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This question may looks silly, but please guide me I have a function to convert long data to char array

void ConvertLongToChar(char *pSrc, char *pDest)
{
    pDest[0] = pSrc[0];
    pDest[1] = pSrc[1];
    pDest[2] = pSrc[2];
    pDest[3] = pSrc[3];
}

And I call the above function like this

long lTemp = (long) (fRxPower * 1000);
ConvertLongToChar ((char *)&lTemp, pBuffer);

Which works fine. I need a similar function to reverse the procedure. Convert char array to long. I cannot use atol or similar functions.

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7 Answers 7

up vote 6 down vote accepted

Leaving the burden of matching the endianness with your other function to you, here's one way:

unsigned long int l = pdest[0] | (pdest[1] << 8) | (pdest[2] << 16) | (pdest[3] << 24);

Just to be safe, here's the corresponding other direction:

unsigned char pdest[4];
unsigned long int l;
pdest[0] = l         & 0xFF;
pdest[1] = (l >>  8) & 0xFF;
pdest[2] = (l >> 16) & 0xFF;
pdest[3] = (l >> 24) & 0xFF;

Going from char[4] to long and back is entirely reversible; going from long to char[4] and back is reversible for values up to 2^32-1.

Note that all this is only well-defined for unsigned types.

(My example is little endian if you read pdest from left to right.)

Addendum: I'm also assuming that CHAR_BIT == 8. In general, substitute multiples of 8 by multiples of CHAR_BIT in the code.

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You can do:

union {
 unsigned char c[4];
 long l;
} conv;

conv.l = 0xABC;

and access c[0] c[1] c[2] c[3]. This is good as it wastes no memory and is very fast because there is no shifting or any assignment besides the initial one and it works both ways.

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2  
The best way to do it. –  sidyll Jul 14 '11 at 1:41
3  
It is also, according to the C++ standard, undefined behavior. :) –  jalf Jul 14 '11 at 11:38
    
@jalf This is a C question. –  Arcane Engineer Jan 3 at 11:47
    
@NickWiggill fair enough. It is also, according to the C standard, undefined behavior. :) –  jalf Jan 3 at 11:59
    
@jalf lol. fair enough indeed. –  Arcane Engineer Jan 3 at 12:00

A simple way would be to use memcpy:

char * buffer = ...;
long l;
memcpy(&l, buff, sizeof(long));

That does not take endianness into account, however, so beware if you have to share data between multiple computers.

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If you mean to treat sizeof (long) bytes memory as a single long, then you should do the below:

char char_arr[sizeof(long)];
long l;

memcpy (&l, char_arr, sizeof (long));

This thing can be done by pasting each bytes of the long using bit shifting ans pasting, like below.

l = 0;
l |= (char_arr[0]);
l |= (char_arr[1] << 8);
l |= (char_arr[2] << 16);
l |= (char_arr[3] << 24);

If you mean to convert "1234\0" string into 1234L then you should

l = strtol (char_arr, NULL, 10); /* to interpret the base as decimal */
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@Martinho Fernandes : thanks for the edit. –  phoxis Jul 16 '11 at 11:37

Does this work:

#include<stdio.h>

long ConvertCharToLong(char *pSrc) {
    int i=1;
    long result = (int)pSrc[0] - '0';
    while(i<strlen(pSrc)){
         result = result * 10 + ((int)pSrc[i] - '0');
         ++i;
    }
    return result;
}


int main() {
    char* str = "34878";
    printf("The answer is %d",ConvertCharToLong(str));
    return 0;
}
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It wont work as we the char array dont store direct long value it store in bytes, thanks for your answer –  AjayR Jul 14 '11 at 2:34
    
oh sorry, my bad. Check the edit. Its working 100% fine. –  abm Jul 14 '11 at 3:20
    
you are correct with your example. In My case it is not the long data but bytes it is storing, so this solution not works for me –  AjayR Jul 14 '11 at 3:28

This is dirty but it works:

unsigned char myCharArray[8];
// Put some data in myCharArray here...
long long integer = *((long long*) myCharArray);
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char charArray[8]; //ideally, zero initialise
unsigned long long int combined = *(unsigned long long int *) &charArray[0];

Be wary of strings that are null terminated, as you will end up copying any bytes beyond the null terminator into combined; thus in the above assignment, charArray needs to be fully zero-initialised for a "clean" conversion.

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