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I have a string object called Message that is given a string such as:

Message = "Hello";

Each character is then stored in a character array:

void Load()
{
    Message.toUpperCase(); // Makes all the characters uppercase
    for (int T = 0; T < Message.length(); T++) 
    {
        Storage[T] = Message.charAt(T);
    }       
 }

This part works fine.

Now I want to call a function that needs to be passed a integer pointer pointing to an array that maps out the bit values needed to display a character on a 5*7 LED matrix.

Normally I would be able to call Display(H) (void Display(int Array[])), and it would be fine. However, I want to use the string array so that it can be done automatically. The problem is that when using H normally it is seen as an integer pointer and it works great. Storage holds char's that are not pointers, and this creates problems.

I have tried various ways of converting it, but all seem to fail. Is this even possible?

This is what I have tried:

char to int:
int w = int(Storage[L]);
int* ww = &w;

This compiles fine, but the output is all wrong. So I am not really sure how to take this further.

Just to clarify, this works:

int A[] = {0x1B, 0x15, 0xE, 0xE, 0x0, 0xE, 0xE, 0xE};

Display(A);

But this does not:

String[L] = A;
int w = int(Storage[L]);
int* ww = &w;

Display(ww);

I'm probably doing something silly, but I can't see it.

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Characters in C and C++ are the ASCII values, so the character 'A' is the value 65 which can't be used by as bit flags for the LED display. You have to make a conversion routine that takes a character and convert it to an array with the correct values. The simplest way is to have a conversion table, so you index it with the character value and get back a static constant array of the correct values. –  Joachim Pileborg Nov 4 '12 at 19:49
    
Why not just replace char Storage[?] with int Storage[?] ? Your question really confuses me, I have no idea what you want to do.. –  KoKuToru Nov 4 '12 at 20:04
    
What is the size of char and size of int in this context? And does the Display() function displays each char using its ASCII value? –  vvnraman Nov 4 '12 at 21:15
    
int A[] = {0x1B, 0x15, 0xE, 0xE, 0x0, 0xE, 0xE, 0xE}; Display(A); What is the expected output here? –  Bok McDonagh Nov 5 '12 at 16:58

1 Answer 1

The size of int and char are different, an int is (usually) four times the size of a char, so when you take the pointer value of a specific char in your array, you are also copying the following three chars into the int. This is probably why your output is messed up. Try the following:

    int i = (Storage[idx])
    int * ptrI = &i;//now ptrI points to the single integer which has been copied.

If you want to point to more than one integer, you would need to define an integer array (which is four times smaller than your char array)- make sure your sizes are correct. Further than this I cannot help, since your explanation is unclear.

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