Vegetation colonization in a restoring tidal marsh: A remote sensing approach

被引:31
作者
Tuxen, Karin A. [1 ]
Schile, Lisa M. [2 ]
Kelly, Maggi [1 ]
Siegel, Stuart W. [3 ]
机构
[1] Univ Calif Berkeley, Dept Environm Sci Policy & Management, Berkeley, CA 94720 USA
[2] San Francisco State Univ, Dept Biol, San Francisco, CA 94132 USA
[3] Wetlands & Water Resources, San Rafael, CA 94901 USA
关键词
change detection; NDVI; Petaluma River Marsh; remote sensing; San Francisco Bay-Delta; tidal marsh restoration;
D O I
10.1111/j.1526-100X.2007.00313.x
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Although remote sensing offers the ability to monitor wetland restoration, few have tested automated methods for quantifying vegetation change. We implemented a semiautomated technique using color infrared aerial photography and a common vegetation index, Normalized Difference Vegetation Index (NDVI), to document vegetation colonization in a restoring salt marsh. Change in vegetation over a period of 10 years was analyzed using a postclassification comparison technique where each image year was classified individually into vegetated and nonvegetated areas using NDVI thresholds and then differenced between years to identify areas of vegetation change. Vegetated and nonvegetated areas were identified using this technique, as were areas and time periods of vegetation change. By comparing classified NDVI imagery, we calculated that 90% of our study site was vegetated 10 years after restoration. This study demonstrated that high-resolution remotely sensed data can be analyzed with common geospatial software to monitor change in a rapidly vegetating wetland and that long time frames with yearly image acquisition are needed to quantify plant colonization rates. This method was effective at detecting change in vegetation over time in a variable tidal marsh environment using imagery that had inconsistent specifications and quality across years. Inconsistencies included interannual climate variation, phenology, and presence of algae, as well as differences in pixel size and image brightness. Our findings indicate that remote sensing is useful for postrestoration monitoring of tidal marsh ecosystems.
引用
收藏
页码:313 / 323
页数:11
相关论文
共 48 条
[11]   Interactions between fire and flooding in a southern African floodplain system (Okavango Delta, Botswana) [J].
Heinl, Michael ;
Neuenschwander, Amy ;
Sliva, Jan ;
Vanderpost, Cornelis .
LANDSCAPE ECOLOGY, 2006, 21 (05) :699-709
[12]   Analysis of tidal marsh vegetation patterns in two Georgia estuaries using aerial photography and GIS [J].
Higinbotham, CB ;
Alber, M ;
Chalmers, AG .
ESTUARIES, 2004, 27 (04) :670-683
[13]   Salt marsh vegetation recovery at salt hay farm wetland restoration sites on Delaware Bay [J].
Hinkle, RL ;
Mitsch, WJ .
ECOLOGICAL ENGINEERING, 2005, 25 (03) :240-251
[14]   Hyperspectral image data for mapping wetland vegetation [J].
Hirano, A ;
Madden, M ;
Welch, R .
WETLANDS, 2003, 23 (02) :436-448
[15]  
Jensen J.R., 2014, Remote sensing of the environment: an earth resource perspectivee, V2nd
[16]  
JENSEN JR, 1995, PHOTOGRAMM ENG REM S, V61, P199
[17]   NONTIDAL WETLAND MAPPING IN SOUTH-CAROLINA USING AIRBORNE MULTISPECTRAL SCANNER DATA [J].
JENSEN, JR ;
CHRISTENSEN, EJ ;
SHARITZ, R .
REMOTE SENSING OF ENVIRONMENT, 1984, 16 (01) :1-12
[18]  
JENSEN JR, 1986, PHOTOGRAMM ENG REM S, V52, P87
[19]   Change detection techniques [J].
Lu, D ;
Mausel, P ;
Brondízio, E ;
Moran, E .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 2004, 25 (12) :2365-2407
[20]  
Lyon JG, 1998, PHOTOGRAMM ENG REM S, V64, P143