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I am doing something like the following in C:

void *initialize()
{
    my_type *ret = malloc(sizeof(my_type));
    return (void*)ret;
}

void test()
{
    my_type* ret = (mytype*)initialize();
    my_type x = *ret;
}

It crashes on the dereference with:

Received signal 11 (Segmentation fault: 11)

The pointer is not null: I tried printing the pointer, and got a value.

I also tried making a new my_type right in the test function, like this:

my_type* new = malloc(sizeof(my_type));

When I print the integer representations of new and ret, they are integers very close to each other. So these things should be nearby in memory.

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closed as too localized by Barmar, unkulunkulu, jthill, Gamb, M M. May 15 '13 at 15:12

This question is unlikely to help any future visitors; it is only relevant to a small geographic area, a specific moment in time, or an extraordinarily narrow situation that is not generally applicable to the worldwide audience of the internet. For help making this question more broadly applicable, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
printf needs a format specifier what is the type of mytype->field? –  Shafik Yaghmour May 14 '13 at 17:22
    
What is the value of mytype->field? –  Barmar May 14 '13 at 17:22
    
what's the type of field –  MOHAMED May 14 '13 at 17:23
    
You're using mytype->field as a format string, which is probably not what you want to do. –  Keith Thompson May 14 '13 at 17:23
1  
Shouldn't it be printf("%d", ret->field);? –  alk May 14 '13 at 17:28

4 Answers 4

up vote 2 down vote accepted

If the compiler does not know a function it assumes int as its return type.

If the size of int is different to what the function actually returns the code generated by the compiler might miss to return the correct number of bytes.

However, the code you posted is correct and will perform as expected, as initialise() occurs before where it is used, so the compiler then already knows which type the function returns.

Most propably the original code (you did not post) looks something like this (without the prototype for initialise()):

Try the following:

#include <stdlib.h> /* To pull in malloc's protoype. */

void * initialize(void);

void test()
{
    my_type x, * ret = initialize();
    if (ret)
      x = *ret;
}

void * initialize(void)
{
    my_type * ret = malloc(sizeof(*ret));
    return ret;
}
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Odds are that field is either (a) a char array, (b) a pointer to char, or (c) an integer value. yes?

In all three cases, the printf() statement is expecting field to be a pointer to a null terminated character string. At least in the example code you provide, it is not initialized to anything.

So... the SIGSEGV is because (a) field is an uninialized char array and who knows how far out into memory the printf() is reading looking for a null terminator, (b) field is an uninitialized pointer... just because it is not zero, does not mean it is a valid memory address, or (c) you're trying to pass an integer or some other value to printf() as a pointer to char, which it is not.

Any one of those three will produce the result you report.

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It looks that you have 2 types with name are close

mytype and my_type

my_type *ret = malloc(sizeof(mytype));

and

my_type* ret = (mytype*)initialize();

may be it's a typo that you use 2 differents name for the same type. and this could cause crash

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According to your comment, field is an int so

the

printf(mytype->field);

should be

printf("%d\n", ret->field);

From printf() page in the cplusplus site

int printf ( const char * format, ... );

Print formatted data to stdout

Writes the C string pointed by format to the standard output (stdout). If format includes format specifiers (subsequences beginning with %), the additional arguments following format are formatted and inserted in the resulting string replacing their respective specifiers.

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