Because multibeam backscatter data is greatly affected by the AR (angular response) and the AR correction models are not perfect in the complex seabed, the multibeam image quality is seriously reduced. This paper puts forward an improved AR model and a correction method. Firstly, we average continual pings to obtain the AR curve; Secondly, we give out the extraction method of AR parameters; Thirdly, we use the parameters to establish the improved AR model of different sections of one ping; Finally, we use the model to weaken the AR effect in multibeam backscatter images. The validities of the method have been verified by the experiments of the field multibeam acoustic backscatter.
YAN Jun
,
ZHANG Hongmei
,
ZHAO Jianhu
,
MENG Junxia
. Study on Improvement of Multibeam Backscatter Angular Response Model[J]. Acta Geodaetica et Cartographica Sinica, 2016
, 45(11)
: 1301
-1307
.
DOI: 10.11947/j.AGCS.2016.20160169
[1] CLARKE J E H, MAYER L A, WELLS D E. Shallow-water Imaging Multibeam Sonars: A New Tool for Investigating Seafloor Processes in the Coastal Zone and on the Continental Shelf[J]. Marine Geophysical Researches, 1996, 18(6): 607-629.
[2] 阳凡林, 李家彪, 吴自银, 等. 浅水多波束勘测数据精细处理方法[J]. 测绘学报, 2008, 37(4): 444-450, 457. DOI: 10.3321/j.issn:1001-1595.2008.04.008. YANG Fanlin, LI Jiabiao, WU Ziyin, et al. The Methods of High Quality Post-processing for Shallow Multibeam Data[J]. Acta Geodaetica et Cartographica Sinica, 2008, 37(4): 444-450, 457. DOI: 10.3321/j.issn:1001-1595.2008.04.008.
[3] 王海栋, 柴洪洲, 王敏. 多波束测深数据的抗差Kriging拟合[J]. 测绘学报, 2011, 40(2): 238-242, 248. WANG Haidong, CHAI Hongzhou, WANG Min. Multibeam Bathymetry Fitting Based on Robust Kriging[J]. Acta Geodaetica et Cartographica Sinica, 2011, 40(2): 238-242, 248.
[4] GARDNER J V, DARTNELL P, MAYER L A, et al. Geomorphology, Acoustic Backscatter, and Processes in Santa Monica Bay from Multibeam Mapping[J]. Marine Environmental Research, 2003, 56(1-2): 15-46.
[5] SACCHETTI F, BENETTI S, GEORGIOPOULOU A, et al. Geomorphology of the Irish Rockall Trough, North Atlantic Ocean, Mapped from Multibeam Bathymetric and Backscatter Data[J]. Journal of Maps, 2011, 7(1): 60-81.
[6] MEDIALDEA T, SOMOZA L, LEóN R, et al. Multibeam Backscatter as a Tool for Sea-floor Characterization and Identification of Oil Spills in the Galicia Bank[J]. Marine Geology, 2008, 249(1-2): 93-107.
[7] FONSECA L, CALDER B. Geocoder: An Efficient Backscatter Map Constructor[C]//The US Hydrographic Conference. San Diego: CCOM JHC, 2005.
[8] 唐秋华, 周兴华, 丁继胜, 等. 多波束反向散射强度数据处理研究[J]. 海洋学报, 2006, 28(2): 51-55. TANG Qiuhua, ZHOU Xinghua, DING Jisheng, et al. Study on Processing of Multibeam Backscatter Data[J]. Acta Oceanologica Sinica, 2006, 28(2): 51-55.
[9] 王煜. 多波束声纳图像入射角效应和镜面反射区异常的改正[D]. 青岛: 山东科技大学, 2009. WANG Yu. Correction of Incidence Effection and Mirror Reflection Exception on Multibeam Sonar Image[D]. Qingdao: Shandong University of Science and Technology, 2009.
[10] HAMMERSTAD E, POHNER F, PARTHIOT F, et al. Field Testing of a New Deep Water Multibeam Echo Sounder[C]//Proceedings of the Ocean Technologies and Opportunities in the Pacific for the 90's. Honolulu, Hawaii: IEEE, 1991, 2: 743-749.
[11] HELLEQUIN L, BOUCHER J M, LURTON X. Processing of High-frequency Multibeam Echo Sounder Data for Seafloor Characterization[J]. IEEE Journal of Oceanic Engineering, 2003, 28(1): 78-89.
[12] HAMMERSTAD E. Backscattering and Seabed Image Reflectivity[R]. EM Technical Note, 2000.
[13] 金绍华, 翟京生, 刘雁春, 等. 海底入射角对多波束反向散射强度的影响及其改正[J]. 武汉大学学报(信息科学版), 2011, 36(9): 1081-1084. JIN Shaohua, ZHAI Jingsheng, LIU Yanchun, et al. Influence of Seafloor Incidence Angle on Multibeam Backscatter Intensity and Corrected Method[J]. Geomatics and Information Science of Wuhan University, 2011, 36(9): 1081-1084.
[14] WAITE A D. Sonar for Practising Engineers[M]. 3rd ed. New York, NY: John Wiley & Sons, 2002.
[15] CLARKE J E H, DANFORTH B W, VALENTINE P. Areal Seabed Classification Using Backscatter Angular Response at 95 kHz[C]//SACLANTCEN Conference on High Frequency Acoustics in Shallow Water. Lerici, Italy:[s.n.], 1997: 243-250.
[16] FONSECA L, MAYER L. Remote Estimation of Surficial Seafloor Properties through the Application Angular Range Analysis to Multibeam Sonar Data[J]. Marine Geophysical Researches, 2007, 28(2): 119-126.
[17] 金绍华, 肖付民, 边刚, 等. 利用多波束反向散射强度角度响应曲线的底质特征参数提取算法[J]. 武汉大学学报(信息科学版), 2014, 39(12): 1493-1498. JIN Shaohua, XIAO Fuming, BIAN Gang, et al. A Method for Extracting Seabed Feature Parameters Based on the Angular Response Curve of Multibeam Backscatter Strength[J]. Geomatics and Information Science of Wuhan University, 2014, 39(12): 1493-1498.
[18] CUTTER G R JR, DEMER D A. Seabed Classification Using Surface Backscattering Strength Versus Acoustic Frequency and Incidence Angle Measured with Vertical, Split-Beam Echosounders[J]. ICES Journal of Marine Science, 2014, 71(4): 882-894.
[19] HANIOTIS S, CERVENKA P, NEGREIRA C, et al. Seafloor Segmentation Using Angular Backscatter Responses Obtained at Sea with A Forward-looking Sonar System[J]. Applied Acoustics, 2015, 89: 306-319.
[20] DÍAZ J V M. Analysis of Multibeam Sonar Data for the Characterization of Seafloor Habitats[D]. California: University of New Brunswick, 2000.
[21] FONSECA L, BROWN C, CALDER B, et al. Angular Range Analysis of Acoustic Themes from Stanton Banks Ireland: A Link between Visual Interpretation and Multibeam Echosounder Angular Signatures[J]. Applied Acoustics, 2009, 70(10): 1298-1304.