Difference between revisions of "1968 IMO Problems/Problem 6"
Ilovepi3.14 (talk | contribs) (→Solution) |
|||
| Line 25: | Line 25: | ||
~ilovepi3.14 | ~ilovepi3.14 | ||
| + | |||
| + | |||
| + | == Solution 3 == | ||
| + | By Hermite's identity, <cmath>\left \bigg[ n + \frac12 \right \bigg] = \bigg[ 2n \bigg] - \bigg[ n \bigg].</cmath> Hence our sum telescopes: <cmath>\sum_{k = 0}^\infty\bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] = \sum_{k = 0}^\infty\bigg[\frac{n}{2^{k + 1}} + \frac12 \bigg] = \sum_{k = 0}^\infty\bigg[\frac{n}{2^{k}} - \frac{n}{2^{k+1}} \bigg] = \bigg[ n \bigg].</cmath> | ||
| + | |||
| + | ~Maximilian113 | ||
== Resources == | == Resources == | ||
Revision as of 11:46, 5 December 2023
Problem
For every natural number 
, evaluate the sum
![\[\sum_{k = 0}^\infty\bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] = \Big[\frac{n + 1}{2}\Big] + \Big[\frac{n + 2}{4}\Big] + \cdots + \bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] + \cdots\]](http://latex.artofproblemsolving.com/a/b/2/ab23b66f352367a017f0e97492955f7eababefb9.png)
(The symbol ![$[x]$](http://latex.artofproblemsolving.com/b/c/e/bceb7b14e55d33a8bca29b7863ad3cdae95afce4.png)
denotes the greatest integer not exceeding 
.)
Solution
I shall prove that the summation is equal to .
Let the binary representation of be 
, where 
for all 
, and 
. Note that if 
, then ![$\Big[\frac{n + 2^i}{2^{i+1}}\Big]=\Big[\frac{n}{2^{i+1}}\Big]$](http://latex.artofproblemsolving.com/b/5/4/b54c79579e91033ae383f8ab1688f5b81e6f7479.png)
; and if 
, then ![$\Big[\frac{n + 2^i}{2^{i+1}}\Big]=\Big[\frac{n}{2^{i+1}}\Big]+1$](http://latex.artofproblemsolving.com/0/2/f/02f55ccd236836945c103f4958b32f778d4e9b0c.png)
. Also note that ![$\Big[\frac{n + 2^i}{2^{i+1}}\Big]=0$](http://latex.artofproblemsolving.com/d/7/a/d7a0a7529cb79963255068cb5dd57656bd39e289.png)
for all 
. Therefore the given sum is equal to
![\[\sum_{k = 0}^\infty\bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] =S+\sum_{k=0}^{x} \bigg[\frac{n}{2^{k + 1}}\bigg]\]](http://latex.artofproblemsolving.com/b/0/a/b0a48638a8a228b14ef9f8a0cc35cf391a85dffd.png)
where 
is the number of 1's in the binary representation of . Legendre's Formula states that ![$n-S=\sum_{k=0}^{x} \bigg[\frac{n}{2^{k + 1}}\bigg]$](http://latex.artofproblemsolving.com/4/4/2/4420e9dcc4e2106cbfe3994d903e9c89fb37c1a2.png)
, which proves the assertion. 
Solution 2
We observe
![\[n \equiv 2^k \text{mod }2^{k+1} \longrightarrow \left[\frac{n+1+2^k}{2^{k+1}}\right] - \left[\frac{n+2^k}{2^{k+1}}\right] = 1 \text{ and } \left[\frac{n+1+2^k}{2^{k+1}}\right] - \left[\frac{n+2^k}{2^{k+1}}\right] = 0 \text{ otherwise.}\]](http://latex.artofproblemsolving.com/b/e/c/becdcf89a9cd0b8e1709555685192daef4d32b61.png)
But ![\[D = [d \text{ } | \text{ } \exists \text{ } s \in \mathbb{N} \text{ such that } d \equiv 2^{s-1} \text{ mod } 2^s] = \mathbb{N} \longrightarrow \sum_{k = 0}^\infty\bigg[\frac{n+1 + 2^k}{2^{k + 1}}\bigg] - \sum_{k = 0}^\infty\bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] = 1,\]](http://latex.artofproblemsolving.com/7/9/d/79d1687a5cf370d600e9e3bc7f27ccad8e581345.png)
so the result is just . 
~ilovepi3.14
Solution 3
By Hermite's identity,
\[\left \bigg[ n + \frac12 \right \bigg] = \bigg[ 2n \bigg] - \bigg[ n \bigg].\] (Error compiling LaTeX. Unknown error_msg)
Hence our sum telescopes: ![\[\sum_{k = 0}^\infty\bigg[\frac{n + 2^k}{2^{k + 1}}\bigg] = \sum_{k = 0}^\infty\bigg[\frac{n}{2^{k + 1}} + \frac12 \bigg] = \sum_{k = 0}^\infty\bigg[\frac{n}{2^{k}} - \frac{n}{2^{k+1}} \bigg] = \bigg[ n \bigg].\]](http://latex.artofproblemsolving.com/1/8/a/18a9de8f19645160f2d5c1b7fdb9c4f5d6da10ce.png)
~Maximilian113
Resources
| 1968 IMO (Problems) • Resources | ||
| Preceded by Problem 5 |
1 • 2 • 3 • 4 • 5 • 6 | Followed by Last Problem |
| All IMO Problems and Solutions | ||
