For any quadratic function, prove that:
$$ f(x+3)-f(x) = 3[f(x+2)-f(x+1)] $$
This was a fairly straightforward problem, I solved it by assuming $f(x)=ax^2 + bx + c$ and by simplifying $g(x)=f(x+3)-3f(x+2)+3f(x+1)-f(x)=0$. Is there any way of looking at this problem geometrically, as perhaps a consequence of some property of parabolas?
I also tried to generalize it to a cubic function, but there is a slight problem;
Let the cubic be $h(x) = Ax^3 + f(x)$ where $f(x)$ is some quadratic. So I just needed to simplify the cube since I had already proved it for any quadratic;
$$ g(x) = A[(x+3)^3 - 3(x+2)^3 + 3(x+1)^3 - x^3]$$
$$=> g(x) = A [ x^3+9x^2+27x+27-3(x^3+6x^2+12x+8)+3(x^3+3x^2+3x+1)-x^3]$$
$$=>g(x) = 6A$$
So, nearly everything cancels out but we are left with a constant term. How should I change the expression of g(x) to make it 0 instead of 6A? And how will this generalize to higher polynomial expressions? Is there any theorem for these kinds of functional polynomial expressions? I have a feeling that this has to do with the binomial coefficients which are generated when this expression expands, but that is only an intuition and I have no way of concretizing it.
Edit: Now trying the cubic with $f(x)=Ax^3+Bx^2+Cx+D$
$g(x)=f(x+4)-4f(x+3)+6f(x+2)-4f(x+1)+f(x)$
First, looking at the first term of expansion;
$A[(x+4)^3-4(x+3)^3+6(x+2)^3-4(x+1)^3+x^3]$ This evaluates out to 0.
Next quadratic term;
$B[(x+4)^2-4(x+3)^2+6(x+2)^2-4(x+1)^2+x^2]$
$=>B[x^2+8x+16-4(x^2+6x+9)+6(x^2+4x+4)-4(x^2+2x+1)+x^2]=16-36+24-4=0$
Linear term: $C[(x+4)-4(x+3)+6(x+2)-4(x+1)+x]=0$
Constant term: $D-D+D-D+D=0$
So, this can now be generalized as for an (n)th degree polynomial,
$$f(x+n+1)=(-1)^n\left[\sum_{k=0}^n (-1)^k \binom{n+1}{k}f(x+k)\right]$$
This can be proved easily by summing up individual powers and using the result established in;
