Determine which of the two numbers <math>\displaystyle \sqrt{c+1}-\sqrt{c}</math>, <math>\displaystyle\sqrt{c}-\sqrt{c-1}</math> is greater for any <math>\displaystyle c\ge 1</math>.

Multiplying and dividing <math>\displaystyle \sqrt{c+1}-\sqrt c</math> by its conjugate,

<math>\displaystyle \sqrt{c+1}-\sqrt c=\frac{(\sqrt{c+1})^2-(\sqrt c)^2}{\sqrt{c+1}+\sqrt{c}}=\frac1{\sqrt{c+1}+\sqrt{c}}.</math>

Similarly, <math>\displaystyle \sqrt c-\sqrt{c-1}=\frac{1}{\sqrt c-\sqrt{c-1}}</math>. We know that  <math>\displaystyle \frac1{\sqrt{c+1}+\sqrt{c}}<\frac{1}{\sqrt c-\sqrt{c-1}}</math> for all positive <math>\displaystyle c</math>, so <math>\displaystyle \sqrt{c+1}-\sqrt c <\sqrt c-\sqrt{c-1}</math>.

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