Question

Question #704fa

Answer 1

`k=2`

Explanation:

For a quadratic equation to have equal roots (also known as a double root, or having a multiplicity of 2), the discriminant must equal 0.

So `b^2-4ac=0`

In this problem `a=(k-3), b=2(k-3), and c=-1`

Thus:

`(2(k-3))^2-4(k-3)(-1)=0`

`4(k^2-6k+9)+4k-12=0`

`4k^2-24k+36+4k-12=0`

`4k^2-20k+24=0`

`4(k^2-5k+6)=0`

`4(k-2)(k-3)=0`

So `k=2 or 3`

However `k=3` is an extraneous solution because if you plug in `3` into the original equation you end up getting `-1=0` which is false.

So `k=2` is the only solution.