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I create a type and try to change the int value in it. But it keeps printing 240. I don't know why, can anyone help me? Here is my code:

typedef struct{
   int i;
}MyType;

do(MyType mt, int ii){
   mt.i = ii;
}

int main(int argc, char ** argv){
    MyType mt;
    do(mt, 5);
    print("%d\n", mt.i);
}
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3  
I'm honestly surprised that the code compiles. do is a keyword in C. –  James McNellis Apr 17 '12 at 21:07

2 Answers 2

Passing mt by value to function do(). Any changes made will be local to the function. Pass the address of mt:

void do_func(MtType* mt, int ii){
    mt->i = ii;
}

MyType mt;
do_func(&mt, 5);
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So first, your do function has some problems. You have failed to specify a return type, so int is assumed (pre-C99), but I see no reason to not just specify it. Second, do is a reserved keyword in C.

You are passing your struct by value, so a copy is made, passed to your do function, and that is modified. Everything is passed by value in C, period. Your mt variable declared in main is never touched.

Take a MyType* in your code if you need to modify one or more of its member variables, take a MyType** if you need to allocate memory for the structure itself (i.e., initialize a pointer).

// pass a pointer to the function to allow
// for changes to the member variables to be 
// visible to callers of your code.
void init_mytype(MyType *mt, int ii){
    if(mt)
        mt->i = ii;
}

MyType mt;
init_mytype(&mt, 1);

// pass a pointer to pointer to initialize memory
// for the structure and return a valid pointer.
// remember, everything is passed by value (copy)
void init_mytype(MyType **mt, int ii) {
    if(mt) {
        *mt = malloc(sizeof(MyType));
        if(*mt) 
            (*mt)->i = ii;
    }
}

MyType *pmt;
init_mytype(&pmt, 1);
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