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We have a six sided die, with sides numbered 1 through 6. The probability of first seeing a 1 on the n-th roll decreases as n increases. I want to find the smallest number of rolls such that this probability is less than some given limit.

def probTest(limit):
    prob = 1.0
    n = 1
    while prob > limit:
        prob = (1/6)**n
        n += 1        
    return n-1

What is wrong with my code?

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Formulate the problem first on paper. If you know logarithms, you can solve this without any code. –  Colonel Panic Dec 13 '12 at 23:48

5 Answers 5

up vote 7 down vote accepted

The probably of rolling a one on the nth roll is 5/6^(n-1)*1/6, not 1/6^n.
1/6^n is the probability of rolling one on all n rolls.

The first n-1 rolls each have a 5/6 chance of not being one.
The nth roll has a 1/6th chance of being one.

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Thank you very much. Finally I got to understand. Another point I would like to highlight is that python returns 1/6 as 0 but if we make it 1/float(6) it gives correct result. This was almost making me crazy –  jCloud Dec 9 '12 at 7:24
2  
yes, python does that, and it's annoying when i forget. you can also do 1/6.0 (or 1.0/6). making one of the numbers a decimal coerces to float –  Jeff Dec 9 '12 at 7:28

the correct will be: prob = (5.0/6)**(n-1)*1/6.0

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Thanks. Please take in consideration the other factors.

probTest(25/216.0) return 4 rather then the correct result n=3

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def probTest(limit):
    prob = 1.0
    n = 1
    while prob > limit:
        prob =  5/6^(n-1)*1/6.0
        n += 1        
    return n
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2  
"^" is the XOR operator, not exponentiation. And, as noted in the comments, 5/6 evaluates to 0 in python. –  GregS Dec 9 '12 at 13:47
def probTest(limit):
    n=1
    prob = 1.0
    while prob > limit:
        prob = prob * (1/6.0)*((5/6.0)**n-1)
        n +=1
    return n-1
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whats wromg in it? –  chunky Dec 9 '12 at 11:53
2  
What's wrong is the extra prob* in prob = prob * (1/6.0)*((5/6.0)**n-1), and the n-1 needs to be in parentheses. –  GregS Dec 9 '12 at 13:52

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