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Lets say I have a "Passenger" struct, which has a field for a name.

If I do (like the syntax of my book shows):

fread(&passenger, sizeof(Passenger), 1, in_fp);
printf("%s", (*passenger).first_name)

I get a segmentation fault, but if I do:

fread( (char *)passenger, sizeof(Passenger), 1, in_fp);
printf("%s", (*passenger).first_name)

the name read from the file will be printed out.

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Just a small style suggestion: passenger->first_name is the usual (and more readable) way to access structure fields though a pointer. It's exactly equivalent to the expression you used - (*passenger).first_name - so this has nothing to do with your problem, it's just a more accepted style. –  Michael Burr Dec 3 '09 at 1:02

3 Answers 3

up vote 3 down vote accepted

You probably have a pointer to a Passenger, not a Passenger:

fread(passenger, sizeof(Passenger), 1, in_fp); printf("%s", (*passenger).first_name)

Will most likely do what you want.

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So, since I gave the address of "passenger" by calling it, I don't need the ampersand correct? –  kevin Dec 3 '09 at 0:24
    
calling it with foo(&passenger) –  kevin Dec 3 '09 at 0:25
    
Please look twice at the declaration of "passenger". It must be a pointer to Passenger, otherwise your code wouldn't even compile. So the value of the variable "passenger" is a pointer to the Passenger structure in question. The fread function wants a pointer to a buffer, where the data will be written. So the data is written to the Passenger in question. If you add an & operator to passenger, the data is written to the location where the passenger variable lives - probably somewhere on the stack, resulting in a STACKOVERFLOW. –  hirschhornsalz Dec 3 '09 at 1:08

Looks to me as if 'passenger' is a pointer. If you take &passenger, you are passing the address of the pointer to fread. When you cast it, you are telling fread to treat it as a pointer to a char buffer instead of a pointer to a Passenger.

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Well, Passenger passenger was declared in main, so I'm doing foo(&passenger) –  kevin Dec 3 '09 at 0:21
2  
That cannot be true, given the line of code (*passenger).first_name. It's a pointer. –  bmargulies Dec 3 '09 at 0:23
    
Well, Passenger could be a typedef for (struct passenger_struct *) :) –  hobbs Dec 3 '09 at 0:29
    
Then the part that isn't true is "Lets say I have a 'Passenger' struct". –  Steve Jessop Dec 3 '09 at 0:34
1  
If passenger was a struct object (not a pointer), neither (char *) passenger nor *passenger would compile. passenger is a pointer in your code, there's no way around it. –  AndreyT Dec 3 '09 at 0:39

In the early days of C language, C had no void * type (it appeared later, was borrowed from C++ actually) and type char * was used as the generic "raw memory" pointer type instead. So, even to this day you might see this habitual rudimentary use of type char * as the generic pointer type in the code, and see other pointer types explicitly converted to and from char * in generic pointer context. I'd guess that the code you quoted does this for that specific reason. (Unless it was you who put this char * cast there. In that case I can only ask "Why?".)

In modern C the first parameter of fread has void * type, meaning that no cast is necessary. This

fread(passenger, sizeof *passenger, 1, in_fp);

whill work just as well.

Your &passenger version makes no sense, since apparently the original intent was to read data into the location passenger points to, not into the passenger pointer object itself.

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Even using char* instead of void*, no cast would be necessary. –  Roger Pate Dec 3 '09 at 0:42
    
do you mind if I copy your historical disquisition into my answer to make it more complete? –  bmargulies Dec 3 '09 at 0:45
    
No, I don't mind. –  AndreyT Dec 3 '09 at 0:47

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