[superprismatic]

Here's a cute little problem I

read in one of Martin Gardner's

pieces a while back. When I first

tried to work it, I made lots of

equations and even more variables

and, well, generally botched it!

I am paraphrasing Gardners wording

of it, so forgive my lack of

eloquence. I searched on this site

for it without success. If it was

never on this site, it certainly

deserves to be here!

My wife drives me to and from work

every day along the same route, both

coming and going. I leave work at

precisely the same time, 5 PM, that

my wife pulls up in the car. One

day, my boss let me leave early.

I left work at exactly 4 PM. Rather

than wait an hour for my wife to get

there, I decided to walk along the

route that she takes. At some point,

she saw me walking, picked me up,

did a U-turn, and drove home. I

noticed that we arrived home 10

minutes earlier than we usually do.

How long had I been walking before

my wife picked me up?

Assume idealized conditions, i.e.,

the car trip from home to work

takes precisely the same time as

from work to home, U-turns and

getting into the car are

instantaneous events, etc.

[Guest]

  Reveal hidden contents

55 minutes.

This is without any calculations, so if this is the right answer, I'll explain why!

[superprismatic]

  On 9/17/2009 at 3:49 PM, DeeGee said:

  Reveal hidden contents

55 minutes.

This is without any calculations, so if this is the right answer, I'll explain why!

  Reveal hidden contents

Yes! It's very simple when you look at it the right way, isn't it?

[Guest]

  Reveal hidden contents

The ten minutes that was saved was obtained from them meeting (her picking him up) earlier than normal. She was able to pick him up early because of the shorter distance she had to drive. This saved distance would be the same both directions and the time saved would be equally split, coming and going. The ten minutes saved resulted from a one way trip that was five minutes shorter.

5 PM minus 5 minutes = 4:55 PM

He walked for 55 minutes.

[superprismatic]

  On 9/17/2009 at 3:55 PM, twhedge said:

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The ten minutes that was saved was obtained from them meeting (her picking him up) earlier than normal. She was able to pick him up early because of the shorter distance she had to drive. This saved distance would be the same both directions and the time saved would be equally split, coming and going. The ten minutes saved resulted from a one way trip that was five minutes shorter.

5 PM minus 5 minutes = 4:55 PM

He walked for 55 minutes.

  Reveal hidden contents

Yep! Easy when you look at it correctly!

[Guest]

solving graphically I found

  Reveal hidden contents

55 minutes

[superprismatic]

  On 9/17/2009 at 7:07 PM, burninator777 said:

solving graphically I found

  Reveal hidden contents

55 minutes

Graphically?

[Guest]

  Reveal hidden contents

5 min saved each way so wife picked him up at 4:55, walked for 55 mins

Edited September 17, 2009 by Annette

[superprismatic]

  On 9/17/2009 at 10:58 PM, Annette said:

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5 min saved each way so wife picked him up at 4:55, walked for 55 mins

  Reveal hidden contents

You got the trick of looking at the driver's point of view. Otherwise, things get messy. You've got it!