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#include<stdio.h>
#include<string.h>
int main(int argc,char *argv[])
{
    char string[]="#";
    printf("%s\n",argv[1]);
    printf("%s\n",argv[2]);
    printf("%s\n",argv[3]);
    strcat(argv[1],string);
    printf("argv[1] is %s\n",argv[1]);
    printf("argv[2] is %s\n",argv[2]);
    printf("argv[3] is %s\n",argv[3]);
    return 0;
}

when I use strcat() to add something to the end of the argv[1],argv[2] will be lost( strlen(argv[2]) changes to 0 after use strcat ).But argv[3] has no change .Why???

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What is this code doing o.O' –  Thomas Apr 10 '13 at 2:31
    
possibly duplicate of stackoverflow.com/questions/963493/… –  Arun Apr 10 '13 at 2:35
    
@Thomas This code is just to solve my question with argv[].It can do nothing meaningful. –  dsfa24 Apr 10 '13 at 3:18

3 Answers 3

up vote 2 down vote accepted

You cannot append stuff directly to argv[] because each argv[] is allocated serialized and to a space in memory that can only hold its original size.

To understand what is happening, imagine argv is something like this:

char buffer[] = "./program\0one\0two\0three\0";
char *argv[4] = { &buffer[0], &buffer[10], &buffer[14], &buffer[18] };

So as you can see, if you write something after "one" you will overwrite "two" and break the whole thing because they are serialized in memory.

To workaround this, you have to copy each argv[] to a bigger buffer where you can safely make the modifications. For instance:

char buf[1024];
strcpy(buf, argv[1]);
strcat(buf, string);
printf("argv[1] is %s\n", buf);
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Thank you for your help! –  dsfa24 Apr 13 '13 at 2:25

You aren't supposed to modify argv[] = the effects are undefined

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I think so too, but is there any reference? –  Arun Apr 10 '13 at 2:31
    
Actually, you can modify argv[whatever] (the pointer). Modifying what the pointer points to is not so kosher. –  paxdiablo Apr 10 '13 at 2:33
    
@paxdiablo: So, is it like char const * argv[]? –  Arun Apr 10 '13 at 2:34
    
No it's not necessarily const - the standard doesn't say what it has to be. Just that the memory isn't yours so you shouldn't change it. –  Martin Beckett Apr 10 '13 at 2:45

Remember that "strings" in C are zero terminated arrays of characters. Suppose the original four arguments were "one", "two", "three" and "four"; then these four arguments are stored in memory as

one\0two\0three\0four\0

when you appended # after the argv[1] (strcat will add a \0 also), the memory content becomes:

one\0two#\0hree\0four\0

you can now verify that argv[2] points to the \0 char, hence it is a empty string. argv[3] still points correctly, and it remains intact.

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