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Re: Single stepping a simple C-program, but...
- From: Pedro Alves <pedro at codesourcery dot com>
- To: gdb at sourceware dot org
- Cc: Peter Toft <pto at linuxbog dot dk>
- Date: Mon, 19 May 2008 21:48:18 +0100
- Subject: Re: Single stepping a simple C-program, but...
- References: <Pine.LNX.4.64.0805192201460.20752@petertoft.dk>
A Monday 19 May 2008 21:18:36, Peter Toft wrote:
> Hi guys
>
> I was a bit surprised today with GDB, and I hope one of you can explain it
> to me. Take a look at http://pastebin.org/37117
01. #include <stdio.h>
02.
03. int main(void)
04. {
05. int ii=4;
06.
07. if ((ii>3) || (ii<1))
08. printf("hej A\n");
09. else
10. printf("hej B\n");
11.
12. return 0;
13. }
> Press download and save as my_program.c
> $ gcc -g my_program.c
> $ gdb ./a.out
> (gdb) br 7
> Breakpoint 1 at 0x804838c: file my_program.c, line 7.
> (gdb) r
> Starting program: /home/pto/c/a.out
>
> Breakpoint 1, main () at my_program.c:7
> 7 if ((ii>3) || (ii<1))
> (gdb) s
> 8 printf("hej A\n");
> (gdb) s
> hej A
> 7 if ((ii>3) || (ii<1)) <----------- WHY!!!!??
> (gdb) s
> 12 return 0;
>
> -------
>
> Why does the second "step" i.e. "s" take me BACK to line 7 after I
> have been in line 8????
>
Presumably, because there's a branch instruction after the printf
call to skip the else clause, GDB hits it (step-resume breakpoint),
and the debug info gcc is producing is marking that address as belonging
to line 7?
--
Pedro Alves