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![[Post New]](/templates/default/images/icon_minipost_new.gif) 16 Oct 2007 00:40:28 IST
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total nno. of divisors of n= 3 52 55 107 9 that are of the form 4  +2  1 is equal to a 240 b 30 c 120 d 15
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18 Oct 2007 21:22:10 IST
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hey experts?///// whr r u guys
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18 Oct 2007 22:27:59 IST
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I'm getting 660 but its not there in the choices.
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18 Oct 2007 22:45:21 IST
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u r rite buddy , even i got 660 ...choices are obviously wrong!!!
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Divisors are in the form 4k+2 = 2(2k+1)
All the odd divisors when multiplied by 2 would give the required divisors, hence we have to find the no. of odd divisors (including 1).
Exponents of odd prime divisors are 5, 10, 9.
So no. of odd divisors (including 1) are (5+1)(10+1)(9+1) = 660
Total no. of divisors of the form 4k+2 is 660, none of the options given are correct.
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Bipin Kumar Dubey
Chemical Dept.
IIT Kharagpur
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20 Oct 2007 10:56:16 IST
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3x = (4-1)x +(-1)x 5y = (4+1)y + 1 7z = (8-1)z + (-1)z so any positive integral power of 5 will be in the form of 4x +1 . even power of 3 and 7 will be in the form of 4x+1 and odd power in the form of 4x-1 . thus required no. of divisors is 8.(3.5 +3.5) = 240
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