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What will be the output of the program (myprog.c) given below if it is executed from the command line?

cmd> myprog friday tuesday sunday

/* myprog.c */ 
#include<stdio.h> 

int main(int argc, char *argv[]) 
{ printf("%c", *++argv[1]); return 0; }

I understand argv[1] will be friday and ++argv[1] means tuesday. I might be wrong. Either way, I don't seem to understand what will be the meaning of the whole expression.

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7  
@SteveCox argv[1] is friday, so isn't ++argv[1] riday, thus *++argv[1] r ? –  Quentin Aug 8 at 14:22
    
@Quentin Correct. –  Paul Roub Aug 8 at 14:23
    
yes the answer is r but I do not understand how. Doesn't ++argv mean next argument ? –  Kritika Jalan Aug 8 at 14:26
    
@Kritika Jalan You are thinking of *argv[++1] –  Igor Aug 8 at 14:30
1  
Since argv initially points to "myprog", ++argv would 'move' the argv pointer to point to "friday" (the C runtime will have set up an array of char pointers that has the "myprog" pointer in the first element). However, due to operator precedence rules, in the expression *++argv[1] the ++ operator is applied to argv[1] not argv. –  Michael Burr Aug 8 at 15:09

3 Answers 3

Following operator precedence rules, the expression is equivalent to *(++(argv[1])). In other words, argv[1] is evaluated first, which references the string "friday". Next, the ++ prefix increment changes the reference to the string "riday". Finally, the * dereference returns the character 'r'.

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------------------------------
| f | r | i | d | a | y | \0 |
------------------------------
 ^    ^
 |    |
 |    ++argv[1]
 |
 argv[1]

Ergo, *++argv[1] gives you the character ++argv[1] points to, which is 'r'. Demo.

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What will be the output of the program (myprog.c) given below if it is executed from the command line?

It is terribly hard to learn programming without access to a computer with a compiler on it. What did it output when you executed the program?

Anyway...

  • argv[0] is a pointer to a string containing the program name and the following arguments are pointers to the other command line parameters.
  • So argv[1] is a pointer pointing to the string "friday", or rather to the first element 'f'.
  • ++argv[1] increments this pointer by 1, making it point at 'r' instead. (Btw that code line is bad practice and poor programming style. Not only because it is hard to read, but also because it is generally a bad idea to alter the command line parameters.)
  • Taking the contents of the pointer should therefore give you 'r'.
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1  
The C99 standard does not guarantee that argv[1] is modifiable (it does guarantee that argv and argv[x][y] are modifiable). –  Matt McNabb Aug 11 at 8:45
    
@MattMcNabb No. The standard states that argv should be an array of non-constant pointers. So the pointer argv[1] will always be modifiable. The C standard actually explicitly states that they shall be modifiable, as shall their contents, C11 5.1.2.2.1/2: "The parameters argc and argv and the strings pointed to by the argv array shall be modifiable by the program, and retain their last-stored values between program startup and program termination." Same text can be found in C99. –  Lundin Aug 11 at 8:50
    
argv[1] is none of "The parameters argc and argv and the strings pointed to by the argv array" –  Matt McNabb Aug 11 at 8:52
    
@MattMcNabb But the pointer table is a local variable, which you can modify, as it was not declared as const. Otherwise the declaration would have been char* const argv[]. The statement in the standard about argv has to apply to the whole pointer table, or the standard wouldn't make any sense. –  Lundin Aug 11 at 8:54
    
"not being declared as const" is no guarantee of writability, e.g. string literals. argv[1] is not a local variable. argv is but it will point to something that may not be local to main. I don't see how you construe "the strings pointed to" as meaning "the pointers and the string pointed to". –  Matt McNabb Aug 11 at 9:01

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