confidence level没给啊

NO.PZ2020010304000051问题如下You colle50 years of annuta on equity anbonreturns. The estimatemeequity return is 7.3% per year, anthe sample mebonreturn is 2.7% per year. The sample stanrviations are 18.4% an5.3%, respectively. The correlation between the two-return series is -60%. Are the expectereturns on these two assets the same? es your answer change if the correlation is 0? The null hypothesis is H0:μE=μBH_0: \mu_E = \mu_BH0​:μE​=μB​.The alternative is H1:μE≠μBH_1: \mu_E ≠ \mu_BH1​:μE​​=μB​.The test statistic is baseon the fferenof the average returns, δ\lt= 7.3% - 2.7% = 4.6%.The estimator of the varianof the fferenis σE2+σB2−2σBE\sigma_E^2+\sigma_B^2-2\sigma_{BE}σE2​+σB2​−2σBE​, whiis 0.1842+0.0532−2∗(−0.6)∗0.184∗0.053=0.0483.0.184^2+0.053^2-2*(-0.6)*0.184 * 0.053 = 0.0483.0.1842+0.0532−2∗(−0.6)∗0.184∗0.053=0.0483.The test statistic is δ0.048350=1.47\frac\lta{\sqrt{\splaystyle\frac{0.0483}{50}}}=1.47500.0483​​δ​=1.47The criticvalue for a two-sis test is ±1.96\pm1.96±1.96 using a size of 5%. The null is not rejecteIf the correlation w0, then the varianestimate woul0.0366, anthe test statistic is 1.69. The null woulstill not rejecteif the size w5%, although if the test size w10%, then the criticvalue woul±1.645\pm1.645±1.645 anthe correlation woulmatter.老师，哪里能看出来crticvalue是1.96，和1.65呢

NO.PZ2020010304000051 问题如下 You colle50 years of annuta on equity anbonreturns. The estimatemeequity return is 7.3% per year, anthe sample mebonreturn is 2.7% per year. The sample stanrviations are 18.4% an5.3%, respectively. The correlation between the two-return series is -60%. Are the expectereturns on these two assets the same? es your answer change if the correlation is 0? The null hypothesis is H0:μE=μBH_0: \mu_E = \mu_BH0​:μE​=μB​.The alternative is H1:μE≠μBH_1: \mu_E ≠ \mu_BH1​:μE​​=μB​.The test statistic is baseon the fferenof the average returns, δ\lt= 7.3% - 2.7% = 4.6%.The estimator of the varianof the fferenis σE2+σB2−2σBE\sigma_E^2+\sigma_B^2-2\sigma_{BE}σE2​+σB2​−2σBE​, whiis 0.1842+0.0532−2∗(−0.6)∗0.184∗0.053=0.0483.0.184^2+0.053^2-2*(-0.6)*0.184 * 0.053 = 0.0483.0.1842+0.0532−2∗(−0.6)∗0.184∗0.053=0.0483.The test statistic is δ0.048350=1.47\frac\lta{\sqrt{\splaystyle\frac{0.0483}{50}}}=1.47500.0483​​δ​=1.47The criticvalue for a two-sis test is ±1.96\pm1.96±1.96 using a size of 5%. The null is not rejecteIf the correlation w0, then the varianestimate woul0.0366, anthe test statistic is 1.69. The null woulstill not rejecteif the size w5%, although if the test size w10%, then the criticvalue woul±1.645\pm1.645±1.645 anthe correlation woulmatter. 这里的sample me和sample s是假设服从标准正太分布么？

NO.PZ2020010304000051请问现在讲义里有这部分内容吗？没有印象讲过了

NO.PZ2020010304000051 老师好，请问一下estimator of the varianof the fference是拿什么公式算的呀？谢谢！