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02 Sep 2020, 08:00
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A
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Difficulty:
75%
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Question Stats:
49% (01:41) correct
51%
(01:58)
wrong
based on 560
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What is the probability of getting four tails and two heads when an unfair coin is tossed 6 times?
(1) When the unfair coin is tossed thrice, the probability of getting two tails and one heads is 2/9.
(2) When the unfair coin is tossed twice, the probability of getting one tails and one heads is 4/9.
M36-103
(1) When the unfair coin is tossed thrice, the probability of getting two tails and one heads is 2/9.
(2) When the unfair coin is tossed twice, the probability of getting one tails and one heads is 4/9.
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M36-103
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15 Nov 2021, 02:51
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Bunuel
Official Solution:
What is the probability of getting four tails and two heads when an unfair coin is tossed 6 times?
Say the probability of tails is \(p\) and the probability of heads is \((1-p)\). The question asks to find the value of \(P(TTTTHH)=\frac{6!}{4!2!}*p^4*(1-p)^2\) (notice that we multiply by \(\frac{6!}{4!2!}\) because four tails and two heads can occur in \(\frac{6!}{4!2!}\) ways: TTTTHH, TTTHTH, TTHTTH, THTTTH, HTTTTH, ...
(1) When the unfair coin is tossed thrice, the probability of getting two tails and one heads is \(\frac{2}{9}\).
\(P(TTH)=\frac{3!}{2!}*p^2*(1-p)=\frac{2}{9}\). From this we can find the value of \(p^2*(1-p)\), which when squared gives the value of \(p^4*(1-p)^2\), so we can find the value of \(P(TTTTHH)=\frac{6!}{4!2!}*p^4*(1-p)^2\). Sufficient.
(2) When the unfair coin is tossed twice, the probability of getting one tails and one heads is \(\frac{4}{9}\).
\(P(TH)=2!*p*(1-p)=\frac{4}{9}\). From this we can find that the value of \(p\) is \(\frac{1}{3}\) or \(\frac{2}{3}\). These two values will give two different values of \(P(TTTTHH)=\frac{6!}{4!2!}*p^4*(1-p)^2\). Not sufficient.
Answer: A
rgaur19931
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02 Sep 2020, 08:19
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The probability of getting 4 tails and 2 heads is x^4*y^2, where x = probability of getting tail, y = probability of getting heads.
Statement 1 : x^2*y = 4/9, we can get the value of x^4*y^2 = 16/81
Statement 2 : x*y = 2/9, We cannot use this as X can be 1/2 and y can be 4/9 or x can be 1/4 and y can be 8/9. Not sufficient.
Hence, the correct answer is a.
Statement 1 : x^2*y = 4/9, we can get the value of x^4*y^2 = 16/81
Statement 2 : x*y = 2/9, We cannot use this as X can be 1/2 and y can be 4/9 or x can be 1/4 and y can be 8/9. Not sufficient.
Hence, the correct answer is a.
