| = io "ET ifi
| Principal components 1 (photo 4) resolves differences in the agricultural field gu
pattern and land use classes, emphasizes river courses, built up areas and the and
outline of lakes against forests, as well as differentiating various types Piel
within forests. These are all factors which are important for interpretation diti
| in a cultured landscape. Principal components 2 (photo 2) lacks the discerning i3;
| i capability of forests and lakes, but makes field parcelling even clearer. Espe- 1) I
cially linear structural elements like highways indicate good structural resol- plai
ving power. Both principal components can be superimposed as a FCC with a max- qual
imum of information density, but for reproduction reasons it is not shown here. Soil
Contrast enhancement of edges by high- rick
pass filtering was an additional me- 2) M
thod for emphasizing patterns and plai
structures. Applied onto the princi- se
| pal component 2 (photo 5), it shows Hann
| striking results on field parcelling ate
patterns (photo 6). This is achieved
by brightening or darkening sharp tran- 6. I
sitions between bright and dark in their
respective direction. The brightening To i
or darkening factor applied is inversely tior
proportional to the frequency of bright clas
| to dark changes. comt
| scal
| | Ratioing here is used to discriminate Spec
| spectral bands bearing nearly similar Bier
hi information, i.e. bands 4 and 5 as well TET
| as band 6 and T. The algorithm used ; ie So
| is the difference between the spectral KG n TRE ; alo
: values of two bands divided by their ‘Photo 6: Contrast enhancement of edges diy
sum, and this quotient multiplied by on the basis of photo 5 (black + white) sifi
| a constant. The ratio between band 4 - ch
and 5 (photo T) shows to advantage ted
differences in crops, bare soils and forests,
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Photo T: Ratio between channels 4 and Photo 8: Ratio between channels 6 and sr
5, 28. 8. 75, (black + white) T, 28. 8. 75, (black + white) Tore
400
a SSN
Sr ————
we ES RSS EE
Sa a rs ee OU EA