I simple PS

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radhika1306: Master | Next Rank: 500 Posts; Posts: 144; Joined: Fri Apr 13, 2007 2:25 am

I simple PS

by radhika1306 » Fri Aug 03, 2007 2:08 pm

. What is the total number of integers between 100 and 200 that are divisible by 3?
(A) 33
(B) 32
(C) 31
(D) 30

What is an easier way to solve this
Ans A

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Source: Beat The GMAT — Problem Solving | Fri Aug 03, 2007 2:08 pm

mindruna: Junior | Next Rank: 30 Posts; Posts: 27; Joined: Mon Mar 19, 2007 6:23 pm; Location: Cambridge, MA

by mindruna » Fri Aug 03, 2007 4:03 pm

This is the way I usually do it:

200-100= 100

100/3=33.33

Answer is 33

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RM: Senior | Next Rank: 100 Posts; Posts: 47; Joined: Sat Jun 16, 2007 10:58 pm

by RM » Fri Aug 03, 2007 10:35 pm

3 x 34 = 102 (First Integer b/w 100-200, divisible by 3)
3 x 35 =105
.
.
3 x 66 = 199(Last Integer b/w 100-200, divisible by 3)

Therefore, number of integers between 100-200 divisible by 3 equals
66 - 34 + 1 = 33

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gabriel: Legendary Member; Posts: 986; Joined: Wed Dec 20, 2006 11:07 am; Location: India; Thanked: 51 times; Followed by:1 members

by gabriel » Sat Aug 04, 2007 12:07 am

mindruna wrote:This is the way I usually do it:

200-100= 100

100/3=33.33

Answer is 33

.. U know what .. that need not always be true ...

.. consider the example of the interval 200 - 300 .. applying ur method we would arrive at the conclusion that 33 numbers are divisible by 3 .. but in reality in the interval 200 - 300 there are 34 numbers divisible 3 ..

.. it all depends if the first number of the series is divisible by 3 ..

.. just to be safe i would go with RM's method ...

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mindruna: Junior | Next Rank: 30 Posts; Posts: 27; Joined: Mon Mar 19, 2007 6:23 pm; Location: Cambridge, MA

by mindruna » Sat Aug 04, 2007 4:32 am

You guys are totally right. Thanks for the correction!

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radhika1306: Master | Next Rank: 500 Posts; Posts: 144; Joined: Fri Apr 13, 2007 2:25 am

by radhika1306 » Tue Aug 07, 2007 4:26 am

thanks guys:)

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recocollins: Junior | Next Rank: 30 Posts; Posts: 10; Joined: Fri Apr 20, 2007 1:18 pm

by recocollins » Tue Aug 07, 2007 10:41 am

The question asks how many integers btw 100-200. Thus the beginning and ending numbers aren't included so thus can't be counted.

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beny: Master | Next Rank: 500 Posts; Posts: 214; Joined: Fri Jul 20, 2007 1:35 am; Thanked: 3 times

by beny » Tue Aug 07, 2007 5:24 pm

recocollins wrote:The question asks how many integers btw 100-200. Thus the beginning and ending numbers aren't included so thus can't be counted.

The begining and ending numbers aren't divisible by 3 anyway...

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gmatz: Junior | Next Rank: 30 Posts; Posts: 14; Joined: Fri Jul 27, 2007 4:30 pm

Another Shortcut

by gmatz » Wed Aug 08, 2007 7:12 am

Here is the way I look at these. If you're looking for multiples of 3 between 100 - 200, you can rephrase the question as how many integers are between 102 - 198 inclusive? So 198 - 102 = 96. 96/3 = 32 + 1 = 33. Remember you add 1 (which is representing a set of consecutive numbers) because the rephrased statement says [u]inclusive[/u].