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Please I want your help to write a C language code that print the Hexadecimal in for of string.

I was thing to do some thing like this :

main()
{

  char hex[]={ "00",    "01",   "02",   "03",   "04",   "05",   "06",   "07",   "08",   "09",   "0A",   "0B",   "0C",   "0D",   "0E",   "0F",..................., "FF"};

int Hex;

printf("\nEnter the Hex No.\n");
scanf("%d",&Hex);

printf("\n String value is:");
printf("%c",hex[Hex]);


}

But I got error from my compiler when I try to implement it in the initializing the string matrix , so could you tell me what is the problem or you may have better idea for this ??

Best regards

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what error do you get? –  David Brown Jan 10 '13 at 18:44
5  
printf("0x%x", Hex); Seems like it would work. –  user645280 Jan 10 '13 at 18:44
1  
C or C++, pick one, as each have different methods for doing this (your code is C)... –  Necrolis Jan 10 '13 at 18:45
    
Something like char* hex[] would work for you. –  Coding Mash Jan 10 '13 at 18:45
    

5 Answers 5

You create an array of char but then initialize it with string (i.e. char *).

Change the type to char *

char *hex[] = { ... };

and it should work better.

You also need to change the output, to print a string instead

printf("%s", hex[Hex]);

Even easier would of course be to print the hext number directly:

printf("%02X", Hex);

Then you don't need the array.

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You are initialiased in a wrong way. Actual way is

 char *hex[] ={"00","01","02" ....}
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You can represent chars in hex in c++ code via the 0x## notation; the following will compile.

char hex[] = {0x01,0x02,...};
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Not sure why the negative votes, the question is vague enough that the right answer may be something to do with character to number conversions. –  user645280 Jan 10 '13 at 18:49
    
@ebyrob "code that print the Hexadecimal", this has nothing to do with printing, just representing the numbers as hex in code, and the indexes would be off. And the code example as is it would print non printable characters such as character 1, character 2 etc. –  Joe Jan 10 '13 at 18:51
    
@Joe OP says his code didn't compile, I pointed out why. –  ryanbwork Jan 10 '13 at 18:52
    
@Joe sorry the original desire of "code that print the Hexadecimal in for of string" was a bit unclear to me, thought I'd just point out the reason why compilation failed instead. –  ryanbwork Jan 10 '13 at 18:59
    
@Joe This change would certainly make this line of code legal: printf("%c",hex[Hex]); The OP may not know the difference between ASCII codes and HEX. Although, I'll grant you that an array of 1-255 char values isn't all that useful for doing calculations... –  user645280 Jan 10 '13 at 18:59

You need to use char* hex[] = {...}.

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I don't quite understand what you're going for here... if you want the user to enter a value in hex as your code implies:

int Hex;

printf("\nEnter the Hex No.\n");//This tells me you want me to enter 12A4 (a hex value)

Then you should be scaning for a hex value:

scanf("%x",&Hex);  // The %x tells scanf that the incoming value is base 16

If you want the user to enter a number in dec (base 10) then you'll display it in hex you'd want:

int Hex;
printf("\nEnter the number to convert to Hex.\n");
scanf("%d",&Hex);

printf("\n String value is:");
printf("%#x",Hex);

Note the format string "%#x" will display a value in the format: 0x<number> which is quite handy to not need to add the 0x on yourself.

No need to mess with the char array

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