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20 Dec 2010, 10:10
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C
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
95%
(hard)
Question Stats:
30% (02:11) correct
70%
(02:05)
wrong
based on 159
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Does the prime number p divide n!?
(1) Prime number p divides n! + (n+2)!.
(2) The prime number p divides (n+2)!/n!.
(1) Prime number p divides n! + (n+2)!.
(2) The prime number p divides (n+2)!/n!.
20 Dec 2010, 11:30
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surendar26
The question should be: is the prime number p a factor of n!, where n is a nonnegative integer.
(Basically the question asks whether \(p\leq{n}\))
(1) p is a factor of \(n!+(n+2)!\) --> \(p\) is a factor of \(n!(1+(n+1)(n+2))\).
Now, if \(p=3\) and \(n=0\) (\(n!+(n+2)!=1+2=3\)) then the answer will be NO: \(p=3\) is not a factor of \(n!=0!=1\).
But if \(p=2\) and \(n=2\) (\(n!+(n+2)!=2+24=26\)) then the answer will be YES: \(p=2\) is a factor of \(n!=2!=2\).
Two different answer, hence not sufficient.
(2) p is a factor of \(\frac{(n+2)!}{n!}\) --> \(p\) is a factor of \((n+1)(n+2)\).
Now, if \(p=2\) and \(n=0\) then the answer will be NO but if \(p=2\) and \(n=2\) then the answer will be YES. Not sufficient.
(1)+(2) Now, \((n+1)(n+2)\) and \((n+1)(n+2)+1\) are consecutive integers. Two consecutive integers are co-prime, which means that they don't share ANY common factor but 1. For example 20 and 21 are consecutive integers, thus only common factor they share is 1. So, as from (2) \(p\) is a factor of \((n+1)(n+2)\) then it can not be a factor of \((n+1)(n+2)+1\), thus in order \(p\) to be a factor of \(n!*((n+1)(n+2)+1)\), from (1), then it should be a factor of the first multiple of this expression: \(n!\). Sufficient.
Answer: C.
General Discussion
15 Apr 2011, 22:15
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Actually there is a pattern in divisibility. Let's say a+b is divisible by c then we are not sure if a is divisible by c. But if b is divisible by c then a is divisible by c. Hence combining 1) + 2) works. I don't have see a better to solve this in 60 secs. But will love to hear from others.
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