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So this is my header file:

#define VECTOR_INITIAL_CAPACITY 20

struct _Variable {
    char *variableName;
    char *arrayOfElements;
    int32_t address;
};
typedef struct _Variable Variable;

struct _VariableVector {
    int size; // elements full in array
    int capacity; // total available elements
    Variable variables[VECTOR_INITIAL_CAPACITY];
};
typedef struct _VariableVector VariableVector;

void init(VariableVector *variableVector);

void append(Variable *variable);

Variable* find(char *variableName);

and this is my .c file where I am trying to implement the init method:

#include "VariableVector.h"

void init(VariableVector *variableVector) {
    variableVector->size = 0;
    variableVector->capacity = VECTOR_INITIAL_CAPACITY;

    // allocate memory for variableVector
    variableVector->variables = malloc(
            sizeof(Variable) * variableVector->capacity); // <== ERROR HERE
}

The error I am getting above is

incompatible types when assigning to type 'struct Variable[20]' from type 'void *'
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1  
Well isn't it obvious? malloc returns void*, and you're assigning it to a variable. –  l19 Nov 20 '13 at 2:33
    
So how would you suggest implementing this method? –  Quinn Liu Nov 20 '13 at 2:34
    
You need to cast the result of malloc. en.wikipedia.org/wiki/C_dynamic_memory_allocation#Type_safety –  l19 Nov 20 '13 at 2:34
1  
@l19 NO NO NO. Do not cast malloc. Also, that will not fix the problem. –  Kevin Nov 20 '13 at 2:59
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1 Answer 1

up vote 0 down vote accepted

You're trying to assign to an array. That's not going to happen. The array is where it is, at the size that it had initially. It can't take a new address and size.

variables needs to be a pointer.

struct _VariableVector {
    int size; // elements full in array
    int capacity; // total available elements
    Variable *variables;
};
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1  
No, the result of malloc should not be cast. –  Kevin Nov 20 '13 at 3:01
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