I have a char array of hex values and would like to convert them into a single integer value. I have two issues with the code I am currently using:

Problem 1: the value stored in strHex after running this is - "0927ffffffc0" when I want it to be "000927C0" - what is the reason for the extra "ffffff" being added?

Problem 2: I would like a solution to convert a char array of hex values to an integer without using stringstream if possible.

char cArray[4] = { 0x00, 0x09, 0x27, 0xC0 }; // (600000 in decimal)

std::stringstream ss;
for (int i = 0; i < 4; ++i)
{
    ss << std::hex << (int)cArray[i];
}
std::string strHex = ss.str();

int nHexNumber;
sscanf(strHex.c_str(), "%x", &nHexNumber);

nHexNumber should be 600000 when converted and its giving me -64.

  • Please only tag the language being used. – Christian Gibbons Jun 19 at 21:30
  • The "hex values" for the initialisation are irrelavant - each element is char but unsigned char would be better. – Weather Vane Jun 19 at 21:31
  • Use unsigned char instead of char – M.M Jun 19 at 21:33
  • 1
    Why do you say that {0, 9, 39, 192} is "600,000" in decimal? – Leonardo Herrera Jun 19 at 21:33
  • 2
    you are sign-extending the values when casting to int. 0xC0 is 10100000 in binary. Apparently char is considered to be a signed type, so when extending it to fit your 4-byte int type, it prepends a bunch of 1s to it to preserve the value rather than turn a negative number into a positive number by zero-extending. – Christian Gibbons Jun 19 at 21:41
up vote 2 down vote accepted
#include <stdint.h>
#include <iostream>

int main(int argc, char *argv[]) {
        unsigned char cArray[4] = { 0x00, 0x09, 0x27, 0xC0 };
        uint32_t nHexNumber = (cArray[0] << 24) | (cArray[1] << 16) | (cArray[2] << 8) | (cArray[3]);

        std::cout << std::hex << nHexNumber << std::endl;
        return 0;
}

Edited: As pointed out by M.M this is not depending on endianness as originally stated.

Output under QEMU:

user@debian-powerpc:~$ uname -a
Linux debian-powerpc 3.2.0-4-powerpc #1 Debian 3.2.51-1 ppc GNU/Linux
user@debian-powerpc:~$ ./a.out
927c0
user@debian-powerpc:~$

Under Ubuntu on Windows:

leus@owl:~$ uname -a
Linux owl 4.4.0-43-Microsoft #1-Microsoft Wed Dec 31 14:42:53 PST 2014 x86_64 x86_64 x86_64 GNU/Linux
leus@owl:~$ ./a.out
927c0
leus@owl:~$
  • 2
    This solution is NOT dependent on endianness. But it would be undefined behaviour if int is 16-bit, or if the high bit of cArray[0] is 1. – M.M Jun 19 at 22:05
  • You have a good point about the first byte being 1, or int being 16 bits (or 64, for that matter). But why do you say this is endian-safe? – Leonardo Herrera Jun 20 at 3:22
  • It will produce the same result regardless of the system endianness – M.M Jun 20 at 4:11
  • Am I not putting the first byte in the fourth position, then the second in the third, the third in the second and the last byte in the first? How is that the resulting four bytes aren't ordered with the most significant byte last? – Leonardo Herrera Jun 20 at 6:28
  • You're creating the value 600000 (in decimal) regardless of the representation. The code would have the same output on any endianness of 32-bit+ system – M.M Jun 20 at 21:31
#include<arpa/inet.h>
#include<iostream>
using namespace std;

union {
    unsigned char cA[4] = { 0x00, 0x09, 0x27, 0xc0 };
    int k;
} u;

int main() 
{
    cout << htonl(u.k) << endl;
}

simple way is to use htonl...

  • 2
    In C++ it's undefined behaviour to read a union member that was not the last one written. Also htonl is not part of Standard C++ – M.M Jun 19 at 22:07
  • Then can you change this code to a complete code? It's better to give a productive advice than just to say it won't work.. – Zeta Jun 19 at 22:19
  • The other posted answer is close to being complete – M.M Jun 19 at 22:22
  • Maybe you should see this. en.cppreference.com/w/cpp/language/union – Zeta Jun 19 at 22:27
  • Maybe you should read your own link? It supports what I said in my first comment. "The lifetime of a union member begins when the member is made active. If another member was active previously, its lifetime ends." cA is active by virtue of being initialized, k is inactive and therefore you read a variable outside of its lifetime. Also see the very first line of the page, "A union is a special class type that can hold only one of its non-static data members at a time." – M.M Jun 19 at 22:32

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