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Source: — Data Sufficiency |
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by tryin700 » Mon Jul 13, 2009 9:26 pm
Given

p = POSITIVE, ODD and INTEGER

what is the remainder of p/4?

1) p/8 leaves remainder 5

or p=8q+5

substitute q=0,1,2,3 we get 5,13,21 and so on

dividing each of the above with 4 gives us 1 hence SUFF

2) p=a^2 +b^2

given p is odd
we know E=O+E or E+O

substitute integers in the above like

a=2 and b=3
p=4+9=13 divide by4 gives us 1
a=3 and b=4
p=9+16=25 divide by4 gives us 1

Hence SUFF

Hence D
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by navalpike » Tue Jul 14, 2009 12:03 pm
For 1) once you get p = 8q + 5, it is even faster to realize that this is equal to

P = 4(2q) + 5, meaning P is a multiple of 4 with remainder 5.

But recall that you can only have remainders of 0, 1, 2, and 3 when dividing something by 4. So turn the equation in to

P = 4(2q) + 4 + 1.

Since 4 is just another multiple of 4, remainder = 1.
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by navalpike » Thu Jul 16, 2009 9:55 am
Also, As for 2),

since Odd = Even +ODD
P = (2k)^2 + (2k+1)^2
4k^2+4k^2+4k+1

First three terms are all multiples of 4, thus leaving 1 as remainder.
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