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Anyway have any idea how to do this?

Let's say i have

char x[] = "ABCD";

and i want to put it into an int, so i'll have

int y = 'ABCD';

I can only put individual chars, such as int y = x[0]; The purpose is to find the decimal representation, but i want the decimal representation of "ABCD" not just "A".

Finally i would use sprintf(dest, "%.2u", value); to get the decimal representation of the char.

EDIT:

I dont understand why, but for "ABCD" this code works

//unrolled bit ops
const char* x = "ABCD";
uint32_t y = 0;
y |= (uint32_t(x[0]) << 24); //MSB
y |= (uint32_t(x[1]) << 16);
y |= (uint32_t(x[2]) <<  8);
y |= (uint32_t(x[3]) /*<< 0*/);

however, per instance if i use "(¸þ¶" i dont get the same result.

EDIT2 **:

I've tried your last edit Sam, but it still doesnt work. The value i'm getting is "4294967294" as opposed to "683212470" the correct value. I also did this

int h1 = '(';
int h2 = '¸';
int h3 = 'þ';
int h4 = '¶';

Output:

40
-72
-2
-74

I googled for the complete ascii table, and i found out that for "þ" the value is "254". I suppose it has something to do with this... i also tried with usigned but no good results.

edit3: If i replace const char *x = "(¸þ¶" with int x[] = {40, 184, 254, 182}; (decimal representation of each character, it works. I can understand where things go wrong, but i have no idea how to fix it.

share|improve this question
    
Have a look here –  Tom Knapen Jan 21 '13 at 14:43
    
Use bit shifts and bitwise or (and properly sized unsigned types). –  R. Martinho Fernandes Jan 21 '13 at 14:45
    
Just in case you actually use "(¸þ¶" within your program, it will break, because the last three chars are multi-byte chars. The compiler should spit out warnings. This question covers how to put special chars into a string literal: stackoverflow.com/q/2420780/1175253 –  Sam Jan 21 '13 at 18:22

2 Answers 2

up vote 3 down vote accepted

You need to assure int alignment for that char array for a proper cast or do a memcpy into that int. Also take care of the integer's endianness! Furthermore, usage of C99 integer types such as uint32_t, will also help to make your code portable.

See this question for how to convert the bits: strict aliasing and alignment

EDIT:

What R. Martinho Fernandes means, might be this (not tested):

//unrolled bit ops
const char* x = "ABCD";
uint32_t y = 0;
y |= (uint32_t(uint8_t(x[0])) << 24); //MSB
y |= (uint32_t(uint8_t(x[1])) << 16);
y |= (uint32_t(uint8_t(x[2])) <<  8);
y |= (uint32_t(uint8_t(x[3])) /*<< 0*/);

Above example avoids specific code for any endianness

EDIT 2:

For dynamic char arrays (assuming leading zero chars if less than 4 have to be converted):

const char* x = "ABC";
size_t nChars = 3;

assert(0 < nChars && nChars <= sizeof(uint32_t));

uint32_t y = 0;

int shift = (nChars*8)-8;
for(size_t i = 0;i < nChars;++i)
{
    y |= (uint32_t(uint8_t(x[i])) << shift);
    shift -= 8;
}
share|improve this answer
    
I tried to memcpy into the int uint32_t x; memcpy(&x, value, 4); –  Alexandru Calin Jan 21 '13 at 14:49
    
but i still get wrong results when i sprintf it –  Alexandru Calin Jan 21 '13 at 14:50
    
@AlexandruCalin because you are dealing with memory. If you want to deal with numbers use operations that handle numbers (bit shifts). –  R. Martinho Fernandes Jan 21 '13 at 14:51
    
@AlexandruCalin If that gives you "wrong results", please edit your question to state what results you are expecting. –  Joel Rondeau Jan 21 '13 at 15:03
    
it almost work... please check my edit –  Alexandru Calin Jan 21 '13 at 15:12

I have created a sample program if this is what you want.

Include the needed headers (stdio.h, stdlib.h, math.h, string.h)

unsigned long convertToInt(char *x);

void main() {

char x[] = "ABCD";
unsigned long y = 0;

y = convertToInt(x);

printf("Numeric value = %lu\n", y);

}

unsigned long convertToInt(char *x) {

unsigned long num = 0, i, n;`
char hex_c;

for(i = 0; i< strlen(x); i++)  {

    hex_c = x[i];

    if (hex_c >= '0' && hex_c <= '9') {
    n = hex_c - '0';
    } else if (hex_c >= 'A' && hex_c <= 'F') {
    n =  10 + hex_c - 'A';
    } else if (hex_c >= 'a' && hex_c <= 'f') {
    n = 10 + hex_c - 'a';
    } else {
        printf("Wrong input");
    return 0;
    }

    num += n * (pow(16, (strlen(x) - i - 1)));
}

return num;

}
share|improve this answer
1  
This is not about converting hexadecimal numbers, this is about getting a numeric representation of characters. 'A' needs to become 65, not 10, and "AB" would be (65*256)+66 –  Maciej Stachowski Jan 21 '13 at 15:45

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