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struct ptr{
    int node;
    ptr *next;
    ptr(){}
    ptr(int _node, ptr *_next){ node=_node; next=_next; }
};
struct list_t{
    ptr *sht;
    int size;
    void push(int node){
        size++;
        sht=new ptr(node,sht);
    }
}shthead[100001], comp[200001], tree[200001];

The struct ptr is used as a linked list. But when I debug the code in gdb, I found that the ptr*'s were all converted to void*.
GDB output:

(gdb) pt ptr
type = struct ptr {
    int node;
    void *next;
  public:
    ptr(void);
    ptr(int, void *);
}

However, I can still see the data of the struct if I covert them back to ptr* in gdb.
What's the reason for this please?

I'm using Arch Linux, GNOME, g++ 4.5.0, gdb 7.1. Without any compilation flags but a -g.
This GDB was configured as "i686-pc-linux-gnu"

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It shows ptr * on my system. What compilation flags did you use? What version of g++ and gdb? –  Thomas May 7 '10 at 7:29
    
Strange, I also use gdb 7.1, but g++ 4.4.3. The 4.5 release notes do not hint at any kind of change in this direction. gcc.gnu.org/gcc-4.5/changes.html –  Thomas May 7 '10 at 7:59
    
Just to fill in some more data points, using gdb 7.0.1 I get the correct answer with g++ 4.2.4 and 4.3.3 but with 4.5.0 gdb shows the pointer as a void*. Looks like a bug in gcc (or gdb?) –  Mike Dinsdale May 7 '10 at 8:57
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3 Answers

Works fine for me on OS X.

(gdb) pt ptr
type = class ptr {
  public:
    int node;
    ptr *next;

    ptr(void);
    ptr(int, ptr *);
}

gdb version:

Shadow:code dkrauss$ gdb -v
GNU gdb 6.3.50-20050815 (Apple version gdb-1346) (Fri Sep 18 20:40:51 UTC 2009)
Copyright 2004 Free Software Foundation, Inc.
GDB is free software, covered by the GNU General Public License, and you are
welcome to change it and/or distribute copies of it under certain conditions.
Type "show copying" to see the conditions.
There is absolutely no warranty for GDB.  Type "show warranty" for details.
This GDB was configured as "x86_64-apple-darwin".
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up vote 1 down vote accepted

Maybe this: http://gcc.gnu.org/bugzilla/show_bug.cgi?id=45088

I need to thank Tom Tromey for telling me this.

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It should be mentioned that "ptr" is /not/ a smart pointer, it's just a struct, one that doesn't even have a destructor.

(Smart pointers have a very precise meaning in C++ land)

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Well, I'm pretty sorry for that. I shouldn't have said "a smart pointer" here with a vague understanding of them. The text has been corrected now. –  Stone Dec 12 '10 at 4:21
    
No harm done. :) –  Arafangion Dec 13 '10 at 1:26
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