Author Topic: Any linear equation people here? Need some help.  (Read 1633 times)

Ace

  • Autococker
  • Posts: 661
Any linear equation people here? Need some help.
« on: March 11, 2015, 01:41:25 AM »
So I'm doing an a bit of a pre-assessment for something, and I feel like I am missing something on this question:


Solve the following and explain your answer:

x1 - 2x2 + 3x3 = 0

-2x1 - 3x2 - 4x3 = 0

2x1 - 4x2 + 4x3 = 0


Now I know how to solve a normal 3 variable system, but with this, since they are all set to 0, how exactly would I solve it? Or would I just solve it by saying that there are an infinite number of solutions since any variable == 0 would mean the other two could be anything. Maybe I'm just brain farting, but some help would be sweet.

FusSioN

  • Autococker
  • Posts: 603
Re: Any linear equation people here? Need some help.
« Reply #1 on: March 11, 2015, 03:22:55 AM »
I remembered I studied this months ago but forgot it 3 months later.

Cameron

  • Global Moderator
  • Autococker
  • Posts: 2686
Re: Any linear equation people here? Need some help.
« Reply #2 on: March 11, 2015, 03:29:49 AM »
Should only be the trivial solution of x1=x2=x3=0.  You would get more than one solution if you had a free variable, but that isn't the case here.  Also just for the sake of it in mathematica:

Code: [Select]
Solve[x - 2 y + 3 z == 0 && -2 x - 3 y - 4 z == 0 && 2 x - 4 y + 4 z == 0, {x, y, z}]
{{x -> 0, y -> 0, z -> 0}}

prozajik

  • Autococker
  • Posts: 761
Re: Any linear equation people here? Need some help.
« Reply #3 on: March 11, 2015, 03:35:03 AM »
Isn't just the exact solution 0? What method did you use for solving it? There are quite a few methods, simplest being discriminant method and maybe gaussian elimination.

I tried solving it with gaussian and came up with sth like this
Quote
1 -2  3 0
-2 -3 -4 0
 2 -4  4 0

1. line * 2 -> 2 -4 3 0
switch 1. line and 2. line

-2 -3 -4 0
 0 -7  6 0
 0 -7  7 0

-2 -3 -4 0
 0 -7  6 0
 0  0  1 0

z = 0
y = 0
x = 0
Might be wrong, did it during a lecture lol, i went through some online equation solvers and they all came up with 0 too.

The only question i have is if it isn't some kind of 'exception' as in 1=0, but i doubt it

EDIT:Agreed with Cameron

Ace

  • Autococker
  • Posts: 661
Re: Any linear equation people here? Need some help.
« Reply #4 on: March 11, 2015, 11:20:46 AM »
Thanks guys, I was using Gaussian and got the same answers, but I just thought I was missing something, seemed too simple.