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枫下沙龙 / 休闲娱乐 / 来个变态点的,简直是太变态了 5个囚犯,分别按1-5号在装有100颗绿豆的麻袋抓绿豆,规定每人至少抓一颗,而抓得最多和最少的人将被处死,而且,他们之间不能交流,但在抓的时候,可以摸出剩下的豆子数。问他们中谁的存活几率最大??
提示:
1,他们都是很聪明的人
2,他们的原则是先求保命,再去多杀人
3,100颗不必都分完
4,若有重复的情况,则也算最大或最小,一并处死
-lifesucks(唯一不用马甲的人);
2006-3-3
{410}
(#2817542@0)
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统统杀掉, 烦S了.
-001isbetter(001-is-better);
2006-3-3
(#2817547@0)
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><!
-lifesucks(唯一不用马甲的人);
2006-3-3
(#2817550@0)
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第3个?
-helloyou(你好!QQ230);
2006-3-3
(#2817574@0)
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他好象没说按顺序抓呀,如果有,我和你的意见一样,当中的那位可能活的长点
-swallow0119(怎么做怎么错);
2006-3-4
(#2819356@0)
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1) generally say, #3 has biggest chance. Only if he takes the average of #1 and #2, he will survive. He know the number taken by #1 & #2.2) #2 will always try to follow the same number of #1, otherwise he has high chance to be killed. 3) so most probably, #1, 2, 3 will take same number of peas
-swallow0119(怎么做怎么错);
2006-3-5
{161}
(#2819976@0)
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nobody
-tulipa(tulip);
2006-3-3
(#2817575@0)
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看看人家的推理~
-lifesucks(唯一不用马甲的人);
2006-3-4
{3494}
(#2819467@0)
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我认为第5个囚犯的存活几率最小,他必死无疑
-lifesucks(唯一不用马甲的人);
2006-3-4
{1045}
(#2819476@0)
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真的很BT
-casanova(大鼻子情圣);
2006-3-5
(#2820418@0)