Ok. Now I see a real problem. I almost was going to make one up. But that is always less fun, and takes just a little more thought on my part. So here is your problem.
K_global=[1346153.84615385 0 -1346153.84615385 576923.076923077 0 0 0 -576923.076923077 0 0;
0 384615.384615385 384615.384615385 -384615.384615385 0 0 -384615.384615385 0 0 0;
-1346153.84615385 384615.384615385 3461538.46153846 0 -1346153.84615385 -384615.384615385 -769230.769230769 0 0 0;
576923.076923077 -384615.384615385 0 3461538.46153846 -576923.076923077 -384615.384615385 0 -2692307.69230769 0 0;
0 0 -1346153.84615385 -576923.076923077 1730769.23076923 0 0 961538.461538462 -384615.384615385 -384615.384615385;
0 0 -384615.384615385 -384615.384615385 0 1730769.23076923 961538.461538462 0 -576923.076923077 -1346153.84615385;
0 -384615.384615385 -769230.769230769 0 0 961538.461538462 2115384.61538462 0 -1346153.84615385 -576923.076923077;
-576923.076923077 0 0 -2692307.69230769 961538.461538462 0 0 3076923.07692308 -384615.384615385 -384615.384615385;
0 0 0 0 -384615.384615385 -576923.076923077 -1346153.84615385 -384615.384615385 1730769.23076923 961538.461538462;
0 0 0 0 -384615.384615385 -1346153.84615385 -576923.076923077 -384615.384615385 961538.461538462 1730769.23076923];
syms Y1 Y2 X3 Y3 X5 u1 u2 u4 v4 v5
Force = [0 ; Y1 ; 0 ; Y2 ; X3 ; Y3 ; 0 ; 1000 ; X5 ; 1000];
Displacement = [u1 ; 0 ; u2 ; 0 ; 0 ; 0 ; u4 ; v4 ; 0 ; v5];
Solve will handle it trivially of course, but you don't want that. Picky, picky, picky. ;-)
The trick is to split the vectors into two pieces, making one of the pieces entirely constant, and the other one entirely variable. You have a square linear system of 10 unknowns.
First, let me break the two vectors down into their respective components. The set of all unknowns is this:
unknowns = [Y1 Y2 X3 Y3 X5 u1 u2 u4 v4 v5].';
Can we extract only the first 5 of them? Of course. I'm doing this part symbolically, just to show you how it works.
A(2,1) = 1;A(4,2) = 1;A(5,3) = 1;A(6,4) = 1;A(9,5) = 1;
A*unknowns
ans =
Similarly, I'll build a second 10x10 array that can extract the last 5 unknowns.
B(1,6) = 1;B(3,7) = 1;B(7,8) = 1;B(8,9) = 1;B(10,10) = 1;
B*unknowns
ans =
Again, that was just to show you what these matrices are doing. Next, I'll build two constant vectors.
Con1 = [0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 1000 ; 0 ; 1000];
Con2 = [0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 0 ; 0];
Now, let me convince you that these combine as you have them.
Con1 + A*unknowns
ans =
You should see this worked.
Now, what were you trying to solve? I'll expand the problem you had.
K_global*Con1 + K_global*A*unknowns = Con2 + B*unknowns
Swap some terms around...
K_global*A*unknowns - B*unknowns = Con2 - K_global*Con1
Do you see where this is heading? I'll do one more operation.
(K_global*A - B)*unknowns = Con2 - K_global*Con1
Finally, lets solve the problem, using NO symbolic algebra.
unk_num = (K_global*A - B)\(Con2 - K_global*Con1)
unk_num =
1.0e+00 *
1000
1000
5.60195357711227e-13
1000
1.33427350502589e-12
3.53635636054996e-07
-1.89978583443388e-06
1.23322581330808e-06
3.23712254484621e-06
-8.54193592985598e-06
So all 10 unknowns, solved using simple linear algebra. Just a call to backslash. The only step of any importance was to know how to construct the matrices A and B.
Does it agree with solve?
sol = solve(K_global*Force == Displacement)
double(sol.v4)
ans =
3.26632382199406e-06
That is about as close as backslash can resolve the solution in double precision arithmetic, because the numerical condition number of the linear system is moderately large. That means you should expect to see only about 8 or 9 significant digits in the solution, below the maximum element of the solution. And since we have Y1 == 1000, I would expect to start seeing problems around 1e-6 in the result.
You could probably resolve SOME of that by rescaling the variables, IF it was important to you.
