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Can we find the number of ordered triples $(x,y,z)$ of non-negative integers satisfying (i) $x \leq y \leq z$ (ii) $x + y + z \leq 100$? Source:Regional Mathematics Olympiad India (2003) Thank you.I have an ugly solution.But I am hoping for some insightful/elegant solutions.

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    It's more combinatorics proper than graph theory, I'd say...2011-11-07

2 Answers 2

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Note that $0 \leq x \leq 33$, since $3x \leq x+y+z \leq 100$.

Now fix an $0 \leq x \leq 33$.

Subtract $3x$ then we get

$(y-x)+(z-x) \leq 100-3x \,.$

Denote $a:= y-x ,\;, b := z-x$. The $0 \leq a \leq b$ and $a+b \leq 100-3x$.

Do the same again, but split it in two:

If $x$ even then $0 \leq a \leq \frac{100-3x}{2}$ and $0 \leq (b-a) \leq 100-3x-2a$.

In this case we have $0 \leq x \leq 33, x$ even ; $0 \leq a \leq \frac{100-3x}{2}$ and $0 \leq (b-a) \leq 100-3x-2a$.

If $x$ odd then $0 \leq a \leq \frac{99-3x}{2}$ and $0 \leq (b-a) \leq 100-3x-2a$.

In this case we have $0 \leq x \leq 33, x$ even ; $0 \leq a \leq \frac{99-3x}{2}$ and $0 \leq (b-a) \leq 100-3x-2a$.

Note that in both cases, the tripple $a,b-a,x$ uniquely determines $x \leq y \leq z$.

Thus we have:

$ \left[ \sum_{k=0}^{16} \sum_{a=0}^{\frac{100-6k}{2}} 100-6k-2a+1 \right]+\left[\sum_{k=0}^{16} \sum_{a=0}^{\frac{99-3(2k+1)}{2}} 100-6k-3-2a+1 \right] \,.$

Edit The $+1$ was originary missing in the bracket, there are $100-3x-2a+1$ choices $0 \leq (b-a) \leq 100-3x-2a$.

Now each sum can be calculated.

*Second edit: * Here is a formal part calculation for the formula:

$\left[ \sum_{k=0}^{16} \sum_{a=0}^{\frac{100-6k}{2}} 100-6k-2a+1 \right]= \sum_{k=0}^{16} \frac{100-6k}{2}\cdot (100-6k+1) - 2 \cdot\frac{\frac{100-6k}{2}(\frac{100-6k}{2})}{2} \,$

$\sum_{k=0}^{16} \frac{100-6k}{2}\cdot (100-6k+1 -(\frac{100-6k}{2}+1))=\frac{1}{4}\sum_{k=0}^{16}(100-6k)^2 $

This can easely be calculated, and the second term leads to a similar calculation.

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    Well the calculation at the end can clearly be done, but it is too messy to really do by hand....2011-11-07
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Take $y$ as "outermost" variable; its range is $0\leq y\leq50$. Given $y$ we have to count the number of lattice points in the set $S:=\bigl\{(x,z)\ \bigm|\ x\leq y,\ z\geq y,\ x+z\leq 100-y\bigr\}\ .$

When $3y<100$ this set is a trapezoid containing $y+1$ lattice points on its lower horizontal edge. Its left vertical edge contains $101-2y$ lattice points and its right vertical edge contains $101-3y$ lattice points. Therefore in this case we have a total of $(101-{5\over2}y)(y+1)$ lattice points in $S$.

When $3y>100$ then $S$ is a triangle with $101-2y$ lattice points on its lower horizontal edge and $101-2y$ lattice points on its left vertical edge. Therefore in this case we have a total of $(51-y)(101-2y)$ lattice points in $S$.

It follows that the overall total $N$ of triples of the described kind is given by $N\ =\sum_{y=0}^{33} (101-{5\over2}y)(y+1)\ +\ \sum_{y=34}^{50} (51-y)(101-2y)\ ,$ which Mathematica computes to $30 787$.

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    @TonyK: Thank you. I have corrected this.2011-11-10