Bob and Wendy left home to walk together to a restaurant for dinner. They started out walking at a constant pace of 3 mph. At precisely the halfway point, Bob realized he had forgotten to lock the front door of their home. Wendy continued on to the restaurant at the same constant pace. Meanwhile, Bob, traveling at a new constant speed on the same route, returned home to lock the door and then went to the restaurant to join Wendy. How long did Wendy have to wait for Bob at the restaurant?
(1) Bob’s average speed for the entire journey was 4 mph.
(2) On his journey, Bob spent 32 more minutes alone than he did walking with Wendy.
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Bhandaripreeti
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IMO C
using A we can find the new speed with which he returns midway to hime and then to restraunt.
We need to know the distance between their home and the restaurant.
Using B alone we cannot find anything as there will be two unknowns.
Using both we can find the distance and hence the time difference.
Whats the OA
using A we can find the new speed with which he returns midway to hime and then to restraunt.
We need to know the distance between their home and the restaurant.
Using B alone we cannot find anything as there will be two unknowns.
Using both we can find the distance and hence the time difference.
Whats the OA
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samirpandeyit62
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stmt 1: 2 unknowns so we cannot find the time
stmt 2: On his journey, Bob spent 32 more minutes alone than he did walking with Wendy.
suppose distance is x hence windy travelled x whereas bob travelled 2x
now in this 32 mins windy travelled x/2 wheras bob travelled 1.5 x
time taken by windy = x/2 / 3 =x/6
time taken by bob = 32 mins = .5 hrs approx or 1.5x/S(new speed of bob)
so the time windy had to wait was .5 - x/6
but here still we cannot find x coz we dont know the new constant speed of bob.
so IMO ans should be C
stmt 2: On his journey, Bob spent 32 more minutes alone than he did walking with Wendy.
suppose distance is x hence windy travelled x whereas bob travelled 2x
now in this 32 mins windy travelled x/2 wheras bob travelled 1.5 x
time taken by windy = x/2 / 3 =x/6
time taken by bob = 32 mins = .5 hrs approx or 1.5x/S(new speed of bob)
so the time windy had to wait was .5 - x/6
but here still we cannot find x coz we dont know the new constant speed of bob.
so IMO ans should be C
Regards
Samir
Samir
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mallard906
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Guys, We all are wrong 
. The answer is indeed B
Here is the explanation.Yesterday while taking MGMT CAT I encountered this question.
To see why this statement is sufficient, it is helpful to think of Bob's journey in two legs: the first leg walking together with Wendy (t1), and the second walking alone (t2). Bob's total travel time tb = t1 + t2. Because Wendy traveled halfway to the restaurant with Bob, her total travel time tw = 2t1. Substituting these expressions for tb – tw,
t1 + t2 – 2t1 = t2 – t1
tb – tw = t2 – t1
Statement (2) tells us that Bob spent 32 more minutes traveling alone than with Wendy. In other words, t2 – t1 = 32. Wendy waited at the restaurant for 32 minutes for Bob to arrive.
The correct answer is B.
tw=2t1 is the catch that we all missed
. The answer is indeed BHere is the explanation.Yesterday while taking MGMT CAT I encountered this question.
To see why this statement is sufficient, it is helpful to think of Bob's journey in two legs: the first leg walking together with Wendy (t1), and the second walking alone (t2). Bob's total travel time tb = t1 + t2. Because Wendy traveled halfway to the restaurant with Bob, her total travel time tw = 2t1. Substituting these expressions for tb – tw,
t1 + t2 – 2t1 = t2 – t1
tb – tw = t2 – t1
Statement (2) tells us that Bob spent 32 more minutes traveling alone than with Wendy. In other words, t2 – t1 = 32. Wendy waited at the restaurant for 32 minutes for Bob to arrive.
The correct answer is B.
tw=2t1 is the catch that we all missed
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samirpandeyit62
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Hi Saurabh,
stmt 2: On his journey, Bob spent 32 more minutes alone than he did walking with Wendy.
now you quoted tb= t1 + t2
tw= 2t1
& tb – tw = t2 – t1
now here acooridng to the stmt 2, t2 =32 mins = time Bob walked alone i.e time he walked without windy
so if t2-t1 =32, in that case t1 =0, which is not possible
So I'm not convinced that ans could be B
What are ur thoughts
stmt 2: On his journey, Bob spent 32 more minutes alone than he did walking with Wendy.
now you quoted tb= t1 + t2
tw= 2t1
& tb – tw = t2 – t1
now here acooridng to the stmt 2, t2 =32 mins = time Bob walked alone i.e time he walked without windy
so if t2-t1 =32, in that case t1 =0, which is not possible
So I'm not convinced that ans could be B
What are ur thoughts
Regards
Samir
Samir
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samirpandeyit62
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Thanks kajcha,
I agree with u coz equations give the ans as B, but I wonder if we get such a question on the GMAT, what will we answer?, the stmt 2 here is somewhat misleading.
I agree with u coz equations give the ans as B, but I wonder if we get such a question on the GMAT, what will we answer?, the stmt 2 here is somewhat misleading.
Regards
Samir
Samir
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on the lighter side :If we get such questions in GMAT we will mark the wrong answer and still come back with a high score 
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Stacey Koprince
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This is a REALLY hard question. If you see something like this on the test, be happy, even if you don't get it right!
Yes, the wording is a bit tricky and, yes, you can sometimes get similar wording on the real test. Most of the time the wording is fairly straightforward but sometimes on the hardest questions, if you miss even a single word, it will change the whole problem.
For example, check out this OG problem (10th edition, PS #284):
On a certain road, 10 percent of the motorists exceed the posted speed limit and receive speeding tickets, but 20 percent of the motorists who exceed the posted speed limit do not receive speeding tickets. What percent of the motorists on that road exceed the posted speed limit?
(A) 10.5 %
(B) 12.5 %
(C) 15 %
(D) 22 %
(E) 30 %
When I give this one in class, the vast majority get it wrong the first time. Once they know how to do it, though, they realize the catch, and they realize they need to REMEMBER that catch so that they won't make the same mistake when they see a problem of this type again. The key is to learn the setup so that you can avoid the trap the next time.
(I'll post the OA down below in a separate post for people who want to try it without looking at the answer.)
Yes, the wording is a bit tricky and, yes, you can sometimes get similar wording on the real test. Most of the time the wording is fairly straightforward but sometimes on the hardest questions, if you miss even a single word, it will change the whole problem.
For example, check out this OG problem (10th edition, PS #284):
On a certain road, 10 percent of the motorists exceed the posted speed limit and receive speeding tickets, but 20 percent of the motorists who exceed the posted speed limit do not receive speeding tickets. What percent of the motorists on that road exceed the posted speed limit?
(A) 10.5 %
(B) 12.5 %
(C) 15 %
(D) 22 %
(E) 30 %
When I give this one in class, the vast majority get it wrong the first time. Once they know how to do it, though, they realize the catch, and they realize they need to REMEMBER that catch so that they won't make the same mistake when they see a problem of this type again. The key is to learn the setup so that you can avoid the trap the next time.
(I'll post the OA down below in a separate post for people who want to try it without looking at the answer.)
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The answer to the above PS question is B. The answer is NOT E, though most people pick it (even people who learn our double-set matrix method for doing this problem). Why? The wording. (What's the key word?)
I won't put an explanation up yet - play with it.
I won't put an explanation up yet - play with it.
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B it is.
Suppose there are x total motorists.
Suppose there are y motorists that exceed speed limit
x/10 gets ticket.
y/5 don't get ticket.
x/10 + y/5 = y . Solve to get y/x = 5/40.
% of motorists who exceed speed limit = 5*100/40 = 12.5%
Suppose there are x total motorists.
Suppose there are y motorists that exceed speed limit
x/10 gets ticket.
y/5 don't get ticket.
x/10 + y/5 = y . Solve to get y/x = 5/40.
% of motorists who exceed speed limit = 5*100/40 = 12.5%
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But I am still confused 
The question says 10 percent of the motorists exceed the posted speed limit and receive speeding tickets.
when there are x motorist x/10 gets tickets - I agree
But x/10 also exceed the posted speed,rite?
I know I am missing something
Would you please explain
The question says 10 percent of the motorists exceed the posted speed limit and receive speeding tickets.
when there are x motorist x/10 gets tickets - I agree
But x/10 also exceed the posted speed,rite?
I know I am missing something
Would you please explain
