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I have a large buffer array of type unsigned char buffer[2850] that I would like to convert to a Base64 string. I'm trying to use the libb64 library which can be found on github

Here is how I'm trying to convert it:

char* encode(const char* input)
{
    /* set up a destination buffer large enough to hold the encoded data */
    char* output = (char*)malloc(SIZE);
    /* keep track of our encoded position */
    char* c = output;
    /* store the number of bytes encoded by a single call */
    int cnt = 0;
    /* we need an encoder state */
    base64_encodestate s;

    /*---------- START ENCODING ----------*/
    /* initialise the encoder state */
    base64_init_encodestate(&s);
    /* gather data from the input and send it to the output */
    cnt = base64_encode_block(input, strlen(input), c, &s);
    c += cnt;
    /* since we have encoded the entire input string, we know that
     there is no more input data; finalise the encoding */
    cnt = base64_encode_blockend(c, &s);
    c += cnt;
    /*---------- STOP ENCODING  ----------*/

    /* we want to print the encoded data, so null-terminate it: */
    *c = 0;

    return output;
}

char *encodedBuffer;
encodedBuffer = encode(buffer);

but I'm getting the warning

Passing 'unsigned char [2850]' to parameter of type 'const char *' converts between pointers to integer types with different sign.

Is there a better way to convert it or is there something I need to alter since I'm trying to pass in an unsigned char array. Thanks!

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1  
encodedBuffer = encode((const char*)buffer);? –  Joachim Isaksson Mar 7 '14 at 17:37
    
@JoachimIsaksson I'm really new to C, does adding (const char*) in front of the buffer dynamically change the type? –  Stavros_S Mar 7 '14 at 17:39
1  
unsigned char *buffer[2850] isn't an array of unsigned char; its an array of 2850 pointers. if that isn't your real code, post it. –  WhozCraig Mar 7 '14 at 17:40
1  
It just tells the compiler that it's ok to handle the unsigned char[2850] as a const char* in this case. Basically it tells the compiler "I know what I'm doing, so don't bug me about it", so if you're a beginner you should know that it's not always safe to just cast any type to any other like this. –  Joachim Isaksson Mar 7 '14 at 17:40
    
Thanks for explaining. –  Stavros_S Mar 7 '14 at 17:42

2 Answers 2

Your buffer is of type char**. You need to pass one of type char*.

You can use

const char *buffer = "whatever";
encode(buffer);
share|improve this answer
    
Will that work though if my buffer is an array of hex values (it's an array of bytes) –  Stavros_S Mar 7 '14 at 17:45
    
@Stavros_S you can use strncpy to copy your hex to the char* –  Arjun Sreedharan Mar 7 '14 at 17:48
    
the hex values are stored in the array buffer which is declared as 'unsigned char buffer[2850]' I don't think strncpy would allow me to do this due to the buffer not being a const char. –  Stavros_S Mar 7 '14 at 20:07

I have a large buffer array of type unsigned char *buffer[2850] that I would like to convert

char * buffer[2850];

is an array of 2850 pointers to char.

I doubt this is what you want.

Use

char buffer[2850] = ""; /* The = "" inits the array to all 0s, that is to the empty string "". */

to define a character array of the 2850 elements, that is a C-"string" to hold 2849 chars plus the 0-terminator.


Referring to the question's title "... convert an unsigned char array ..." Please note that it depends on the compiler in use whether a variable declared as char will be treated signed or unsigned. So to be sure better be explicit:

unsigned char buffer[2850] = "";
share|improve this answer
    
Appreciate the advice. I have implemented what you mention hereyet when I try to log out the newly encoded buffer using %s nothing displays. I'm building this in xcode for OSX. –  Stavros_S Mar 7 '14 at 18:39
    
@Stavros_S: You are welcome. As the problem you are facing now is different from this question you might like to pose a another, a new question on your current issue. –  alk Mar 7 '14 at 21:16

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