Simulation of L-band and HH microwave backscattering from coniferous forest stands A comparison with SIR-B data
- 7 May 1988
- journal article
- research article
- Published by Taylor & Francis in International Journal of Remote Sensing
- Vol. 9 (5) , 907-925
- https://doi.org/10.1080/01431168808954904
Abstract
Shuttle Imaging Radar-B (SIR-B) images of coniferous forest stands dominated by Ponderosa pine in the Mt. Shasta region of northern California were used to evaluate a composite L-band HH backscattering model of coniferous forest stands. Eight forest stands were employed to describe the relative trend and distribution of backscattering coefficients. It was found that (1) both SIR-B and simulated backscattering coefficients for the eight stands have similar trends and relations to average tree height and average number of trees per pixel and (2) the dispersion and distribution of simulated backscattering coefficients from each stand broadly matched SIR-B data from the same stand. Although it is difficult to draw any strong conclusions from the comparisons because the experimental data arc limited in both quantity and quality and are also undersampled, the comparisons indicate that a stand-based L-band HH composite model seems promising for explaining backscattering features. The means of the backscattering coefficients are determined by the average tree height and average number of trees per pixel in the stands. The distributions of the backscattering coefficients are modelled through random assignment of tree numbers, heights and spatial distribution within a pixel.Keywords
This publication has 17 references indexed in Scilit:
- An explanation of enhanced radar backscattering from flooded forestsInternational Journal of Remote Sensing, 1987
- Calculations of radar backscattering coefficient of vegetation-covered soilsRemote Sensing of Environment, 1984
- A theory and model for wave propagation through foliageRadio Science, 1982
- Radar Scattering from a Diffuse Vegetation Layer over a Smooth SurfaceIEEE Transactions on Geoscience and Remote Sensing, 1982
- Improved Mie scattering algorithmsApplied Optics, 1980
- Vegetation modeled as a water cloudRadio Science, 1978
- Scattering of Visible Light by Large Water SpheresApplied Optics, 1969
- Electromagnetic Scattering from Absorbing SpheresApplied Optics, 1967
- Electromagnetic Scattering from Spheres with Sizes Comparable to the WavelengthJournal of Applied Physics, 1951
- Targets for Microwave Radar NavigationBell System Technical Journal, 1947