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I have been struggling to understand some pieces of this code. It asks to enter some strings, will count the vowels and display the result. It is some definitions that I don't understand, the mechanics I do.

In the definitions inside main(). I dont understand what for an argument this '(cad)' is in the entrada function. One line above it is defined an array of 3 pointers to char, namely char *cad[N] if I correctly believe. I would say my problem is everything in the Main function, how the arguments make sense inside the parentheses for the functions. After that I understand alright.

# include<stdio.h>
# include<stdlib.h>
# include<string.h>
# include<ctype.h>
# define N 3


// Function Prototypes

void salida(char *[], int*);
void entrada(char *[]);
int vocales(char *);

int main ()
{
    char *cad[N];  // declaring an array of 3 pointers to char
    int j, voc[N]; // declaring ints and an array of ints
    entrada (cad);// Function to read in strings of characters. 
    // count how many vowels per line
    for (j = 0; j<N; j++)
    voc[j] = vocales(cad[j]); // it gets the string and sends it to function vocales to count how many vowels. Returns number to array voc[j]
    salida (cad, voc);
}

// Function to read N characters of a string
void entrada(char *cd[] ){
    char B[121]; // it just creates an array long enough to hold a line of text
    int j, tam;

    printf("Enter %d strings of text\n", N );

    for (j= 0; j < N; j++){
        printf ("Cadena[%d]:", j + 1);
        gets(B);
        tam = (strlen(B)+1)* sizeof(char); // it counts the number of characters in one line
        cd[j] = (char *)malloc (tam); // it allocates dynamically for every line and array index enough space to accommodate that line
        strcpy(cd[j], B); // copies the line entered into the array having above previously reserved enough space for that array index
    } // so here it has created 3 inputs for each array index and has filled them with the string. Next will be to get the vowels out of it

}

// Now counting the number of vowels in a line
int vocales(char *c){
    int k, j;

    for(j= k= 0; j<strlen(c); j++)
        switch (tolower (*(c+j)))
        {
            case 'a':
            case 'e':
            case 'i':
            case 'o':
            case 'u':
              k++;
              break;
        }
    return k;
}

// function to print the number of vowels that each line has
void salida(char *cd[], int *v)
{
    int j;

    puts ("\n\t Displaying strings together with the number of characters");
    for (j = 0; j < N; j++)
    {
        printf("Cadena[%d]: %s has %d vowels \n", j+1, cd[j], v[j]);
    }
}
share|improve this question
    
If you use a debugger (e.g. gdb) you could ask it what is the type of some name, e.g. ptype cad or ptype salida – Basile Starynkevitch May 11 '12 at 18:13
    
You could consider using Linux, gdb works very well on it. But you should compile your source with warnings and debug information, e.g. gcc -Wall -g – Basile Starynkevitch May 11 '12 at 18:29
up vote 1 down vote accepted

cad is an array of pointers. It only has space for N pointers, not the actual string data. The entrada function reads N strings of text. For each of these it allocates some space with malloc and copies the string there. entrada sets the corresponding pointer in cad (which it sees as cd) to point to the allocated buffer.

When you pass an array as an argument, you are not passing a copy. Instead, the address of the first element is passed to the function. This is how entrada can modify the pointers in cad.

share|improve this answer
    
thank you, I wrote the comments myself in the code, and clearly char *cad[N] is an array of pointers, but then, the plain 'cad', also? as it is in parentheses as an argument to the function entrada. I understand the function entrada it is the confusion that causes me seeing char *cad[N] as an array of pointers but also cad being that. – iaintunderstand May 11 '12 at 19:02
    
@iaintunderstand: char *cad[N] is nothing. It declares cad to be an array of pointers. – Jens Gustedt May 11 '12 at 19:07
    
thank you, sorry for my problems with the syntax and declarations. I will remember this teaching. – iaintunderstand May 11 '12 at 19:11
    
char *cad[N]; is a declaration. The statement simply means "the name cad refers to an array of char *. Basically, you made an array and called it cad. From that point on you can use the name to refer to the array. Same with variables: int i; means "make a space to hold an int and call it i". – Greg Inozemtsev May 11 '12 at 19:34
    
Now another point that is a bit more tricky. The name cad is visible in the scope that it was declared in (so, in function main). If you declare something also called cad in another function it will refer to a different thing entirely. When you pass cad to entrada, cd is made to point to the same memory location as cad. – Greg Inozemtsev May 11 '12 at 19:40

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