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In the following loop is the complexity O(1) or is it O(n)?

for(int j = 0; j < Math.random() * 1000 + 1; j++)

I don't know the number of times it would run through the loop so shouldn't it be O(n)?

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    please format your code – Brandon Bailey Mar 5 '19 at 17:47
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    Its o(1) because n is the number of input. There is no input. Your code will run for a function of 1000, which is O(1) – Mangat Rai Modi Mar 5 '19 at 17:49
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    Before thinking of complexity in terms of O(n), you need to first define what n is... – assylias Mar 5 '19 at 17:50
  • The real question is: why does it matter? This seems like a very silly function to analyze asymptotically. There are many (infinitely many!) O(1) operations that are slower than an O(N) operation would be, at least for any arbitrary N you choose. So don't just use Big O notation blindly: figure out what problem you're actually trying to solve and see how Big O helps you solve it -- or not. – Daniel Pryden Mar 5 '19 at 17:54
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Its O(1) because n is the input. There is no input in the code

for(int j =0 ;j<(Math.random()*1000+1);j++)

Your code will run for number of iteration which is a function of 1000 , hence O(1)

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    Let's not forget to say The loop runs at most 1001 times irrespective of the value returned by Math.random() which is what exactly O(1) means. No matter what the input is, The program takes a constant time to execute even in the worst case scenario. – Arun Gowda Mar 5 '19 at 18:01
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Since its a random number generator, then the complexity n*1000+1 therefore O(n). If it where a static value like 1000+1 then complexity would have been O(1). Where n is the range of the possible result the function Math.Random() can output

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    Math.random outputs a double that is between 0 and 1, so the loop will be executed at most 1000 times. – assylias Mar 5 '19 at 17:54
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    @assylias today i learned, youre right thanks. – Denis Alam Mar 5 '19 at 17:56

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