388
#include <stdio.h>
int main() {
    unsigned long long int num = 285212672; //FYI: fits in 29 bits
    int normalInt = 5;
    printf("My number is %d bytes wide and its value is %ul. A normal number is %d.\n", sizeof(num), num, normalInt);
    return 0;
}

Output:

My number is 8 bytes wide and its value is 285212672l. A normal number is 0.

I assume this unexpected result is from printing the unsigned long long int. How do you printf() an unsigned long long int?

  • 2
    I just compiled your code ( with %llu ) with gcc and the output was the correct one. Are you passing any options to the compiler? – Juan Aug 7 '08 at 23:13
  • 2
    Note that samsung bada's newlib seems not to support "%lld" : developer.bada.com/forum/… – RzR Oct 7 '10 at 10:42
  • 1
  • I would suggest using using stdint.h and being explicit about the number of bits in your variable. We're still in a period of transition between 32 and 64 bit architectures, and "unsigned long long int" doesn't mean the same thing on both. – BD at Rivenhill May 13 '11 at 22:19

12 Answers 12

494

Use the ll (el-el) long-long modifier with the u (unsigned) conversion. (Works in windows, GNU).

printf("%llu", 285212672);
| improve this answer | |
  • 11
    Or to be precise it's for GNU libc, and doesn't work with Microsoft's C runtime. – Mark Baker Oct 8 '08 at 9:35
  • 172
    This isn't a Linux/UNIX thing, the "ll" length modifier was added to Standard C in C99, if it doesn't work in "Microsoft C" then it is because they are not standards compliant. – Robert Gamble Oct 17 '08 at 4:46
  • 13
    Works for me in VS2008. Moreover, as far as I remember the MS C Compiler (when set up to compile straight C) is supposed to be C90 compliant by design; C99 introduced some things that not everyone liked. – スーパーファミコン Oct 11 '09 at 20:57
  • 6
    One thing to keep in mind here is that if you are passing multiple long long arguments to printf and use the wrong format for one of them, say %d instead of %lld, then even the arguments printed after the incorrect one may be completely off (or can even cause printf to crash). Essentially, variable arguments are passed to printf without any type information, so if the format string is incorrect, the result is unpredictable. – dmitrii Jan 23 '12 at 23:10
  • 1
    Heard Herb Sutter say in an interview that Microsoft's customers don't ask for C99 so their pure C compiler has been frozen at C90. That applies if you are compiling as C. If you compile as C++, as others have noted above, you should be fine. – ahcox Sep 19 '12 at 20:29
93

You may want to try using the inttypes.h library that gives you types such as int32_t, int64_t, uint64_t etc. You can then use its macros such as:

uint64_t x;
uint32_t y;

printf("x: %"PRId64", y: %"PRId32"\n", x, y);

This is "guaranteed" to not give you the same trouble as long, unsigned long long etc, since you don't have to guess how many bits are in each data type.

| improve this answer | |
  • where these PRId64, PRId32 macros defined? – happy_marmoset Dec 12 '13 at 12:31
  • 4
    @happy_marmoset: they are defined in inttypes.h – Nathan Fellman Dec 12 '13 at 14:49
  • 4
    I think you need PRIu64 and PRIu32 for unsigned integers. – Lasse Kliemann Jun 3 '16 at 15:08
  • 1
    Is inttypes.h standard? Wouldn't it be stdint.h? – MD XF May 22 '17 at 21:20
  • 2
    Note that these exact-width types are optional, as there are architectures out there that do not have integer types of those exact widths. Only the leastX and fastX types (which may actually be wider than indicated) are mandatory. – DevSolar Jul 9 '18 at 15:01
84

%d--> for int

%u--> for unsigned int

%ld--> for long int or long

%lu--> for unsigned long int or long unsigned int or unsigned long

%lld--> for long long int or long long

%llu--> for unsigned long long int or unsigned long long

| improve this answer | |
  • 1
    Is there format specifier like number of digits to display, left or right justification for %lld or %llu ? – Asam Padeh Sep 30 '19 at 23:10
40

For long long (or __int64) using MSVS, you should use %I64d:

__int64 a;
time_t b;
...
fprintf(outFile,"%I64d,%I64d\n",a,b);    //I is capital i
| improve this answer | |
37

That is because %llu doesn't work properly under Windows and %d can't handle 64 bit integers. I suggest using PRIu64 instead and you'll find it's portable to Linux as well.

Try this instead:

#include <stdio.h>
#include <inttypes.h>

int main() {
    unsigned long long int num = 285212672; //FYI: fits in 29 bits
    int normalInt = 5;
    /* NOTE: PRIu64 is a preprocessor macro and thus should go outside the quoted string. */
    printf("My number is %d bytes wide and its value is %" PRIu64 ". A normal number is %d.\n", sizeof(num), num, normalInt);
    return 0;
}

Output

My number is 8 bytes wide and its value is 285212672. A normal number is 5.
| improve this answer | |
  • +1 for the reference to PRIu64, which I had never seen, but this doesn't seem portable to 64 bit Linux (at least) because PRIu64 expands to "lu" instead of "llu". – BD at Rivenhill May 13 '11 at 22:15
  • 8
    And why would that be bad? A long is a 64 bit value on 64 bit Linux, as on every other OS except for Windows. – Ringding Mar 4 '12 at 15:06
  • @BDatRivenhill Linux/Unix uses LP64 in which long is 64 bits – phuclv Apr 16 '14 at 12:51
  • 1
    however, to make it more portable, use int64_t instead because there may well be some implementations with long long larger than long – phuclv Jan 21 '15 at 4:12
  • this should to the top! - one small update: error: invalid suffix on literal; C++11 requires a space between literal and identifier [-Wreserved-user-defined-literal] – tofutim Aug 27 '18 at 19:05
15

In Linux it is %llu and in Windows it is %I64u

Although I have found it doesn't work in Windows 2000, there seems to be a bug there!

| improve this answer | |
  • with windows, (or at least, with the microsoft C compiler for windows) there's also %I64d, %I32u, and %I32d – JustJeff Sep 6 '09 at 14:55
  • 1
    What does it have to do with Windows 2000? The C library is the one that handles printf. – CMircea May 8 '10 at 18:00
  • 1
    Just what I observed. I wrote an app which used this construct and it worked perfectly on WinXP but spat garbage on Win2k. Maybe it's something to do with a system call that the C library is making to the kernel, maybe it's something to do with Unicode, who knows. I remember having to work around it using _i64tot() or something like that. – Adam Pierce May 11 '10 at 6:21
  • 7
    Sounds like MS exercising its "freedom to innovate" again... ;-) – Dronz Nov 12 '12 at 6:20
  • The Win2k/Win9x issue is likely due to unsigned long long datatype being relatively new (at the time, with the C99 standard) but C compilers (including MinGW/GCC) utilizing the old Microsoft C runtime which only supported the C89 spec. I only have access to really old and reasonably recent Windows API docs. So it's difficult to say exactly when I64u support was dropped in. But it sounds like the XP-era. – veganaiZe Jun 18 '18 at 17:57
8

Compile it as x64 with VS2005:

%llu works well.

| improve this answer | |
3

In addition to what people wrote years ago:

  • you might get this error on gcc/mingw:

main.c:30:3: warning: unknown conversion type character 'l' in format [-Wformat=]

printf("%llu\n", k);

Then your version of mingw does not default to c99. Add this compiler flag: -std=c99.

| improve this answer | |
3

Apparently no one has come up with a multi-platform* solution for over a decade since [the] year 2008, so I shall append mine 😛. Plz upvote. (Joking. I don’t care.)

Solution: lltoa()

How to use:

#include <stdlib.h> /* lltoa() */
// ...
char dummy[255];
printf("Over 4 bytes: %s\n", lltoa(5555555555, dummy, 10));
printf("Another one: %s\n", lltoa(15555555555, dummy, 10));

OP’s example:

#include <stdio.h>
#include <stdlib.h> /* lltoa() */

int main() {
    unsigned long long int num = 285212672; // fits in 29 bits
    char dummy[255];
    int normalInt = 5;
    printf("My number is %d bytes wide and its value is %s. "
        "A normal number is %d.\n", 
        sizeof(num), lltoa(num, dummy, 10), normalInt);
    return 0;
}

Unlike the %lld print format string, this one works for me under 32-bit GCC on Windows.

*) Well, almost multi-platform. In MSVC, you apparently need _ui64toa() instead of lltoa().

| improve this answer | |
1

Non-standard things are always strange :)

for the long long portion under GNU it's L, ll or q

and under windows I believe it's ll only

| improve this answer | |
0

Well, one way is to compile it as x64 with VS2008

This runs as you would expect:

int normalInt = 5; 
unsigned long long int num=285212672;
printf(
    "My number is %d bytes wide and its value is %ul. 
    A normal number is %d \n", 
    sizeof(num), 
    num, 
    normalInt);

For 32 bit code, we need to use the correct __int64 format specifier %I64u. So it becomes.

int normalInt = 5; 
unsigned __int64 num=285212672;
printf(
    "My number is %d bytes wide and its value is %I64u. 
    A normal number is %d", 
    sizeof(num),
    num, normalInt);

This code works for both 32 and 64 bit VS compiler.

| improve this answer | |
  • Try an actual 64-bit number instead of '285212672' and I do not believe the first example runs correctly, compiled to any target. – dyasta Oct 13 '18 at 18:59
0

Hex:

printf("64bit: %llp", 0xffffffffffffffff);

Output:

64bit: FFFFFFFFFFFFFFFF
| improve this answer | |
  • Very nice! i was wondering how i could get it in hex representation – 0xAK Aug 12 '16 at 22:54
  • But, almost all the C++ and C compilers give the warning: warning: use of 'll' length modifier with 'p' type character [-Wformat=] – Seshadri R Nov 16 '17 at 9:00
  • 2
    this utterly broken answer has doubly-undefined behaviour and does not even begin to answer the question. – Antti Haapala Dec 18 '19 at 21:10
  • @AnttiHaapala You say this answer is utterly broken with doubly-undefined behaviour, can you elaborate or shall I just delete it? Or keep it as a good bad example? – lama12345 Dec 19 '19 at 9:46

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