HP 49g+ User Manual

Page 11-35

First, we check the pivot

a

11

. We notice that the element with the largest

absolute value in the first row and first column is the value of

a

31

= 8. Since

we want this number to be the pivot, then we exchange rows 1 and 3, by
using:

1#3L @RSWP. The augmented matrix and the permutation

matrix now are:

8 16 -1

41 0 0 1

2 0

3

-1 0 1 0

1 2

3

2 0 0 1

Checking the pivot at position (1,1) we now find that 16 is a better pivot than
8, thus, we perform a column swap as follows:

1#2‚N @@OK@@

@RSWP. The augmented matrix and the permutation matrix now are:

16 8

-1

41 0 0 1

0

2

3

-1 1 0 0

2

1

3

2 0 1 0

Now we have the largest possible value in position (1,1), i.e., we performed
full pivoting at (1,1). Next, we proceed to divide by the pivot:
16Y1L @RCI@ . The permutation matrix does not change, but the
augmented matrix is now:

1 1/2 -1/16

41/16

0 0 1

0 2 3 -1

1 0 0

2 1 3 2

0 1 0

The next step is to eliminate the 2 from position (3,2) by using:
2\#1#3@RCIJ

1 1/2 -1/16

41/16

0

0 1

0 2 3 -1

1

0 0

0 0 25/8

-25/8

0

1 0

Having filled up with zeros the elements of column 1 below the pivot, now we
proceed to check the pivot at position (2,2). We find that the number 3 in
position (2,3) will be a better pivot, thus, we exchange columns 2 and 3 by
using:

2#3 ‚N@@@OK@@

1 -1/16 1/2 41/16 0 1 0