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I'm coding a program to calculate the growth of a bacterial colony until certain point.

Given a "X", that will represent the initial number of bacteria. And given a "Y", that will represent the number limit desired of bacteria in the bacterial colony. Return the number of days and hours that the bacterial colony needs for reaching the limit.

The bacterial colony doubles each hour.

Example.1:

  • Input: 1, 8
  • Output: 0, 3

Example.2:

  • Input: 1000 , 1024000
  • Output:0, 10

Example.3:

  • Input: 123, 3453546624536
  • Output: 1, 10

If the hour calculated returns a fractional number, it must be rounded down.

So far I have written this code:

#include <iostream>

using namespace std;

int main(){

    long int binitial, blimit, day, counter=0;
    float  hour;

    cin >> binitial;
    cin >> blimit;

    while(binitial <= blimit){
        binitial = binitial * 2;
        counter++;
    }

    day = counter / 24;
    cout << day << " ";
    hour = (counter % 24) - 0.5;
    cout << (int)hour;
    return 0;
}
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closed as off topic by EvilTeach, Griwes, Joe Gauterin, Mark, Cyril Gandon May 17 '13 at 12:40

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2  
I've edited your question for format. What it's missing is an actual question. Does this code work and give the right answer, but you would like it to be neater? Or does it give wrong answers? Or blow up at runtime? Or fail to compile? What help do you need? –  Kate Gregory May 17 '13 at 12:14
    
My code is returning the right answer, but, i want to start improving my code, like reducing number of lines, improving organization, eliminating redundancy and unnecessary process, make it more clear, use more math and etc... –  Student May 17 '13 at 12:55

4 Answers 4

up vote 2 down vote accepted

You can remove the loop by observing that the number of hours is Log2(Y/X). To calculate Log2(A) using the standard functions, calculate log(A)/log(2).

You may need to address precision issues when going from doubles to ints, because the calculations will be approximate. The final expression for the hours may look like this:

int hours = (log(Y/X) / log(2)) + 1E-8; // Add a small delta

Going from hours to days/hours is very simple, too:

cout << hours/24 << " " << hours % 24 << endl;
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This is the strongest solution here, but in the event that he'll end up trying to do an operation per hour, he would need the loop. +1 for maths! –  SubSevn May 17 '13 at 12:18
    
+1 for maths! Great solution, it will make the code easier to understand. –  Student May 17 '13 at 12:58

You can use a long int for hour if you do the following:

hour = counter - (day*24); // The total number of hours minus the number of hours that are in each day.

I don't have a compiler in front of me but you can probably also do something like this:

hour = counter % 24; // this will return the remainder when counter is divided by 24.
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And you shouldn't need to worry about counter%24 returning anything but an integer, since counter will never not be an integer. –  SubSevn May 17 '13 at 12:15
    
Ok, but you can have 1/3, 1/4, 1/2... of hours, right? And with this possibility you will probably face real numbers in the hour variable. is it possible to hour variable receive a real number(ex. 30M = 1/2 Hour, so Hour=0.5)? –  Student May 17 '13 at 13:08
    
You are correct - but you're only ever doing counter++; If you were doing counter += 0.5 or something, then you'd end up with 1/2 hours, etc. –  SubSevn May 17 '13 at 13:09
    
Yeah, now i understood! You are right at this point. –  Student May 17 '13 at 15:25

If blimit is always a multiple of binitial, the solution is simple:

counter%24 will be always an integer, so you don't have to round it. In case of day days and hour hours, you only have to do is:

hour = counter%24
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Yeah, but it's not necessarily, there are another inputs that blimit is not multiple of binitial. But, if it's only use multiple numbers, this suggestion would be extremely valid! Thanks! –  Student May 17 '13 at 13:31
    
Maybe you end up showing me a logic problem... because i need a code to compute ->only<- completed hours. –  Student May 17 '13 at 13:32

A note on the method of calculation: you don't need to iterate if you're only doubling each time. You're just looking for a value of n such that 2n gives the right result.

So, note that ngenerations = log2 blimit - log2 binitial

Once you have the number of generations (as a floating-point number) you can just truncate that to an integer number of hours.

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Nice! Using log is a better alternative. Thank You for the suggestion! –  Student May 17 '13 at 13:00

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