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Sometimes gdb prints "incomplete type" for some type of variables. What does this mean and how can we see that value?

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2 Answers 2

up vote 11 down vote accepted

It means that the type of that variable has been incompletely specified. For example:

struct hatstand;
struct hatstand *foo;

GDB knows that foo is a pointer to a hatstand structure, but the members of that structure haven't been defined. Hence, "incomplete type".

To print the value, you can cast it to a compatible type.

For example, if you know that foo is really a pointer to a lampshade structure:

print (struct lampshade *)foo

Or, you could print it as a generic pointer, or treat it as if it were an integer:

print (void *)foo
print (int)foo

See also these pages from the GDB manual:

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Nice answer, though the links are 404. –  Laurynas Biveinis Dec 7 '09 at 10:42
1  
Fixed. Can't remember what they were linking to before, but these two links should be helpful :). –  Daniel Cassidy Dec 7 '09 at 15:38

What I've found is that if you disassemble a function that uses the incomplete struct type gdb 'discovers' the struct members and can subsequently display them. For example, say you have a string struct:

struct my_string {
    char * _string,
    int _size
} ;

some functions to create and get the string via pointer:

my_string * create_string(const char *) {...}
const char * get_string(my_string *){...}

and a test that creates a string:

int main(int argc, char *argv[]) {
    my_string *str = create_string("Hello World!") ;
    printf("String value: %s\n", get_string(str)) ;
    ...
}

Run it in gdb and try to 'print *str' and you'll get an 'incomplete type' response. However, try 'disassemble get_string' and then 'print *str' and it'll display the struct and values properly. I have no idea why this works, but it does.

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