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I have been trying to look for a reason why the following code is failing, and I couldn't find one. So please, excuse my ignorance and let me know what's happening here.

#include<stdio.h>
int main(void){
char* p="Hi, this is not going to work";
scanf("%s",p);
return 0;
}

As far as I understood, I created a pointer p to a contiguous area in the memory of the size 29 + 1(for the \0). Why can't I use scanf to change the contents of that?

P.S Please correct me If I said something wrong about char*.

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4 Answers

up vote 12 down vote accepted
char* p="Hi, this is not going to work";

this does not allocate memory for you to write

this creates a String Literal which results inUndefined Behaviour every time you try to change its contents.

to use p as a buffer for your scanf do something like char * p = malloc(sizeof(char) * 128); // 128 is an Example

OR

you could as well do:

char p[]="Hi, this is not going to work";

Which I guess is what you really wanted to do.

Keep in mind that this can still end up being UB because scanf() does not check whether the place you are using is indeed valid writable memory.

remember :

char * p is a String Literal and should not be modified

char p[] = "..." allocates enough memory to hold the String inside the "..." and may be changed (its contents I mean).

Edit :

A nice trick to avoid UB is

char * p = malloc(sizeof(char) * 128);
scanf("%126s",s);
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If that's the case, then how do I read a string with unknown length? –  xci13 Feb 4 '11 at 16:36
    
@Adel, made a small Edit, look last line –  Muggen Feb 4 '11 at 16:40
1  
To add, declaring a non-const pointer char *p="abc"; to a string literal is bad practice. When using immutable string literals, declare them as const char *. Then the compiler will inform you, should you accidentally pass that pointer to a function expecting a non-const pointer argument. Search for "const correctness" to read about the concept, and why it is important. –  mizo Feb 4 '11 at 17:09
1  
@Adel, by doing p = "lol" you did not edit the string literal pointed to by p. You changed the pointer p to point to another string literal. –  mizo Feb 4 '11 at 17:13
1  
@Muggen, indeed, if they wish to prohibit changes to the pointer's address value. This isn't obligatory, though, like having a plain char * ever pointing to a string literal is a no-no in my book. –  mizo Feb 4 '11 at 17:27
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p points to a constant literal, which may in fact reside in a read-only memory area (implementation dependent). At any rate, trying to overwrite that is undefined behaviour. I.e. it might result in nothing, or an immediate crash, or a hidden memory corruption which causes mysterious problems much later. Don't ever do that.

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@Downvoter, care to explain? –  Péter Török Feb 4 '11 at 16:38
    
@Peter, I didn't downvote but dont see a reason as to why -1 so I +1 –  Muggen Feb 4 '11 at 16:41
    
I just removed my down vote. I saw some other explanation earlier. I guess you edited this. –  user210504 Feb 4 '11 at 16:41
    
Note that changing the declaration to char p[] = "Hi, this is not going to work"; does create a modifiable buffer that the OP can use. –  John Bode Feb 4 '11 at 16:42
    
@Muggen, very kind of you :-) Now that the downvote is removed, feel free to remove your compensating upvote, as your answer is much better (it deserves the top spot so +1 from me) –  Péter Török Feb 4 '11 at 16:46
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It is crashing because memory has not been allocated for p. Allocate memory for p and it should be ok. What you have is a constant memory area pointing to by p. When you attempt to write something in this data segment, the runtime environment will raise a trap which will lead to a crash.

Hope this answers your question

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scanf() parses data entered from stdin (normally, the keyboard). I think you want sscanf().

However, the purpose of scanf() is to part a string with predefined escape sequences, which your test string doesn't have. So that makes it a little unclear exactly what you are trying to do.

Note that sscanf() takes an additional argument as the first argument, which specifies the string being parsed.

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I think the question is why scanf is not working. Answer by Muggen explain that –  user210504 Feb 4 '11 at 16:37
    
I see several things wrong with the OP's code, so it's a little hard to know exactly what he was trying to accomplish. –  Jonathan Wood Feb 4 '11 at 16:40
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