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I am trying to find e to the power x. Please indicate what could possibly be wrong with my current implementation rather than simply suggesting new/ore efficient solutions (i could find many on the net). There seems to be a logical or run time error, debugging it doesn't show anything. Thanks in advance!

cmath library has been included, program compiles fine..stops on run

double find_e_power_x(int x){
     int i = 1, j = 1, count = 1, accuracy = 15;
     double xd = static_cast<double>(x); //pow takes double args
     double jd = static_cast<double>(j);
     double epx = 1.0;
     while ( count < accuracy ){
           while ( ++i && ++j) {
                 epx += ( pow(xd,jd) / fact(i) ); //static_cast
                 count++;
           }
     }
     return epx;
} 

In response to the comments (pointing out my infinite inner loop),

EDIT:

while ( count < accuracy ){
                 epx += ( pow(xd,jd) / fact(i) ); //static_cast
                 count++;
                 i++;
                 j++;
     }

input =3 answer is incorrect though it does give an output as 3.15485


below is the final version works fine

i/p = 4

o/p = 54.8278

double find_e_power_x(int x){
     int i = 1, count = 1, accuracy = 15;
     double xd = static_cast<double>(x); //pow takes double args
     double id = static_cast<double>(i);
     double epx = 1.0;
     while ( count < accuracy ){
                 epx += ( pow(xd,id) / fact(i) ); //static_cast
                 ++count;
                 ++id;
                 ++i;
     }
     return epx;
} 
share|improve this question
    
Could you give some sample inputs and outputs and what you expect? –  Joseph Mansfield May 7 '13 at 12:54
    
What error(s) do you get ? –  JBL May 7 '13 at 12:55
13  
Also, when do you expect the inner loop to end? –  Joseph Mansfield May 7 '13 at 12:55
1  
Err, isn't this provided by the exp() function in cmath? –  paxdiablo May 7 '13 at 13:02
1  
You can check this question, and its first answer: stackoverflow.com/questions/827706/… –  Baltasarq May 7 '13 at 13:06

1 Answer 1

up vote 6 down vote accepted

You are incrementing j each time round your loop, but not jd. Therefore your expression:

epx += ( pow(xd,jd) / fact(i) ); //static_cast

is effectively:

epx += ( pow(xd, 1.0) / fact(i) ); //static_cast

each time.

Move this line:

double jd = static_cast<double>(j);

inside your loop or just increment jd directly.

share|improve this answer
    
yeah thanks, just saw your reply post my edit. got it right already.thanks loads anyway. –  ShivaniDhanked May 7 '13 at 13:11

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