We can write this as:
So we have:
Using a computer algebra system to perform the inverse and multiply by the constant matrix, we get:
I1 = -6 A I2 = 4 A I3 = 2 A
I1 = -6 A
I2 = 4 A
I3 = 2 A
We observe that I1 is negative, as expected from the circuit diagram.
