A classification-based assessment of the optimal spectral and spatial resolutions for Great Lakes coastal wetland imagery

被引:53
作者
Becker, Brian L. [1 ]
Lusch, David P.
Qi, Jiaguo
机构
[1] Cent Michigan Univ, Dept Geog, Mt Pleasant, MI 48859 USA
[2] Michigan State Univ, Dept Geog, E Lansing, MI 48824 USA
[3] Michigan State Univ, Ctr Global Change & Earth Observ, E Lansing, MI 48824 USA
关键词
hyperspectral imagery; Spectral Angle Mapper (SAM); Great Lakes; coastal wetlands; spectral resolution; spatial resolution; optimal bands;
D O I
10.1016/j.rse.2006.11.005
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We analyzed hyperspectral airborne imagery (CASI 2 with 46 contiguous VIS/NIR bands) that was acquired over a Lake Huron coastal wetland. To support detailed Great Lakes coastal wetland mapping, the optimal spatial resolution of imagery was determined to be less than 2 in. There was a 23% change in classification resiliency using the SAM classifier upon resampling the original 1-meter, 18-band imagery to 2-meter pixels, and further classifications with larger pixels (4 and 8 in) increased overall classification change to 35% and 50%, respectively. We performed a series of image classification experiments incorporating three independent band selection methodologies (derivative magnitude, fixed interval and derivative histogram), in order to explore the effects of spectral resampling on classification resiliency. This research verified that a minimum of seven, strategically located bands in the VIS-NIR wavelength region (425.4 nm, 514.9 nm, 560.1 nm, 685.5 nm, 731.5 nm, 812.3 nm and 916.7 nm) are necessary to maintain a classification resiliency above the 85% threshold. Significantly, these seven bands produced the highest classification resiliency using the fewest number of bands of any of the 63 band-reduction strategies that were tested. Analyzing only derivative magnitudes proved to be an unreliable tool to identify optimal bands. The fixed interval method was adversely influenced by the starting band location, making its implementation problematic. The combined use of derivative magnitude and frequency of occurrence appears to be the best method to determine the "optimal" bands for a wetland mapping hyperspectral application. (C) 2006 Elsevier Inc. All rights reserved.
引用
收藏
页码:111 / 120
页数:10
相关论文
共 13 条
[1]   Identifying optimal spectral bands from in situ measurements of Great Lakes coastal wetlands using second-derivative analysis [J].
Becker, BL ;
Lusch, DP ;
Qi, JG .
REMOTE SENSING OF ENVIRONMENT, 2005, 97 (02) :238-248
[2]   Norman Barrett: So close, yet 50 years away from the truth [J].
Chandrasoma, P .
JOURNAL OF GASTROINTESTINAL SURGERY, 1999, 3 (01) :7-14
[3]  
CHOWFRASER P, 1998, STAT LAK EC C 1998 U
[4]  
CONGALTON RG, 1983, PHOTOGRAMM ENG REM S, V49, P1671
[5]   A REVIEW OF ASSESSING THE ACCURACY OF CLASSIFICATIONS OF REMOTELY SENSED DATA [J].
CONGALTON, RG .
REMOTE SENSING OF ENVIRONMENT, 1991, 37 (01) :35-46
[6]   REMOTE-SENSING OF COASTAL WETLANDS [J].
HARDISKY, MA ;
GROSS, MF ;
KLEMAS, V .
BIOSCIENCE, 1986, 36 (07) :453-460
[7]  
*ITRES RES LIM, 2000, DRAFT REP AIRB IM SY
[8]  
*ITRES RES LIM, 2006, COMM
[9]  
JENSEN JR, 1986, PHOTOGRAMM ENG REM S, V52, P87
[10]  
Mitsch W.J., 2015, Wetlands