Estel said:
solving for x using the discrimant you get (+-rt 96)/16
The sol'ns 1/2, -1/2 are incorrect. The statement is, on review, true for all real m, provided a couple of amendments are made.
Other than that, there are no probs with my reasoning, so I'm not sure what's eating you.
Estel said:
If you're saying what I think you are...
if m=1, x= +- rt(3/8)
What I'm getting at there should be crystal clear. It's a simple application of difference of two squares to solve a quadratic for x. Or, otherwise, if its easier,
8x^2 - 3 = 0
8x^2 = 3
x^2 = 3/8
x = +- rt(3/8)
Estel said:
Also, I set out to prove that the roots were real, hence I set out to prove >=.
I don't understand your wording. Did you mean to type "hence I set out to prove that the discriminant is >= 0"?
On that point, whilst proving that the discriminant (A) >= 0 does, further, prove real roots, so too does simply proving that A > 0. This is because positive numbers, with the exclusion of 0, are a subset of the real field. In this light, you should have realised, prior to answering, that F(x) would never have equal roots (and, therefore, A = 0) for any real m and could have, from that, sidestepped a false response. I'll, therefore, say this for the second time - the = from the >= can be omitted.
Estel said:
it's best to have equivalent final statements
If you think so, then why don't you? You set out to prove real roots, as you say, but then you made the false statement, A >= 0 when all you needed to do was prove A > 0 for real roots. You should rethink both your initial, and your concluding statement, man, 'cause you're contradicting yourself.
Estel said:
No it doesn't.
Anyways, it's all good dude and it's good to critique back and forth like this. The statement you got was tops, except for just a little niggly thing. It's no biggie, but I guess it's just "me being pedantic"
