22. In a typical day, 47% of people with Internet access shop online. In a random...

During a typical day, 58% of people in the US with Internet access go online to...

During a typical day, 58% of people in the US with Internet access go online to get the news. In a random sample of 80 people, use an Excel function to find the binomial probability that the number of people that go online to get the news is 44 or less exactly 45 more than 50 Then, Find the mean and standard deviation of the binomial distribution. Show the use of the special formulas.

In the U.S. 14% of people use their cell phones to access the internet. You select...

In the U.S. 14% of people use their cell phones to access the internet. You select a random sample of 10 people. a. Determine the probability that exactly two use their cell phones to access the internet. b. Determine the probability that at most two use their cell phones to access the internet. c. Determine the probability that two or more use their cell phones to access the internet. d. Determine the probability at least one uses their cell phone...

According to a consumer survey of young adults​ (18-24 years of​ age) who shop​ online, 23​%...

According to a consumer survey of young adults​ (18-24 years of​ age) who shop​ online, 23​% own a mobile phone with internet access. In a random sample of 300 young adults who shop​ online, let x be the number who own a mobile phone with internet access. a. Explain why x is a binomial random variable​ (to a reasonable degree of​ approximation). Choose the correct explanation below. A. The experiment consists of n​ identical, dependent​ trials, with more than two...

It is reported that 76% of Canadians shop online. A random sample of 500 Canadians was...

It is reported that 76% of Canadians shop online. A random sample of 500 Canadians was drawn across the country to investigate this. What is the probability that more than 72% but less than 81% of Canadians shop online in this sample? Make sure you check the required condition(s) to validate your answer.  

In a typical day, 61% of U.S. adults go online to get news. You randomly select...

In a typical day, 61% of U.S. adults go online to get news. You randomly select five U.S. adults. Find the probability that the number of U.S. adults who say they go online to get news is a) Exactly 2. b)At least two. c)More than two

Suppose that 22% of all steel shafts produced by a certain process are nonconforming but can...

Suppose that 22% of all steel shafts produced by a certain process are nonconforming but can be reworked (rather than having to be scrapped). (a) In a random sample of 235 shafts, find the approximate probability that between 47 and 66 (inclusive) are nonconforming and can be reworked. (b) In a random sample of 235 shafts, find the approximate probability that at least 54 are nonconforming and can be reworked.

The Winnipeg Health Region states that the number of people per year in the Winnipeg area...

The Winnipeg Health Region states that the number of people per year in the Winnipeg area who contract flesh-eating disease is a random variable with a mean of 4.6. Let us suppose, the random variable is denoted by X. (a) What is the distribution of X. Give the mean and standard deviation of X. (b) What is the probability that six people will contract flesh-eating disease in the Winnipeg region during a year? (c) What is the probability that between...

It is known that about 13% of people are left-handed. If we select 11 people at...

It is known that about 13% of people are left-handed. If we select 11 people at random, let Y count the number that are left-handed. Round the following probabilities to the nearest 0.0001. a. Explain why this random variable Y fits all four requirements for a binomial random variable. Include each requirement and how this situation satisfies each one. b. Compute the probability that exactly 5 of the people in the sample are RIGHT handed. c. Compute the probability that...

A consumer mobility report indicates that in a typical day, 51% of users of mobile phones...

A consumer mobility report indicates that in a typical day, 51% of users of mobile phones use their phone at least once per hour, 25% use their phone a few times per day, 8% use their phone morning and evening, and 12% hardly ever use their phones. The remaining 4% indicated that they did not know how often they used their mobile phone. Consider a sample of 180 mobile phone users. (a) What is the probability that at least 90...

According to the Census Bureau, 3.13 people reside in the typical American household. A sample of...

According to the Census Bureau, 3.13 people reside in the typical American household. A sample of 25 households in Arizona retirement communities showed the mean number of residents per household was 2.86 residents. The standard deviation of this sample was 1.20 residents. At the .05 significance level, is it reasonable to conclude the mean number of residents in the retirement community household is less than 3.13 persons? Use the 5-step process; show your work.