Determine the value of time factor Tv corresponding to the average degree of consolidation Uv for...

Determine the Central Daylight Savings Time corresponding to 3:00 PM local solar time on September 21st...

Determine the Central Daylight Savings Time corresponding to 3:00 PM local solar time on September 21st for St. Louis, MO. You can use internet to find out the latitude or longitude (if you think you need one or both of these values) for St. Louis.

The average time for a particular LED TV needs first service is 415 days with standard...

The average time for a particular LED TV needs first service is 415 days with standard deviation of 30 days. The manufacturer gives one year (365 days) onsite service warranty for newly bought TVs. Assume that the times for first service call are approximately normally distributed. Let X denote the time until the first service for an LED TV. a. The distribution of X is (i) Standard normal with mean 0 and variance 1. (ii) Normal with mean 415 days...

suppose that for adults the average amount of time spent watching tv per day is normally...

suppose that for adults the average amount of time spent watching tv per day is normally distribution with a mean of 42 minutes and a standard devation of 12 minutes. 1) what percent of adults spend less than 30 minutes watching tv per day? A) .04 B) .08 C) .11 D) .13 E) .16 2) What percent of adults more than 50 minutes watching tv per day? A) 0.18 B) 0.25 C) 0.45 D) 0.62 E) 0.75 3) what percent...

The average time betweenarrivals of two cars at traffic lights is 0.25 minutes a) Determine the...

The average time betweenarrivals of two cars at traffic lights is 0.25 minutes a) Determine the probability that the time between two car arrivals will be less than 30 seconds b) What is the probability that exactly 2 cars will go through the traffic lights in one minute?

1.) A schoolteacher is concerned that her students watch more TV than the average American child....

1.) A schoolteacher is concerned that her students watch more TV than the average American child. She reads that according to the American Academy of Pediatrics, the average American child in the population watches µ = 4 hours of TV per day. She records the number of hours of TV each of her six students watches per day. The times (in hours) is presented below. Times: 6.2, 2.5, 5.5, 2.8, 4.8, 4.6 a.) What are your degrees of freedom and...

ANOVA Source of Variation SS df MS F p-value Factor A 31,313.49 3 10,437.83 Factor B...

ANOVA Source of Variation SS df MS F p-value Factor A 31,313.49 3 10,437.83 Factor B 23,456.13 2 11,728.07 Interaction 163,204.45 6 27,200.74 Error 90,156.59 36 2,504.35 Total 308,130.66 47 (a) What kind of ANOVA is this? One-factor ANOVA Two-factor ANOVA with replication Two-factor ANOVA without replication (b) Calculate each F test statistic and the p-value for each F test using Excel's function =F.DIST.RT(F,DF1,DF2). (Round your Fcalc values to 3 decimal places and p-values to 4 decimal places.) Source of...

Suppose that, on average, it is known that a certain TV part lasts α years. The...

Suppose that, on average, it is known that a certain TV part lasts α years. The length of time the TV part lasts is exponentially distributed. A study shows that 80% of these parts last longer than 2 years. (a) What is the probability that one of these parts will last at least 3 years? (b) 90% of these parts will last at least ____ years. (c) What is the probability that one of these parts will last between one...

Recognition upon initial consolidation of a variable interest entity (VIE) when VIE is a business Assume...

Recognition upon initial consolidation of a variable interest entity (VIE) when VIE is a business Assume that prior to January 1, 2013, a Reporting Company owned a 10 percent interest in a Legal Entity. The Reporting Company acquired its 10 percent ownership interest in the Legal Entity on June 15, 1992 for $20,000, and correctly accounted for this investment under the cost method (i.e., it was a passive investment and it was not marketable). On January 1, 2013, the Reporting...

The calculations for a factorial experiment involving four levels of factor A, three levels of factor...

The calculations for a factorial experiment involving four levels of factor A, three levels of factor B, and three replications resulted in the following data: SST = 284, SSA = 29, SSB = 24, SSAB = 176. Set up the ANOVA table. (Round your values for mean squares and F to two decimal places, and your p-values to three decimal places.) Source of Variation Sum of Squares Degrees of Freedom Mean Square F p-value Factor A Factor B Interaction Error...

The calculations for a factorial experiment involving four levels of factor A, three levels of factor...

The calculations for a factorial experiment involving four levels of factor A, three levels of factor B, and three replications resulted in the following data: SST = 282, SSA = 28,SSB = 23, SSAB = 173. Set up the ANOVA table. (Round your values for mean squares and F to two decimal places, and your p-values to three decimal places.) Source of Variation Sum of Squares Degrees of Freedom Mean Square F p-value Factor A ? ? ? ? ?...