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The sum of the odd/even integers
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Updated on: 22 Jan 2016, 07:30
Updated on: 22 Jan 2016, 07:30
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00:00
Question Stats:
69% (01:12) correct
30% (00:52) wrong based on 249 sessions
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Quantity A |
Quantity B |
The sum of the odd integers from 1 to 199 |
The sum of the even integers from 2 to 198 |
A)The quantity in Column A is greater.
B)The quantity in Column B is greater.
C)The two quantities are equal.
D)The relationship cannot be determined from the information given.
Practice Questions
Question: 7
Page: 458
Difficulty: medium
Question: 7
Page: 458
Difficulty: medium
Re: The sum of the odd/even integers
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10 May 2020, 03:57
10 May 2020, 03:57
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There is a formula to calculate sum of consecutive integers.
Sum of consecutive int = num of int * average
for 1-199:
Num of int = (largest - smallest)/2 + 1
=(199-1)/2 + 1 = 198/2 + 1
= 99 + 1 = 100
Avg = (largest + smallest)/2
=(199+1)/2
=100
So sum = Num * avg
= 100 * 100 = 10000
for 2-198:
Num of int = (largest - smallest)/2 + 1
=(198-2)/2 + 1 = 196/2 + 1
= 98 + 1 = 99
Avg = (largest + smallest)/2
=(198+2)/2
=100
So sum = Num * avg
= 99 * 100 = 9900
So quantity A is greater
Experts please confirm if my solution is correct? Thank you
Sum of consecutive int = num of int * average
for 1-199:
Num of int = (largest - smallest)/2 + 1
=(199-1)/2 + 1 = 198/2 + 1
= 99 + 1 = 100
Avg = (largest + smallest)/2
=(199+1)/2
=100
So sum = Num * avg
= 100 * 100 = 10000
for 2-198:
Num of int = (largest - smallest)/2 + 1
=(198-2)/2 + 1 = 196/2 + 1
= 98 + 1 = 99
Avg = (largest + smallest)/2
=(198+2)/2
=100
So sum = Num * avg
= 99 * 100 = 9900
So quantity A is greater
Experts please confirm if my solution is correct? Thank you
General Discussion
Re: The sum of the odd/even integers
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22 Jan 2016, 07:45
22 Jan 2016, 07:45
1
Expert Reply
1
Bookmarks
Solution
The most straightforward way to solve this question, among the others, is to count the numbers in the sets
From quantity \(A\) we do have that
\(199+1=\frac{200}{2}=100\) So we have the precise middle of the set, the average
Then count the numbers in the set \(199-1=\frac{198}{2}=99+1=100\) (we divide by two because we want only the odd numbers, one yes one no)
Multiply \(100*100=10000\)
Same for quantity \(B\)
\(198+2=\frac{200}{2}=100\)
\(198-2=\frac{196}{2}=98+1=99\)
\(99*100=9900\)
\(A > B\)
The answer is\(A\)
Note: if we were in GMAT Land the question would specify that the numbers at the extreme of the set are inclusive or not. Here, we assume that they are inclusive.
The most straightforward way to solve this question, among the others, is to count the numbers in the sets
From quantity \(A\) we do have that
\(199+1=\frac{200}{2}=100\) So we have the precise middle of the set, the average
Then count the numbers in the set \(199-1=\frac{198}{2}=99+1=100\) (we divide by two because we want only the odd numbers, one yes one no)
Multiply \(100*100=10000\)
Same for quantity \(B\)
\(198+2=\frac{200}{2}=100\)
\(198-2=\frac{196}{2}=98+1=99\)
\(99*100=9900\)
\(A > B\)
The answer is\(A\)
Note: if we were in GMAT Land the question would specify that the numbers at the extreme of the set are inclusive or not. Here, we assume that they are inclusive.
