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I need to do this convertion but have no clue. Can someone help me? I need this to complete a calculator of base convertion. I also need that the function return a integer to convert to use in my others functions.

PS: sorry for my bad english.

i expect that 11F to be an integer 287.

closed as too broad by David C. Rankin, Rob, L. F., Udhay Titus, MrUpsidown Jun 26 at 11:17

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2

Here's something with recursion:

int hexToBase10(const std::string& number, size_t pos = 0) {
   if (pos == number.length())
       return 0;
   char digit = number[number.size() - pos - 1];
   int add = digit >= '0' && digit <= '9' ? digit - '0'
                                          : digit - 'A' + 10;
   return 16 * hexToBase10(number, pos + 1) + add;
}

Call it this way:

hexToBase10("11F");  // 287

Btw, it seems to be more safe to use std::hex.

  • You should note: that the hex string cannot include the prefixes "0x" or "0X" and the hex-characters must be upper-case (you can address the latter by including <cctype> and using std::tolower() in your function). You can address the former in the caller or in a wrapper to your function that uses .find() to check for 'x' or 'X' and advances past the prefix. (for instance try converting "11f" or "0x11F") That said, you did answer the "recursive" aspect of the question. – David C. Rankin Jun 26 at 2:07
1

Provided it fits into at most unsigned long long, you can use strtoul/strtoull from stdlib.h to parse it from a base-16 string into an integer.

You can then simply print that integer in base 10.

#include <stdlib.h>
#include <stdio.h>
int main()
{
    char const *hex = "11F";
    char *endptr;
    unsigned long ul = strtoul(hex,&endptr,16);
    printf("%lu\n", ul);
}
  • Only problem here is a lack of recursion, a requirement I can't imagine the point of. – user4581301 Jun 26 at 0:45
  • 1
    Probably classwork to get the student familiar with the concept. – doug Jun 26 at 6:43

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