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Sample code:

int main()
{
        float x = 456.876;

        printf ("\nx = %f\n", x);

        return 0;
}

In gdb, I executed this code like this:

Breakpoint 1, main () at sample_float.c:5   
5               float x = 456.876;   
(gdb) n    
7               printf ("\nx = %f\n", x);   
(gdb) p &x   
$1 = (float *) 0x7fffffffd9dc   
(gdb) x/4fb &x   
0x7fffffffd9dc: 33      112     -28     67   

Is it possible to see the value at address of x, using: x/fb command as: 456.876?

Thanks.

share|improve this question
up vote 8 down vote accepted

Perhaps I am misreading your question but you can simply do

p/f x

Or

x/f &x

Is that what you were looking for ?

share|improve this answer
1  
Or x/fw &x if you really want to be more explicit about the size. – Bruce Stephens Apr 22 '11 at 12:07
    
Thanks a lot, this is exactly what I was looking for ! – Sandeep Singh Apr 22 '11 at 18:01

agree with the above answer, but to understand why you got the results that you did.

(gdb) x/4fb &x   
0x7fffffffd9dc: 33      112     -28     67 

from the gdb manual

x/3uh 0x54320' is a request to display three halfwords (h) of memory, formatted as unsigned decimal integers (u'), starting at address 0x54320.

thus, x/4fb &x is formatting a byte as a float 4 times. not 4 bytes as a float.

share|improve this answer
    
Thanks for the clarification ! – Sandeep Singh Apr 22 '11 at 18:03

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