27. Liedtke JRA, Luternauer J (1995) Practical remote sensing of suspended sediment concentration. Photogramm Eng Remote Sens 61:167–175
28. Yang MD, Merry CJ, Sykes RM (1996) Adaptive short-term water quality forecasts using
remote sensing and GIS. AWRA Symposium on GIS and Water Resources, Ft. Lauderdale, FL
29. Harding LW, Itsweire EC, Esaias WE (1995) Algorithm development for recovering chlorophyll concentrations in Chesapeake Bay using aircraft remote sensing. Photogramm Eng
Remote Sens 61:177–185
30. Cheng K-S, Lei T-C (2001) Reservoir trophic state evaluation using Landsat TM images. J Am
Water Res Assoc:1321–1334
31. Ritchie JC, Schiebe FR (2000) Water quality. In: Schulz GA, Engman ET (eds) Remote sensing
in hydrology and water management. Springer, Berlin, pp 287–303
32. Ritchie JC, Schiebe FR, McHenry JR (1976) Remote sensing of suspended solids in surface
water. Photogramm Eng Remote Sens 42:1539–1545
33. Ritchie JC, Cooper CM, Schiebe FR (1990) The relationship of MSS and TM digital data with
suspended sediments, chlorophyll, and temperature in Moon Lake, Mississippi. Remote Sens
Environ 33:137–148
34. s PJ, Novo EMM (1988) The relationship between suspended sediment concentration and
remotely sensed spectral radiance: a review. J Coast Res 4:351–368
35. U.S. Environmental Protection Agency (2000) Nutrient Criteria Technical Guidance Manual,
Lakes and Reservoirs, EPA-822-F-00-002
36. Ritchie JC, Schiebe FR, Cooper CM, Harrington JA Jr (1994) Chlorophyll measurements in the
presence of suspended sediment using broad band spectral sensors aboard satellites. J Fresh
Water Ecology 9:197–206
37. Gitelson A, Mayo M, Yacobi YZ, Paroarov A, Berman T (1994) The use of high spectral
resolution radiometer data for detection of low chlorophyll concentrations in Lake Kinneret. J
Plankton Reasearch 16:–993, 1002
38. Aller L, Bennett T, Lehr JH, Petty RJ (1985) DRASTIC: a standard system for evaluating
groundwater pollution potential using hydrogeologic settings, EPA/600/2-85/018. R.S. Kerr
Environmental Research Laboratory, U.S. Environmental Protection Agency, Ada
39. Tabios GQ, Salas JD (1985) A comparative analysis of techniques for spatial interpolation of
precipitation. Water Res Bull (3)
40. Burrough PA (1986) Principles of geographical information systems for land resources assessment. Clarendon Press, Oxford, UK
41. Jenson SK, Domingue JO (1988) Extracting topographic structure from digital elevation data
for geographic information system analysis. Photogramm Eng Remote Sens 54(11):1593–1600
42. Moore ID, Grayson RB, Ladson AR (1991) Digital terrain modeling: a review of hydrological,
geomorphological and biological applications. Hydrol Process 5:3–30
43. Martz LW, Garbrecht J (1992) Numerical definition of drainage network and subcatchment
areas from digital elevation models. Comput Geosci 18(6):747–761
44. Tribe A (1992) Automated recognition of valley lines and drainage networks from grid
elevation models: a review and a new method. In J Hydrolology 139:263–293
45. Puecker TK, Douglas DH (1975) Detection of surface-specific points by local parallel
processing of discrete terrain elevation data. Comput Gr Image Process 4:375–387
46. USEPA (1988) Geographic information system (GIS) guidelines document. US Environmental
Protection Agency, Washington, DC, p 20460
47. USEPA (2020) Environmental acronyms, abbreviations and glossary and terms. US Environmental Protection Agency, Washington, DC, p 20460
48. USEPA (2012) Terminology services glossary management guide. US Environmental Protection Agency, Washington, DC, p 20460
49. USEPA Region 2 (2020) GIS deliverables guidance. US Environmental Protection Agency,
Washington, DC, p 20460
50. USEPA (2018) EPA geospatial data and geospatial resources at EPA. US Environmental
Protection Agency, Washington, DC, p 20460
5 Geographic Information Systems and Remote Sensing Applications in Environmental. . . 235
28. Yang MD, Merry CJ, Sykes RM (1996) Adaptive short-term water quality forecasts using
remote sensing and GIS. AWRA Symposium on GIS and Water Resources, Ft. Lauderdale, FL
29. Harding LW, Itsweire EC, Esaias WE (1995) Algorithm development for recovering chlorophyll concentrations in Chesapeake Bay using aircraft remote sensing. Photogramm Eng
Remote Sens 61:177–185
30. Cheng K-S, Lei T-C (2001) Reservoir trophic state evaluation using Landsat TM images. J Am
Water Res Assoc:1321–1334
31. Ritchie JC, Schiebe FR (2000) Water quality. In: Schulz GA, Engman ET (eds) Remote sensing
in hydrology and water management. Springer, Berlin, pp 287–303
32. Ritchie JC, Schiebe FR, McHenry JR (1976) Remote sensing of suspended solids in surface
water. Photogramm Eng Remote Sens 42:1539–1545
33. Ritchie JC, Cooper CM, Schiebe FR (1990) The relationship of MSS and TM digital data with
suspended sediments, chlorophyll, and temperature in Moon Lake, Mississippi. Remote Sens
Environ 33:137–148
34. s PJ, Novo EMM (1988) The relationship between suspended sediment concentration and
remotely sensed spectral radiance: a review. J Coast Res 4:351–368
35. U.S. Environmental Protection Agency (2000) Nutrient Criteria Technical Guidance Manual,
Lakes and Reservoirs, EPA-822-F-00-002
36. Ritchie JC, Schiebe FR, Cooper CM, Harrington JA Jr (1994) Chlorophyll measurements in the
presence of suspended sediment using broad band spectral sensors aboard satellites. J Fresh
Water Ecology 9:197–206
37. Gitelson A, Mayo M, Yacobi YZ, Paroarov A, Berman T (1994) The use of high spectral
resolution radiometer data for detection of low chlorophyll concentrations in Lake Kinneret. J
Plankton Reasearch 16:–993, 1002
38. Aller L, Bennett T, Lehr JH, Petty RJ (1985) DRASTIC: a standard system for evaluating
groundwater pollution potential using hydrogeologic settings, EPA/600/2-85/018. R.S. Kerr
Environmental Research Laboratory, U.S. Environmental Protection Agency, Ada
39. Tabios GQ, Salas JD (1985) A comparative analysis of techniques for spatial interpolation of
precipitation. Water Res Bull (3)
40. Burrough PA (1986) Principles of geographical information systems for land resources assessment. Clarendon Press, Oxford, UK
41. Jenson SK, Domingue JO (1988) Extracting topographic structure from digital elevation data
for geographic information system analysis. Photogramm Eng Remote Sens 54(11):1593–1600
42. Moore ID, Grayson RB, Ladson AR (1991) Digital terrain modeling: a review of hydrological,
geomorphological and biological applications. Hydrol Process 5:3–30
43. Martz LW, Garbrecht J (1992) Numerical definition of drainage network and subcatchment
areas from digital elevation models. Comput Geosci 18(6):747–761
44. Tribe A (1992) Automated recognition of valley lines and drainage networks from grid
elevation models: a review and a new method. In J Hydrolology 139:263–293
45. Puecker TK, Douglas DH (1975) Detection of surface-specific points by local parallel
processing of discrete terrain elevation data. Comput Gr Image Process 4:375–387
46. USEPA (1988) Geographic information system (GIS) guidelines document. US Environmental
Protection Agency, Washington, DC, p 20460
47. USEPA (2020) Environmental acronyms, abbreviations and glossary and terms. US Environmental Protection Agency, Washington, DC, p 20460
48. USEPA (2012) Terminology services glossary management guide. US Environmental Protection Agency, Washington, DC, p 20460
49. USEPA Region 2 (2020) GIS deliverables guidance. US Environmental Protection Agency,
Washington, DC, p 20460
50. USEPA (2018) EPA geospatial data and geospatial resources at EPA. US Environmental
Protection Agency, Washington, DC, p 20460
5 Geographic Information Systems and Remote Sensing Applications in Environmental. . . 235
