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Related code:

  write(-1, "test", sizeof("test"));
  void * p = malloc(1024);
  void * p2 = malloc(510);
  write(-1, "hi", sizeof("hi"));

Related strace output:

write(4294967295, "test\0", 5)          = -1 EBADF (Bad file descriptor)
brk(0)                                  = 0x601000
brk(0x622000)                           = 0x622000
write(4294967295, "hi\0", 3)            = -1 EBADF (Bad file descriptor)

I'm surprised such low level operation doesn't involve syscall?

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I don't understand what you're asking. The malloc call invokes the brk syscall. –  Gabe Jun 13 '11 at 3:46
    
Via test I found brk is not generated by malloc,because if I increase the number of malloc,brk doesn't increase. –  cpuer Jun 13 '11 at 3:48
    
Are you saying that if you remove the malloc calls, then the brk calls disappear from the trace? –  Gabe Jun 13 '11 at 3:50
    
malloc implementations will allocate more memory (virtual address space) up front from the OS and subsequent calls will pull from this preallocated pool. –  Logan Capaldo Jun 13 '11 at 3:50
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3 Answers

Not every call to malloc invokes a syscall. On my linux desktop malloc allocates a space in 128KB blocks and then distributes the space. So I will see a syscall every 100-200 malloc calls. On freebsd malloc allocates by 2MB blocks. On your machine numbers will likely differ.

If you want to see syscall on every malloc allocate large amounts of memory (malloc(10*1024*1024*1024))

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+1 - Nice answer. Welcome to the community! –  Sean Jul 1 '11 at 1:03
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What do you think brk is? malloc absolutely is invoking a syscall in this example, the syscall just isn't "malloc".

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malloc() calls the system brk() function (in Linux/Unix) - but it only calls it if the local heap is exhausted. I.e. most malloc implementations manage a memory heap obtained via brk(), and if it's too small or too fragmented they ask for more via brk().

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