问题如下图:
选项:
A. 
B. 
C. 
解释:
老师5.36计算出来没有问题,请问为什么不是除以10[(n=100)的平方根]作为标准误的公式呢?
小呀小田螺 · 2019年03月23日
老师好,
这道题我还是没明白为什么不要除以10.
我看到讲义里面有关于standard error的例题,也是给的样本均值,样本方差,以及样本容量,求standard error。这里是除以了根号50的。
可以解释一下什么时候要除什么时候不要吗?
谢谢!
菲菲_品职助教 · 2019年03月24日
同学你好,这道题目跟你发的这道是完全不一样的。你给的那道例题确实是要除的。但是根据置信区间算出来的那个本身就是样本均值的标准差了,所以也就是标准误,就不需要除了。但是例题中的,给的是样本的标准差,而不是样本均值的标准差,所以要除。
小呀小田螺 · 2019年03月24日
明白了,一个是样本均值的标准差,一个是样本的标准差。样本均值的标准差又叫标准误。谢谢老师!
菲菲_品职助教 · 2019年03月25日
是的没错。理解的非常正确~~加油~
NO.PZ2015120604000125问题如下 The population is 6000 programmer whiis supposeto normally stribute A sample with 100 size is awn from the population. Baseon z-statisti95% confinintervof sample meof annusalary is 32.5 (in thousan) llars ranges from 22 (in thousan) llars to 43 (in thousan) llars .Calculate the stanrerror of meannusalary: A.1.96.B.3.99.C.5.36. C is correct.the 95% level of significance, the criticvalue is ±1.96.So the confinintervis 32.5±1.96 σ x ¯ , From the equation t 32.5 + 1.96 stanrerror = 43 or 32.5 - 1.96 stanrerror x ¯ = 22, we get σ x ¯ =5.36.=5.3571. 根据题干的sample mean=32.5,基于z-statistics的95%的置信区间(得到关键值±1.96),和置信区间的公式,可以得到 32.5 + 1.96 stanrerror = 43 或 32.5 - 1.96 stanrerror = 22。得到 stanrerror=5.3571 我可能公式有点搞混了,请问置信区间的计算什么时候使用 平均值+z×标准差,什么时候使用平均值+z×标准误
NO.PZ2015120604000125 问题如下 The population is 6000 programmer whiis supposeto normally stribute A sample with 100 size is awn from the population. Baseon z-statisti95% confinintervof sample meof annusalary is 32.5 (in thousan) llars ranges from 22 (in thousan) llars to 43 (in thousan) llars .Calculate the stanrerror of meannusalary: A.1.96. B.3.99. C.5.36. C is correct.the 95% level of significance, the criticvalue is ±1.96.So the confinintervis 32.5±1.96 σ x ¯ , From the equation t 32.5 + 1.96 stanrerror = 43 or 32.5 - 1.96 stanrerror x ¯ = 22, we get σ x ¯ =5.36.=5.3571. 根据题干的sample mean=32.5,基于z-statistics的95%的置信区间(得到关键值±1.96),和置信区间的公式,可以得到 32.5 + 1.96 stanrerror = 43 或 32.5 - 1.96 stanrerror = 22。得到 stanrerror=5.3571 没看懂这道题啥意思,老师可以再讲一下吗
NO.PZ2015120604000125 问题如下 The population is 6000 programmer whiis supposeto normally stribute A sample with 100 size is awn from the population. Baseon z-statisti95% confinintervof sample meof annusalary is 32.5 (in thousan) llars ranges from 22 (in thousan) llars to 43 (in thousan) llars .Calculate the stanrerror of meannusalary: A.1.96. B.3.99. C.5.36. C is correct.the 95% level of significance, the criticvalue is ±1.96.So the confinintervis 32.5±1.96 σ x ¯ , From the equation t 32.5 + 1.96 stanrerror = 43 or 32.5 - 1.96 stanrerror x ¯ = 22, we get σ x ¯ =5.36.=5.3571. 根据题干的sample mean=32.5,基于z-statistics的95%的置信区间(得到关键值±1.96),和置信区间的公式,可以得到 32.5 + 1.96 stanrerror = 43 或 32.5 - 1.96 stanrerror = 22。得到 stanrerror=5.3571 5.3571是咋算出来的
NO.PZ2015120604000125 问题如下 The population is 6000 programmer whiis supposeto normally stribute A sample with 100 size is awn from the population. Baseon z-statisti95% confinintervof sample meof annusalary is 32.5 (in thousan) llars ranges from 22 (in thousan) llars to 43 (in thousan) llars .Calculate the stanrerror of meannusalary: A.1.96. B.3.99. C.5.36. C is correct.the 95% level of significance, the criticvalue is ±1.96.So the confinintervis 32.5±1.96 σ x ¯ , From the equation t 32.5 + 1.96 stanrerror = 43 or 32.5 - 1.96 stanrerror x ¯ = 22, we get σ x ¯ =5.36.=5.3571. 根据题干的sample mean=32.5,基于z-statistics的95%的置信区间(得到关键值±1.96),和置信区间的公式,可以得到 32.5 + 1.96 stanrerror = 43 或 32.5 - 1.96 stanrerror = 22。得到 stanrerror=5.3571 按照1.96个标准差=43-32.5=10.5可以算出标准差等于5.35,但是这个不是样本的标准差吗,为什么不需要再除以一个根号100,得到stanrerror呢
NO.PZ2015120604000125 问题如下 The population is 6000 programmer whiis supposeto normally stribute A sample with 100 size is awn from the population. Baseon z-statisti95% confinintervof sample meof annusalary is 32.5 (in thousan) llars ranges from 22 (in thousan) llars to 43 (in thousan) llars .Calculate the stanrerror of meannusalary: A.1.96. B.3.99. C.5.36. C is correct.the 95% level of significance, the criticvalue is ±1.96.So the confinintervis 32.5±1.96 σ x ¯ , From the equation t 32.5 + 1.96 stanrerror = 43 or 32.5 - 1.96 stanrerror x ¯ = 22, we get σ x ¯ =5.36.=5.3571. 根据题干的sample mean=32.5,基于z-statistics的95%的置信区间(得到关键值±1.96),和置信区间的公式,可以得到 32.5 + 1.96 stanrerror = 43 或 32.5 - 1.96 stanrerror = 22。得到 stanrerror=5.3571 这题怎么判断是one-tail 还是two-tails