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I need to intake a number like: 200939915

After doing this, which I know how, I need to remove the first number so it becomes: 00939915

What is the best way to do this?

share|improve this question
    
is this homework? – tenfour Nov 30 '10 at 23:24
1  
Nope. Working on a personal project to help me learn C. – Mark Provan Nov 30 '10 at 23:34
up vote 7 down vote accepted
char *c = "200939915";
char *d = c + 1;
share|improve this answer
1  
+1; if you want to treat the number like a string, make it a string. – tenfour Nov 30 '10 at 23:25
    
Don't forget that sizeof(d) != sizeof(c) – Mateen Ulhaq Nov 30 '10 at 23:36
    
When I go to printf the new char, it is blank? – Mark Provan Nov 30 '10 at 23:38
3  
@muntoo Those sizes are equal. strlen(c) and strlen(d) is another story. – Maciej Hehl Nov 30 '10 at 23:39
1  
@Mark: if your input is in an int, you can declare a local char buffer ala char buf[128]; (128 is plenty big enough but not significantly wasteful), then sprintf(buffer, "%d", x); (where x is your int variable. Then, if the number was >=10, look at buffer[1] for the textual data: if you need that as an int again just convert with atoi(buffer[1]). – Tony D Dec 1 '10 at 1:07

I will probably attract the downvoters but here is what I would do:

#include <iostream>
#include <math.h>

int main()
{
    int number;
    std::cin >> number;

    int temp = number;
    int digits = 0;
    int lastnumber = 0;
    while(temp!=0)
    {
        digits++;
        lastnumber = temp % 10;
        temp = temp/10;
    }

    number =  number % (lastnumber * (int)pow(10,digits-1));
    std::cout << number << std::endl;
    return 0;
}

obviously since you want it in c change std::cin to scanf (or whatever) and std::cout to printf (or whatever). Keep in mind though that if you want the two 00 to remain in the left side of the number, Kane's answer is what you should do. Cheers

share|improve this answer
    
Don't worry, I won't downvote. :) You could always community wiki. – Mateen Ulhaq Nov 30 '10 at 23:46

An alternative method, although I like Matt Kane's best:

unsigned long n = 42424242;
n = n % (unsigned long)pow(10.0, (double)floor(log10(n)));
// n = 2424242;
share|improve this answer
    
pow returns a double which is not valid with the % operator. Also this approach in principle is subject to rounding issues. Try printf("%lld\n", (long long)pow(10,18));` or so. – R.. Dec 1 '10 at 1:15
    
Hey... Why did I get -1? – Mateen Ulhaq Dec 2 '10 at 5:26

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