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Remote Sensing in Environmental Research Georgios Aim. Skianis University of Athens, Faculty of Geology and Geo-Environment, Department of Geography and.

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Presentation on theme: "Remote Sensing in Environmental Research Georgios Aim. Skianis University of Athens, Faculty of Geology and Geo-Environment, Department of Geography and."— Presentation transcript:

1 Remote Sensing in Environmental Research Georgios Aim. Skianis University of Athens, Faculty of Geology and Geo-Environment, Department of Geography and Climatology, Remote Sensing Laboratory.

2 1. Physical principles 2. Platforms and Sensors 3. Images at the visible and infrared spectrum 4. Images at the thermal infrared spectrum 5. Radar images 6. Image analysis 7. Some environmental applications

3 1. Physical Principles

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7 Red, Green, Blue additive colors Blue channel 1 Green channel 2Red channel 3

8 RGB 321 (color composite)

9 Spectral Signature

10 2. Platforms, Scanners and Sensors

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13 3. Images at the visible and infrared spectrum

14 Landsat ETM channel 1 (blue). City of Pyrgos (Western Peloponnesos) Brightness value (tonality) of each pixel

15 Channel 2 (green)Channel 3 (red) Channel 4 (NIR, 0.76-0.9 μm)Channel 5 (middle infarred, 1.55-1.75 μm)

16 RGB 321 (Red, Green, Blue)RGB 432 (NIR, Red, Green)

17 RGB 542 (Middle Infrared, NIR, Red)

18 Landsat natural colors (RGB 321) RGB 432 (NIR, Red, Green) RGB 421 (NIR, Green, Blue)RGB 742 (middle infrared, NIR, Green)

19 4. Images at the thermal infrared spectrum Τ rad = ε 1/4. Τ kin T radiant, emissivity, T kinetik P thermal inertia (how easy does the temperature change)

20 As long as thermal inertia increases, temperature variation decreases

21 RGB 321 (natural colors) Landsat image over Mesologi-Evinos river Thermal infrared image of the same region

22 Landsat nocturnal image of the lakes Ontario and Erie, USA

23 L = c.DN Landsat image, thermal infrared channel A map of temperatures

24 5. Radar Images Active  Passive remote sensing

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27 Radar image, ERS-1, Udine, Italy Landsat image, Udine, Italy

28 Zone L, Polarization HH, Endeavour SIR-CX-SAR Zone L, Polarization HV, Endeavour SIR-CX-SAR

29 RGB L-HH (red), L-HV (green) και C-HH (blue). Endeavour SIR-CX-SAR

30 Detection of an oil spill RGB L-VV (red), mean value L-VV and C-VV (green) and C-VV (blue). Οι εικόνες ελήφθησαν από το σύστημα Endeavour, SIR-CX-SAR. Mumbai, India

31 Radar image L-HH, SIR-A, over Sahara Desert. The Landsat image is represented by yellow- orange colors. Radar may penetrate certain meters below ground surface

32 6. Image Analysis Preprocessing (georeferencing, atmospheric correction, destriping,…) Image enhancement (contrast enhancement, image sharpening, edge detection,…) Information extraction (vegetation indices, classification, principal component analysis,…)

33 Atmospheric correction

34 Landsat RGB 321 image Atmospherically corrected image

35 Destriping Initial imageFiltered (destriped) image

36 Contrast enhancement InitialLinear stretch Equalization

37 Edge detection –101 f x =–202 –101 121 f y =000 –1–2–1 Initial image Filtered image Sobel filter

38 Classification Spectral domain

39 Training fields

40 Classified image

41 7. Some environmental applications Thermal channel Contrast enhanced temperature map of the Argolic Bay Detection of submarine carstic springs

42 The drainage network of a region of Southern Yemen, as it appears in a Landsat image Mapping of the drainage network

43 Satellite images of Elvas river (Germany) before and after the floods of 2000 Mapping of floods

44 Land cover mapping using vegetation indices Satellite image of Nile river, Egypt, in natural colors The NDVI vegetation index of the region. NDVI = (NIR-Red)/(NIR +Red)

45 Mapping burnt areas NDVI image produced by an ALOS multispectral image

46 Terra Modis satellite image over the Gulf of Mexico. The meandric structure with the bright tones is the Gulf stream. Oceanography

47 Archaeology Detection of the ancient city of Ubar (Arabic Peninsula) by a Landsat image


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