This is for Homework
I have to write a program that asks the user to enter a string, then my program would separate the even and odd values from the entered string. Here is my program.
#include <stdio.h>
#include <string.h>
int main(void) {
char *str[41];
char odd[21];
char even[21];
int i = 0;
int j = 0;
int k = 0;
printf("Enter a string (40 characters maximum): ");
scanf("%s", &str);
while (&str[i] < 41) {
if (i % 2 == 0) {
odd[j++] = *str[i];
} else {
even[k++] = *str[i];
}
i++;
}
printf("The even string is:%s\n ", even);
printf("The odd string is:%s\n ", odd);
return 0;
}
When I try and compile my program I get two warnings:
For my scanf I get "format '%s' expects arguments of type char but argument has 'char * (*)[41]". I'm not sure what this means but I assume it's because of the array initialization.
On the while loop it gives me the warning that says comparison between pointer and integer. I'm not sure what that means either and I thought it was legal in C to make that comparison.
When I compile the program, I get random characters for both the even and odd string.
Any help would be appreciated!
this declaration is wrong:
char *str[41];
you're declaring 41 uninitialized strings. You want:
char str[41];
then, scanf("%40s" , str);, no & and limit the input size (safety)
then the loop (where your while (str[i]<41) is wrong, it probably ends at once since letters start at 65 (ascii code for "A"). You wanted to test i against 41 but test str[i] against \0 instead, else you get all the garbage after nul-termination char in one of odd or even strings if the string is not exactly 40 bytes long)
while (str[i]) {
if (i % 2 == 0) {
odd[j++] = str[i];
} else {
even[k++] = str[i];
}
i++;
}
if you want to use a pointer (assignement requirement), just define str as before:
char str[41];
scan the input value on it as indicated above, then point on it:
char *p = str;
And now that you defined a pointer on a buffer, if you're required to use deference instead of index access you can do:
while (*p) { // test end of string termination
if (i % 2 == 0) { // if ((p-str) % 2 == 0) { would allow to get rid of i
odd[j++] = *p;
} else {
even[k++] = *p;
}
p++;
i++;
}
(we have to increase i for the even/odd test, or we would have to test p-str evenness)
aaaand last classical mistake (thanks to last-minute comments), even & odd aren't null terminated so the risk of getting garbage at the end when printing them, you need:
even[k] = odd[j] = '\0';
(as another answer states, check the concept of even & odd, the expected result may be the other way round)
There are multiple problems in your code:
You define an array of pointers char *str[41], not an array of char.
You should pass the array to scanf instead of its address: When passed to a function, an array decays into a pointer to its first element.
You should limit the number of characters read by scanf.
You should iterate until the end of the string, not on all elements of the array, especially with (&str[i] < 41) that compares the address of the ith element with the value 41, which is meaningless. The end of the string is the null terminator which can be tested with (str[i] != '\0').
You should read the characters from str with str[i].
You should null terminate the even and odd arrays.
Here is a modified version:
#include <stdio.h>
int main(void) {
char str[41];
char odd[21];
char even[21];
int i = 0;
int j = 0;
int k = 0;
printf("Enter a string (40 characters maximum): ");
if (scanf("%40s", str) != 1)
return 1;
while (str[i] != '\0') {
if (i % 2 == 0) {
odd[j++] = str[i];
} else {
even[k++] = str[i];
}
i++;
}
odd[j] = even[k] = '\0';
printf("The even string is: %s\n", even);
printf("The odd string is: %s\n", odd);
return 0;
}
Note that your interpretation of even and odd characters assumes 1-based offsets, ie: the first character is an odd character. This is not consistent with the C approach where an even characters would be interpreted as having en even offset from the beginning of the string, starting at 0.
Many answers all ready point out the original code`s problems.
Below are some ideas to reduce memory usage as the 2 arrays odd[], even[] are not needed.
As the "even" characters are seen, print them out.
As the "odd" characters are seen, move them to the first part of the array.
Alternative print: If code used "%.*s", the array does not need a null character termination.
#include <stdio.h>
#include <string.h>
int main(void) {
char str[41];
printf("Enter a string (40 characters maximum): ");
fflush(stdout);
if (scanf("%40s", str) == 1) {
int i;
printf("The even string is:");
for (i = 0; str[i]; i++) {
if (i % 2 == 0) {
str[i / 2] = str[i]; // copy character to an earlier part of `str[]`
} else {
putchar(str[i]);
}
}
printf("\n");
printf("The odd string is:%.*s\n ", (i + 1) / 2, str);
}
return 0;
}
or simply
printf("The even string is:");
for (int i = 0; str[i]; i++) {
if (i % 2 != 0) {
putchar(str[i]);
}
}
printf("\n");
printf("The odd string is:");
for (int i = 0; str[i]; i++) {
if (i % 2 == 0) {
putchar(str[i]);
}
}
printf("\n");
here is your solution :)
#include <stdio.h>
#include <string.h>
int main(void)
{
char str[41];
char odd[21];
char even[21];
int i = 0;
int j = 0;
int k = 0;
printf("Enter a string (40 characters maximum): ");
scanf("%s" , str);
while (i < strlen(str))
{
if (i % 2 == 0) {
odd[j++] = str[i];
} else {
even[k++] = str[i];
}
i++;
}
odd[j] = '\0';
even[k] = '\0';
printf("The even string is:%s\n " , even);
printf("The odd string is:%s\n " , odd);
return 0;
}
solved the mistake in the declaration, the scanning string value, condition of the while loop and assignment of element of array. :)
Related
I'm having trouble with trying to manipulate 2d dynamic arrays in C. What I want to do is to store a char string in every row of the the 2d array then perform a check to see if the string contains a certain character, if so remove all occurrences then shift over the empty positions. What's actually happening is I get an exit status 1.
More about the problem, for example if I have
Enter string 1: testing
Enter string 2: apple
Enter string 3: banana
I would want the output to become
What letter? a // ask what character to search for and remove all occurences
testing
pple
bnn
Here is my full code:
#include <stdio.h>
#include <stdlib.h>
void removeOccurences2(char** letters, int strs, int size, char letter){
// Get size of array
// Shift amount says how many of the letter that we have removed so far.
int shiftAmt = 0;
// Shift array says how much we should shift each element at the end
int shiftArray[strs][size];
// The first loop to remove letters and put things the shift amount in the array
int i,j;
for(i=0;i < strs; i++){
for(j = 0; j < size - 1; j++) {
if (letters[i][j] == '\0'){
break;
}
else {
// If the letter matches
if(letter == letters[i][j]){
// Set to null terminator
letters[i][j] = '\0';
// Increase Shift amount
shiftAmt++;
// Set shift amount for this position to be 0
shiftArray[i][j] = 0;
}else{
// Set the shift amount for this letter to be equal to the current shift amount
shiftArray[i][j] = shiftAmt;
}
}
}
}
// Loop back through and shift each index the required amount
for(i = 0; i < strs; i++){
for(j = 0; j < size - 1; j++) {
// If the shift amount for this index is 0 don't do anything
if(shiftArray[i][j] == 0) continue;
// Otherwise swap
letters[i][j - shiftArray[i][j]] = letters[i][j];
letters[i][j] = '\0';
}
//now print the new string
printf("%s", letters[i]);
}
return;
}
int main() {
int strs;
char** array2;
int size;
int cnt;
int c;
char letter;
printf("How many strings do you want to enter?\n");
scanf("%d", &strs);
printf("What is the max size of the strings?\n");
scanf("%d", &size);
array2 = malloc(sizeof(char*)*strs);
cnt = 0;
while (cnt < strs) {
c = 0;
printf("Enter string %d:\n", cnt + 1);
array2[cnt] = malloc(sizeof(char)*size);
scanf("%s", array2[cnt]);
cnt += 1;
}
printf("What letter?\n");
scanf(" %c", &letter);
removeOccurences2(array2,strs,size,letter);
}
Thanks in advance!
You can remove letters from a string in place, because you can only shorten the string.
The code could simply be:
void removeOccurences2(char** letters, int strs, int size, char letter){
int i,j,k;
// loop over the array of strings
for(i=0;i < strs; i++){
// loop per string
for(j = 0, k=0; j < size; j++) {
// stop on the first null character
if (letters[i][j] == '\0'){
letters[i][k] = 0;
break;
}
// If the letter does not match, keep the letter
if(letter != letters[i][j]){
letters[i][k++] = letters[i][j];
}
}
//now print the new string
printf("%s\n", letters[i]);
}
return;
}
But you should free all the allocated arrays before returning to environment, and explicitely return 0 at the end of main.
Well, there are several issues on your program, basically you are getting segmentation fault error because you are accessing invalid memory which isn't allocated by your program. Here are some issues I found:
shiftAmt isn't reset after processing/checking each string which lead to incorrect value of shiftArray.
Values of shiftArray only set as expected for length of string but after that (values from from length of each string to size) are random numbers.
The logic to delete occurrence character is incorrect - you need to shift the whole string after the occurrence character to the left not just manipulating a single character like what you are doing.
1 & 2 cause the segmentation fault error (crash the program) because it causes this line letters[i][j - shiftArray[i][j]] = letters[i][j]; access to unexpected memory. You can take a look at my edited version of your removeOccurences2 method for reference:
int removeOccurences2(char* string, char letter) {
if(!string) return -1;
int i = 0;
while (*(string+i) != '\0') {
if (*(string+i) == letter) {
memmove(string + i, string + i + 1, strlen(string + i + 1));
string[strlen(string) - 1] = '\0'; // delete last character
}
i++;
}
return 0;
}
It's just an example and there is still some flaw in its logics waiting for you to complete. Hint: try the case: "bananaaaa123"
Happy coding!
"...if the string contains a certain character, if so remove all occurrences then shift over the empty positions."
The original string can be edited in place by incrementing two pointers initially containing the same content. The following illustrates.:
void remove_all_chars(char* str, char c)
{
char *pr = str://pointer read
char *pw = str;//pointer write
while(*pr)
{
*pw = *pr++;
pw += (*pw != c);//increment pw only if current position == c
}
*pw = '\0';//terminate to mark last position of modified string
}
This is the cleanest, simplest form I have seen for doing this task. Credit goes to this answer.
I did this program to reverse the order of the words in the give string. (And it works)
i.e. Output: sentence first the is This
However I am stuck when it comes to adding another sentence to the array.
For example I need to have an array {"This is the first sentence", "And this is the second"} producing as output: sentence first the is This , second the is this And
int main() {
char str[] = {"This is the first sentence"};
int length = strlen(str);
// Traverse string from end
int i;
for (i = length - 1; i >= 0; i--) {
if (str[i] == ' ') {
// putting the NULL character at the position of space characters for
next iteration.
str[i] = '\0';
// Start from next character
printf("%s ", &(str[i]) + 1);
}
}
// printing the last word
printf("%s", str);
return 0;
}
I am new to C so its not surprising that I got stuck even if the solution is quite easy. Any help would be appreciated! Thanks!
Since you already have the code to print the words of one string in reverse order, I would suggest making that a function which takes a single string as an argument, i.e.:
void print_words_reverse(char * const str) {
// your current code here
}
Then you can call it separately for each string:
char strings[][30] = {
"This is the first sentence",
"And this is the second"
};
for (int i = 0; i < sizeof(strings) / sizeof(*strings); ++i) {
print_words_reverse(strings[i]);
}
Note that since you are modifying the string (by replacing spaces with NUL bytes), the argument needs to be modifiable, which means you are not allowed to call it (in standard C) with a pointer to a string literal, which means you can't simply use const char *strings[] = { "first", "second" }. You could get rid of the ugly constant length (here 30) reserved for every string by making your code not modify the argument string. Or you could have a separate char array for each sentence and then use pointers to those (modifiable) strings.
First, you can try with a two-dimensional array or use an array of pointers.
Secondly, in your approach, you lose the initial value of your string, I don't know how important it is.
This is my fast approach using arrray of pointers.
#include <stdio.h>
#include <string.h>
static void print_word(const char *str)
{
for (int i = 0; str[i] && str[i] != ' '; i++)
printf("%c", str[i]);
putchar(' ');
}
int main(void)
{
int len;
const char *str[] = {"This is the first sentence",
"And this is second", NULL};
for (int i = 0; str[i]; i++) {
for (len = strlen(str[i]); len >= 0; len--) {
if (len == 0)
print_word(&str[i][len]);
else if (str[i][len] == ' ')
print_word(&str[i][len + 1]);
}
putchar('\n');
}
printf("Initial value of array of strings [%s | %s] \n", str[0], str[1]);
return 0;
}
output is:
sentence first the is This
second is this And
Initial value of array of strings [This is the first sentence | And this is second]
I suggest you using memcpy but without altering too much your code this seems to work
#include<stdio.h>
#include<stdlib.h>
#include<string.h>
#define MAX_STRING_LENGTH 100
int main()
{
char *str[] = {"This is the first", "And this is the second sentence"};
const size_t NUM_STRING = sizeof(str)/sizeof(char*);
/*%z used to print size_t variables*/
printf("%zd strings found\n", NUM_STRING);
int length[2];
int i;
for (i=0; i<NUM_STRING; i++)
{
length[i] = strlen(str[i]);
}
printf("length initialized %d %d\n", length[0], length[1]);
// Traverse string from end
int j = 0;
char temp[MAX_STRING_LENGTH];
printf("\n\n");
for (j=0; j<NUM_STRING; j++)
{
/*Make sure the string respect the MAX_STRING_LENGTH limit*/
if (strlen(str[j])>MAX_STRING_LENGTH)
{
printf("ERROR: string %d exceding max string length %d defined in constant "
"MAX_STRING_LENGTH. Exiting from program.\n", j, MAX_STRING_LENGTH);
exit(1);
}
//reset temporary string
memset(temp, '\0', sizeof(temp));
//printf("temp variable reinitialized\n");
for (i = length[j] - 1; i >= 0; i--)
{
temp[i] = str[j][i];
if (str[j][i] == ' ')
{
// putting the NULL character at the position of space characters for next iteration.
temp[i] = '\0';
// Start from next character
printf("%s ", &(temp[i]) + 1);
}
}
// printing the last word
printf("%s ", temp);
}
printf("\n");
return 0;
}
This question already has answers here:
How do I check if a number is a palindrome?
(53 answers)
Closed 5 years ago.
I am trying to check if an input number is a palindrome. I am doing it through strings rather than ints. So, I am taking in a string and reversing it into another string. However, when I use the string compare function it does not give me 0, stating that the strings are not the same. Even when I put in for example "1001", both the input and reverse strings displays 1001. I have figured it out with other methods but am trying to understand what is wrong with this one in specific.
#include <stdio.h>
#include <string.h>
int main(void)
{
char input[100];
char reverse[100];
int numLen = 0;
printf("Enter a number\n");
fgets(input, 100, stdin);
printf("The number is: %s\n", input);
numLen = strlen(input) - 1;
printf("Length of string is: %d\n", numLen);
for (int i = 0; i < numLen; i++)
{
reverse[i] = input[numLen - 1 - i];
if (i == numLen - 1)
{
reverse[i + 1] = '\0';
}
}
printf("The reverse number is: %s\n", reverse);
printf("The original number is: %s\n", input);
int result = strcmp(input, reverse);
printf("Result of strcmp gives us: %d\n", result);
if (strcmp(input, reverse) == 0)
{
printf("These numbers are palindromes\n");
}
else
{
printf("These numbers are not palindromes\n");
}
return 0;
}
The problem is you are not handling the strings properly. You should overwrite the '\n' with \0.
...
char input[100];
char reverse[100];
int numLen = 0;
printf("Enter a number\n");
fgets(input, 100, stdin);
printf("The number is: %s\n", input);
input[strcspn(input,"\n")]='\0'; // getting the length of the
// string without `\n`
// and overwriting with `\0`
numLen = strlen(input) ; // now you don't need to put the -1
printf("Length of string is: %d\n", numLen);
for (int i = 0; i < numLen; i++)
{
....
Apart from these two changes everything else remains the same. You were reversing it all right. And then you used strcmp right way. But the extra \n is removed in the code I have shown.
(still) Why it works?
Now to give you a better idea. You formed the reversed string alright. But the original string has \n within itself.
printf("The reverse number is: (%s)\n", reverse);
printf("The original number is: (%s)\n", input);
In the previous program you just do write these two lines. You will understand where you went wrong.
On giving input 1001Enter it gives this output.
The reverse number is: (1001)
The original number is: (1001
)
What is strcspn doing?
I have using strcspn function got the length without \n and overwriting it with \0.
0 1 2 3 4 5 --> indices
1 0 0 1 \n \0 --> strcspn(input,"\n") returns 4.
1 0 0 1 \0 \0 --> input[strcspn(input,"\n")]='\0'
You can do simply like this without the copying and everything.
Without extra memory - in place palindrome checking
bool checkPal(const char *s){
for(int i = 0, j= strlen(s)-1; i< strlen(s) && j>=0 ; i++)
if(s[i] != s[j])
return false;
return true;
}
int main(void)
{
char input[100];
char reverse[100];
printf("Enter a number\n");
if( fgets(input, 100, stdin) )
printf("The number is: %s\n", input);
input[strcspn(input,"\n")]='\0';
int numLen = strlen(input) ;
printf("Length of string is: %d \n", numLen);
printf("These numbers are %spalindromes\n", checkPal(input)?"not ":"");
return 0;
}
A more succinct way to write the checkPal() would be,
bool checkPal(const char *first){
const char *last = first + strlen(first);
while (first < last) {
if (*first++ != *--last) {
return false;
}
}
return true;
}
last points to the \0 character. Subtraction is necessary before we start doing comparison. To get a clear idea of what happens you have to know the precedence and few rules.
The first<last part is obvious. We are comparing till we reach a point where we first > last (For even length strings) or first = last (for odd length strings).
The if is a bit tricky. *first++ there are two operators involved. * (indirection) and ++(post increment).
And precedence of ++ is higher than de-reference *.
So *first++ will be - first is incremented. Then you might think that we are missing one character very first time but that's not the case. Value of a postfix expression is the value before we do first++. So now you have the first character.
Same way *--last will have the same effect except the value of the prefix expression is the value after the operation. So you are considering the last character.
If they matches we continue. first and last already contain the modified value. We repeat the same logic for rest of the characters in the smaller sub-string.
If a mismatch occurs then we return immediately. (Because it's not a palindrome).
Sorry, my bad. Try this:
#include <stdio.h>
#include <string.h>
// A function to check if a string str is palindrome
void isPalindrome(char str[])
{
// Start from leftmost and rightmost corners of str
int l = 0;
int h = strlen(str) - 1;
// Keep comparing characters while they are same
while (h > l)
{
if (str[l++] != str[h--])
{
printf("%s is Not Palindromen", str);
return;
}
}
printf("%s is palindromen", str);
}
// Driver program to test above function
int main()
{
isPalindrome("abba");
isPalindrome("abbccbba");
isPalindrome("geeks");
return 0;
}
Does this one work?
A variant, recursive version that has no more that the string as argument (or a copy of the original string)
int pal(char *s) {
int n = strlen(s);
if (n <= 1) return 1;
if (s[0] != s[n-1]) return 0;
s[n-1] = '\0';
return pal(++s);
}
return 0: not a palindrome, 1: is a palindrome
Note the string is altered, so you can call it this way if it's a problem (or if the string is created in a static area)
char *copy = malloc(strlen(string)+1); // string is original string
strcpy(copy, string);
int ispal = pal( copy );
printf("Is %s a palindrome\n", ispal ? "":"not");
I'm trying to create a program that checks if a given array/string is a palindrome or not and its not working. The program just prints "0" on every given array, even on palindromes.
int main()
{
char string[100]= {0};
char stringReverse[100]= {0};
int temp = 0;
int firstLetter = 0;
int lastLetter = 0;
printf("Please enter a word or a sentence: ");
fgets(string, 100, stdin);
strcpy(stringReverse , string); // This function copies the scanned array to a new array called "stringReverse"
firstLetter = 0;
lastLetter = strlen(string) - 1; //because in array, the last cell is NULL
// This while reverses the array and insert it to a new array called "stringReverse"
while(firstLetter < lastLetter)
{
temp = stringReverse[firstLetter];
stringReverse[firstLetter] = stringReverse[lastLetter];
stringReverse[lastLetter] = temp;
firstLetter++;
lastLetter--;
}
printf("%s %s", stringReverse, string);
if ( strcmp(stringReverse , string) == 0)
{
printf("1");
}
else
{
printf("0");
}
}
Lets say we implement a simple fun to do that
int check_palindrome (const char *s) {
int i,j;
for (i=0,j=strlen(s)-1 ; i<j ; ++i, --j) {
if (s[i] != s[j]) return 0; // Not palindrome
}
return 1; //Palindrome
}
I think this is far more simpler ;)
For the code posted in question:
Be aware of fgets(). It stops in the first '\n' or EOF and keeps the '\n' character.
So if you give radar for ex, the result string will be "radar\n", which doesn't match with "\nradar"
The Problem:
Let's say you enter the string RACECAR as input for your program and press enter, this puts a newline character or a '\n' in your buffer stream and this is also read as part of your string by fgets, and so your program effectively ends up checking if RACECAR\n is a palindrome, which it is not.
The Solution:
After you initialize lastLetter to strlen(string) - 1 check if the last character in your string (or the character at the lastLetter index is the newline character (\n) and if so, decrease lastLetter by one so that your program checks if the rest of your string (RACECAR) is a palindrome.
lastLetter = strlen(string) - 1; //because in array, the last cell is NULL
// Add these 2 lines to your code
// Checks if the last character of the string read by fgets is newline
if (string[lastLetter] == '\n')
lastLetter--;
fgets adds a '\n' at the end.
So if the user entered "aba", string contains "aba\n".
reverseString contains "\naba".
So it doesn't match.
After the fgets, add this code
int l = strlen(string) - 1;
string[l] = 0;
This will strip out the '\n' at the end before copying it to reverseString.
That aside, you can do this whole program inplace without the need of a second buffer or strcpy or strlen calls.
You have several issues in your code:
first you forgot the last closing brace };
then you forgot to remove the trailing \n (or maybe also \r under Windows) in string;
you don't need to revert the string into a new string; a one-pass check is enough:
Here is a working code:
#include <stdio.h>
#include <string.h>
int main()
{
char string[100]= {0};
int temp = 0;
int firstLetter = 0;
int lastLetter = 0;
printf("Please enter a word or a sentence: ");
fgets(string, 100, stdin);
firstLetter = 0;
lastLetter = strlen(string) - 1; //because in array, the last cell is NULL
while ((string[lastLetter]=='\n')||(string[lastLetter]=='\r')) {
lastLetter--;
}
// This while reverses the array and insert it to a new array called "stringReverse"
temp = 1;
while(firstLetter < lastLetter)
{
if (string[firstLetter] != string[lastLetter]) {
temp = 0;
break;
}
firstLetter++;
lastLetter--;
}
if ( temp )
{
printf("1");
}
else
{
printf("0");
}
}
You can do it by this simpleway also.
#include <stdio.h>
#include <string.h>
int main()
{
char string[10], revString[10];
printf("Enter string for reversing it...\n");
scanf("%s", string);
int stringLength = strlen(string);
for(int i = 0; string[i] != '\0'; i++, stringLength--)
{
revString[i] = string[stringLength - 1];
}
if(strcmp(string, revString) == 0)
printf("Given string is pelindrom\n");
else
printf("Given string is not pelindrom\n");
}
#include<stdio.h>
#include<string.h>`enter code here`
void fun(char *a);
int main ()
{
char p[100];
char *s=p;
printf("enter the string");
scanf("%[^\n]",s);
fun(s);
}
void fun(char *a)
{
if(*a && *a!='\n')
{
fun(a+1);
putchar(*a);
}
}
// use this approach better time complexity and easier work hope this helps
#include <stdio.h>
#define MAX 1000
void any(char s1[], char s2[], char s3[]);
int main()
{
char string1[MAX], string2[MAX], string3[MAX];
printf("Jepni stringen 1\n");
scanf("%s", &string1); //saving string 1
printf("Jepni stringen 2\n");
scanf("%s", &string2); //saving string 2
any(string1, string2, string3); /*comparing characters from string 2 to string 1 and saving the places where they are equal on third string */
printf("%d", string3[0]); //printing the first character of the third string
return 0;
}
void any(char s1[], char s2[], char s3[])
{
int i, j, k;
k = 0;
for (j = 0; j != '\0'; j++) {
for (i = 0; i != '\0'; i++) {
if (s1[i] == s2[j]) {
s3[k] = i;
j++;
k++;
}
}
}
}
I am trying to create a c program that scans 2 strings (saves them on string 1 and 2) than the program using function any will see character by character if the string 2 characters are equal with the string 1,If they are it will give the first position where they are found.In case nothing is found it displays a -1.The program asks for the first character that is equal,thats why i am printing always the first character from string 3.The program isnt working cuz it always prints -1.
Example if i put on string 1 dad
and on string 2 the character d
dhe program should display the 0 position
if i put dad on string 1
and on string 2 i put a
it should display 1.
First of all the for loop doesn't begin because the condition is that j shall be different from zero.In ASCII '\0' is zero (maybe not on all machines), so you rather want to check that s2[j] is different from zero.Same for i.
Another thing is that s3 is an array of chars, so putting s3[k]=i doesn't make it equal to '1' or '2', but to 1 or 2 (ASCII values), so you should add 48 to i (good till '9', then you'll have two digits), or print the string character per character, with the %d format specifier:
void any(char s1[], char s2[], char s3[])
{
int i, j, k;
k = 0;
for (j = 0; s2[j] != '\0'; j++) {
for (i = 0; s1[i] != '\0'; i++) {
if (s1[i] == s2[j]) {
s3[k] = i;
j++;
k++;
}
}
}
}
Maybe I'm missing some other error, try the code and run it to see if it's right (also remember to use the %d specifier to print s3).