proof of Turan’s theorem

If the graph $G$ has $n\leq p-1$ vertices it cannot contain any $p$ –clique and thus has at most ${n\choose 2}$ edges. So in this case we only have to prove that

\frac{n(n-1)}{2}\leq\left(1-\frac{1}{p-1}\right)\frac{n^{2}}{2}.

Dividing by $n^{2}$ we get

\frac{n-1}{n}=1-\frac{1}{n}\leq 1-\frac{1}{p-1},

which is true since $n\leq p-1$ .

Now we assume that $n\geq p$ and the set of vertices of $G$ is denoted by $V$ . If $G$ has the maximum number of edges possible without containing a $p$ –clique it contains a $p-1$ –clique, since otherwise we might add edges to get one. So we denote one such clique by $A$ and define $B:=G\backslash A$ .

So $A$ has ${p-1\choose 2}$ edges. We are now interested in the number of edges in $B$ , which we will call $e_{B}$ , and in the number of edges connecting $A$ and $B$ , which will be called $e_{A,B}$ . By induction we get:

e_{B}\leq\frac{1}{2}\left(1-\frac{1}{p-1}\right)\left(n-p+1\right)^{2}.

Since $G$ does not contain any $p$ –clique every vertice of $B$ is connected to at most $p-2$ vertices in $A$ and thus we get:

e_{A,B}\leq(p-2)(n-p+1).

Putting this together we get for the number of edges $|E|$ of $G$ :

|E|\leq{p-1\choose 2}+\frac{1}{2}\left(1-\frac{1}{p-1}\right)(n-p+1)^{2}+(p-2)% (n-p+1).

And thus we get:

|E|\leq\left(1-\frac{1}{p-1}\right)\frac{n^{2}}{2}.

Title	proof of Turan’s theorem
Canonical name	ProofOfTuransTheorem
Date of creation	2013-03-22 12:46:13
Last modified on	2013-03-22 12:46:13
Owner	mathwizard (128)
Last modified by	mathwizard (128)
Numerical id	6
Author	mathwizard (128)
Entry type	Proof
Classification	msc 05C99