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I'm trying to make a very simple Hashtable with libraries I got. The row that I try to make contains either C-string or int as key. Value can be of 4 different types. If it's struct I try to store a pointer in malloced memory area. However in my world this does not follow the same logic as non-pointer fields and I get:

error C2106: '=' : left operand must be l-value when I try to store pointer as value:

Here's the code

static void MakeRow(UtiHashtable_t *Hashtable, void *Key, void *Value, void *Row)
{
    int     KeySize, ValueSize;

    KeySize = sizeof(char) * Hashtable->KeyStringLength;
    ValueSize = GetValueSize(Hashtable);
    Row = malloc(KeySize + ValueSize);

    if (Hashtable->KeyType ==  MY_HASHTABLE_TYPE_STRING)  
        MyStrcpy((char *)Row, (char *)Key, Hashtable->KeyStringLength); 
    else if (Hashtable->KeyType ==  MY_HASHTABLE_TYPE_INT)
        ((int *)Row)[0] =  *(int *)Key;
    else
        MyAssert(0);

    switch (Hashtable->ValueType)
    {
    case MY_HASHTABLE_TYPE_STRING:
        MyStrcpy((char *)Row + KeySize, (char *)Value, Hashtable->ValueStringLength); 
        break;
    case MY_HASHTABLE_TYPE_INT: 
        *(int *)((char *)Row + KeySize) =  *(int *)Value;
        break;
    case MY_HASHTABLE_TYPE_DOUBLE: 
        *(double *)((char *)Row + KeySize) =  *(double *)Value;
        break;
    case MY_HASHTABLE_TYPE_STRUCT: 
        (int *)((char *)Row + KeySize) = (int *)Value;
        break;
    default:
        MyAssert(0);
    }
}

I know this is really basic and will get few down votes but besides the answer I would like to have explanation why this taking * away does not make it pointer.

The compiler allows:

(int *)Value = (int *)Key;

so why not:

(int *)((char *)Row + KeySize) = (int *)Value;

Thanks & BR -Matti

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2  
How do you come to the assertion that (int *)Value = (int *)Key would be valid? A cast always aplies to an expression and not to a variable and the result is always an rvalue. –  Jens Gustedt Nov 22 '11 at 16:23
    
@jens: compiler don't mind if Value's address is changed to Key's address. –  matti Nov 22 '11 at 16:40
    
this makes not much sense. Sure the compiler will "mind". You can't change addresses of variables, this is just what a variable is in C, a location in memory with a specific address. –  Jens Gustedt Nov 22 '11 at 17:41

2 Answers 2

Using casts on an lvalue is deprecated.

Also, some systems don't allow ints or pointers to be placed in arbitrary memory locations due to alignment issues.

What you should do is to memcpy the pointer value to where you want it. And when you want to use the pointer you need to memcpy it back to a pointer variable.

share|improve this answer
    
thanks. anyway my Visual Studio 2010 C-compiler does not allow this. and I don't think this really works for structs (which is my case). –  matti Nov 22 '11 at 16:37
    
thanks! memcpy could be the answer. i'll get back to you when I'm done some testing. –  matti Nov 22 '11 at 16:54

You left off the dereferencing * on the left side, so the assignment no longer makes any sense.

share|improve this answer
    
sorry but I didn't understand. there's not derefencing on either size. it's: (int *)((char *)Row + KeySize) = (int *)Value; –  matti Nov 22 '11 at 16:16
    
how can I dereference it if I want to store a pointer there? if I add * to head of left side it's naturally an other error: 'int' differs in levels of indirection from 'int *' –  matti Nov 22 '11 at 16:22
1  
try *(int **)((char *)Row + KeySize) = (int *)Value –  Jens Gustedt Nov 22 '11 at 16:24

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