c code:
// program break mechanism
// TLPI exercise 7-1
#include <stdio.h>
#include <stdlib.h>
void program_break_test() {
printf("%10p
", sbrk(0));
char *bl = malloc(1024 * 1024);
printf("%x
", sbrk(0));
free(bl);
printf("%x
", sbrk(0));
}
int main(int argc, char **argv) {
program_break_test();
return 0;
}
When compiling following code:
printf("%10p
", sbrk(0));
I get warning tip:
format ‘%p’ expects argument of type ‘void *’, but argument 2 has type ‘int’
Question 1: Why is that?
And after I malloc(1024 * 1024), it seems the program break didn't change.
Here is the output:
9b12000
9b12000
9b12000
Question 2: Does the process allocate memory on heap when start for future use? Or the compiler change the time point to allocate? Otherwise, why?
[update] Summary: brk() or mmap()
After reviewing TLPI and check man page (with help from author of TLPI), now I understand how malloc() decide to use brk() or mmap(), as following:
mallopt() could set parameters to control behavior of malloc(), and there is a parameter named M_MMAP_THRESHOLD, in general:
- If requested memory is less than it,
brk() will be used;
- If requested memory is larger than or equals to it,
mmap() will be used;
The default value of the parameter is 128kb (on my system), but in my testing program I used 1Mb, so mmap() was chosen, when I changed requested memory to 32kb, I saw brk() would be used.
The book mentioned that in TLPI page 147 and 1035, but I didn't read carefully of that part.
Detailed info of the parameter could be found in man page for mallopt().
See Question&Answers more detail:
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