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冰原上的老猫 · 2018年10月01日

问一道题:NO.PZ2016082405000035

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请问这个用的是什么公式?

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品职答疑小助手雍 · 2018年10月02日

同学你好,用的是这个公式,讲义后面附有例题解析,在第342页,可以参考下~


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NO.PZ2016082405000035 Suppose a cret position ha correlation to the market factor of 0.5. Whis the realizemarket value this useto compute the probability of reaching a fault thresholthe 99% confinlevel? -0.2500. -0.4356. -0.5825. -0.6243. A fault loss level of 0.01 correspon to -2.33 on the stanrnormstribution. The realizemarket value is computefollows: {l}-2.33=(\frac{-2.33-(0.5)\overline m}{\sqrt{1-0.5^2}})\\\overline m=-0.62430\enarray}\ 这里的correlation默认就是β吗,这两个不是不一样么

2021-05-04 17:45 2 · 回答

NO.PZ2016082405000035 Suppose a cret position ha correlation to the market factor of 0.5. Whis the realizemarket value this useto compute the probability of reaching a fault thresholthe 99% confinlevel? -0.2500. -0.4356. -0.5825. -0.6243. A fault loss level of 0.01 correspon to -2.33 on the stanrnormstribution. The realizemarket value is computefollows: {l}-2.33=(\frac{-2.33-(0.5)\overline m}{\sqrt{1-0.5^2}})\\\overline m=-0.62430\enarray}\ 0.31215=−(0.5)m 这一步是怎么来的

2021-04-05 22:21 1 · 回答

NO.PZ2016082405000035 Suppose a cret position ha correlation to the market factor of 0.5. Whis the realizemarket value this useto compute the probability of reaching a fault thresholthe 99% confinlevel? -0.2500. -0.4356. -0.5825. -0.6243.  A fault loss level of 0.01 correspon to -2.33 on the stanrnormstribution. The realizemarket value is computefollows: l−2.33=−2.33−(0.5)m‾1−0.52−2.33(0.86603)=−2.33−(0.5)m‾0.31215=−(0.5)m‾−0.62430=m‾{l}-2.33=\frac{-2.33-(0.5)\overline m}{\sqrt{1-0.5^2}}\\-2.33{(0.86603)}=-2.33-{(0.5)}\overline m\\0.31215=-{(0.5)}\overline m\\-0.62430=\overline ml−2.33=1−0.52 ​−2.33−(0.5)m​−2.33(0.86603)=−2.33−(0.5)m0.31215=−(0.5)m−0.62430=m 请问解答过程中的l-2.33的l是什么意思?

2021-03-18 10:18 1 · 回答

Suppose a cret position ha correlation to the market factor of 0.5. Whis the realizemarket value this useto compute the probability of reaching a fault thresholthe 99% confinlevel? -0.2500. -0.4356. -0.5825. -0.6243.  A fault loss level of 0.01 correspon to -2.33 on the stanrnormstribution. The realizemarket value is computefollows: l−2.33=−2.33−(0.5)m‾1−0.52−2.33(0.86603)=−2.33−(0.5)m‾0.31215=−(0.5)m‾−0.62430=m‾{l}-2.33=\frac{-2.33-(0.5)\overline m}{\sqrt{1-0.5^2}}\\-2.33{(0.86603)}=-2.33-{(0.5)}\overline m\\0.31215=-{(0.5)}\overline m\\-0.62430=\overline ml−2.33=1−0.52 ​−2.33−(0.5)m​−2.33(0.86603)=−2.33−(0.5)m0.31215=−(0.5)m−0.62430=m 这讲的是哪一个知识点? 在那一页ppt啊?

2020-10-11 13:44 1 · 回答

-0.4356. -0.5825. -0.6243.  A fault loss level of 0.01 correspon to -2.33 on the stanrnormstribution. The realizemarket value is computefollows: l−2.33=−2.33−(0.5)m‾1−0.52−2.33(0.86603)=−2.33−(0.5)m‾0.31215=−(0.5)m‾−0.62430=m‾{l}-2.33=\frac{-2.33-(0.5)\overline m}{\sqrt{1-0.5^2}}\\-2.33{(0.86603)}=-2.33-{(0.5)}\overline m\\0.31215=-{(0.5)}\overline m\\-0.62430=\overline ml−2.33=1−0.52 ​−2.33−(0.5)m​−2.33(0.86603)=−2.33−(0.5)m0.31215=−(0.5)m−0.62430=m k是α的临界分位点,α是服从一般正态分布的,为什么k是-2.33?

2020-09-25 10:01 1 · 回答