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#include<stdio.h>
#include<stdlib.h>

char *syllable[26] = {"a","bub","cash","dud","e","fud","gug","hash","i","jay",
    "kuck","lul","mum","nun","o","pub","quack","rug","sus",
    "tut","u","vuv","wack","xux","yuck","zug"};

void Tutnese(char *word, char *newword);
char *letter;


void Tutnese(char *word, char *newword)
{

    //clrscr();
    for(*letter = 'A'; *letter <= 'Z'; *letter++)
    {
        letter=syllable;
        printf("%c\n",&letter);
    }
}

Tutnese is an English language game primarily used by children who use it to converse in (perceived) privacy from adults (or vice versa)

I am trying to let A="A" B="bub" c="cash" and so on. I am expecting a result like this.

“computer.” becomes “cashomumpubututerug.” - “Stony” become “Sustutonunyuck”

but i just start learning c, and i have no idea how to use pointer. I've been keep getting error like assignment makes integer from pointer without a cast

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closed as off-topic by Paul Griffiths, Grijesh Chauhan, GrIsHu, Kerrek SB, Daij-Djan Oct 14 '13 at 7:44

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "Questions asking for code must demonstrate a minimal understanding of the problem being solved. Include attempted solutions, why they didn't work, and the expected results. See also: Stack Overflow question checklist" – Paul Griffiths, Grijesh Chauhan, GrIsHu, Kerrek SB, Daij-Djan
If this question can be reworded to fit the rules in the help center, please edit the question.

4  
I highly recommend going through the pointers section in your book or finding some tutorials. There are so many problems with this code. –  chris Oct 14 '13 at 3:43
2  
The relationship between arrays and pointers in C can be confusion. Section 6 of the comp.lang.c FAQ has the best explanation I've seen. –  Keith Thompson Oct 14 '13 at 3:47
1  
s/confusion/confusing/ –  Keith Thompson Oct 14 '13 at 4:14

3 Answers 3

up vote 0 down vote accepted

Code

#include <ctype.h>
#include <stddef.h>
#include <stdio.h>
#include <stdlib.h>
#include <string.h>

char *syllable[26] = {"a","bub","cash","dud","e","fud","gug","hash","i","jay",
    "kuck","lul","mum","nun","o","pub","quack","rug","sus",
    "tut","u","vuv","wack","xux","yuck","zug"};

void Tutnese(char *word, char *newword, size_t new_size);

void Tutnese(char *word, char *newword, size_t new_size)
{
    char *end = newword + new_size;
    char c;
    while ((c = *word++) != '\0')
    {
        if (!isalpha(c))
            *newword++ = c;
        else
        {
            char *tut = syllable[tolower(c) - 'a'];
            ptrdiff_t len = strlen(tut);
            if (end - newword <= len)
                break;
            memcpy(newword, tut, len + 1);
            newword += len;
        }
    }
    *newword = '\0';
}

int main(void)
{
    char i_data[1024];
    char o_data[4096];

    while (fgets(i_data, sizeof(i_data), stdin) != 0)
    {
        Tutnese(i_data, o_data, sizeof(o_data));
        printf("I: %sO: %s", i_data, o_data);
    }
    return(0);
}

Output

I: computer
O: cashomumpubututerug
I: how do you tell mum that she cannot understand us?
O: hashowack dudo yuckou tutelullul mumumum tuthashatut sushashe cashanunnunotut ununduderugsustutanundud usus?
I: The quick brown fox jumped over the lazy dog.
O: tuthashe quackuicashkuck bubrugowacknun fudoxux jayumumpubedud ovuverug tuthashe lulazugyuck dudogug.
share|improve this answer

char *letter;
This statement declares a variable named letter, same way as any other statement like char ch; will do.

Now, what's the difference then!!

Well the difference (and similarity) is:

  1. char ch; declares a char variable, i.e. a memory block of size 1 byte is allocated (statically), which you can refer to using ch.

  2. char *letter; on the other hand declares a char pointer i.e. a memory size of 2 or 4 or 8 bytes (depending on compiler) will be allocated (again statically) to store address of a char variable.

Now when you use *letter as lvalue (on Left Hand Side) as you do in for loop, this means you are trying to write to the memory address stored in letter. In your case you never stored any address in letter, to do so you can use letter = &ch; where ch is some char variable.

That was all the lecture!!

Now my suggestion for your program:

  1. You don't need to use letter pointer for the loop, a simple char i variable will be fine.

  2. To re-form the string as you plan to, you can simply use the characters of the original string as indices to form new string. Declare a empty string of some large length, then keep concatenating the syllable[orig_string[i] - 'A'], inside a for loop till the end of orig_string. Assumption is orig_string contains all uppercase alphabets

  3. Finally, Correct your printf syntax.

Do read about pointers in C from a good source, as they will never leave you, and will give you all sorts of nightmare.

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Lets forget about pointers and break down the problem. You're given a word word and you want to create newword based on your mapping.

First, you need to figure out how big newword is. To do that, iterate through the characters in word and add the string lengths of the mappings (call it N) Once you've done that, you know you can allocate N+1 bytes (strings are null terminated in C) for newword (via malloc). Then, you iterate through the characters again and just append to newword

Let me give you a few hints: To iterate through a string (lets call it word), the C code would look like:

unsigned int wordlen = strlen(word);
for(unsigned int index = 0; index < wordlen; index++)
    printf("Character at %u is %c", index, word[index]);

Your for loop is quite messed up. Do look up a few tutorials on pointers and string manipulation in C.

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