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I wanted to subtract two char arrays which have numeric values. I am doing it because I want to subtract big numbers. When I compile this program,it does not show any errors but in the execution it crashes. I tried to do as following pseudo code

foreach character(right2left)
    difference=n1[i]-n2[i]//here suppose they are integers
    if(difference<0)
    {
        n1[i-1]--;
        difference+=10;
    }
    result[i]=diff;

I wrote pseudo code for clarity.

 int subtract(char *n1,char *n2,int n1Len,int n2Len){
 int diff;  
    int max=n1Len;
  char* res = (char*)malloc (max+2);
    memset(res, '0', max +1); 

    res[max] = '\0';
    int i=n1Len - 1, j = n2Len - 1, k = max;
    for (; i >= 0 && j >=0; --i, --j, --k) {
    if(i >= 0 && j>=0)
    {
            diff=(n1[i]-'0') - (n2[i]-'0') ;
        if(diff<0)
        {
        int temp=n1[i-1]-'0';
        temp=temp-1;
        n1[i-1]=temp+'0';
        diff+=10;
        }
        res[i]=diff+'0';
   }
  else 
         res[i]=n1[i];

    }
    return atoi(res);
 }


int main(void) {
    int t=subtract("55","38",2,2);
    printf("%d\n", t);
}
share|improve this question
    
Why don't you use a bignum class? – David Heffernan Dec 15 '11 at 17:40
1  
What is meant by not run? It does not compile? It does not give results you want? or It runs but crashes? Please just don't dump code on us and make us find that out. It is your problem so tell us your problem clearly and explicitly. – Alok Save Dec 15 '11 at 17:40
    
How? if it is advanced I shouldn't use it.this code is for some one whom is so beginner in C. – Nickool Dec 15 '11 at 17:42
    
@AIs I edited it because it now executes but the output is 0 not the true answer(17) – Nickool Dec 15 '11 at 17:43
    
You cannot assign to n1[], it is a string literal. (you misuse n1 to store the borrow) n1 as called by main() points to "53"; and is not assignable. – wildplasser Dec 15 '11 at 17:43
up vote 2 down vote accepted

There are a few visible mistakes. Hopefully these will provide you with some pointers:

  1. You are passing string literals to the function & trying to modify them in the function. That is not valid and will most likely cause segmentation fault. Instead of int t=subtract("55","38",2,2); Maybe you can try:
    char a[] = "55";
    char b[] = "38";
    int t=subtract(a,b,strlen(a), strlen(b));

  2. max should be n1Len+1 to accommodate terminating NUL character in res char array. You can set it to 0 rather than '0' when initializing. res[max] = '\0'; invokes undefined behavior as you access out of bound element, get rid of it. So use memset(res,0,max) instead. Or use calloc instead of malloc+memset as suggested by @pmg.

  3. Don't typecast return value of malloc or calloc when coding in C

  4. for (; i >= 0 || j >=0; --i, --j, --k) should actually be for (; i >= 0 && j >=0; --i, --j, --k) as neither i nor j should be 0. You need to work on the function logic wherein i!=j.

  5. diff=n1[i]-'0'+n2[i]-'0' should be diff=(n1[i]-'0') - (n2[i]-'0') as you are subtracting and not adding the digits

  6. res[i]=diff is incorrect as you are setting the integer result as character value. Change it to res[i]=diff+'0' to set the character value

Hopefully this will get you started.
Hope this helps!

share|improve this answer
    
Thank you!!!! about your number1 I have another function of add that I strictly call them and it is working.about number 5 no it shouldn't be because when I write n1[i]-'0' I mean integer value of the n1 and I have n2[i]-'0' which will be decrease from n1 then we have this n1-'0'-(n2-'0') which will be the thing that I wrote I will try your other parts Thank you so much – Nickool Dec 15 '11 at 18:27
    
oh you are right! I inversely wrote it now it will crashes! nothing will be shown.appologize – Nickool Dec 15 '11 at 18:31
    
@nikparsa: Program crashes? – another.anon.coward Dec 15 '11 at 18:38
    
I mean in execute it tells me in a window negin.exe has encountered a problem and needs to close. We are sorry for the inconvenience. – Nickool Dec 15 '11 at 18:42
    
Vote up for your helps – Nickool Dec 15 '11 at 18:42
    char* res = (char*)malloc (max);
    memset(res, '0', max-1);      // set the result to all zeros
    res[max] = '\0';

Let's say max is 3.
You set res[0], and res[1] to 0. Then you set the inexistent res[3] to 0.
res[2] is still uninitialized.

Try calloc instead, and don't forget space for the zero string terminator :)

Also, casting the return value from malloc (or calloc) is, at best, redundant and may hide an error the compiler would have caught if the cast wasn't there.

    char *res = calloc(max + 1, 1); // allocate and initialize to 0
share|improve this answer
    
Thanks I dunno calloc would you please tell me? – Nickool Dec 15 '11 at 17:50
    
I like the POSIX site for quick reference to many function, including calloc(). Some of the functions (or their usage) described there are POSIX specific, but they are easily identifiable and you can avoid them if you want to write portable C. – pmg Dec 15 '11 at 17:53
    
Thanks but It still returns the zero. – Nickool Dec 15 '11 at 17:56
    
ok i will change the return from int to char* and I will return res to see what will be – Nickool Dec 15 '11 at 17:57
    
I couldn't get any result still. – Nickool Dec 15 '11 at 18:16

This

diff=n1[i]-'0'+n2[i]-'0';

should be the difference

diff = (n1[i] - '0') - (n2[j] - '0');

(besides subtracting and not adding, the index for n2 ought to be j, I think). With adding, you can get non-digit characters in the result, and atoi() stops at the first of them, if that's the very first, it returns 0.

Also, you should check that n2 is indeed not longer than n1, or you'll write out of bounds.

share|improve this answer
    
yes you are right! I corrected now it will show me nothing it crashes on the console. – Nickool Dec 15 '11 at 18:31
    
Vote Up and Thanks – Nickool Dec 15 '11 at 19:09
diff=n1[i]-'0'+n2[i]-'0';

this does not give the difference.It should be

diff = (n1[i] - '0') - (n2[j] - '0');
share|improve this answer
    
In fact you're still passing char string, as char[] is an equivalent for char* in function parameter. n1Len and n2Len are optional if he's using normal string, because they're 0-terminated. – Synxis Oct 11 '12 at 21:04

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