First of all we will eliminate x from our equations. In order to do that we will use our first and second equation and then we will use second and third equation.
[tex]-2x+2y+3z=0...(1)\\-2x-y+z=-3....(2)[/tex]
Upon subtracting 2 equation from 1 we will get,
[tex]3y+2z=3....(4)[/tex]
Now we will use second and third equation to eliminate x.
[tex]-2x-y+z=-3....(2)\\2x+3y+3z=5....(3)[/tex]
Adding 2nd and 3rd equation we will get,
[tex]2y+4z=2....(5)[/tex]
Now we will find out y from our 4th and 5th equation.
[tex]2*(3y+2z)=2*3....(4)\\2y+4z=2....(5)[/tex]
Upon subtracting 5th equation from 4th equation we will get,
[tex]4y=4\\y=1[/tex]
Now let us find out z by substituting y's value in 5th equation.
[tex]2*1+4z=2\\4z=2-2\\z=0[/tex]
Now we will find x from by substituting y and z's value in equation 1.
[tex]-2x+2*1+3*0=0\\-2x+2=0\\2=2x\\x=1[/tex]
Therefore, x=1, y=1 and z=0 is the solution of the given system.
