Last visit was: 28 Apr 2026, 11:20 It is currently 28 Apr 2026, 11:20
Home
Messages
Tests
Schools
Events
Close
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

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 GMAT 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.
Go to My Error Log Learn more
Close
Request Expert Reply
Confirm Cancel
Back to Forum
Create Topic
805+ (Hard)|   Probability|      
User avatar
Bunuel
User avatar
Math Expert
Joined: 02 Sep 2009
Last visit: 28 Apr 2026
Posts: 109,950
Own Kudos:
811,761
 [41]
Given Kudos: 105,927
Products:
GMAT Club Tests Forum Quiz
Expert
Expert reply
Active GMAT Club Expert! Tag them with @ followed by their username for a faster response.
Posts: 109,950
Kudos: 811,761
 [41]
What is the probability that u/v/w and x/y/z are reciprocal fractions? Updated on: 07 Apr 2020, 04:35
Originally posted by Bunuel on 30 Oct 2014, 09:46.
Last edited by GMATBusters on 07 Apr 2020, 04:35, edited 1 time in total.
Formatting done in the expression
2
Kudos
Add Kudos
39
Bookmarks
Bookmark this Post
00:00
Start Timer
Pause Timer
Resume Timer
Show Answer
Hide
Show
History
C
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!

Difficulty:

95% (hard)

Question Stats:

42% (02:03) correct 58% (01:53) wrong based on 466 sessions

History

Date
Time
Result
Not Attempted Yet

Tough and Tricky questions: Probability.



What is the probability that (u/v)/w and (x/y)/z are reciprocal fractions?

(1) v, w, y, and z are each randomly chosen from the first 100 positive integers.
(2) The product (u)(x) is the median of 100 consecutive integers.
ShowHide Answer
Official Answer
C
Most Helpful Reply
User avatar
anairamitch1804
User avatar
Joined: 26 Oct 2016
Last visit: 20 Apr 2019
Posts: 502
Own Kudos:
3,606
 [24]
Given Kudos: 877
Location: United States
Concentration: Marketing, International Business
Schools: HBS '19
GMAT 1: 770 Q51 V44
GPA: 4
WE:Education (Education)
Schools: HBS '19
GMAT 1: 770 Q51 V44
Posts: 502
Kudos: 3,606
 [24]
What is the probability that u/v/w and x/y/z are reciprocal fractions? 06 Jan 2017, 07:06
14
Kudos
Add Kudos
10
Bookmarks
Bookmark this Post
Please find the solution of this problem attached.
Attachments

tough&tricky.PNG
tough&tricky.PNG [ 27.35 KiB | Viewed 11079 times ]

General Discussion
User avatar
Thoughtosphere
User avatar
Joined: 02 Jul 2012
Last visit: 24 Nov 2021
Posts: 147
Own Kudos:
817
 [1]
Given Kudos: 84
Location: India
Schools: IIMC  (A)
GMAT 1: 720 Q50 V38
GPA: 2.6
WE:Information Technology (Consulting)
Products:
My Reviews
Schools: IIMC  (A)
GMAT 1: 720 Q50 V38
Posts: 147
Kudos: 817
 [1]
What is the probability that u/v/w and x/y/z are reciprocal fractions? 30 Oct 2014, 18:20
Kudos
Add Kudos
1
Bookmarks
Bookmark this Post
Bunuel

Tough and Tricky questions: Probability.



What is the probability that u/v/w and x/y/z are reciprocal fractions?

(1) v, w, y, and z are each randomly chosen from the first 100 positive integers.
(2) The product (u)(x) is the median of 100 consecutive integers.
Show more

I got this one wrong. Please correct my reasoning:

1 - we only know about v,w,y,z. No information about u and x - Insufficient
2. u*x is the median of 100 consecutive integers. Firstly, the only information provided is about u and x and secondly, the the consecutive integers can start from anywhere. They may be negative positive, some negative some positive, so Insufficient

Combining the two, We have some information about v,w,y,z but info about u and x is unclear

So E
User avatar
romitsn
User avatar
Joined: 23 Sep 2012
Last visit: 19 Apr 2025
Posts: 20
Own Kudos:
134
 [3]
Given Kudos: 5
Concentration: Technology, Operations
GMAT 1: 740 Q50 V40
GPA: 4
WE:Information Technology (Computer Software)
Products:
My Reviews
GMAT 1: 740 Q50 V40
Posts: 20
Kudos: 134
 [3]
What is the probability that u/v/w and x/y/z are reciprocal fractions? 31 Oct 2014, 12:00
2
Kudos
Add Kudos
1
Bookmarks
Bookmark this Post
@ThoughttoSphere:

the question stem can be rephrased as : Is (v)(w)(y)(z)=(u)(x) ?



Statement 1: really doesn't tells us anything except that v,w , y and z are integers chosen from the first 100 positive integers. Clearly not sufficient.

Statement 2: tells us that product of x and u is the median of 100 consecutive integers. Now whatever be the set of 100 consecutive integers, the median is always going to be the mean of the 50th and 51st term and since the terms are consecutive, the median will be x.5 which is not an integer. Clearly not sufficient by itself.

Combining 1 and 2 - we can surely tell that since v,w,y and z are integers their product can never be equal to a fraction.

Hence C.
User avatar
desaichinmay22
User avatar
Joined: 21 Sep 2012
Last visit: 22 May 2016
Posts: 188
Own Kudos:
469
Given Kudos: 31
Location: United States
Concentration: Finance, Economics
Schools: CBS '17
GPA: 4
WE:General Management (Consumer Packaged Goods)
Schools: CBS '17
Posts: 188
Kudos: 469
What is the probability that u/v/w and x/y/z are reciprocal fractions? 01 Nov 2014, 06:10
Kudos
Add Kudos
Bookmarks
Bookmark this Post
romitsn
@ThoughttoSphere:

the question stem can be rephrased as : Is (v)(w)(y)(z)=(u)(x) ?



Statement 1: really doesn't tells us anything except that v,w , y and z are integers chosen from the first 100 positive integers. Clearly not sufficient.

Statement 2: tells us that product of x and u is the median of 100 consecutive integers. Now whatever be the set of 100 consecutive integers, the median is always going to be the mean of the 50th and 51st term and since the terms are consecutive, the median will be x.5 which is not an integer. Clearly not sufficient by itself.

Combining 1 and 2 - we can surely tell that since v,w,y and z are integers their product can never be equal to a fraction.

Hence C.
Show more

Please explain how did you get

the question stem can be rephrased as : Is (v)(w)(y)(z)=(u)(x) ?

User avatar
Vetrik
User avatar
Joined: 04 Jul 2014
Last visit: 05 Jan 2022
Posts: 37
Own Kudos:
90
 [1]
Given Kudos: 40
Schools: Smeal" 20
Schools: Smeal" 20
Posts: 37
Kudos: 90
 [1]
What is the probability that u/v/w and x/y/z are reciprocal fractions? 05 Nov 2014, 13:46
1
Kudos
Add Kudos
Bookmarks
Bookmark this Post
u/v/w & x/y/z are the two fractions given.


I can interpret it in two ways

1. [u/v] / w & [x/y] / z ....in this case ...we get the equation ux = yzvw ...and hence ans C.

2. But if i interpret the fraction as

U / [v/w] & X / [y/z] ....in this case....we get the equation uwxz = vy ...i.e. ux = vy / wz i.e. 50.5 = vy / wz [50.5 if we consider 1 to 100]

So this equation can give somenumber point five and no way we can determine if reciprocals or not . Hence here ans E.


@@bunuel ....should the question have more clarity . Please suggest.
avatar
longfellow
avatar
Joined: 02 Jul 2015
Last visit: 13 Sep 2022
Posts: 88
Own Kudos:
47
Given Kudos: 59
Schools: ISB '18
GMAT 1: 680 Q49 V33
Schools: ISB '18
GMAT 1: 680 Q49 V33
Posts: 88
Kudos: 47
What is the probability that u/v/w and x/y/z are reciprocal fractions? 12 Sep 2015, 05:34
Kudos
Add Kudos
Bookmarks
Bookmark this Post
Not sure about the answer as the expression in the question is not clear. I could not get an expression which I could take as a premise. Different interpretations, different expressions. Bunuel.. a little help please!
avatar
manishtank1988
avatar
Joined: 14 Oct 2012
Last visit: 31 Oct 2019
Posts: 112
Own Kudos:
287
Given Kudos: 1,023
Products:
My Reviews
Posts: 112
Kudos: 287
What is the probability that u/v/w and x/y/z are reciprocal fractions? 19 Oct 2016, 18:10
Kudos
Add Kudos
Bookmarks
Bookmark this Post
Question: (u*w)/v = y/(x*z) ?
[1] v, w, y, z E {1,2, ... 99, 100} Not sufficient...
[2] ux = (50+51)/2 = 101/2 = 50.5 Not sufficient...
[1]+[2]: ux = 50.5 = (v/w)*(y/z)
Now no pair of random values from 1 to 100 can form (101/2) as 101 is a prime number. So ux |= (v/w)*(y/z) => (u*w)/v |= y/(x*z) Sufficient.
Answer C
User avatar
shekyonline
User avatar
Joined: 10 Apr 2015
Last visit: 30 Dec 2017
Posts: 114
Own Kudos:
99
Given Kudos: 35
GPA: 3.31
Posts: 114
Kudos: 99
What is the probability that u/v/w and x/y/z are reciprocal fractions? 26 Nov 2016, 04:24
Kudos
Add Kudos
Bookmarks
Bookmark this Post
This can be simplified as follows:
What is the probability that ux/vy/wz = 1 ?
What is the probability that ux/vy = wz ?
Finally: What is the probability that ux = vywz ?

Statement (1) tells us that vywz is an integer, since it is the product of integers. However, this gives no information about u and x and is herefore not sufficient to answer the question.

Statement (2) tells us that ux is NOT an integer. This is because the median of an even number of consecutive integers is NOT an integer. (For example, the median of 4 consecut ive integers - 9, 10, 11, 12 - equals 10.5.) However, this gives us no information about vywz and is therefore not sufficient to answer the question. Taking both statements together, we know that vywz IS an integer and that ux is NOT an integer. Therefore vywz CANNOT be equal to ux. The probability that the fractions are
reciprocals is zero. The correct answer is C: Statements (1) and (2) TAKEN TOGETHER are sufficient to answer the question, but NEITHER statement ALONE is sufficient
User avatar
Sidhrt
User avatar
Joined: 09 Nov 2013
Last visit: 12 Sep 2022
Posts: 48
Own Kudos:
33
Given Kudos: 32
Posts: 48
Kudos: 33
What is the probability that u/v/w and x/y/z are reciprocal fractions? 28 Nov 2016, 11:03
Kudos
Add Kudos
Bookmarks
Bookmark this Post
if we know we can calculate the probability that all x,z,u,w,v, and y are integers, we get the answer.
User avatar
hellosanthosh2k2
User avatar
Joined: 02 Apr 2014
Last visit: 07 Dec 2020
Posts: 360
Own Kudos:
620
Given Kudos: 1,227
Location: India
Schools: XLRI"20
GMAT 1: 700 Q50 V34
GPA: 3.5
Schools: XLRI"20
GMAT 1: 700 Q50 V34
Posts: 360
Kudos: 620
What is the probability that u/v/w and x/y/z are reciprocal fractions? 22 Nov 2017, 12:43
Kudos
Add Kudos
Bookmarks
Bookmark this Post
anairamitch1804
Please find the solution of this problem attached.
Show more

Hi anairamitch1804 Bunuel chetan2u

can we call 1/2.5 as a fraction or fraction needs to be strictly reduced form of integers?

Thanks
User avatar
bumpbot
User avatar
Non-Human User
Joined: 09 Sep 2013
Last visit: 04 Jan 2021
Posts: 38,986
Own Kudos:
1,119
Posts: 38,986
Kudos: 1,119
What is the probability that u/v/w and x/y/z are reciprocal fractions? 06 Oct 2025, 08:09
Kudos
Add Kudos
Bookmarks
Bookmark this Post
Automated notice from GMAT Club BumpBot:

A member just gave Kudos to this thread, showing it’s still useful. I’ve bumped it to the top so more people can benefit. Feel free to add your own questions or solutions.

This post was generated automatically.
Moderators:
Bunuel
Math Expert
109950 posts
kingbucky
498 posts
Gmat860sanskar
212 posts