0

My program for checking a palindrome (with use of pointers) must count with few kinds of cases.

Input can be:

  1. one symbol/letter (done)
  2. a word with upper/lower case letters (done)
  3. bunch of symbols; if only symbols, then it is always an palindrome (done)
  4. if the input is too large(>80), then it is not a palindrome (I need to use fgets for that, which I managed to get done)
  5. combination of letters and symbols, if so, then just count letters (STRUGGLING WITH)
  6. a sentence with whites and commas (STRUGGLING WITH) -->To get an input, I'm prompted to use only fgets function because of the case 4. I still can't manage to convert the input string to the desired form

e. g.: input: Madam, I'm Adam output: palindrome input: ?a.a! output: palindrome

I've already managed to create the palindrome function with use of pointers, to convert possible letters in a string to all-lower-case, and to display "palindrome" if the string consists only of symbols.

How could I manage to transform e. g.:

char str[80] = "Madam, I'm Adam";

into:

str[80] = "madamimadam"; ?

  • You are not allowed to use isalpha? – P.W May 2 '19 at 10:07
  • 1
    @P.W not exactly sure about that, we can use some tools but e. g. for upper/lower cases I had to create an original function (which I've done) but thanks for the hint, I will try it with it at least – DemoVision May 2 '19 at 10:15
0

Simply chew through the whole string and create a new one in a more convenient format. At the same place as you do the case conversion:

#include <ctype.h>

void format (char* dst, const char* src)
{
  size_t i=0;

  while(*src != '\0')
  {
    char ch = tolower(*src);
    if(isalpha(ch))
    {
      *dst = ch;
      dst++;
    }
    src++;
  }
}

If isalpha isn't available for some artificial reason, you can easily create it yourself. Here's a fast, portable look-up table version:

#include <stdbool.h>

bool my_isalpha (char ch)
{
  static const bool ALLOWED[256] =
  {
    ['A'] = true;
    ['B'] = true;
    ['C'] = true;
    ...
  };

  return ALLOWED[ch];
}

Naive versions of the same function simply check if(ch >= 'A' && ch <= 'Z'), assuming upper-case only. That's probably ok for a student assignment, but not for production quality code. Since there's no guarantee from the C standard that characters are adjacent in the symbol table. And the look-up table version runs much faster anyway, so there's no reason not to use it in a professional program.

  • ("so there's no reason not to use it in a professional program" Except of course if you are programming some 1980s crapitechture 8-bit MCU with very limited flash.) – Lundin May 2 '19 at 11:07

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.