F U N E M?

Give us an example - a hypothetical question is too much for me at this time of day.

you have a function f(x)=x²-3x+7 and f(x)=35

so 35=x²+3x+7

x²+3x-28=0

simple quadratic

Mollykins, your last statement is correct. You should be able to solve it and come up with an integer as the value of x. There is an integer value for x which solves the equation but I'm not going to tell you what it is.

Of course there is also a negative value which solves the equation

You can simply factorise it mollykins.
If it is x²-3x-28=0 you need two numbers which multiply together to give -28 and add together to give -3. That is -7 and +4.
(x-7)(x+4)=0
So that leads to the values of x

In my day a was the coefficient of x^2 and b the coefficient of the x term I'm sure it hasn't changed?
eg -3x^2 + 7x - 35 = 0

Mollikins wrote:
because there isn't a c, you can't use the quadratic formula can you to get x, there's too many unknowns isn't there?

Yes you can, but its so simple to solve when c=0, because ax^2+bx=0,
so x(x+b)=0
so x=0 and x=-b/a are the two roots in this case
but the normal formula works as well:
x=(-b+/-sqrt(b^2-4ac))/(2a)
When c=0 this becomes
x=(-b+/-sqrt(b^2))/(2a)=(-b+/-b)/(2a)
so x=(-b-b)/(2a)=-2b/2a=-b/a
and x=(-b+b)/(2a)=0
Same as above.

Vascop is correct although when he/she said
"Yes you can, but its so simple to solve when c=0, because ax^2+bx=0,
so x(x+b)=0"
I think that should have read
so x(ax+b)=0

You are doing well to stick with Maths, mollykins.

Most secondary pupils are totally bamboozled by algebra and just cannot follow it, however teachers try to approach it.

Thanks for the correction factor. I'm a he by the way.

Molly
I can understand why you chose maths. It's a fun subject, as well as being challenging and useful. What's wrong with being weird anyway? Better than being boring.