采用尽量长的空间基线,同时确保足够短的时间基线,消除时间失相干的影响。本文为国产SAR卫星的构型设计提供了技术参考。  相似文献   

3.
卢丽君  张继贤  王腾 《测绘学报》2011,40(4):459-463
为满足在坡度陡、高差大的复杂地形地区高精度DEM制图的需要,在传统的雷达干涉测量技术的基础上,通过引入外部DEM,建立外部DEM模拟相位和干涉解缠相位的对应关系,构建多维线性模型,进行线性回归分析,去除误差相位趋势;同时根据引入的外部DEM估计高程的误差范围,进行高程点的滤波,达到精化DEM的目的,形成最终的DEM产品。该方法已经应用于高分辨雷达影像(COSMO数据)在云南德钦地区DEM地形图的制作,通过GPS数据的验证,其精度达到了国家1∶50 000 DEM制图要求。  相似文献   

4.
针对我国一些多云、多雨地区光学影像获取困难,且国内机载InSAR系统获取DEM精度普遍较低的问题,该文以国产机载微型InSAR系统为依托,首先,对InSAR原理和DEM获取流程进行了分析,着重对运动补偿和基线估计方法进行了归纳分析;其次,使用实验数据对国产机载微型InSAR系统的高程精度进行了验证分析,检查点高程中误差为0.44m,结果表明使用国产机载微型InSAR系统可以获取高精度DEM数据,满足我国测量规范对于丘陵地区1∶5 000成图比例尺地形图的要求;最后,为了进一步提高国产微型InSAR系统的测量精度,对控制点位置、定标器、DEM局部编辑等方面提出了建议。  相似文献   

5.
曾琪明  章晓洁  焦健 《遥感学报》2016,20(5):1151-1160
利用星载重复轨道合成孔径雷达干涉测量InSAR技术获取数字高程模型(DEM),无法避免大气延迟效应的影响。InSAR大气校正的方法很多,但在DEM获取方面的大气校正研究却非常少见。本文研究星载重轨InSAR生产DEM时利用大气数值模式WRF(Weather Research and Forecasting model)得到的水汽结果进行大气校正的问题,重点讨论大气校正的策略,包括WRF模式设置和大气校正时机的选择,简要介绍了基于WRF运算结果的大气校正方法。利用Terra SAR-X数据进行实验,检验了所提出方法的有效性,证明了在干涉相位解缠前进行大气校正,比在相位解缠后进行的效果更好。将所提出方法应用于多基线、多波段InSAR干涉结果融合中,实验结果表明大气校正能够有效降低误差,对于相干性较高的地区效果更好。  相似文献   

6.
Topographic corrections of synthetic aperture radar (SAR) images over hilly regions are vital for retrieval of correct backscatter values associated with natural targets. The coarse resolution external digital elevation models (DEM) available for topographic corrections of high resolution SAR images often result into degradation of spatial resolution or improper estimation of backscatter values in SAR images. Also, many a times the external DEMs do not spatially co-register well with the SAR data. The present study showcases the methodology and results of topographic correction of ALOS-PALSAR image using high resolution DEM generated from the same data. High resolution DEMs of Jaipur region, India were generated using multiple pair SAR images acquired from ALOS-PALSAR using interferometric (InSAR) techniques. The DEMs were validated using differential global positioning system measured elevation values as ground control points and were compared with photogrammetric DEM (advanced spaceborne thermal emission and reflection radiometer – ASTER) and SRTM (Shuttle Radar Topography Mission) DEM. It was observed that ALOS-PALSAR images with optimum baseline parameters produced high resolution DEM with better height accuracy. Finally, the validated DEM was used for topographic correction of ALOS-PALSAR images of the same region and were found to produce better result as compared with ASTER and SRTM-DEM.  相似文献   

7.
基于SRTM DEM的InSAR高分辨率山区地表高程重建算法   总被引:1,自引:0,他引:1  
山体的叠掩和阴影现象造成的信号去相关,一直是InSAR重建山区地表高程的瓶颈之一.为此,提出了一种新的基于粗分辨率SRTM DEM(约90m分辨率)辅助InSAR数据重建山区地表高程的方法.利用SRTM DEM模拟的干涉相位,对ERS-1/2干涉相位做去地形相位处理,得到残余相位.通过对解缠后的残余相位计算方差提取叠掩和阴影区域的噪声,并用平均相位近似恢复噪声区域的相位,然后将其转换为高程,并用SRTM DEM作高程补偿处理,从而实现地表高程重建.最后,定量比较了该方法与传统InSAR技术生成的DEM精度.实验表明,这种方法能有效提高传统InSAR技术生成地表高程的精度,这对提高星载雷达数据的使用效率具有重要意义.  相似文献   

8.
Mapping of vegetation in mountain areas based on remote sensing is obstructed by atmospheric and topographic distortions. A variety of atmospheric and topographic correction methods has been proposed to minimize atmospheric and topographic effects and should in principle lead to a better land cover classification. Only a limited number of atmospheric and topographic combinations has been tested and the effect on class accuracy and on different illumination conditions is not yet researched extensively. The purpose of this study was to evaluate the effect of coupled correction methods on land cover classification accuracy. Therefore, all combinations of three atmospheric (no atmospheric correction, dark object subtraction and correction based on transmittance functions) and five topographic corrections (no topographic correction, band ratioing, cosine correction, pixel-based Minnaert and pixel-based C-correction) were applied on two acquisitions (2009 and 2010) of a Landsat image in the Romanian Carpathian mountains. The accuracies of the fifteen resulting land cover maps were evaluated statistically based on two validation sets: a random validation set and a validation subset containing pixels present in the difference area between the uncorrected classification and one of the fourteen corrected classifications. New insights into the differences in classification accuracy were obtained. First, results showed that all corrected images resulted in higher overall classification accuracies than the uncorrected images. The highest accuracy for the full validation set was achieved after combination of an atmospheric correction based on transmittance functions and a pixel-based Minnaert topographic correction. Secondly, class accuracies of especially the coniferous and mixed forest classes were enhanced after correction. There was only a minor improvement for the other land cover classes (broadleaved forest, bare soil, grass and water). This was explained by the position of different land cover types in the landscape. Finally, coupled correction methods showed most efficient on weakly illuminated slopes. After correction, accuracies in the low illumination zone (cos β  0.65) were improved more than in the moderate and high illumination zones. Considering all results, best overall classification results were achieved after combination of the transmittance function correction with pixel-based Minnaert or pixel-based C-topographic correction. Furthermore, results of this bi-temporal study indicated that the topographic component had a higher influence on classification accuracy than the atmospheric component and that it is worthwhile to invest in both atmospheric and topographic corrections in a multi-temporal study.  相似文献   

9.
Voids caused by shadow, layover, and decorrelation usually occur in digital elevation models (DEMs) of mountainous areas that are derived from interferometric synthetic aperture radar (InSAR) datasets. The presence of voids degrades the quality and usability of the DEMs. Thus, void removal is considered as an integral part of the DEM production using InSAR data. The fusion of multiple DEMs has been widely recognized as a promising way for the void removal. Because the vertical accuracy of multiple DEMs can be different, the selection of optimum weights becomes a key problem in the fusion and is studied in this article. As a showcase, two high-resolution InSAR DEMs near Mt. Qilian in northwest China are created and then merged. The two pairs of InSAR data were acquired by TerraSAR-X from an ascending orbit and COSMO-SkyMed from a descending orbit. A maximum likelihood fusion scheme with the weights optimally determined by the height of ambiguity and the variance of phase noise is adopted to syncretize the two DEMs in our study. The fused DEM has a fine spatial resolution of 10 m and depicts the landform of the study area well. The percentage of void cells in the fused DEM is only 0.13 %, while 6.9 and 5.7 % of the cells in the COSMO-SkyMed DEM and the TerraSAR-X DEM are originally voids. Using the ICESat/GLAS elevation data and the Chinese national DEM of scale 1:50,000 as references, we evaluate vertical accuracy levels of the fused DEM as well as the original InSAR DEMs. The results show that substantial improvements could be achieved by DEM fusion after atmospheric phase screen removal. The quality of fused DEM can even meet the high-resolution terrain information (HRTI) standard.  相似文献   

10.
Void filling and anomaly replacement in conjunction with auxiliary sources of data have been widely used to improve the quality of existing problematic high-resolution digital elevation models. However, the traditional interpolation methods used for this purpose have always failed to eliminate the discrepancies between different data-sets. In this paper, an improved ANUDEM method is presented for DEM interpolation, which incorporates the idea of topographic correction using high correlation of topological structure between contour lines (CLs) from multi-scale digital elevation models (DEM). Firstly, the terrain topological structure is extracted from the CLs of a low-resolution DEM. The topographic surface correction is then undertaken based on the extracted structure, which recovers the topographic information of the sharp depressions and eminences to fit the high-resolution representation. Finally, the breaklines of the terrain surface are distilled and integrated into the denser DEM generation. The experiments undertaken confirmed the superiority of the proposed method over the other DEM interpolation methods. It is shown that the proposed method can provide results with a higher accuracy, as well as a better visual quality.  相似文献   

11.
在机载合成孔径雷达干涉测量(synthetic aperture radar interferometry,InSAR)中,为了获取高精度的数字高程模型(digital elevation model,DEM),研究了机载InSAR视向量正交分解法及三维重建数学模型,分析了中国的机载CASMSAR(synthetic aperture radar system of Chinese Academy of Surveying and Mapping)干涉系统误差来源及观测参数,建立了机载InSAR区域网平差模型。利用国产机载CASMSAR系统获取的X波段干涉数据进行试验,利用高精度的控制点数据进行平差解算,结果表明本文方法能够消除干涉模型间平面和高程差异,DEM成果满足1:1万山地测图精度要求,验证了该模型的正确性和有效性。  相似文献   

12.
介绍了一种基于地理定位原理的方法。试验结果表明,该方法可以有效的实现去平地效应处理。  相似文献   

13.
高精度DEM是南极科学研究的基础地理信息数据之一。德国空间局发布的TanDEM-X双站干涉影像对不仅分辨率高、覆盖范围大,而且具有零时间基线,不受时间去相关、大气变化及地面目标形变的影响。本文基于TanDEM-X双站干涉影像对和迭代差分InSAR技术获取南极高分辨率DEM;然后利用南极ICESat-2高程数据和最小二乘平差方法改正DEM产品的系统性偏移误差,提高DEM产品的绝对精度。真实数据试验结果表明,本文方法可获取分辨率优于5 m、绝对精度优于2 m的南极DEM。  相似文献   

14.
基于相干目标的干涉图叠加方法监测天津地区地面沉降   总被引:2,自引:0,他引:2  
利用ENVISAT ASAR数据,采用基于相干目标的干涉图叠加方法,对天津地区的地面沉降现象进行了DInSAR监测试验.差分干涉处理采用"两轨法",使用校正了高程异常的SRTM DEM数据消除高程相位.以相干系数为标准选取了相干目标,解缠过程中运用了Delaunay三角剖分和权重最小费用流算法.本文获得的季度平均沉降速率图有效揭示了试验区地面沉降的空间展布及相对形变量,但其获得的绝对形变量尚需地面实测数据校验.  相似文献   

15.
提出并实现了一种基于加权最小二乘的低相干SAR像对精配准新方法。该方法借助一幅与主、辅影像相干性都较高的第三幅影像来完成低相干SAR影像对的初步配准,利用加权最小二乘法求出二者间的坐标映射函数,从而快速高效地实现低相干SAR影像对的高精度亚像元级配准。采用ERS-1/2实际数据的配准实验,验证了该方法可以提高低相干SAR像对的干涉图质量,提高二者之间的相干性和控制点的配准精度,改善低相干SAR影像对的配准效果,在一定程度上解决了PS InSAR技术中低相干SAR影像对的配准问题。  相似文献   

16.
InSAR DEM精度与地形特征的关系分析   总被引:1,自引:0,他引:1  
为研究InSARDEM与地形特征的关系,本文以从不同空间位置获取的两幅SAR影像作为实验数据,将InSARDEM与USGSDEM进行比较,分析了InSARDEM的精度,并研究其与坡度、坡向之间的关系。结果表明,本次实验InSARDEM与USGSDEM高程差异中误差为+19.11m,其精度与地形特征强烈相关,随着坡度的增加,InSARDEM精度降低,且前坡处高程精度高于后坡。  相似文献   

17.
电离层总电子含量(TEC)会使合成孔径雷达干涉测量(In SAR)信号产生相位延迟,进而影响生成DEM的精度,特别是对L和P等长波段信号的影响不可忽略。因此,针对不同TEC分布模式的电离层开展研究,构建了电离层对星载In SAR测高精度的影响模型,提出了相应的校正方法,并进行了仿真实验。实验表明对于特定波长的In SAR信号,不同TEC分布模式对In SAR测高精度的影响不同:TEC均匀分布的电离层模型对In SAR测高精度的影响较小,并可通过相位解缠、基线估计等环节进行很好的补偿;而TEC不均匀分布的电离层模型对In SAR精度的影响较大,仅靠相位解缠等过程不能较好地消除,必须通过向干涉图中加入电离层影响模型予以纠正。  相似文献   

18.
A case study of using external DEM in InSAR DEM generation   总被引:2,自引:0,他引:2  
Synthetic aperture radar interferometry (InSAR) has been used as an innovative technique for digital elevation model (DEM) and topographic map generation. In this paper, external DEMs are used for InSAR DEM generation to reduce the errors in data processing. The DEMs generated from repeat-pass InSAR are compared. For steep slopes and severe changes in topography, phase unwrapping quality can be improved by subtracting the phase calculated from an external DEM. It is affirmative that the absolute height accuracy of the InSAR DEM is improved by using external DEM. The data processing was undertaken without the use of ground control points and other manual operation.  相似文献   

19.
利用TanDEM-X生成DEM的精度评定   总被引:1,自引:0,他引:1  
目前,许多学者对TanDEM-X生成DEM开展了一些研究,其研究成果也显示了TanDEM-X生成高精度DEM的可行性。为了验证TanDEM-X/TerraSAR-X干涉生成的DEM能否满足测图要求,需要对其进行精度评价和分析。相对于C波段的ERS、ASAR和L波段的ALOS,X波段的高分辨率TerraSAR影像干涉条纹更密集,解缠更加困难。针对这一问题,本文设计了一种低分辨率SRTM辅助高分辨率的X波段的TerraSAR干涉相位解缠方案,提高了解缠的效率和精度。同时,本文提出了一种基于协方差函数的方法对TDX/TSX DEM进行精度分析和评价。该方法通过对各个距离上的协方差值进行拟合,消除了高程误差异常对InSAR DEM精度评价的影响,可以更加客观真实地反映DEM的精度。实例分析结果表明:采用协方差函数方法来评价DEM的精度是可行的,对于试验研究区域,TDX/TSX干涉生成的DEM总体精度为1.42 m,能够满足1:10 000测图要求,为我国空白地区的测图提供了有利条件。  相似文献   

20.
Cartosat–1 is the first Indian Remote Sensing Satellite capable of providing along-track stereo images. Cartosat–1 provides forward stereo images with look angles +26° and −5° with respect to nadir for generating Digital Elevation Models (DEMs), Orthoimages and value added products for various applications. A pitch bias of −21° to the satellite resulted in giving reverse tilt mode stereo pair with look angles of +5° and −26° with respect to nadir. This paper compares DEMs generated using forward, reverse and other possible synthetic stereo pairs for two different types of topographies. Stereo triplet was used to generate DEM for Himalayan mountain topography to overcome the problem of occlusions.For flat to undulating topography it was shown that using Cartosat-1 synthetic stereo pair with look angles of −26° and +26° will produce improved version of DEM. Planimetric and height accuracy (Root Mean Square Error (RMSE)) of less than 2.5 m and 2.95 m respectively were obtained and qualitative analysis shows finer details in comparison with other DEMs. For rugged terrain and steep slopes of Himalayan mountain topography simple stereo pairs may not provide reliable accuracies in DEMs due to occlusions and shadows. Stereo triplet from Cartosat-1 was used to generate DEM for mountainous topography. This DEM shows better reconstruction of elevation model even at occluded region when compared with simple stereo pair based DEM. Planimetric and height accuracy (RMSE) of nearly 3 m were obtained and qualitative analysis shows reduction of outliers at occluded region.  相似文献   

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