I'm not so sure about that, I think the groups have to be even otherwise you end up with too many possibilities to work it out in 3 weighings.
12 Ball Bearings Puzzle
- Thread starter bellenuit
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I'm not so sure about that, I think the groups have to be even otherwise you end up with too many possibilities to work it out in 3 weighings.
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The solution I posted works it out for all possible outcomes, using 4 X 4 first.
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Robb. I don't understand what you mean
ahh my bad, i didnt realise i solution was posted
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Yeah, I missed that part about 3 being the max allowed. Just having a go with your solution now.
cheers
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Just running through this in the flash puzzle and got stuck here..........what's the next step if the scales are equal after this second weighing.
So far we don't know if the odd ball is heavier or lighter. It could be 3 if it's heavier or either 7 or 8 if it's lighter............can we solve this in one last weighing?
cheers
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Think I've worked it out.
Weigh 7 11 against 8 12.
If they are equal then 3 is the odd ball and is heavier
If 7 11 are heavier then 8 is the odd ball and is lighter
If 8 12 are heavier then 7 is the odd ball and is lighter
3 weighs again..............your solution is looking pretty solid
cheers
Weigh 7 11 against 8 12.
If they are equal then 3 is the odd ball and is heavier
If 7 11 are heavier then 8 is the odd ball and is lighter
If 8 12 are heavier then 7 is the odd ball and is lighter
3 weighs again..............your solution is looking pretty solid
cheers
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Sorry nun. It looks like you'll have to hand that $59.95 over to bellenuit.
I too initially thought that 3+3 was a better option than 4+4 for the first weigh as this would eliminate a minimum of 6 ball bearings compared to a minimum of 4 for 4+4.
The problem with 3+3 is that if the odd ball bearing is in the 6 not weighed there is no further information from that weighing as to which one of those 6 is heavier or lighter.
4+4 only brings the minimum remainder down to 8 but of those 8 you also know that the odd bearing is either a heavier one in one group of 4 or a lighter one in a second group of 4. From there is it possible to isolate the odd ball bearing and it's weight relative to the others from a group of 3 at the final weighing. You need to get it down to 2 at the final weigh if starting with 3+3.
I too initially thought that 3+3 was a better option than 4+4 for the first weigh as this would eliminate a minimum of 6 ball bearings compared to a minimum of 4 for 4+4.
The problem with 3+3 is that if the odd ball bearing is in the 6 not weighed there is no further information from that weighing as to which one of those 6 is heavier or lighter.
4+4 only brings the minimum remainder down to 8 but of those 8 you also know that the odd bearing is either a heavier one in one group of 4 or a lighter one in a second group of 4. From there is it possible to isolate the odd ball bearing and it's weight relative to the others from a group of 3 at the final weighing. You need to get it down to 2 at the final weigh if starting with 3+3.
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It was just a few lines further on....
Assume 1 2 and 5 are the same weight as 4 6 9
Then either 3 is heavier or 7 and 8 are lighter
Third Weighing
Weigh 7 against 8
If 7 is heavier than 8, then 8 is the odd ball and is lighter.
If 7 is lighter than 8, 7 is the odd ball and is lighter
If 7 and 8 are the same, 3 is the odd ball and is heavier
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