Difference between revisions of "Software tutorial/Matrix operations"
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== Matrix operations == | == Matrix operations == | ||
Revision as of 21:22, 4 October 2010
Matrix operations
In this section we will show how to calculate the LU decomposition, matrix inverse, norms and condition number of a matrix in MATLAB and Python.
Let \(A = \left(\begin{array}{cccc} 4 & 0 & 1 \\ 0 & 6 & 2 \\ 3.2 & 7 & 4 \end{array} \right)\) and let \(b = \left(\begin{array}{cccc} 9.1 \\ 2 \\ 0 \end{array} \right) \)
| MATLAB | Python |
|---|---|
A = [4, 0, 1; 0, 6, 2; 3.2, 7, 4];
% LU decomposition of A
[L,U,P] = lu(A)
L =
1.0000 0 0
0.8000 1.0000 0
0 0.8571 1.0000
U =
4.0000 0 1.0000
0 7.0000 3.2000
0 0 -0.7429
P =
1 0 0
0 0 1
0 1 0
The P matrix shows that rows 2 and rows 3 were interchanged during the Gauss elimination pivoting steps. |
import numpy as np
from scipy.linalg import *
A = np.array([[4, 0, 1],[0, 6, 2],[3.2, 7, 4]])
LU, P = lu_factor(A)
>>> LU
array([[ 4. , 0. , 1. ],
[ 0.8 , 7. , 3.2 ],
[ 0. , 0.85714286, -0.74285714]])
>>> P
array([0, 2, 2])
The LU matrices are overlayed in the output. Notice that the results are the same as MATLAB's, except we do not need to store the diagonal set of ones from the L matrix. The P vector is also a bit cryptic - it should be read from left to right, in order. The way to read it is that row \(i\) of matrix \(A\) was interchanged with row P[i] in \(A\), where i is the index into vector P.
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Once we have \(L, U\) and \(P\) we can solve the system of equations for a given vector, \(b\). It takes a bit more work to do this in MATLAB than with Python. Recall from class that \(A = LU\), but with a permutation or pivot matrix, it becomes \(PA = LU\), or alternatively: \(A = P^{-1}LU\)
\[ \begin{align} Ax &= b \\ P^{-1}LUx &= b \\ \text{Let}\qquad Ux &= y \\ \text{Then solve}\qquad \left(P^{-1}L\right)y &= b \qquad \text{for}\,\, y \\ \text{Finally, solve}\qquad Ux &= y \qquad \text{for}\,\, x \end{align} \]
| MATLAB | Python |
|---|---|
b = [9.1, 2, 0]';
[L,U,P] = lu(A);
y = mldivide(inv(P)*L, b);
x = mldivide(U, y);
>> x
x =
5.0481
4.0308
-11.0923
% Verify the solution:
>> A*x - b
ans =
1.0e-14 *
0.1776
0
0
The small values of the solution error indicate that our LU solution is accurate. You should compare the LU solution with solution from mldivide(A, b). |
LU, P = lu_factor(A)
b = np.array([9.1, 2, 0])
x = lu_solve((LU,P), b)
>>> x
array([ 5.04807692, 4.03076923, -11.09230769])
# Verify the solution:
>>> np.dot(A, x) - b
array([ 1.77635684e-15, 0.00000000e+00, 0.00000000e+00])
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