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Objective: Here the codes should read any arbitrary long arithmetic expression like, 233+200. Then it should print in the postfix and prefix formats and calculate it i.e 433.

Problems: output shows anomalous data like 98, 101 etc. I think there
might be any mistake in the code.
please have a look and let me know it.
#include<stdio.h>
void copy(char* t, char* s, int n)
{
    int i;
    for(i=0;i<n;i++)
        t[i]=s[i];
    t[n]='\n';
}
int fix(char* s, int length, int task)
{
    int i;
    for( i=length-1;i>=0;i--)
    {
        if((s[i]=='+')||(s[i]=='-'))
        {
            char s1[i+1];
            char s2[length-i];
            copy(s1,s,i);
            copy(s2,s+i+1,length-i-1);
            if(task==2)
            {
                return fix(s1,i,task)+fix(s2,i,task);
            }
            else
            {
                return fix(s1,i,task)-fix(s2,length-1,task);
            }
            if(task==0)printf("%c",s[i]);;
            fix(s1,i,task);
            fix(s2,length-i-1,task);
            if(task==1)printf("%c",s[i]);
            return 0;
        }
    }
}
int main(){
    char s[80];
    int i;
    for(i=0;(s[i]=getchar())!='\n';i++);
    fix(s,i,0);
    printf("\n");
    fix(s,i,1);
    printf("\n");
    printf("%d\n",fix(s,i,2));
    return 0;
}
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Is this homework? Can you provide us with some examples of the exact output that you are seeing and the exact input that you used to generate it? –  bta Jun 1 '11 at 18:13
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4 Answers

Well, yes, there are a few problems in the code. We don't generally run a free debugging service here, but for starters, what is:

(s,i,0);

supposed to be doing?

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sorry it was fix(s,i,0)..just notepad copy mistake. –  Gorge Jun 1 '11 at 18:09
1  
@Gorge: Do a copy-paste of the code, not a manual copy. If you retype into the question box, you're likely to type what you subconsciously know is right rather than what's there. We've seen a lot of code that couldn't possibly get the erroneous output supplied. –  David Thornley Jun 1 '11 at 18:23
    
sorry i dont understand you?? –  Gorge Jun 1 '11 at 18:30
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In the copy function, where is the ending null character after contents of s have been copied into t? Terminating a c string with \n instead of \0 is wrong. All c strings are terminated by a null character at the end.

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it did not work..sorry –  Gorge Jun 1 '11 at 18:11
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Have you tried stepping through this code in a debugger? I think doing so would make it much more clear that your program is not doing what you think it is doing.

One potential problem is that the code following the if(task==2) { ... } else { ... } block in the fix function will never be executed. Both the if and else cases contain return statments, so execution will never make it to that code.

Also, your loop for(i=0;(s[i]=getchar())!='\n';i++); in main has no protection against writing past the end of array s. This line of code is essentially the same as the standard library function gets, which has the same problem.

What compiler are you using? What compiler options are you using?

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I am not sure what the purpose of task 0 and task 1 are, but you are not using the + or - operator in the input at all. What you should be doing is something like this:

#include<stdio.h>

int fix(char* s) {
  int v=0;
  for(int i=0;s[i]!='\0';i++) {
    char op=s[i];
    switch (op) {
    case '+':
    case '-':
      // We encountered a math operator.  
      s[i]='\0';
      if      (op=='+') return fix(s) + fix(s+i+1);
      else if (op=='-') return fix(s) - fix(s+i+1);
      break;
    case '1': case '2': case '3': case '4': case '5': 
    case '6': case '7': case '8': case '9': case '0':
      // This is part of the value.
      v*=10;
      v+=s[i]-'0';
      break;
    default:
      // Ignore non-operators and non values.
      break;
    }
  }
  // Return the value
  return v;
}

int main(){
    char s[80];
    int i;
    for(i=0;(s[i]=getchar())!='\n';i++);
    s[i]='\0';
    printf("%d\n",fix(s));
    return 0;
}
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