DocumentCode :
10186
Title :
Assessment of Waveform Features for Lidar Uncertainty Modeling in a Coastal Salt Marsh Environment
Author :
Parrish, C.E. ; Rogers, Jeffrey N. ; Calder, Brian R.
Author_Institution :
Remote Sensing Div., Nat. Oceanic & Atmos. Adm. Nat. Geodetic Survey, Silver Spring, MD, USA
Volume :
11
Issue :
2
fYear :
2014
fDate :
Feb. 2014
Firstpage :
569
Lastpage :
573
Abstract :
There is currently great interest in lidar surveys of salt marshes to support coastal management and decision making. However, vertical uncertainty of lidar elevations is generally higher in salt marshes than in upland areas, and it can be difficult to empirically quantify due to the challenges of obtaining ground control in marshes. Assuming that most of the component uncertainties in the lidar geolocation equation will remain essentially constant over a relatively small location, it is posited that vertical uncertainty in a marsh will vary mostly as a function of surface and cover characteristics. These, in turn, should affect lidar waveforms recorded during the survey, and therefore, analysis of the waveform shapes may allow for prediction of vertical uncertainty variation. Waveforms at three test sites were used to compute 16 computationally efficient features that describe the shapes; and simple, multilinear, and principal component regressions were used to evaluate their ability to predict elevation differences between lidar and Global Positioning System ground control. The results show that a simple estimate of waveform width can explain over 50% of the total variability in elevation differences but that multilinear regression does not significantly improve the performance. Somewhat surprisingly, skewness of the waveform does not appear to be a good predictor of elevation differences in these cases.
Keywords :
Global Positioning System; decision making; environmental management; geophysical signal processing; optical radar; principal component analysis; regression analysis; remote sensing by laser beam; Global Positioning System; Lidar geolocation equation; Lidar uncertainty modeling; coastal management; coastal salt marsh environment; decision making; ground control; principal component regression; vertical uncertainty variation; waveform features assessment; Global Positioning System; Laser radar; Remote sensing; Sea measurements; Shape; Uncertainty; Vegetation mapping; Geospatial analysis; lasers; lidar; ranging; sea coast;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing Letters, IEEE
Publisher :
ieee
ISSN :
1545-598X
Type :
jour
DOI :
10.1109/LGRS.2013.2280182
Filename :
6600874
Link To Document :
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