Han L H, Rundquist D C. The response of both surface reflectance and the underwater light field to various levels of suspended sediments: preliminary results. Photogramm Eng Remote Sens, 1994, 60(12): 1463 -1471.
[4]
Peter F, Tommy L, Catherine O. Statistical analysis of hyper-spectral data from two Swedish lakes. The Science of the Total Environment. ,2001, 268: 155 - 169.
[5]
Gitelson A. The peak near 700nm on radiance spectra of algae and water: relationships of its magnitude and position with chlorophyll concentration. Int J Remote Sens, 1992, 13:3367 -3373.
[6]
Gitelson A, Laorawat S, Keydan G P, et al. Optical properties of dense algal cultures outdoors and its application to remote estimation of biomass and pigment concentration in Spirulina platensis. J Phycology, 1995, 13 (5): 828 -834.
[7]
Fischer J, Kronfeld V. Sun-stimulated chlorophyll fluorescence. 1: Influence of oceanic properties. Int J Remote Sens,1990, 11:2125 -2147.
[8]
RitchieJ C, Cooper C M. An algorithm for estimation surface suspended sediment concentration with Landsat MSS digital data. Wat Res Bull, 1991,27:373 -379.
[9]
Lathrop R G, LilIesand T M, et al. Testing the utility of simple multi-date thematic mapper calibration algorithms for monitoring rubid inland waters. Int J Remote Sen, 1991,10: 2045 -2063.
Gitelson A, Garbuzov G, Szilagyi F, et al. Quantitative remote sensing methods for real-time monitoring of inland waters quality. Int J Remote Sens, 1993, 7:1269 - 1295.
[14]
Yacobi Y Z, Gitelson A, Mayo M. Remote sensing of chlorophyll in Lake Kinneret using high spectral resolution radiometer and Landsat TM: Spectral characteristics of reflectance and algorithm development. J Plankton Res, 1995, 17:2155-2173.
[15]
Iluz D, Yacobi Y Z, Gitelson A. Adaptation of an algorithm for chlorophyll-a estimation by optical data in the oligotrophic Gulf of Eilat. Int J Remote Sens, 2003, 5:1157 - 1163.