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![[Post New]](/templates/default/images/icon_minipost_new.gif) 30 Jan 2007 23:10:46 IST
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The numbers x,y are chosen at random from 1,2, ................, 3n. What is the probability that x^3 + y^3 is divisible by 3 ??
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Killer instinct is required for success |
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31 Jan 2007 00:46:40 IST
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Hi
The possibilities are
1.x congruent to 0(mod 3) , y congruent to 0(mod 3) (for n>=2)
2.x congruent to 1(mod 3) , y congruent to 2(mod 3)
Case 1
Favourable outcomes= nC2
Case 2
Favourable outcomes=n^2 Hence the probability= (nC2+n^2) / (3n)C2 for n>=2....for n=1 it is n^2 / (3n)C2 as the first case is not possible
Do note that i have considered 1^3 + 2^3 and 2^3 + 1^3 as the same (which has to be the case as we just need to select nos) and also x not equal to y...
Hope it is right...
Shyam
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31 Jan 2007 10:04:00 IST
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is the answer 1/3 ???
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Manasi....
NIT-Allahabad...
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Challenges are High, Dreams r New..
The World out thr is waiting for U !!
Dare to dream, Dare to Try..
No Goal is distant, no Star is too high !!! |
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Hii, Magico is right. The answer is 1/3. x^3 + y^3 = (x+y)^3 - 3xy(x+y) is divisible by 3 only when (x+y)^3 is divisible by 3 i.e when x+y is divisible by 3. Probability of x^3 + y^3 being divisible by 3 = probability of x+y being divisible by 3 = 1/3 ( since, there can be only three equal no. of cases 1. x+y = 3k 2. x+y = 3k +1 3. x+y = 3k+2 ) Hence, the answer is 1/3 Cheers !!!!
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You never know what is enough till you know what is more than enough.
Titun |
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31 Jan 2007 19:19:28 IST
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yeah, its the same thing wat i hav done, moreover we hav one more approach
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Manasi....
NIT-Allahabad...
............................................................
Challenges are High, Dreams r New..
The World out thr is waiting for U !!
Dare to dream, Dare to Try..
No Goal is distant, no Star is too high !!! |
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1 Feb 2007 10:07:58 IST
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well if you look at my reply carefully, it turns out to be 1/3 for all values of n !!!....
Cheers!!!
Shyam
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