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Today I was just playing around for basic conversions from one base to another. I goggled some code for converting from hex to octal, and I noticed that it mostly uses intermediate conversion to either decimal or binary and then back to octal.Is it possible write my own function for converting hex string to octal string without using any intermediate conversion.Also I do not want to use inbuilt printf option like %x or %o. Thanks for your inputs.

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physicsforums.com/showthread.php?t=40575 –  user195488 Jan 10 '13 at 15:16
    
It's a little tricky as you will be converting groups of 4 bits to groups of 3 bits - you'll probably want to work with 12 bits at a time, i.e. 3 hex digits to 4 octal digits and you'll then have to deal with any remaining bits separately. –  Paul R Jan 10 '13 at 15:17
    
Thanks @Paul R, still I am not upto your speed. It would be helpful if you can elaborate. –  CppLearner Jan 10 '13 at 15:30
    
See answer below... –  Paul R Jan 10 '13 at 15:31
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5 Answers

up vote 5 down vote accepted

Of course it is possible. A number is a number no matter what numeric system it is in. The only problem is that people are used to decimal and that is why they understand it better. You may convert from any base to any other.

EDIT: more info on how to perform the conversion.

First note that 3 hexadecimal digits map to exactly 4 octal digits. So having the number of hexadecimal digits you may find the number of octal digits easily:

#include <stdio.h>
#include <string.h>
#include <stdlib.h>
int get_val(char hex_digit) {
  if (hex_digit >= '0' && hex_digit <= '9') {
    return hex_digit - '0';
  } else {
    return hex_digit - 'A' + 10;
  }
}
void convert_to_oct(const char* hex, char** res) {
  int hex_len = strlen(hex);
  int oct_len = (hex_len/3) * 4;
  int i;

  // One hex digit left that is 4 bits or 2 oct digits.
  if (hex_len%3 == 1) {
    oct_len += 2;
  } else if (hex_len%3 == 2) { // 2 hex digits map to 3 oct digits
    oct_len += 3;
  }

  (*res) = malloc((oct_len+1) * sizeof(char));
  (*res)[oct_len] = 0; // don't forget the terminating char.

  int oct_index = oct_len - 1; // position we are changing in the oct representation.
  for (i = hex_len - 1; i - 3 >= 0; i -= 3) {
    (*res)[oct_index] = get_val(hex[i]) % 8 + '0';
    (*res)[oct_index - 1] = (get_val(hex[i])/8+ (get_val(hex[i-1])%4) * 2) + '0';
    (*res)[oct_index - 2] = get_val(hex[i-1])/4 + (get_val(hex[i-2])%2)*4 + '0';
    (*res)[oct_index - 3] = get_val(hex[i-2])/2 + '0'; 
    oct_index -= 4;
  }

  // if hex_len is not divisible by 4 we have to take care of the extra digits:
  if (hex_len%3 == 1) {
     (*res)[oct_index] = get_val(hex[0])%8 + '0';
     (*res)[oct_index - 1] = get_val(hex[0])/8 + '0';
  } else if (hex_len%3 == 2) {
     (*res)[oct_index] = get_val(hex[1])%8 + '0';
     (*res)[oct_index - 1] = get_val(hex[1])/8 + (get_val(hex[0])%4)*4 + '0';
     (*res)[oct_index - 2] = get_val(hex[0])/4 + '0';
  }
}

Also here is the example on ideone so that you can play with it: example.

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could you please elaborate with some supporting code snippet.Thanks –  CppLearner Jan 10 '13 at 15:16
    
What input and output do you expect? Char array? –  Ivaylo Strandjev Jan 10 '13 at 15:17
    
yes, char array string of hex and char array string as output for octal –  CppLearner Jan 10 '13 at 15:19
    
@CppLearner I will try to add some code later. –  Ivaylo Strandjev Jan 10 '13 at 15:20
1  
+1 :) Wow, Thank you so much for explanation. Copied below for those who don't want to go into details (Ref - answers.yahoo.com/question/index?qid=20101012144758AANnapz) Each triple of hex will become a quad of octal, 000 hex will become 0000 octal. Think of this as ABC becoming PQRS. The maths for this is: P = A / 2; // The most significant octal digit is half the most significant hex digit, rounded down. Q = 4 * (A % 2) + B / 4; R = 2 * (B % 4) + C / 8; S = C % 8; –  CppLearner Jan 10 '13 at 19:04
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All numbers in computer's memory are base 2. So whenever you want to actually DO something with the values (mathematical operations), you'll need them as ints, floats, etc. So it's handy or may come handy in the future to do the conversion via computable types.

I'd avoid direct string to string conversions, unless the values can be too big to fit into a numeric variable. It is surprisingly hard to write reliable converter from scratch.

(Using base 10 makes very little sense in a binary computer.)

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Yes, you can do it relatively easily: four octal digits always convert to three hex digits, so you can split your string into groups of three hex digits, and process each group from the back. If you do not have enough hex digits to complete a group of three, add leading zeros.

Each hex digit gives you four bits; take the last three, and convert them to octal. Add the next four, and take three more bits to octal. Add the last group of four - now you have six bits in total, so convert them to two octal digits.

This avoids converting the entire number to a binary, although there will be a "sliding" binary window used in the process of converting the number.

Consider an example: converting 62ABC to octal. Divide into groups of three digits: 062 and ABC (note the added zero in front of 62 to make a group of three digits).

Start from the back:

  • C, or 1100, gets chopped into 1 and 100, making octal 4, and 1 extra bit for the next step
  • B, or 1011, gets chopped into 10 for the next step and 11 for this step. The 1 from the previous step is attached on the right of 11, making an octal 7
  • A, or 1010, gets chopped into 101 and 0. The 10 from the previous step is attached on the right, making 010, or octal 2. The 101 is octal 5, so we have 5274 so far.
  • 2 becomes 2 and 0 for the next step;
  • 6 becomes 4 and 01 for the next step;
  • 0 becomes 0 and 1 (because 01 from the previous step is added).

The final result is 01425274.

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thanks I am not upto the speed with you. for e.g 5274 octal converts to ABC in hex. so can you please elaborate how to arrive the solution. –  CppLearner Jan 10 '13 at 15:26
    
@CppLearner Take a look at the example. –  dasblinkenlight Jan 10 '13 at 15:36
    
Thanks @dasblinkenlight , but I want to avoid this intermediate binary conversion. –  CppLearner Jan 10 '13 at 15:40
    
@CppLearner There's no intermediate binary conversion there: your number is never converted to binary in its entirety. I used binary to illustrate what's going on, but that's only an illustration. –  dasblinkenlight Jan 10 '13 at 15:48
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It's a little tricky as you will be converting groups of 4 bits to groups of 3 bits - you'll probably want to work with 12 bits at a time, i.e. 3 hex digits to 4 octal digits and you'll then have to deal with any remaining bits separately.

E.g. to convert 5274 octal to hex:

5    2    7    4
101  010  111  100

|||/   \\//   \|||

1010   1011   1100
A      B      C
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Thanks @Paul R, but in this case aren't we converting it to binary as and intermediate step. –  CppLearner Jan 10 '13 at 15:34
    
You have a small sliding binary window, yes - I don't see any alternative to that, since you need to re-group the bits. –  Paul R Jan 10 '13 at 15:35
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Seems like a pretty straight forward task to me... You want a hex string and you want to convert it to an octal string. Let's take the ASCII hex and convert it to an int type to work with:

char hex_value[] = "0x123";

int value = strtol(hex_value,NULL,16);

It's still hex at this point, then if we want to convert from one base to another there's simple math that can be done:

123 / 8 = 24 R 3
 24 / 8 =  4 R 4
  4 / 8 =  0 R 4

This tells us that 12316 == 4438 so all we have to do is write that math into a basic function and put the final value back into a string:

char * convert_to_oct(int hex)
{
    int ret = 0, quotient = 0, reminder = 0, dividend = hex, counter = 0, i;
    char * ret_str;   // returned string

    while(dividend > 0){             // while we have something to divide
        quotient = dividend / 0x8;   // get the quotient
        reminder = dividend - quotient * 0x8; // get the reminder

        ret += reminder * pow(10, counter);   // add the reminder (shifted) 
                                              // into our return value
        counter++;            // increment our shift
        dividend = quotient;  // get ready for the next divide operation
    }

    ret_str = malloc(counter);   // allocate the right number of characters
    sprintf(ret_str, "%d", ret); // store the result

    return ret_str;
}

So this function will convert a hex (int) value into a oct string. You could call it like:

int main()
{
   char hex_value[] = "0x123";
   char * oct_value;
   int value = strtol(hex_value,NULL,16);

   // sanity check, see what the value should be before the convert
   printf("value is %x, auto convert via printf gives %o\n", value, value);

   oct_value = convert_to_oct(value);
   printf("value is %s\n", oct_value);
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Thanks @Mike. I liked your approach. But I think it is in a way conversion from Dec to octal in disguise. Cause after executing this int value = strtol(hex_value,NULL,16); value will contain decimal value.and convert_to_oct logic will be for decimal to oct. –  CppLearner Jan 10 '13 at 19:27
    
@CppLearner - Not at all. The 16 in the strtol function keeps the value as a hex number. If you printed this value as decimal printf("%d",value) right after the strol you'd see a value of 291 displayed, (123hex == 291dec). The only conversion here is from an ASCII representation of a hex value, to an integer hex value. –  Mike Jan 10 '13 at 19:31
    
@CppLearner - Now if you don't want to convert to an integer at all that's a different story... but I didn't see that as a requirement in your original post. –  Mike Jan 10 '13 at 19:32
    
ok if you like to put it that way :) –  CppLearner Jan 10 '13 at 19:36
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