mac*_*ler 2 c memory-management glib double-free
释放由glib g_malloc函数分配的缓冲区两次是安全的还是禁止的?
char *buffer = g_malloc(10);
g_free(buffer);
g_free(buffer);
来自glib/gmem.c(假设你没有做g_mem_set_vtable一些花哨的事情):
static void
standard_free (gpointer mem)
{
free (mem);
}
...
/* --- variables --- */
static GMemVTable glib_mem_vtable = {
standard_malloc,
standard_realloc,
standard_free,
standard_calloc,
standard_try_malloc,
standard_try_realloc,
};
...
void
g_free (gpointer mem)
{
if (G_UNLIKELY (!g_mem_initialized))
g_mem_init_nomessage();
if (G_LIKELY (mem))
glib_mem_vtable.free (mem);
TRACE(GLIB_MEM_FREE((void*) mem));
}
该glib_mem_vtable.free(mem)会调用standard_free(mem)将只是调用free(mem)。因为这样做是无效的:
void *mem = malloc(1);
free(mem);
free(mem); // undefined behavior
g_free两次调用同一个内存指针是无效的,因为它在内部调用free它的参数。