开发者:上海品职教育科技有限公司 隐私政策详情

应用版本:4.2.11(IOS)|3.2.5(安卓)APP下载

陈翠铭 · 2018年06月09日

问一道题:NO.PZ2017092702000094 [ CFA I ]

问题如下图:实在不知道答案用的是哪个算法里面的公式。请明示。谢谢!

选项:

A.

B.

C.

解释:

1 个答案
已采纳答案

源_品职助教 · 2018年06月09日

这是全概率公式求均值的运用。有N种可能,每种可能性下又有一个未来的值。那把这些值按照发生概率加权平均,就是语气的均值。当然这题是根据这一思路反求出发生的概率P

  • 1

    回答
  • 1

    关注
  • 341

    浏览
相关问题

NO.PZ2017092702000094 问题如下 A stois price$100.00 anfollows a one-periobinomiprocess with up move thequals 1.05 ana wn move thequals 0.97. If 1 million Bernoulli trials are concte anthe average terminstopriis $102.00, the probability of up move (p) is closest to: A.0.375. B.0.500. C.0.625. C is correct.The probability of up move (p) cfounsolving the equation: (p)uS + (1 – p) = (p)105 + (1 – p)97 = 102. Solving for p gives 8p = 5, so thp = 0.625.100到105是move up,概率为p;100到97是move wn,概率为1-p,这是一期二叉树的情况,此时这个一期二叉树的均值就是105×p+97×(1-p)。根据题干,这个均值为102105×p+97×(1-p)=102,可以直接解得p=0.625 没看答案是 我用的二项分布算的,E(X) =np算呢,p= 102/1million 。。。。没答案,,,然后就不知道知识点了这咋能看出来是二叉树呢,我记得课上讲的时候咋的还有个tree的单词。。。咋理解呀老师

2022-12-18 22:27 1 · 回答

NO.PZ2017092702000094问题如下A stois price$100.00 anfollows a one-periobinomiprocess with up move thequals 1.05 ana wn move thequals 0.97. If 1 million Bernoulli trials are concte anthe average terminstopriis $102.00, the probability of up move (p) is closest to:A.0.375.B.0.500.C.0.625. C is correct.The probability of up move (p) cfounsolving the equation: (p)uS + (1 – p) = (p)105 + (1 – p)97 = 102. Solving for p gives 8p = 5, so thp = 0.625.100到105是move up,概率为p;100到97是move wn,概率为1-p,这是一期二叉树的情况,此时这个一期二叉树的均值就是105×p+97×(1-p)。根据题干,这个均值为102105×p+97×(1-p)=102,可以直接解得p=0.625 请问为什么上涨是涨到105,下跌是跌到97? 题目不是说的是up move equals 1.05吗?

2022-09-09 21:49 1 · 回答

NO.PZ2017092702000094 问题如下 A stois price$100.00 anfollows a one-periobinomiprocess with up move thequals 1.05 ana wn move thequals 0.97. If 1 million Bernoulli trials are concte anthe average terminstopriis $102.00, the probability of up move (p) is closest to: A.0.375. B.0.500. C.0.625. C is correct.The probability of up move (p) cfounsolving the equation: (p)uS + (1 – p) = (p)105 + (1 – p)97 = 102. Solving for p gives 8p = 5, so thp = 0.625.100到105是move up,概率为p;100到97是move wn,概率为1-p,这是一期二叉树的情况,此时这个一期二叉树的均值就是105×p+97×(1-p)。根据题干,这个均值为102105×p+97×(1-p)=102,可以直接解得p=0.625 老师好,看到这道题时尝试用二项分布求概率来解答,解不出来,感觉跟二叉树有些混淆了,请问怎么区分题目是考哪个知识点?

2022-06-17 10:05 1 · 回答

NO.PZ2017092702000094问题如下A stois price$100.00 anfollows a one-periobinomiprocess with up move thequals 1.05 ana wn move thequals 0.97. If 1 million Bernoulli trials are concte anthe average terminstopriis $102.00, the probability of up move (p) is closest to: A.0.375. B.0.500. C.0.625. C is correct.The probability of up move (p) cfounsolving the equation: (p)uS + (1 – p) = (p)105 + (1 – p)97 = 102. Solving for p gives 8p = 5, so thp = 0.625.100到105是move up,概率为p;100到97是move wn,概率为1-p,这是一期二叉树的情况,此时这个一期二叉树的均值就是105×p+97×(1-p)。根据题干,这个均值为102105×p+97×(1-p)=102,可以直接解得p=0.625 另外,1 million Bernoulli trials are concte题干里面的这句话如何理解呢,二叉树列跟伯努利试验有啥关联吗

2022-03-26 13:23 1 · 回答

NO.PZ2017092702000094 0.500. 0.625. C is correct. The probability of up move (p) cfounsolving the equation: (p)uS + (1 – p) = (p)105 + (1 – p)97 = 102. Solving for p gives 8p = 5, so thp = 0.625. 100到105是move up,概率为p;100到97是move wn,概率为1-p, 这是一期二叉树的情况,此时这个一期二叉树的均值就是105×p+97×(1-p)。 根据题干,这个均值为102 105×p+97×(1-p)=102,可以直接解得p=0.625 我知道要算概率,但是不知道怎样用二叉树计算,麻烦老师讲解一下

2022-03-16 09:38 1 · 回答