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Who can figure this out?

MollynDiesel

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MollynDiesel Grand Master

MollynDiesel

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This is a question @Sparks got asked at 1 of his interviews so lets see who can answer it...

You have 7 metal balls, all LOOK the same size and weight. 1 of the balls is broken and slightly lighter than the others.

You have some weighing scales. You have to weigh all the balls atleast once...you have 2 chances to weigh the balls to find the broken 1

GO!

Scales-of-justice1-520x520.jpg

Edited by Molly'n'Diesel
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NicTurtle Rising Star

NicTurtle

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Ok, I'll play. You weigh 3 balls on each side. If the scale is even you know the remaining two contain the broken ball and you weigh them to find which. If the scale wasn't even, you take the lighter side and weigh two of those ball.

Why do I feel so dirty talking about balls? Perverted mind....

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Mollys Dad Grand Master

Mollys Dad

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Ok, I'll play. You weigh 3 balls on each side. If the scale is even you know the remaining two contain the broken ball and you weigh them to find which. If the scale wasn't even, you take the lighter side and weigh two of those ball.

Why do I feel so dirty talking about balls? Perverted mind....

If you put 3 on each side that makes 6 so you can't put 3 on each side and have a remaining 2. Also, You have 7 metal balls, all the same size and weight. 1 of the balls is broken and slightly lighter than the others.

If they are all the same weight, how is 1 slightly lighter than the others?

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Elyse Grand Master

Elyse

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lol - math problem wording FAIL!

Let's see [spoilers ahead; ye been warned.] :

Get rid of the weighing scale. Take each ball in your hand, and measure them that way. Find out 2 that weigh the same; the weight of those balls are the 'normal not broken' ones.

Now, keep on doing that until you pick up the one that is lighter than all the others. Boom.

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MollynDiesel Grand Master

MollynDiesel

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If you put 3 on each side that makes 6 so you can't put 3 on each side and have a remaining 2. Also' date=' [i']You have 7 metal balls, all the same size and weight. 1 of the balls is broken and slightly lighter than the others.

If they are all the same weight, how is 1 slightly lighter than the others?

Stop nit picking please!

It is 7 balls with 1 slightly lighter than the rest, is that better!

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brian brown Mentor

brian brown

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Easy, place 1 ball on each side, if they're the same, discount them.

you'd only need to weigh 6 (3 x 2) because if they all weighed the same, the 7th would be the broken one :D

Then you could weigh the broken one against one of the discounted ones to confirm it's lighter, meaning all the balls have been weighed at least once :P

Edited by brian brown!
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Sparks Grand Master

Sparks

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Can't ujust look for the broken one? Lol

Sent from my ST18i using Forum Runner

They all look exactly the same, the defect is so small you can't tell by weighing them by hand....

You can only use the weighing scales twice :)

Some of you have it right, when you think of it, it's simple... But in an interview its not so easy lol

Sent from my GT-I9100 using Xparent Cyan Tapatalk 2

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Sparks Grand Master

Sparks

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lol - math problem wording FAIL!

Let's see [spoilers ahead; ye been warned.] :

Get rid of the weighing scale. Take each ball in your hand, and measure them that way. Find out 2 that weigh the same; the weight of those balls are the 'normal not broken' ones.

Now, keep on doing that until you pick up the one that is lighter than all the others. Boom.

No can do, you have to use the scales...

Sent from my GT-I9100 using Xparent Cyan Tapatalk 2

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brian brown Mentor

brian brown

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If you can only use the scale twice total,

1,place 3 balls in each side, if they're level, the one that's left out is broken. :)

2, If one side is lighter than the other, discount the 3 heavier ones plus the odd one, then put one ball in each side. If they're level the one that's left out is broken, if not it'll be apparent which one's lighter

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brian brown Mentor

brian brown

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Very good Brian, my answer ( which I PM'd in 5 minues after the question was posted) is almost word for word the same as yours. I enjoy math word puzzles - but I also enjoy them when they're a bit more complicated than this was.

Cheers Al,

Basically what I'd already put further up but using 3 balls at a time (each side) instead of one :)

I read the question last night when I was knackered & couldn't think straight, it was only this morning that I read it properly that I 'got' the question :confused::D

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Emma Grand Master

Emma

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I'm still confused and I've read the answer! Mind u I only got a 'd' in maths (my worst subject) and I've hit the bottle tonight so not much of anything make sense right now! Only reason I'm not talking gibberish is coz my lovely phone is correcting my typos. I love u phone! Ok, will stop waffling now and leave all you mathematical geniuses in peace x

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persephona Experienced

persephona

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Did the person posing this question understand Fermat's theorem / combinatorics / Euler / polar co-ordinates :D

Hahahaha... :rofl:

I do think it's a strange question to ask at an interview... I do understand all the concepts above but I don't think this question has a lot to do with maths, more like creative thinking!

I love maths! All the concepts above are fairly simple things compared to some of the stuff that is out there. Also there is more than just one Fermat's theorem lol...

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Mollys Dad Grand Master

Mollys Dad

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Hahahaha... :rofl:

I do think it's a strange question to ask at an interview... I do understand all the concepts above but I don't think this question has a lot to do with maths, more like creative thinking!

I love maths! All the concepts above are fairly simple things compared to some of the stuff that is out there. Also there is more than just one Fermat's theorem lol...

You do understand those? Join the club! Kindred spirit or nerd? :lolman:

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persephona Experienced

persephona

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If you can only use the scale twice total,

1,place 3 balls in each side, if they're level, the one that's left out is broken. :)

2, If one side is lighter than the other, discount the 3 heavier ones plus the odd one, then put one ball in each side. If they're level the one that's left out is broken, if not it'll be apparent which one's lighter

Actually I don't think this answer is right to be honest, because at least one ball doesn't get to be weighed. And you have to weight them all at least once. (you do get to determine which one is lighter, but not all the conditions in the question are fulfilled)

Actually I don't think it is possible to have all the balls weighed in this challenge with only two attempts!

You have to weigh all the balls atleast once...you have 2 chances to weigh the balls to find the broken 1
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persephona Experienced

persephona

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You do understand those? Join the club! Kindred spirit or nerd? :lolman:

I don't like to think of myself as a nerd lol... but I do love maths, especially the theoretical stuff. It's kind of a big part of my degree too :P So yeah, maybe kindred spirit?

Ironically, I do need a calculator for adding up figures and percentages (to my shame, I can't really do any arithmetics at all).

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brian brown Mentor

brian brown

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Actually I don't think this answer is right to be honest, because at least one ball doesn't get to be weighed. And you have to weight them all at least once. (you do get to determine which one is lighter, but not all the conditions in the question are fulfilled)

Actually I don't think it is possible to have all the balls weighed in this challenge with only two attempts!

Yes it is possible, think about it:

1,place 3 balls in each side, if they're level, the one that's left out is broken. :)You can then place the broken one & a heavier one in either side to show that one is lighter - they've all been weighed at least once & you've used 2 attempts to prove it

2, If one side is lighter than the other, discount the 3 heavier ones plus the odd one, then put one ball in each side. If they're level the one that's left out is broken, if not it'll be apparent which one's lighter - place the lighter one & the 'odd' one from the beginning in each side to show that one's lighter & again they've all been weighed at least once

same answer but with a bit more added. It meets the criteria just didn't need saying ;)

Edited by brian brown!
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