Please show work and calculations! thank you! Find a value of the standard normal random variable...

Please show formula and work and calculations! thank you! Find a value of the standard normal...

Please show formula and work and calculations! thank you! Find a value of the standard normal random variable z ​, call it z0, such that the following probabilities are satisfied. a. P( - z0 ≤ z ≤ 0) = 0.2612 b. P( -3 < z < z0) = 0.9559

Find the value of the standard normal random variable z,called z0 such that: (a) P(Z≤z0) =...

Find the value of the standard normal random variable z,called z0 such that: (a) P(Z≤z0) = 0.8483 z0 = (b) P(−z0 ≤Z≤z0) = 0.9444 z0 = (c) P(−z0 ≤Z≤z0) = 0.161 z0 = (d) P(Z≥z0) = 0.4765 z0 = (e) P(−z0 ≤Z≤0) = 0.0792 z0 = (f) P(−1.76≤Z≤z0) = 0.7304 z0 =

Find the value of the standard normal random variable z, called z0 such that: (a) P(z≤z0)=0.9589...

Find the value of the standard normal random variable z, called z0 such that: (a) P(z≤z0)=0.9589 z0= (b) P(−z0≤z≤z0)=0.0602 z0= (c) P(−z0≤z≤z0)=0.6274 z0= (d) P(z≥z0)=0.2932 z0= (e) P(−z0≤z≤0)=0.4373 z0= (f) P(−1.38≤z≤z0)=0.8340 z0=

Find the value of the standard normal random variable z, called z0 such that: (a) P(z≤z0)=0.668...

Find the value of the standard normal random variable z, called z0 such that: (a) P(z≤z0)=0.668 z0= (b) P(−z0≤z≤z0)=0.4818 z0= (c) P(−z0≤z≤z0)=0.4106 z0= (d) P(z≥z0)=0.0773 z0= (e) P(−z0≤z≤0)=0.2455 z0= (f) P(−1.97≤z≤z0)=0.7388 z0=

Let "Z" be a random variable from the standard normal distribution. Find the value for ?...

Let "Z" be a random variable from the standard normal distribution. Find the value for ? that satisfies each of the following probabilities. (Round all answers to two decimal places) A) P(Z < ?) = 0.6829.     ? =   B) P(Z > ?) = 0.3087.     ? =   C) P(-? < Z < ?) = 0.7402.     ? = ±

1. If Z is a standard normal random variable, find the value z0 for the following...

1. If Z is a standard normal random variable, find the value z0 for the following probabilities. (Round your answers to two decimal places.) (a) P(Z > z0) = 0.5 z0 = (b) P(Z < z0) = 0.8686 z0 = (c) P(−z0 < Z < z0) = 0.90 z0 = (d) P(−z0 < Z < z0) = 0.99 z0 = 2. A company that manufactures and bottles apple juice uses a machine that automatically fills 64-ounce bottles. There is some...

For the standard normal random variable, z, find the following: P(z > 2.45) = P(z >...

For the standard normal random variable, z, find the following: P(z > 2.45) = P(z > -5.33) = P(-1.33 < z < 2.45) = P(1.33 < z < 2.45) = Please be as detailed as possible, thank you.

Find the following z values for the standard normal variable Z. (You may find it useful...

Find the following z values for the standard normal variable Z. (You may find it useful to reference the z table. Negative values should be indicated by a minus sign. Round your answers to 2 decimal places.) a. P(Z ≤ z) = 0.9478 b. P(Z > z) = 0.6321 c. P(-z ≤ Z ≤ z ) = 0.88 d. P( 0 ≤ Z ≤ z) = 0.3232 Please show work, thank you.

Find a value of the standard normal random variable z ​, call it z 0z0​, such...

Find a value of the standard normal random variable z ​, call it z 0z0​, such that the following probabilities are satisfied. a. ​ P(zless than or equals≤z 0z0​)equals=0.04360.0436 e. ​ P(minus−z 0z0less than or equals≤zless than or equals≤​0)equals=0.28492849 b. ​ P(minus−z 0z0less than or equals≤zless than or equals≤z 0z0​)equals=0.9090 f. ​ P(minus−33less than<zless than<z 0z0​)equals=0.96009600 c. ​P(minus−z 0z0less than or equals≤zless than or equals≤z 0z0​)equals=0.9595 g. ​P(zgreater than>z 0z0​)equals=0.5 d. ​P(minus−z 0z0less than or equals≤zless than or equals≤z 0z0​)equals=0.82468246...

Let z denote the standard normal random variable. Find the value of z0z0 such that: (a)  P(z≤z0)=0.89P(z≤z0)=0.89...

Let z denote the standard normal random variable. Find the value of z0z0 such that: (a)  P(z≤z0)=0.89P(z≤z0)=0.89 z0=z0= (b)  P(−z0≤z≤z0)=0.039P(−z0≤z≤z0)=0.039 z0=z0= (c)  P(−z0≤z≤z0)=0.1112P(−z0≤z≤z0)=0.1112 z0=z0= (d)  P(z≥z0)=0.0497P(z≥z0)=0.0497 z0=z0= (e)  P(−z0≤z≤0)=0.4874P(−z0≤z≤0)=0.4874 z0=z0= (f)  P(−2.03≤z≤z0)=0.5540P(−2.03≤z≤z0)=0.5540 z0=z0=