C99标准具有字节大小为int64_t的整数类型。我正在使用Windows的%I64d格式(或unsigned %I64u),如:
#include <stdio.h>
#include <stdint.h>
int64_t my_int = 999999999999999999;
printf("This is my_int: %I64d\n", my_int);
然后我得到这个编译器警告:
warning: format ‘%I64d’ expects type ‘int’, but argument 2 has type ‘int64_t’
我试过:
printf("This is my_int: %lld\n", my_int); // long long decimal
但我得到了同样的警告。我正在使用这个编译器:
~/dev/c$ cc -v
Using built-in specs.
Target: i686-apple-darwin10
Configured with: /var/tmp/gcc/gcc-5664~89/src/configure --disable-checking --enable-werror --prefix=/usr --mandir=/share/man --enable-languages=c,objc,c++,obj-c++ --program-transform-name=/^[cg][^.-]*$/s/$/-4.2/ --with-slibdir=/usr/lib --build=i686-apple-darwin10 --program-prefix=i686-apple-darwin10- --host=x86_64-apple-darwin10 --target=i686-apple-darwin10 --with-gxx-include-dir=/include/c++/4.2.1
Thread model: posix
gcc version 4.2.1 (Apple Inc. build 5664)
我应该使用哪种格式打印my_int变量没有警告?
