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The exercise requests a tail program with argc and argv[].It will have a specific number of lines.The user will put a N argument and than the program will print the last n lines.When I call this program from cmd as tail 3 program name the program opens but it doesnt print anything.Here is the code.

#include <stdio.h>
int main (int argc,char *argv[])
{
    char *linja[]={"Mjeshter Ciko", "Sisteme Elektronike" , "Bisha" , "Super Mario Bros" , "Pallim Gjoni"};
    int i=0;
    if (argc!=3)
    {
               printf("Your Request can't be completed\n");
               printf("The format is Tail X Program Name\n");
               return -1;
               }
    if(*argv[1] <= 4)
    {
                printf("The Last Lines Are: \n");
                for(i=4 ;*argv[1]>=0; i--,*argv[1]--)
                {
                        printf("%s\n",linja[i]);
                        }
                        }
                        return 0;
                        }
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How have you debugged it, thus far? –  StoryTeller Mar 14 '13 at 14:25

2 Answers 2

up vote 4 down vote accepted

The expression *argv[1] <= 4 will be false. argv[1] is a string and *argv[1] is the first character of that string. You have to convert the textual representation of the number to a proper number.

Try instead strtol(argv[1], NULL, 10) <= 4.

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Thanks for you answer.As you answered first I gave you the correct one. –  Lind Mar 14 '13 at 14:39

You have to convert the string into an integer before comparing. So the line:

if(*argv[1] <= 4)

is comparing whether the address of first string is less than 4 which is not what you want.

Convert the string into integer using strtol:

char *endptr;
    long N = strtol(argv[1], &endptr, 10);
    /* error checking for conversion failure*/

and then compare:

if(N <= 4)

Same problem in your for loop condition.

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if(*argv[1] <= 4) is not invalid, it just doesn't do what OP expects it to do. –  user529758 Mar 14 '13 at 14:28
    
Too Few arguments in your function –  Lind Mar 14 '13 at 14:34
    
@Lind Yes, you have to pass the base and a pointer to char**. –  Blue Moon Mar 14 '13 at 14:36
    
I gave you a +1 vote.Your answer is correct however I cant choose 2 correct answers.Anyways Thanks...... –  Lind Mar 14 '13 at 14:39

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