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MCA NIMCET Previous Year Questions (PYQs)
MCA NIMCET Remainder PYQ
MCA NIMCET PYQ
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2015 PYQ
The remainder when
231
is divided by 5 is
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2015 PYQ
Solution
Remainder of 231 Divided by 5
To find the remainder of 231 divided by 5, we look at the cycle of powers of 2 mod 5: 2, 4, 3, 1 (repeats every 4 terms).
31 mod 4 = 3, so 231 corresponds to the 3rd term, which is 3.
Answer: 3
MCA NIMCET PYQ
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2019 PYQ
The greatest number which on dividing 1657 and 2037 leaves remainders 6 and 5 respectively, is:
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2019 PYQ
Solution
Required number = H.C.F. of (1657 - 6) and (2037 - 5)
= H.C.F. of 1651 and 2032 = 127.
MCA NIMCET PYQ
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2019 PYQ
The integers 34041 and 32506, when divided by a 3 - digit integer n, leave the same remainder. What can be the value of n?
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MCA NIMCET Previous Year PYQMCA NIMCET NIMCET 2019 PYQ
Solution
Find the difference between both 34041 and 32506. 34041 - 32506 = 1535
So n should be a factor of 1535.
Factors of 1535:-
1, 5, 307, 1535
Here, 307 is a three digit factor of 1535. So n = 307
34041 and 32506 divided by 307 leaves remainder 271.
So 307 is the answer.
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