Logo Questions Linux Laravel Mysql Ubuntu Git Menu
 

Call to malloc failing in gdb session

Tags:

I am trying to debug a C program and gdb is telling me there is a segfault on line 329 of a certain function. So I set a break point for that function and I am trying to step through it. However, whenever I hit line 68 I get this complaint from gdb:

(gdb) step 68              next_bb = (basic_block *)malloc(sizeof(basic_block)); (gdb) step *__GI___libc_malloc (bytes=40) at malloc.c:3621 3621    malloc.c: No such file or directory. in malloc.c 

I don't know what this means. The program runs perfectly on all but one set of inputs so this call to malloc clearly succeeds during other executions of the program. And, of course, I have:

#include <stdlib.h>. 

Here is the source code:

    // Block currently being built.     basic_block *next_bb = NULL;     // Traverse the list of instructions in the procedure.     while (curr_instr != NULL)     {         simple_op opcode = curr_instr->opcode;         // If we are not currently building a basic_block then we must start a new one.         // A new block can be started with any kind of instruction.         if (!in_block)         {             // Create a new basic_block.             next_bb = (basic_block *)malloc(sizeof(basic_block)); 
like image 552
Schemer Avatar asked Feb 10 '12 00:02

Schemer


1 Answers

You can safely ignore this. gdb is complaining that it doesn't have the source for malloc - and it's almost certain you don't want to step through the source.

Two easy solutions:

  • Use next instead of step - it won't descend into functions

  • If you've accidentally steped into a function already, use finish to run to the return statement of the function.

And an alternative approach:

  • You could also break a bit before the segfault, rather than stepping through the whole code.

    • You can do this by putting a breakpoint on a particular line with break <source file>:<line num> (for example break foo.c:320 to break on line 320 of foo.c).
    • Or you can break on a particular function with break <function name> (for example break foo will break at the top of the foo() function).
like image 114
Timothy Jones Avatar answered Oct 30 '22 01:10

Timothy Jones