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655-705 (Hard)|   Exponents|   Remainders|      
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AnkitK
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 14 Jul 2011, 01:45
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Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!

Difficulty:

65% (hard)

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64% (02:09) correct 36% (02:24) wrong based on 484 sessions

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If \(x = (16^3+17^3+18^3+19^3)\), then x when divided by 70 leaves a remainder of:

A. 0
B. 1
C. 69
D. 35
E. 42
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A
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 12 Sep 2018, 09:42
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This question can be solved by focusing on only the units digit of x and the answer choices. The units digit of the answer choices are all unique. So, by knowing only the units digit of x we can know the units digit of the right answer.

This would NOT work if the units digit of the answer choices were all the same - in this case say 0, 10, 20, 30, and 40. But, of course, the GMAT is a test of your ability to think and simplify, not of your ability to do a bunch of arithmetic, so this is the type of thing you want to be on the lookout for.

So in this case

The units digit of 16 cubed is 6
The units digit of 17 cubed is 3
The units digit of 18 cubed is 2
The units digit of 19 cubed is 9

6 + 3 + 2 + 9 = 20. So, x has a units digit of 0. So, the remainder of x divided by 70 will also have a units digit of 0. A is the only answer choices that works.

A is correct.

Think before you math
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 14 Jul 2011, 02:21
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AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

OA. 0
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We know:
\(a^3 + b^3 = (a + b)*(a^2 - ab + b^2)\)

\(16^3 + 19^3 = (35)(16^2 - 16*19 + 19^2)\)
\(17^3 + 18^3 = (35)(17^2 - 17*18 + 18^2)\)

Therefore, \((16^3+17^3+18^3+19^3) = 35(16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\)

\((16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\) is a multiple of 2 since we have (Even - Even + Odd + Odd - Even + Even). Hence the entire expression is Even.
Therefore, x is divisible by 70.

Why did I think of algebraic identities? - because exponents were 3 for all the terms and there seemed to be no +1, -1 symmetry. The numbers weren't close to a multiple of 70 and were too big. Most people don't know the squares/cubes of 16, 17 etc.
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 14 Jul 2011, 02:30
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AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

OA. 0
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Hi Ankit, I dont think GMAT will ask this , but to answer your question , the best way to do this is
a^+b^3 = (a+b)(a^2 -ab +b^2)
( 16^3+19^3) + (17^3+18^3)
(16+17)( 16^2 -16*19+19^2) + (17+18)(17^2-17*18 +18^2)

35*( 16^2 -16*19+19^2) (17^2-17*18 +18^2)

.
so we can re write the equation as
35^(even -even+odd)(even-even+odd)
odd*odd = even = atleast one 2

35*2 (...........) (...........)
when this equation is divided by 70 , we will have 0 as the remainder.

hope this helps.
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 15 Jul 2011, 23:33
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AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

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A good to know question IMO but still I would take it this way-

At first glance I read a symmetry here as I break the \(A^3 + B^3\)formula- pair of 16, 19 and of 17,18 give me a total of 35 (something useful considering I am looking for divisibility by 70. Now my job is half done but I have still to check whether the remaining is even - to check for divisibility by 2).

after opening the formula \(A^3 + B^3\) nd rearranging terms one would get-

Lets recall - \((A^3 + B^3) = (A+B)(A^2 + B^2 - A*B)\)..
so pair 1 gives- \((16^2 + 19^2 - 16*19 ) (16+19) = 35 * (16^2 + 19^2 - 16*19 )\)
pair 2 gives- \((17^2 + 18^2 - 17*18) (17+18) = 35 * (17^2 + 18^2 - 17*18)\)
now lets add them, so we have got now-
\((35) * (16^2 + 17^2 + 18^2 + 19^2 - 16*19 - 17*18) -\)
to get down finally we need to determine whether \((16^2 + 17^2 + 18^2 + 19^2 - 16*19 - 17*18)\) is divisible by 2 - (Even + Odd + Even + Odd - Even - Even).
You see we are done here (obviously remainder is big ZERO :!:
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 11 Sep 2018, 22:16
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rahul16singh28
If \(x = (16^3 + 17^3 + 18^3 + 19^3)\), then x divided by 70 leaves remainder of


1. 0
2. 1
3. 69
4. 35
5. 42
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Note:- \(a^n+b^n\) is divisible by (a+b) when n is ODD.

In line with the above, \(a^3+b^3\) is divisible by (a+b)

a) \(17^3 + 18^3\) is divisible by 17+18=35
b) \(16^3 + 19^3\) is divisible by 16+19=35
c) Sum of unit digits of 17^3 + 18^3, 3+2=5, Sum of unit digits of 16^3 + 19^3, 6+9=15. So the given expression is an EVEN number

Hence from (a),(b), and (c), we have
\(x = (16^3 + 17^3 + 18^3 + 19^3)\)=\(17^3 + 18^3+16^3 + 19^3=35k+35p=35*2*y=70y\)
So, the given expression when divided by 70 leaves a remainder 0.

Ans. (A)

Another approach:-
\(a^n+b^n+c^n+d^n\) is divisible by (a+b+c+d) when n is ODD , a, b, c, and d are in A.P.(Arithmetic progression)
Here 16,17,18, and 19 are in AP. n=3, which is ODD’
Hence, \(x = (16^3 + 17^3 + 18^3 + 19^3)\) is divisible by (16+17+18+19=70)

Therefore, remainder is zero.
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 11 Sep 2018, 22:36
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a^3+b^3=(a+b)(a^2+b^2-ab)
16^3+19^3=35k
17^3+18^3=35k
So x=35k +35k=70k
1) is the answer
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 12 Sep 2018, 03:43
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VeritasKarishma
AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

OA. 0

We know:
\(a^3 + b^3 = (a + b)*(a^2 - ab + b^2)\)

\(16^3 + 19^3 = (35)(16^2 - 16*19 + 19^2)\)
\(17^3 + 18^3 = (35)(17^2 - 17*18 + 18^2)\)

Therefore, \((16^3+17^3+18^3+19^3) = 35(16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\)

\((16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\) is a multiple of 2 since we have (Even - Even + Odd + Odd - Even + Even). Hence the entire expression is Even.
Therefore, x is divisible by 70.

Why did I think of algebraic identities? - because exponents were 3 for all the terms and there seemed to be no +1, -1 symmetry. The numbers weren't close to a multiple of 70 and were too big. Most people don't know the squares/cubes of 16, 17 etc.
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Hi....

would the following logic work?

16^3 + 17^3 is iv by 33
18^3 + 19^3 is div by 37

therefore

16^3 + 17^3 + 18^3 + 19^3 is div by 33+37 or 70

regards
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 12 Sep 2018, 05:23
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Mansoor50
VeritasKarishma
AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

OA. 0

We know:
\(a^3 + b^3 = (a + b)*(a^2 - ab + b^2)\)

\(16^3 + 19^3 = (35)(16^2 - 16*19 + 19^2)\)
\(17^3 + 18^3 = (35)(17^2 - 17*18 + 18^2)\)

Therefore, \((16^3+17^3+18^3+19^3) = 35(16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\)

\((16^2 - 16*19 + 19^2 + 17^2 - 17*18 + 18^2)\) is a multiple of 2 since we have (Even - Even + Odd + Odd - Even + Even). Hence the entire expression is Even.
Therefore, x is divisible by 70.

Why did I think of algebraic identities? - because exponents were 3 for all the terms and there seemed to be no +1, -1 symmetry. The numbers weren't close to a multiple of 70 and were too big. Most people don't know the squares/cubes of 16, 17 etc.

Hi....

would the following logic work?

16^3 + 17^3 is iv by 33
18^3 + 19^3 is div by 37

therefore

16^3 + 17^3 + 18^3 + 19^3 is div by 33+37 or 70

regards
Show more

Think about it:

a is divisible by 3 (say a = 6)
and b is divisible by 5 (say b = 5)

Does this mean (a + b = 11) is divisible by 8? It is certainly not necessary.
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 12 Sep 2018, 06:04
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VeritasKarishma
Mansoor50
AnkitK
If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remainder of :-

Hi....

would the following logic work?

16^3 + 17^3 is iv by 33
18^3 + 19^3 is div by 37

therefore

16^3 + 17^3 + 18^3 + 19^3 is div by 33+37 or 70

regards

Think about it:

a is divisible by 3 (say a = 6)
and b is divisible by 5 (say b = 5)

Does this mean (a + b = 11) is divisible by 8? It is certainly not necessary.
Show more

Thanks!!! i should have tested the assumption myself....!!
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 17 Mar 2021, 00:54
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A bit of a different way of analyzing the problem.


We can break up the divisor into its prime factors and look for a number that has the same remainder properties as X = 16^3 + 17^3 + 18^3 + 19^3 when it is divided by 70

Divisor 70 = 2 * 5 * 7


(1st) what remainder does X yield when divided by 7?

(16’3 /7)Rof + (17’3 /7)Rof + (18’3 /7)Rof + (19’3 /7)Rof = excess remainder when X is divided by 7

= (2)’3 + (3)’3 + (-3)’3 + (-2)’3

= 8 + 27 - 27 - 8 = 0

X is a number that yields a remainder of 0 when divided by 7.

(2nd)divide X by 5. We can use the Units Digit of each portion to find the remainder and Add the remainders

16’3 = .....6 ——— Rem of 1

+

17’3 = .....3 ——— Rem of 3

+

18’3 = ....2 ——— Rem of 2

+

19’3 =......9 ——- Rem of 4

1 + 3 + 2 + 4 = excess remainder of 10

10/5 —— Rem of 0

X is a number when divided by 5 yields a remainder of 0

(3rd) divide X by 2

Using the Even/odd nature of the values and the fact that an exponent does not change the even/odd nature of a given number:

X = (even) + (odd) + (even) + (odd) = EVEN integer result

X is a number that leaves a remainder of 0 when divided by 2


Thus: X = 7a = 5b = 2c

Which means X is:

-multiple of 7

-multiple of 5

And multiple of 2


By the factor foundation rule, this means that X is also a multiple of 70.

The remainder is 0

Answer (A)

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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 28 Mar 2021, 08:48
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I am not sure if this method is correct, but this is how I did it:

x = \(16^3 + (16 + 1)^3 + (16 + 2)^3 + (16+3)^3\)

for 70 => 7 x 10, so first tried to find remainder when dividing by 7,

for \(16^3\) mod 7, remainder is 1

also 16 mod 7 = 2

so, \((16 + 1)^3\) mod 7 = \(3^3\) mod 7 = 6

Similarly, for the \((16 + 2)^3, (16 + 3)^3\), remainders when divided by 7 are 1, 6 resp.

Adding all remainders: 1 + 6+ 1 + 6 = 14 and 14 mod 7 = 0

and now, dividing by 10 also, the remainder stays 0.

Ans A

VeritasKarishma could you please comment if this method is correct
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 30 Mar 2021, 01:15
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Iq
I am not sure if this method is correct, but this is how I did it:

x = \(16^3 + (16 + 1)^3 + (16 + 2)^3 + (16+3)^3\)

for 70 => 7 x 10, so first tried to find remainder when dividing by 7,

for \(16^3\) mod 7, remainder is 1

also 16 mod 7 = 2

so, \((16 + 1)^3\) mod 7 = \(3^3\) mod 7 = 6

Similarly, for the \((16 + 2)^3, (16 + 3)^3\), remainders when divided by 7 are 1, 6 resp.

Adding all remainders: 1 + 6+ 1 + 6 = 14 and 14 mod 7 = 0

and now, dividing by 10 also, the remainder stays 0.

Ans A

VeritasKarishma could you please comment if this method is correct
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Yes, since 7 and 10 are co-prime, if you get the same remainder on division by both, that will be the remainder on division by 70 too.
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 02 Apr 2021, 12:20
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jaysonbeatty12
This question can be solved by focusing on only the units digit of x and the answer choices. The units digit of the answer choices are all unique. So, by knowing only the units digit of x we can know the units digit of the right answer.

This would NOT work if the units digit of the answer choices were all the same - in this case say 0, 10, 20, 30, and 40. But, of course, the GMAT is a test of your ability to think and simplify, not of your ability to do a bunch of arithmetic, so this is the type of thing you want to be on the lookout for.

So in this case

The units digit of 16 cubed is 6
The units digit of 17 cubed is 3
The units digit of 18 cubed is 2
The units digit of 19 cubed is 9

6 + 3 + 2 + 9 = 20. So, x has a units digit of 0. So, the remainder of x divided by 70 will also have a units digit of 0. A is the only answer choices that works.

A is correct.

Think before you math
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If we are checking remainder for 70, shouldn't we check for both 7 and 10. 20 is divisible by 10 but has a different remainder with 7
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 10 Jan 2025, 09:47
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Wouldn't this way to solve mean that any number ending with 0 as x would get a 0 remainder when divided by 70? This would mean that for example if we have x=1210 it should be divisible by 70, but this is not the case.
jaysonbeatty12
This question can be solved by focusing on only the units digit of x and the answer choices. The units digit of the answer choices are all unique. So, by knowing only the units digit of x we can know the units digit of the right answer.

This would NOT work if the units digit of the answer choices were all the same - in this case say 0, 10, 20, 30, and 40. But, of course, the GMAT is a test of your ability to think and simplify, not of your ability to do a bunch of arithmetic, so this is the type of thing you want to be on the lookout for.

So in this case

The units digit of 16 cubed is 6
The units digit of 17 cubed is 3
The units digit of 18 cubed is 2
The units digit of 19 cubed is 9

6 + 3 + 2 + 9 = 20. So, x has a units digit of 0. So, the remainder of x divided by 70 will also have a units digit of 0. A is the only answer choices that works.

A is correct.

Think before you math
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If x = (16^3+17^3+18^3+19^3), then x when divided by 70 leaves a remai 10 Jan 2025, 12:40
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Tomsapo
Wouldn't this way to solve mean that any number ending with 0 as x would get a 0 remainder when divided by 70? This would mean that for example if we have x=1210 it should be divisible by 70, but this is not the case.
jaysonbeatty12
This question can be solved by focusing on only the units digit of x and the answer choices. The units digit of the answer choices are all unique. So, by knowing only the units digit of x we can know the units digit of the right answer.

This would NOT work if the units digit of the answer choices were all the same - in this case say 0, 10, 20, 30, and 40. But, of course, the GMAT is a test of your ability to think and simplify, not of your ability to do a bunch of arithmetic, so this is the type of thing you want to be on the lookout for.

So in this case

The units digit of 16 cubed is 6
The units digit of 17 cubed is 3
The units digit of 18 cubed is 2
The units digit of 19 cubed is 9

6 + 3 + 2 + 9 = 20. So, x has a units digit of 0. So, the remainder of x divided by 70 will also have a units digit of 0. A is the only answer choices that works.

A is correct.

Think before you math
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If x = 1210; 1210/70 will give you remainder 20 - the last digit here is 0. That's the reason they mention that the method would NOT work if the units digit of answer choices were all same - 0, 10, 20, 30, and 40.

When x is divided by any multiple of 10, the units digit of the remainder is same as the units digit of x.
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Krunaal
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