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#include <stdio.h>
#include <math.h>

long int input;
long int base, exponent;

void convert(long int x,long int y)
{
    input = x;
    base = y;

    while (input > 0){
        exponent = floor(log(input)/log(base));
        input = input - pow(base, exponent);
    }
}

int main(void){
    scanf("%d", &input);
    scanf("%d", &base);
    convert(input, base);
}

I was trying to compile the code above to see if I can convert decimal into different bases, but I get the following error:

assignment2.c(14): error C2143: syntax error : missing ';' before 'type'

I have been struggling for hours, but I have no idea what this is referring to. How can I fix this?

EDIT: this is the whole message

1>------ Build started: Project: assignment2, Configuration: Debug Win32 ------
1>Build started 2012-04-27 오후 5:45:10.
1>InitializeBuildStatus:
1>  Touching "Debug\assignment2.unsuccessfulbuild".
1>ClCompile:
1>  assignment2.c
1>c:\users\조화수\documents\visual studio 2010\projects\assignment2\assignment2\assignment2.c(14): error C2143: syntax error : missing ';' before 'type'
1>  assign2.c
1>c:\users\조화수\documents\visual studio 2010\projects\assignment2\assignment2\assign2.c(13): warning C4244: '=' : conversion from 'double' to 'long', possible loss of data
1>c:\users\조화수\documents\visual studio 2010\projects\assignment2\assignment2\assign2.c(14): warning C4244: '=' : conversion from 'double' to 'long', possible loss of data
1>c:\users\조화수\documents\visual studio 2010\projects\assignment2\assignment2\assign2.c(19): warning C4996: 'scanf': This function or variable may be unsafe. Consider using scanf_s instead. To disable deprecation, use _CRT_SECURE_NO_WARNINGS. See online help for details.
1>          c:\program files\microsoft visual studio 10.0\vc\include\stdio.h(304) : see declaration of 'scanf'
1>c:\users\조화수\documents\visual studio 2010\projects\assignment2\assignment2\assign2.c(20): warning C4996: 'scanf': This function or variable may be unsafe. Consider using scanf_s instead. To disable deprecation, use _CRT_SECURE_NO_WARNINGS. See online help for details.
1>          c:\program files\microsoft visual studio 10.0\vc\include\stdio.h(304) : see declaration of 'scanf'
1>  Generating Code...
1>
1>Build FAILED.
1>
1>Time Elapsed 00:00:02.98
========== Build: 0 succeeded, 1 failed, 0 up-to-date, 0 skipped ==========
share|improve this question
    
Are you sure you posted the code that matches that error message? (Or the error message that matches this code?) –  Mat Apr 27 '12 at 9:38
    
If this is indeed the entire source file, I would start by renaming some variables, just in case I had hit on one that was already defined as a macro. –  geekosaur Apr 27 '12 at 9:39
2  
it compiles fine. The error is somewhere else. –  dasblinkenlight Apr 27 '12 at 9:42
2  
Microsoft Visual Studio C compiler is buggy. –  pmg Apr 27 '12 at 9:43
1  
The compiler output says that you are compiling two files, assignment2.c and assign2.c. The warnings for assign2.c match the code you posted. The error you ask about is in the other file, assignment2.c. –  sth Apr 27 '12 at 10:06

4 Answers 4

up vote 2 down vote accepted

pow and log expect double or float. With a cast it works for me:

exponent = floor(log((double)input)/log((double)base));
input = input - pow((double)base, (double)exponent);

Initially I got an error stating that the compiler couldn't resolve an ambiguity between various oveloads (on VS 2008)

share|improve this answer
1  
This shouldn't be necessary in C. –  larsmans Apr 27 '12 at 10:17
    
You're right...I had the file renamed to .c and there's no error. Why does this happen though? –  mihai Apr 27 '12 at 10:22
1  
Because C++ supports overloading, where you have different versions of a function that will be called depending on the types of the arguments you pass, and this feature is used by some of its mathematical functions. C++ has multiple different versions of log. C doesn't support overloaded functions and has only one version of log. (The very latest version of the C standard defines facilities for doing something a bit like this in C, but Microsoft's compiler doesn't support the very latest version of the C standard, or even the version before that, and probably never will.) –  Gareth McCaughan Apr 27 '12 at 10:31
    
thanks Gareth, that makes sense –  mihai Apr 27 '12 at 11:45

how is it my friend :)?

#include <stdio.h>
#include <math.h>

int CB, DB;
 void base(void)
 {
   int adad2[100], i=-1,j;
   char adad1[100], ch;
   long int num1=0, num2=0;

   printf("Enter your num: ");
   scanf("%c", &ch);

   do
     {
       i++;
       scanf("%c", &adad1[i]);
     } while(adad1[i]!='\n');

   j=i-1;
   for(i=j;i>=0;i--)
     { //converts the base to 10.                                                                                                                                 
       if(adad1[i]<='9'&& adad1[i]>='0')
     {
       num1+=((long int)pow((float)CB,(j-i)))*(((int)adad1[i])-48);  //converting ascii code to num                                         
     }
       else if(adad1[i]<='Z'&&adad1[i]>='A')
     {
       num1+=((long int)pow((float)CB,(j-i)))*(((int)adad1[i])-55);
     }
       else if(adad1[i]<='z'&&adad1[i]>='a')
     {
       num1+=((long int)pow((float)CB,(j-i)))*(((int)adad1[i])-87);
     }
     }

   i=0;
   while(num1>=DB)
     { //converts the base to b. (START)                                                                                                                             
       adad2[i]=num1%DB;
       i++;
       num1/=DB;
     }

   adad2[i]=num1; //converts the base to b. (END)                                                                                                                                
   printf("\nResult: \n");

   for(;i>=0;i--)
     { //prints the result.                                                                                                                                          
       if(adad2[i]<=9&&adad2[i]>=0){
     printf("%d",adad2[i]);
       }

       else if(adad2[i]>=10&&adad2[i]<=35){
     printf("%c",(char)(adad2[i]+55));
       }
     }
 }

 void main(void)
 {
   printf("Guide: You must enter \"Current Base & Desired Base\" between 2 adn 32...");
   printf("\nEnter current base: ");
   scanf("%d", &CB);

   printf("\nEnter desired base: ");
   scanf("%d", &DB);

   base();
   getchar();
   printf("\n");

 }
share|improve this answer

including fraction part in the previous code

#include<stdio.h>
main()
{
      int rem,m=0,i,n;
      int a[100],base;
      float num,t,j;
      scanf("%f%d",&num,&base);
      n=(int)num;
      t=num-n;
      j=1.0/base;
      while(n){
               rem=n%base;
               if(rem<10)
               a[m++]=rem+'0';
               else
               a[m++]='A'+rem-10;
               n/=base;
      }
      while(m--)
      printf("%c",a[m]);
      printf(".");
      m=0;
      while(t>0.00001){
                       rem=0;
                        if(t>j)
                        {for(i=1;(j*i)<t;i++);
                        rem=i-1;}
                        if(rem==0)
                        a[m++]=0;
                        else if(rem<10)
                        a[m++]=rem+'0';
                        else
                        a[m++]='A'+rem-10;                        
                        t-=(j*rem);
                        j/=base;
      }
      for(i=0;i<m;i++)
      printf("%c",a[i]);
}
share|improve this answer

try this if you want to convert from decimal to any base upto 36

#include<stdio.h>
main()
{
      int n,rem,m=0,i;
      int a[100],base;
      scanf("%d%d",&n,&base);
      while(n){
               rem=n%base;
               if(rem<10)
               a[m++]=rem+'0';
               else
               a[m++]='A'+rem-10;
               n/=base;
      }
      while(m--)
      printf("%c",a[m]);
}
share|improve this answer
    
Add code for fraction part too, not just integers... –  anishsane May 8 at 9:00
    
Thanks!! have added the code for fraction part in the new code. –  lokesh5790 May 9 at 1:59

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