Events & Promotions
|
|
GMAT Club Daily Prep
Thank you for using the timer - this advanced tool can estimate your performance and suggest more practice questions. We have subscribed you to Daily Prep Questions via email.
Customized
for You
Track
Your Progress
Practice
Pays
Not interested in getting valuable practice questions and articles delivered to your email? No problem, unsubscribe here.
Apr 2610:00 AM EDT
-11:00 AM EDT
The Target Test Prep course represents a quantum leap forward in GMAT preparation, a radical reinterpretation of the way that students should study. Try before you buy with a 5-day, full-access trial of the course for FREE!
Apr 2711:00 AM EDT
-12:00 PM EDT
Prefer video-based learning? The Target Test Prep OnDemand course is a one-of-a-kind video masterclass featuring 400 hours of lecture-style teaching by Scott Woodbury-Stewart, founder of Target Test Prep and one of the most accomplished GMAT instructors
Apr 2808:00 AM PDT
-11:00 AM PDT
Whether you are just beginning your MBA journey or fine-tuning your path to a 700+ score, GMAT Day is designed to give you a competitive edge.
06 Feb 2017, 13:16
Kudos
Bookmarks
A
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
85%
(hard)
Question Stats:
64% (03:24) correct
36%
(03:13)
wrong
based on 416
sessions
History
Date
Time
Result
Not Attempted Yet
Set X consists of the first 100 positive even integers. Set Y consists of the first 100 positive multiples of 5. If the terms in both sets are combined to create a new set with no repeat elements, what is the sum of all unique terms in the new set?
a) 33250
b) 34350
c) 35750
d) 36300
e) 37500
a) 33250
b) 34350
c) 35750
d) 36300
e) 37500
06 Feb 2017, 14:36
Kudos
Bookmarks
Sum of first 100 positive even integers: 2 + 4 + 6 + 8 + ....+ 200 = [100 (2+200)]/2 = 10100
Sum of first 100 positive multiples of 5: 5 + 10 + 15 + ... + 500 = [100 (5+500)]/2 = 25250
Sum of multiples of 10 till 200: 10 + 20 + 30 + ... + 200 = [20 (10+200)]/2 = 2100
Therefore: Sum of all unique terms in the new set = 10100 + 25250 - 2100 = 33250 (A)
Sum of first 100 positive multiples of 5: 5 + 10 + 15 + ... + 500 = [100 (5+500)]/2 = 25250
Sum of multiples of 10 till 200: 10 + 20 + 30 + ... + 200 = [20 (10+200)]/2 = 2100
Therefore: Sum of all unique terms in the new set = 10100 + 25250 - 2100 = 33250 (A)
BillyZ
Current Student
Joined: 14 Nov 2016
Last visit: 24 Jan 2026
Posts: 1,135
Given Kudos: 926
Location: Malaysia
Concentration: General Management, Strategy
Schools: Sloan '23 (D) Tuck '23 (D) Darden '23 (D) Ross '23 (D) Kellogg '23 (D) Wharton '23 (D) Booth '23 (D) Fuqua '24 (A) Harvard '24 (D) Stanford '24 (D)
GMAT 1: 750 Q51 V40 (Online)
GPA: 3.53
Products:
Schools: Sloan '23 (D) Tuck '23 (D) Darden '23 (D) Ross '23 (D) Kellogg '23 (D) Wharton '23 (D) Booth '23 (D) Fuqua '24 (A) Harvard '24 (D) Stanford '24 (D)
GMAT 1: 750 Q51 V40 (Online)
Posts: 1,135
12 Feb 2017, 07:32
Kudos
Bookmarks
Matruco
Official solution from Veritas Prep.
This problem heavily rewards you for knowing how to quickly calculate the sum of an evenly-spaced set. When you look at the two sets, you have:
\(Set X\): \(2, 4, 6, 8, 10….198, 200\)
\(Set Y\): \(5, 10, 15, 20…495, 500\)
And note that you do not need to perform a “count” to make sure you have exactly 100 terms in each set. Multiples of 2 are defined as 2 times an integer, so the first 100 terms will be 1 * 2, 2 * 2, 3 * 2… up to 100 * 2. Same for multiples of 5: 1 * 5, 2 * 5, 3 * 5…100 * 5. So you know that your ending number for each set will be 100 times the common multiple.
When you’re dealing with evenly-spaced set, the median equals the mean. So you can quickly calculate the average by averaging the first and last term. For Set X, that’s \(\frac{(2 + 200)}{2} = 101\), and for Set Y that’s \(\frac{(5 + 500)}{2} = 252.5\).
Now you’ll use the Average = Sum of Terms / Number of Terms rule to your advantage. The sum of the terms (what you want) can be calculated by multiplying the average times the number of terms. So for Set X that’s 100(101) = 10100. And for Set Y that’s 100(252.5) = 25250.
At this point you can sum those two sets to arrive at 35350. But wait – the question specified “unique terms” and “no repeat elements.” So here you will have to subtract out the numbers that are multiples of both 2 and 5. Which are those? The multiples of 10.
But be careful: Here you do not have 100 multiples of 10; you only have the multiples of 10 up to 200 (where the set of even numbers stops). So you’ll calculate the multiples of 10 between 10 and 200, inclusive. Again, take the average (105) and multiply by the number of terms (20) to get 2100. When you subtract that from 35350 you’ll have the correct answer, 33250.
