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I have problem understanding the code below.

  1. What value index=strlen(strs[0]) gets?

  2. char *a= malloc (sizeof(char)*(index+1)) Is this the standard way to allocate array for char array?

  3. What does strs[i][j] represent?

This is the code I found on leetcode. Just trying to understand the code. (code from sanghi user on leetcode)

#include<string.h>
char* longestCommonPrefix(char** strs, int strsSize) 
{
    int i=0; int j=0;int index;int tempindex=0;
    if(strsSize<1)
    return "";
    index=strlen(strs[0]);
    char *a;
    a= malloc(sizeof(char)*(index+1));
    strcpy(a,strs[0]);
    for(i=1;i<strsSize;i++)
    {   tempindex=0;
        for(j=0;j<index;j++)
        { 
            if(a[j]==strs[i][j])
            tempindex++;
            else
            {a[j]='\0';
             break;
            }
        } 
          if (tempindex==0)return ("");
          if(tempindex<index)index=tempindex;

    }
    return a;

}

Expected results can be found on https://leetcode.com/problems/longest-common-prefix/

  • Run it in a debugger and examine the values you're interested in. – TomServo Aug 14 at 13:49
  • 5
    It seems to me like you need to invest time and money into some books to read. Learning from online judge/competition sites is not something I would recommend (I would quite strongly recommend just about anything else than such sites).. – Some programmer dude Aug 14 at 13:51
0

strs is an array of strings. strsSize is the number of strings in the array.

index = strlen(strs[0]);

This simply gets the length of strs[0], the first string in the array.

a = malloc(sizeof(char)*index+1);

This will allocate enough memory to store a string of the same size. I say enough memory because each string actually has length + 1 characters. The last character is \0, a null terminator. You always have to make sure to terminate your strings or else a bunch of weird buffer overflow stuff can happen.

str[i][j]

This accesses the jth character in the ith string in the array.

  • "strs is an array of strings" No, it's a pointer to a pointer to char, a char**. Pointers are not arrays, nor 1D, nor 2D, nor .... You are simplifying too much. – alk Aug 14 at 16:35
-1

For starters the program is bad and invalid.:)

For example the size of the one dimensional array first element of which is pointed to by the parameter strs shall have the type size_t instead of int.

And all other variables that deal with indices also shall have the type size_t as for example

size_t index = strlen( strs[0] );

because the standard C function strlen has the return type size_t.

The source array is not changed in the function so the first parameter shall be declared with the qualifier const.

That is the function declaration shall look like

char * longestCommonPrefix( const char** strs, size_t strsSize); 

Farther the elements (strings) of the array can have different lengths, So this loop

for(j=0;j<index;j++)

has undefined behavior because some element (string) of the array can have length less than the value of the variable index.

In fact there is no need to calculate lengths of the elements of the array. The loop can use the condition

for( j=0; j < index && strs[i][j] != '\0'; j++)

And moreover the function has a memory leak due to this return sub-statement in the if statement

a= malloc(sizeof(char)*(index+1));
//...
if (tempindex==0)return ("");

That is the allocated memory pointed to by the pointer a will not released.

What value index=strlen(strs[0]) gets?

index gets the length of the string stored in the first element of the array of strings.

For example if you have an array

char *strs[] = { "Hello", "Bye", "Good Morning" };

then index is set to the length of the string "Hello".

char a= malloc (sizeof(char)(index+1)) Is this the standard way to allocate array for char array?

Yes in this declaration there is allocated a memory large enough to store the string (including its terminating zero) of the first element of the array pointed to by strs.

What does strs[i][j] represent?

strs[i][j] access j-th character of the i-th element of the array pointed to by strs.

For example for the declaration above strs[0][0] is equal to 'H', strs[0][1] is equal to 'e', strs[1][0] is equal to 'B' and so on.

P.S. A better approach to define the function is the following as it is shown in the demonstrative program.

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

size_t longestCommonPrefix( const char **strs, size_t strsSize )
{
    size_t n = 0;

    if ( strsSize != 0 )
    {
        n = strlen( *strs );

        for ( size_t i = 1; n != 0 && i < strsSize; i++ )
        {
            size_t j = 0;

            while ( j < n && strs[i][j] == strs[i-1][j] ) j++;

            if ( j < n ) n = j;
        }
    }

    return n;
}

int main(void) 
{
    char * strs[] = { "0123456789", "012345", "0123" };

    size_t n = longestCommonPrefix( ( const char ** )strs, sizeof( strs ) / sizeof( *strs ) );

    char *p = NULL;

    if ( n != 0 )
    {
        p = malloc( n + 1 );
        memcpy( p, strs[0], n );
        p[n] = '\0';

        printf( "The longest common prefix is \"%s\"\n", p );
    }

    free( p );

    return 0;
}

The program output is

The longest common prefix is "0123"

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