Okay let's try again, first divide the 12 balls into 3 groups.....let's name them AAAA, BBBB & CCCCTVBNOW 含有熱門話題,最新最快電視,軟體,遊戲,電影,動漫及日常生活及興趣交流等資訊。. f9 L. ?( \- T1 R& G$ r
! C, G7 U/ i0 W+ iTVBNOW 含有熱門話題,最新最快電視,軟體,遊戲,電影,動漫及日常生活及興趣交流等資訊。First weight....AAAA ^ BBBB, if balance, then problem in C balls, see my post above. If not balance, continue below.. O# C; M- T N) C' V
- B: H9 L. R: v# ETVBNOW 含有熱門話題,最新最快電視,軟體,遊戲,電影,動漫及日常生活及興趣交流等資訊。From the first weight, let's say AAAA is heavier then BBBB, then either the problem ball is heavier among AAAA, or lighter among BBBB, but all C balls are normal.
: P0 M; m! \7 ^% s. g. W
) L+ Y+ _( `+ H& ?5 V2nd weight....AAAB ^ ACCC, there will be 3 scenarios:
1 U3 r# z( d# x; I4 Ltvb now,tvbnow,bttvb(1) if AAAB is heavier then ACCC, for sure the problem ball is a heavier ball and it's among AAA. Take 2 of these and weight against each other, the heavier ball is the problem, if balance then it's the remaining ball.
R" a, f' g/ H' N' x(2) if ACCC is heavier then AAAB then weight the A ball in ACCC against a normal C ball, if balance then the problem ball is the B ball in AAAB and it's a lighter ball. If heavier then this is the problem ball. (note it cannot be lighter)
0 F) Q* e- U u& L# n+ }" e9 wos.tvboxnow.com(3) if balance then the problem ball is one of the 3 B balls not touched in the 2nd weight and it's a lighter ball. Take 2 of these B balls and weight against each other. If balance then the other B ball is the problem. If not balance then the lighter ball is the problem. |
發表於 2006-12-5 06:25 PM
| 