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Here is my codes:

#include <stdio.h>
int main()
{
    fopen("./1.txt","r");
    printf("hello");
    return 0;
}

$g++ -g -o m main.cpp

$gdb ./m
(gdb) b fopen
Breakpoint 1 at 0x804842c
(gdb) b printf
Breakpoint 2 at 0x804843c
(gdb) i b
Num     Type           Disp Enb Address    What
1       breakpoint     keep y   0x0804842c <fopen@plt>
2       breakpoint     keep y   0x0804843c <printf@plt>
(gdb) r

it seems that the breakpoint at function fopen never work ,but at printf works fine. why?

Thanks

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1 Answer 1

up vote 4 down vote accepted

It's a bug in GDB, which appears to be fixed in current CVS sources (as of 20120124).

The problem is that there are two versions of fopen in 32-bit libc.so.6 on Linux, and GDB used to select the wrong one:

nm -D /lib32/libc.so.6 | grep '\<fopen\>'
0005d0c0 T fopen
00109750 T fopen

readelf -s  /lib32/libc.so.6 | egrep '0005d0c0|00109750'
181: 0005d0c0    50 FUNC    GLOBAL DEFAULT   12 fopen@@GLIBC_2.1
182: 00109750   136 FUNC    GLOBAL DEFAULT   12 fopen@GLIBC_2.0
679: 0005d0c0    50 FUNC    GLOBAL DEFAULT   12 _IO_fopen@@GLIBC_2.1
680: 00109750   136 FUNC    GLOBAL DEFAULT   12 _IO_fopen@GLIBC_2.0

If you also break on main, and repeat info break, you'll see that GDB set the breakpoint on fopen@GLIBC_2.0, but the function that is called is the fopen@@GLIBC_2.1.

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1  
FWIW, gdb-7.4 has been released a few weeks ago. –  Basile Starynkevitch Feb 6 '12 at 5:46
1  
Hi ,I have filed another question base on your answer , Thanks. stackoverflow.com/questions/9156414/… –  camino Feb 6 '12 at 6:36

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