Last visit was: 22 Dec 2024, 15:07 It is currently 22 Dec 2024, 15:07

Close

GRE Prep 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

we will pick new questions that match your level based on your Timer History

Track
Your Progress

every week, we’ll send you an estimated GRE score based on your performance

Practice
Pays

we will pick new questions that match your level based on your Timer History

Not interested in getting valuable practice questions and articles delivered to your email? No problem, unsubscribe here.

Close

Request Expert Reply

Confirm Cancel
User avatar
Retired Moderator
Joined: 07 Jun 2014
Posts: 4815
Own Kudos [?]: 11268 [3]
Given Kudos: 0
GRE 1: Q167 V156
WE:Business Development (Energy and Utilities)
Send PM
avatar
Intern
Intern
Joined: 26 Mar 2015
Posts: 2
Own Kudos [?]: 0 [0]
Given Kudos: 0
Send PM
avatar
Intern
Intern
Joined: 12 Apr 2018
Posts: 2
Own Kudos [?]: 0 [0]
Given Kudos: 0
Send PM
avatar
Manager
Manager
Joined: 26 Jan 2018
Posts: 189
Own Kudos [?]: 167 [0]
Given Kudos: 0
GRE 1: Q165 V156
Send PM
Re: GRE Math Challenge #41 [#permalink]
sagar wrote:
expert advice is needed.I dont agree with the answer.



The person answering this is expert.

@sandy can you please elaborate how 4C2 is further resolved and in what conditions we use it?
User avatar
Retired Moderator
Joined: 07 Jun 2014
Posts: 4815
Own Kudos [?]: 11268 [3]
Given Kudos: 0
GRE 1: Q167 V156
WE:Business Development (Energy and Utilities)
Send PM
Re: GRE Math Challenge #41 [#permalink]
1
1
Expert Reply
1
Bookmarks
The way we can select 2 objects from a list of 4 is \(C^{4}_{2}=\frac{4!}{2! \times 2!}=6\). Hence there are 6 ways of choosing a pair of number from 4 numbers.

Now when we eyeball the data we see only one number pair whose sum is 8 (2+4).

Hence the probability is \(\frac{1}{6}\)
avatar
Manager
Manager
Joined: 28 Nov 2017
Posts: 56
Own Kudos [?]: 82 [0]
Given Kudos: 0
Send PM
Re: GRE Math Challenge #41-From the even numbers between 1 and 9 [#permalink]
4
Option A :

Different Approach

Sum of two Numbers to be 8 which leaves us with only two possible numbers (2 & 6)

So for the 1st Number we have 2 options either to select 2 or 6 from total of 4 numbers : 2/4

For the 2nd Number since we have already selected 1 out of 2 or 6 , the # of ways to select the other number : 1/3 (Since 1 Number is already selected we only have 3 Numbers Left)

Solutions = 2/4*1/3 = 2/12 = 1/6
avatar
Intern
Intern
Joined: 06 Jul 2020
Posts: 8
Own Kudos [?]: 3 [1]
Given Kudos: 0
Send PM
Re: GRE Math Challenge #41-From the even numbers between 1 and 9 [#permalink]
1
One more approach:

1) The set consists of {2, 4, 6, 8}
2) Only 2 and 6 add up to 8
3) Two ways to get 8, choose 6 & 2 or 2 & 6
4) Therefore, P = (1/4) * (1/3) * 2 = (2/12) = (1/6)
User avatar
GRE Prep Club Legend
GRE Prep Club Legend
Joined: 07 Jan 2021
Posts: 5089
Own Kudos [?]: 76 [0]
Given Kudos: 0
Send PM
Re: GRE Math Challenge #41-From the even numbers between 1 and 9 [#permalink]
Hello from the GRE Prep Club BumpBot!

Thanks to another GRE Prep Club member, I have just discovered this valuable topic, yet it had no discussion for over a year. I am now bumping it up - doing my job. I think you may find it valuable (esp those replies with Kudos).

Want to see all other topics I dig out? Follow me (click follow button on profile). You will receive a summary of all topics I bump in your profile area as well as via email.
Prep Club for GRE Bot
Re: GRE Math Challenge #41-From the even numbers between 1 and 9 [#permalink]
Moderators:
GRE Instructor
88 posts
GRE Forum Moderator
37 posts
Moderator
1115 posts
GRE Instructor
234 posts

Powered by phpBB © phpBB Group | Emoji artwork provided by EmojiOne