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when I'm trying to compile my c program it gives me this error warning: integer constant is too large for 'long' type

which refers to these lines

int barcode, a, b, c;
scanf("%d", &barcode);
a = barcode / 1000000000000;
b = barcode / 100000000000 % 10;
c = barcode / 10000000000 % 10;

and the rest is fine. I know I'm not supposed to use int for such a large number, any suggestions on what I should use? if I replace int with double what should the '%d' part be replaced with then?

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got it to work now, thanks guys for the fast response, I'm going to bookmark and use this site more often!!! –  dydx Mar 27 '10 at 9:04
    
Back when I worked with barcodes (a long time ago), we always treated them as strings, not numbers. –  anon Mar 27 '10 at 9:12
    
dydx: don't forget to mark an answer as "accepted". –  caf Mar 27 '10 at 10:44
    
will do, thank you. @Neil, I can't use strings/arrays/functions for my work. –  dydx Mar 27 '10 at 11:18
    
Why on earth not? And you are using a function - scanf() –  anon Mar 27 '10 at 11:40

4 Answers 4

up vote 4 down vote accepted

Use long longs instead of ints for integer values of that size, with the LL literal suffix:

long long barcode, a, b, c;
scanf("%lld", &barcode);
a = barcode / 1000000000000LL;
b = barcode / 100000000000LL % 10;
c = barcode / 10000000000LL % 10;
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1  
shouldn't it be scanf("%lld", &barcode); since barcodes are 13 digits? –  dydx Mar 27 '10 at 8:55
    
Good catch. Fixed. –  Dan Story Mar 27 '10 at 9:20

Change the datatype to long as shown here

long barcode, a, b, c;
scanf("%ld", &barcode);
a = barcode / 1000000000000L;
b = barcode / 100000000000L % 10;
c = barcode / 10000000000L % 10;
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Not long enough on many 32-bit targets. –  KennyTM Mar 27 '10 at 10:07

You should replace your int with long int, and prefix the constants with L

Like this:

long long unsigned int barcode;
barcode = 100000000LL;
printf("Barcode is %li", barcode);
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So it would be: long int barcode, a, b, c; scanf("%il", &barcode); a = barcode / 1000000000000L; b = barcode / 100000000000L % 10; c = barcode / 10000000000L % 10; right? 13 digits is pretty big, what about long long instead? long long barcode, a, b, c; what do I replace %d with? –  dydx Mar 27 '10 at 8:34
    
nope, still no luck, i've added the L at the end of a = barcode / 1000000000000L; and it still gives me integer constant is too large for 'long' type –  dydx Mar 27 '10 at 8:39
    
Im sorry my bad, i forgot that in c/c++ long int has the same size as int. So it should be long long int. Ill update my post –  Henri Mar 27 '10 at 8:47
1  
The printf in your example will work, because the literal value you've given it is within the constraints of a 32-bit integer, but if the value stored in the long long exceeds MAX_INT, you will need to specify %lld to the printf specifier to make it output correctly on most compilers. –  Dan Story Mar 27 '10 at 8:54
    
@Dan Story, you're right! –  Henri Mar 27 '10 at 9:25

(if you like an answer, perhaps you could select one?)

Also, you might consider placing the barcode in a string instead. This way you can access the first 3 digits that you need more easily (if that is what you roughly want - note: you do want c to be the first two digits after the first digit, correct?)

char barcode[14];
int a, b, c;
scanf("%s", &barcode);
a = (int) (barcode[0] - '0');
b = (int) (barcode[1] - '0');
c = b * 10 + (int)(barcode[2] - '0');
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