SOLUTION: It has been estimated that 40% of the televisions that the manufacturer makes need repairs in the first three years operation. A new hotel buys 90 televisions form the company. Fin
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Question 1186410: It has been estimated that 40% of the televisions that the manufacturer makes need repairs in the first three years operation. A new hotel buys 90 televisions form the company. Find the probability that in the first three years operation:
a. Less than 32 of the television needs repairs
b. Between 38 and 42 of the televisions, needs repairs
You can put this solution on YOUR website! Here's how to solve this problem using the normal approximation to the binomial distribution:
**1. Check if the normal approximation is appropriate:**
* n * p = 90 * 0.40 = 36 >= 10
* n * (1-p) = 90 * 0.60 = 54 >= 10
Since both conditions are met, the normal approximation is reasonable.
**2. Calculate the mean (μ) and standard deviation (σ) of the binomial distribution:**
* μ = n * p = 90 * 0.40 = 36
* σ = sqrt(n * p * (1-p)) = sqrt(90 * 0.40 * 0.60) = sqrt(21.6) ≈ 4.65
**3. Apply the continuity correction:**
Since we are dealing with a discrete variable (number of televisions) and approximating it with a continuous distribution (normal), we need a continuity correction.
* **a. Less than 32 televisions:** We want P(x < 32). With the continuity correction, we use P(x < 31.5).
* **b. Between 38 and 42 televisions:** We want P(38 <= x <= 42). With the continuity correction, we use P(37.5 < x < 42.5).
**4. Calculate the z-scores:**
The z-score formula is: z = (x - μ) / σ
* **a. For x < 31.5:** z = (31.5 - 36) / 4.65 ≈ -0.97
* **b. For x < 37.5:** z = (37.5 - 36) / 4.65 ≈ 0.32
* **c. For x < 42.5:** z = (42.5 - 36) / 4.65 ≈ 1.40
**5. Find the probabilities using the z-table or calculator:**
* **a. P(x < 31.5):** Look up the probability corresponding to z = -0.97. P(z < -0.97) ≈ 0.1660.
* **b. P(37.5 < x < 42.5):** Look up the probabilities for z = 1.40 and z = 0.32. P(z < 1.40) ≈ 0.9192 and P(z < 0.32) ≈ 0.6255. Then subtract the smaller probability from the larger: P(0.32 < z < 1.40) = P(z < 1.40) - P(z < 0.32) ≈ 0.9192 - 0.6255 ≈ 0.2937.
**Answers:**
* a. The probability that less than 32 televisions need repairs is approximately **0.1660**.
* b. The probability that between 38 and 42 televisions need repairs is approximately **0.2937**.
