Algebra Set

For the second one:

Using the Cauchy-Schwarz Inequality we can write, $\displaystyle \begin{array}{c}\\ \bigg( (1-x_1)^2 + (x_1 - x_2 )^2 +\dotsb + (x_{n-1} - x_n)^2 + x_n^2 \bigg) \bigg( 1^2 + 1^2 + \dotsb + 1^2 + 1^2 \bigg) \geq & \\ \bigg( (1-x_1) + (x_1 - x_2 ) +\dotsb + (x_{n-1} - x_n)+ x_n \bigg)^2 & \\ \end{array}$

$\displaystyle \Rightarrow \Big( (1-x_1)^2 + (x_1 - x_2 )^2 +\dotsb + (x_{n-1} - x_n)^2 + x_n^2 \Big) (n+1) \geq ( 1)^2$ $\displaystyle \Rightarrow (1-x_1)^2 + (x_1 - x_2 )^2 +\dotsb + (x_{n-1} - x_n)^2 + x_n^2 \geq \frac{1}{n+1}$

But it is given that the equality condition holds true. Therefore, from the condition of equality in Cauchy-Schwarz, we obtain,
$\displaystyle \frac{1-x_1}{1} = \frac{x_1 - x_2}{1} = \dots = \frac{x_{n-1} - x_n}{1} = \frac{x_n}{1}$ $\displaystyle \Rightarrow x_{n-1} = 2x_n \text{ , } x_{n-2} = 3x_n ,\dotsc, \text{ } x_2 = (n-1)x_n \text{ and } x_1 = nx_n$.
Also, $\displaystyle 1 = x_1 + x_n \Rightarrow (n+1)x_n = 1 \Rightarrow x_n = \frac{1}{n+1}$.

Hence, $\displaystyle x_i = \frac{n+1-i}{n+1} \text{ ; } i = 1,2,3, \dotsc , n-1, n$

I know of a "crude" solution to 3, which only uses basic knowledge of conic sections. It has a nice interpretation that way.

For no.1 I have a weird start, this might helps.

Substituting $m \rightarrow 1, 2, 3, ..., n-1$ we get

$f(2n-i) + f(i) = f(3n) = f(2n-j) + f(j)$ for every $i,j = 1, 2, ..., n-1$

We see that if $a+b = c+d$, then $f(a)+f(b)=f(c)+f(d)$ for positive integers $a,b,c,d$.

I have no idea to do anything right meow. I suck at this thing XD

Feel free to post ideas and solutions! :D

For question $2$, does the solution only occur when $n=0$ with $x_{0}=1$?