ıLU) | L(3) | L(4)j L(5) | L(6)j L(7) | L(8)|L(9) | Luo),
(s-) |
(s-1)
(s)
(s-)
(s)
(S-1)
(s)
rn)
(Ss).
(s-1) — >52
ts) Figure 10-5 Pattern of M,
p= 80% 997 60% WC).
ts-1)
2)1;29-9)! I(29-7) ! ! (29-5) | (29-3
L(3) | L(4) | L(5) | L(6) | L(7) | ; . ILC);
|unius I
(g-2) 1)
(g-2)
|
|.
IL
(9-2)
(g-2)
(9-2)
(9-2)
(9-2)
(S)
9
(S) -4)
(8) |(— S) |
(s) | |
d
3
Figure 11. Patterns of M,p=q=80% .
If the side lap in this case is increased to 60%,
it would not be possible to construct the cross
models, .as they become incomplete. The same
principles described for homogeneous networks could
be extended to cases of increased p$, q$.
Figure 12. Computer output of pattern of M,p=60%,
q=20%,9=5,s=3 .m=1,F.1z0.
SANT
o 0 o oO oO —œL(k)
9, |92| |93| |94| [9s
f olofoloJoYof[olo][o| =.
Figure 13. Shift of
strips: arrangement of
photographs, tie points
and models,p=60%,
q=20%.
—À LL)
b(k,k) D(k,k+ =
L3) (—- S)
o zd
>= b(k,k)
(——*996) (6)
Figure 14. Sub-block B(x) for shifted strips.
ew eu rrr i à] |
ri] | le —=L (k+1) P 7
el
|!
| €
J
Figure 15. Sub-matrix b(k,k*1) for irregular
boundaries .
248
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