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The probability distribution of X is as follows: x 0 1 2 3 4 P[X = x] 0.1 k 2k 2k k Find i. k ii. P(X < 2) iii. P[1 ≤ X < 4] - Mathematics and Statistics

प्रश्न

The probability distribution of X is as follows:

x	0	1	2	3	4
P[X = x]	0.1	k	2k	2k	k

Find

k
P(X < 2)
P[1 ≤ X < 4]

योग

उत्तर

i. Since P[X = x] is a probability distribution of x,

`sum_(x = 0)^4 P[X = x] = 1`

∴ P[X = 0] + P[X = 1] + P[X = 2] + P[X = 3] + P[X = 4] = 1

0.1 + k + 2k + 2k + k = 1

6k = 1 – 0.1 = 0.9

k = `0.9/6`

= 0.15

ii. P(X < 2) = P[X = 0] + P[X = 1]

= 0.1 + k

= 0.1 + 0.15 ...[∵ k = 0.15]

= 0.25

iii. P[1 ≤ X < 4] = P[X = 1] + P[X = 2] + P[X = 3]

= k + 2k + 2k

= 5k

= 5(0.15) ...[∵ k = 0.15]

= 0.75

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The probability distribution of X is as follows: x 0 1 2 3 4 P[X = x] 0.1 k 2k 2k k Find i. k ii. P(X < 2) iii. P[1 ≤ X < 4] - Mathematics and Statistics

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The probability distribution of X is as follows: x 0 1 2 3 4 P[X = x] 0.1 k 2k 2k k Find i. k ii. P(X < 2) iii. P[1 ≤ X < 4] - Mathematics and Statistics

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