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I'm reading a C program, and I have a question that I think may be related to type casting. Basically, the program will follow. I've commented in a few questions that pasted over from my clipboard. Don't worry about those so much as the question that immediately follows the code block.

/* I only need the out in in/out, right?  Or do I need in and out? */
#include<stdio.h> 

/* can someone explain the second argument?  A char is only supposed to be one
character so howcome it has square brackets after it, which indicate an array 
to me?  Also, what's with the asterisk? */
int main(int argc,char *argv[])
{
  int i;
/* Here %d is used, which I'm thinking might mean double */
  printf("Amount: %d\n",argc);
  if (argc > 0)
  {
    printf("Parameters:\n");
    for (i = 0;i < argc;i++)
/* Here %s is used, which I'm thinking might mean string */
      printf("%s\n",argv[i]);
  }
  return 0;
}

I'm not sure what the group of %-identified items is called, so I'm not sure where to find a reference of their meanings.

share|improve this question
    
@AndreyChernukha 1) Not everyone has the google fu, and you shouldn't assume that they do. If you do assume that, you're just excluding anyone who doesn't have it down and making a useless comment. You google it and post a link then vote to close if you have really think it's for google. 2) Google doesn't take %'s into its search patterns. –  Wolfpack'08 Dec 4 '12 at 14:23
    
@Wolfpack'08 cplusplus.com/reference/cstdio/printf –  UmNyobe Dec 4 '12 at 14:25
1  
@wolfpack'08 actually Andrey comment is very useful, if you google for "printf" and read the documentation you might find the answer.here's my first result from google, which is a great resource cplusplus.com/reference/cstdio/printf –  Moataz Elmasry Dec 4 '12 at 14:26
    
@MoatazElmasry Actually, it's not. After asking the question, I did a search for it on google. I can show you 3 other questions on StackOverflow with +5 or more that ask the same question, meaning it is a SO question. "In my opinion it isn't a SO question" is more appropriate because it's a community, not a dictatorship in which he's king. All that comment says is that he's so ridiculously stupid he actually believes someone wouldn't try google before trying SO. He's just trolling my question with a rating-whore, linch-mob comment that should get him banned, in reality, because it's abuse. –  Wolfpack'08 Dec 4 '12 at 14:30
1  
@MoatazElmasry Bite me. ;) My question just went famous. Told you it was important: the wording. It's essential. AndreChernukha should be banned. lol –  Wolfpack'08 Jan 22 at 1:46
show 8 more comments

closed as too localized by H2CO3, DrummerB, UmNyobe, Jens Gustedt, Mike Dec 4 '12 at 14:32

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9 Answers

up vote 1 down vote accepted

question 1)

the header file <stdio.h> is included in order to have reference to the input/output function from C library. The <stdio.h> contains only function references and not the definition of the functions. The <stdio.h> contains references to functions like:

  • printf (out) output to stdout (default: screen)

  • scanf (in) reading from stdin (default: keyboard)

question 2)

char *argv[] is an array of pointer. Each pointer element is pointing to a string. Each string is an argument from the command line.

Example: If your program name after compilation is "myprogram" and you calling your program as following:

$myprogram -t test1 test2

So the argv is an array containing 4 pointers to the following string

argv[0] is a pointer to the string "myprogram"

argv[1] is a pointer to the string "-t"

argv[2] is a pointer to the string "test1"

argv[3] is a pointer to the string "test2"

question 3)

%d means integer and not double. For double you can use %lf or %g

question 4)

%s means that you are printing string

example related to argv:

printf("argv[0] = %s\n", argv[0]);
printf("argv[1] = %s\n", argv[1]);
printf("argv[2] = %s\n", argv[2]);
printf("argv[3] = %s\n", argv[3]);

based on question 2 the above prints give the following output:

argv[0] = myprogram
argv[1] = -t
argv[2] = test1
argv[3] = test2
share|improve this answer
    
Wow, Mohammed. Amazing. Very well explained. –  Wolfpack'08 Dec 4 '12 at 14:36
add comment

Here %d is used, which I'm thinking might mean double

No, it's decimal (for the int type).

Here %s is used, which I'm thinking might mean string

Yes, more precisely a const char *.

I'm not sure what the group of %-identified items is called

Format specifiers.

share|improve this answer
    
@h2 are there only characters in C or something? –  Wolfpack'08 Dec 4 '12 at 14:26
2  
@Wolfpack'08 What do you mean by that? There are not only characters, there are functions, structs and operators as well, etc... I don't understand this question. –  user529758 Dec 4 '12 at 14:27
1  
@Wolfpack'08 - I think I see what you're asking, and yes, there are no "string" types in C. All "strings" are really character arrays. So "%s" is for a "string", which as H2CO3 stated is a const char * –  Mike Dec 4 '12 at 14:36
    
@mike Thanks for confirming my suspicion. Thank you –  Wolfpack'08 Dec 4 '12 at 14:38
add comment

%d is format specifier meaning an integer value(int).

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3  
...in decimal. –  Jens Dec 4 '12 at 14:24
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They are called format specifiers. The printf function takes an arbitrary number of arguments of undefined type. That's why you have to specify the type of the argument using a format specifier.

%dis the specifier for an integer value (int variable).

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They are d and s are conversion specifiers, %d and %s are format specifiers, and are part of the format string of the printf-family functions.

They aren't related to type casting or to other "core language" features, it's just a convention used by printf & co. to specify how the output has to be formatted. For more information, look into the documentation of printf. By the way, %d means int ("d" stays for "decimal", as opposed e.g. to "x" for "hexadecimal").

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%d is the format specifier for integers

Here's a link for some examples

share|improve this answer
    
maybe edit to say 'format specifiers'. Great link. –  Wolfpack'08 Dec 4 '12 at 14:25
    
Done! thank you –  Marc Dec 4 '12 at 14:28
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The * means pointer, which is how you pass an array. As for the c string format specifiers, you are correct about string. %d means decimal.

share|improve this answer
    
Thanks. That's really useful. I learned a little about pointers in the last book I read on C, but it didn't cover them as well as this book is supposed to. Wish me luck, man. –  Wolfpack'08 Dec 4 '12 at 14:24
add comment

These are conversion specifications for the printf family of functions. A %d specifies that at this place the next argument shall appear formatted as a decimal integer.

Your printf manual page likely lists all other specifiers, such as %s for a string, %f for floats etc. Conversion specifications may also specify a precision and width separated by a dot, as in %5.2d. There are many more rules for such specifications; this is only the tip of the iceberg :-)

Any introductory text to the C programming language (like Kernighan, Ritchie, "The C Programming Language") will answer your very basic questions about char *argv[].

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Writing this line code

pringf("Amount: %d\n",argc);

means that where you specify %d prints wait for a decimal!

The complete documentation is here

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