Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am a beginner in C, I am trying to make a program which detects which letter is the most common of max 10 letters. Here is what I've got so far:

char one = 'a'; //0110 0001
char check[10];

scanf("%s", &check);
char *ptr;
int a = 0;int b = 0;int c = 0;int d = 0;int e = 0;int f = 0;int g = 0;int h = 0;int i = 0;int j = 0;int k = 0;int l = 0;int m = 0;int n = 0;int o = 0;int p = 0;int q = 0;int r = 0;int s = 0;int t = 0;int u = 0;int v = 0;int w = 0;int x = 0;int y = 0;int z = 0;


if (check[0]=='a'){
    a += 1;
    if (a> b && a> c && a> d && a> e && a> f && a> g && a> h && a> i && a> j && a> k && a> l && a> m && a> n && a> o && a> p && a> q && a> r && a> s && a> t && a> u && a> v && a> x && a> y ){
        printf("A is the most common letter);
    }
}

The 'if' statement is only for the first letter that is entered and it is only checking the letter a. Here is where I need help, how do I optimize that? How can I make a loop instead of having all that a>b && a>c ... etc. Also if it is possible to declare a lot of similar variables in a shorter way? Just generally how do I keep short and am I doing something wrong?

Thank you.

share|improve this question
5  
Fun fact: e is actually the most common letter in the english language. –  Mike Mar 13 '13 at 16:32
1  
This may help: stackoverflow.com/questions/14904674/… –  hmjd Mar 13 '13 at 16:35

4 Answers 4

up vote -1 down vote accepted

You need to use loops and arrays. Just store the amount of letters you've got in an array and then compare current the letter amount to best amount:

char check[10];
scanf("%s", &check);
const int checkSize = strlen(check);

int numberOfLetters[26]; 
for(int i = 0; i < 26; ++i) 
    numberOfLetters[i] = 0;

int bestLetterIndex = -1;

for(int i = 0; i < checkSize; ++i) {
    int letterIndex = check[i] - 'a'; // getting index from ASCII code
    numberOfLetters[letterIndex]++;

    if(i == 0 || // first letter, index not found yet 
       numberOfLetters[letterIndex] > numberOfLetters[bestLetterIndex]) {
        bestLetterIndex = letterIndex;
    }
}

printf("Most common letter is %c", (char)(bestLetterIndex + 'a'));
share|improve this answer
    
This is honestly the closest answer to what the OP is actually looking for, and even it falls on an EBCDIC platform (which has at-most nine consecutive characters before a break in the sequence. I.e. 'j' - 'a' is not 9; it is 16). –  WhozCraig Mar 13 '13 at 17:01
    
@WhozCraig haha, good one :) For reasons, i think OP doesn't care about such thing. Otherwise, he might be like 60 years old =D –  dreamzor Mar 13 '13 at 17:03
1  
He should care. its the difference between correct, and JGE (just-good-enough). "Correct" lasts, JGE is the source of plethoras of headaches in the future. –  WhozCraig Mar 13 '13 at 17:09
    
If you don't want to care about this sort of thing, don't write C code. –  meagar Mar 13 '13 at 18:34
    
Explain the downvotes, please. OP didn't say anything about his system. I can bet a hundred that it's not that type of system where this code wouldn't work. –  dreamzor Mar 13 '13 at 18:41

You can certainly do it your way and compare every letter with every other. But usually you do this in two phases

  • count how often the letters occur

    int letters[26];
    int i, n = strlen(check), max;
    memset(letters, 0, sizeof(letters));
    for (i = 0; i < n; ++i) {
        char c = tolower(check[i]);
        letters[c - 'a']++;
    }
    
  • pick the highest one

    max = 0;
    for (i = 1; i < 26; ++i)
        if (letters[i] > letters[max])
            max = i;
    
    printf("%c is the most common letter\n", max + 'a');
    
share|improve this answer

Yes you are doing a lot of things wrong.

this part of code

int a = 0;int b = 0;int c = 0;int d = 0;int e = 0;int f = 0;int g = 0;int h = 0;int i = 0;int j = 0;int k = 0;int l = 0;int m = 0;int n = 0;int o = 0;int p = 0;int q = 0;int r = 0;int s = 0;int t = 0;int u = 0;int v = 0;int w = 0;int x = 0;int y = 0;int z = 0;

is something horrific.

Use an array, like that: int letter[25];

letter[0] will be your a, letter[1] will be your b ... letter[49] will be your z.

this part of code

if (check[0]=='a'){
    a += 1;

is a bad way to do what you want.

you should do it like this:

int i;

for(i = 0; i < 10; ++i)
{
    if(check[i] >= 'A' && check[i] <= 'Z') // Check if letter is uppercase.
        ++letter[check[i] - 'A']; // 'A' == 65, But our array is from 0 to 49.

    if(check[i] >= 'a' && check[i] <= 'z') // Check if letter is lowercase.
        ++letter[check[i] - 'a']; // 'a' == 97. Note that 'A' is not 'a'.
}

This will check which character is most common, and stores it in the letter array.

share|improve this answer

Impressive work :)

int counts[26]; // We are expecting 26 letters
char check[10];
char *ptr;
scanf("%s", check);

memset(counts, 0, sizeof(counts)); // zero all array values
for (ptr = check; *ptr; ptr++)
{
   char ch = *ptr;
   if (isalpha(ch)) // ignore non-alphas
   {
      ch = tolower(ch);
      counts[ch - 'a']++;
   }
}

You can add best index lookup code from dreamzor answer

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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