Alternating Sum

'Alternating Sum' printed from https://nrich.maths.org/

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Answer: 4015

Add 1 for each odd number
$\therefore$ $n$ is the 2008th odd number
Which is 2008$\times$2$-$1 = 4015

If you liked this problem, here is an NRICH task which challenges you to use similar mathematical ideas.

This problem is taken from the UKMT Mathematical Challenges.

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