Spot the Odd Ball: Weighing Challenge in 3 Chances

AI Thread Summary
The discussion revolves around a classic puzzle involving 12 balls, where one is either lighter or heavier, and the challenge is to identify it using a weighing machine in three attempts. Participants suggest various strategies for weighing the balls, emphasizing the need to determine not only which ball is defective but also whether it is heavier or lighter. Several proposed methods involve dividing the balls into groups and using logical deductions based on the outcomes of the weighings. The conversation highlights the complexity of the puzzle and the necessity for careful consideration of each weighing's implications. Ultimately, the thread showcases different approaches to solving this well-known problem.
Xalos
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You have 12 balls, and a weighing machine with no standard weighs. One of those 12 balls is either lighter or heavier than the others. Spot the ball in 3 chances with the weighing machine.
 
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hint:
2x6, 2x3, 2x1+1
or 2x4+4, 2x2, 2x1
 
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Sorry, I forgot to mention that you must also be able to say whether the ball is heavy or light.
 
This "puzzle" has been posted a zillion times here...
 
Maybe not a zillion times, but more than 5 times.
 
Xalos said:
You have 12 balls

I've had that dream before. Kind of a nightmare, actually. It was impossible to walk or sit down.

and a weighing machine with no standard weighs. One of those 12 balls is either lighter or heavier than the others. Spot the ball in 3 chances with the weighing machine.

Oh! Okay.

6 vs. 5 + 1 lighter. Get the lighter set.

3 vs 2 + 1 lighter. Get the lighter set.

Weigh any 2 of them. If they are equal, the 3rd one is lighter.
 
Poop-Loops said:
I've had that dream before. Kind of a nightmare, actually. It was impossible to walk or sit down.
Thank you. I actually have spittle on my screen.
 
Poop-Loops said:
6 vs. 5 + 1 lighter. Get the lighter set.
.
.
.

It is not ok: the defective ball could be in the heavier set .
 
  • #10
Oh craps. I didn't notice that it could be lighter or heavier.
 
  • #11
The puzzle is new to me, so here's my answer:

Weigh 4 against 4.

If they even out, select three and weigh against 3 from the remainder. If they cancel out still, and since there's 1 ball left, one more weighing will give away the answer. If not, then the foreign ball is within those 3 balls selected from the remainder. At this step, it should be clear whether the foreign ball is lighter or heavier than the others. Now say the said balls are A B C, and other random balls now known to be normal are X X X. Weigh A X against B X. If they even out, then obviously it's C, if not, then either A or B.

Now if 4 against 4 doesn't cancel out, substitute one side with the remainder. Depending on what the scale reads, determine whether the foreign ball is lighter or heavier. In any case, you'll end with a 2 against 2 weighing, which will easily give away the foreign ball by swapping two balls from each side, and substituting for 1 ball from the remainder on one side.
 
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  • #12
Kittel Knight said:
This "puzzle" has been posted a zillion times here...
I've told you a million times: don't hyperbolize!
 
  • #13
Werg22 said:
The puzzle is new to me, so here's my answer:

<snip>

Now if 4 against 4 doesn't cancel out, substitute one side with the remainder. Depending on what the scale reads, determine whether the foreign ball is lighter or heavier. In any case, you'll end with a 2 against 2 weighing, which will easily give away the foreign ball by swapping two balls from each side, and substituting for 1 ball from the remainder on one side.

I am pretty positive the bolded part would not work.
 
  • #14
You're right, what I wrote is senseless. Impossible to determine a foreign ball out of 4 balls with only one weighing. I'll try rectifying the solution, tomorow
 
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  • #15
DaveC426913 said:
I've told you a million times: don't hyperbolize!

You are right, Dave!
Even my mother has already told me this a billion times...
 
  • #16
Ok here's the correction:

4 against 4 doesn't even out

Say we have on the heavier side A B C D and on the lighter side S T U V, and X represent a ball from the remainder. Now weigh S X X X against A T U V. If they even, out, the foreign ball is among B C D, and is heavier. If S X X X > A T U V, then the foreign ball is among T U V and is lighter. If S X X X < A T U V, weigh A against X. If A = X, then S is the foreign ball, and is lighter. If A > X, then A is the foreign ball and is heavier.

Solved :biggrin:
 

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