Success = (number of attempts) × (probability of success each time)

(thetrueengineer.com)

2 points | by adletbalzhanov 11 hours ago ago

2 comments

  • apothegm 11 hours ago ago

    I think you mean (1-(1-prob[success])^numAttempts).

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    • adletbalzhanov 9 hours ago ago

      Touché, you're right. The point still stands though: run the program more times