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Line 9 of the below code generates undefined behavior. Is this due to the fact that title1[] is outside of main() and is global? Or is it because something else that I'm missing?

1. char title1[]="The Name of the Rose";
2. Book book1={title1,900,0};
3. int main(){
4.   Book book2={"Foucault's Pendulum",1000,0};
5.   Book* book3=(Book*)malloc(sizeof(Book));
6.   *book3=book2;
7.   book1.next=&book2;
8.   book2.next=book3;
9.   book1.title[0]='B';
10.  book2.title[0]='A';
11.  {
12.    Book list[2];
13.    list[0]=book1;
14.    list[1]=book2;
15.    list[1].next->next=&book2;
16.    {
17.      Book* p=&list[0];
18.      while (p!=0) {
19.        p=p->next;
20.    }
21.  }
22. return 0;
23.}

EDIT:

Added the Book definition:

‫;‪struct Book‬‬
‪typedef struct Book‬ {
‫;‪  char* title‬‬
  int pages;‬‬
‫;‪  struct Book* next‬‬
‫;‪} Book‬‬
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1  
Could you add the definition of the Book class? –  Philip Kendall Feb 1 '13 at 16:04
5  
It's undefined because you're modifying a string literal constant (not a copy of it). –  Jan Dvorak Feb 1 '13 at 16:04
2  
@JanDvorak Are you sure? book1.title is a reference to the character array title1, so unless the title element of the Book class is const-qualified (in which case, the code should not compile), there shouldn't be a problem. Now, line 10 and assigning to book2.title which is a reference to a string literal; that would be undefined behaviour. And this is C; C does not have 'constructors'. –  Jonathan Leffler Feb 1 '13 at 16:06
1  
I'm fairly sure that the line with the UB is actually line 10, which modifies the string in the second book, not the first entry - which is perfectly allowed to do. Probably just a counting error on line numbers, I expect. –  Mats Petersson Feb 1 '13 at 16:17
1  
How do you know that line 9 gives undefined behavior? –  David Grayson Feb 1 '13 at 16:19

3 Answers 3

up vote 5 down vote accepted

No, line 9 is not undefined behavior. It writes to this array:

char title1[]="The Name of the Rose";

which is not a string literal (but initialized by one). Such a plain array can be modified to your liking. It would have been different if you would have declared it like this:

char *title1="The Name of the Rose";

The undefined behavior is in line 10, here you are writing into a string literal, which is not allowed.

BTW, when asking a question here, please cook it down to a minimal example that shows your point. Most of the code you posted is completely useless for your question.

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So it's fine to change elements of an array that resides in the global code? Isn't this memory read only? –  Tom Feb 1 '13 at 16:20
    
Why should it be read-only? It would only be read-only if you'd declare it with a const-qualifier. String literals are different from that, they aren't objects that you are supposed to change. –  Jens Gustedt Feb 1 '13 at 16:22
    
I think one should even say "they are objects you are not supposed to change". –  Daniel Fischer Feb 1 '13 at 16:27
    
@Daniel, yes, should have said that. –  Jens Gustedt Feb 1 '13 at 17:07

You are trying to modify a string literal in line 10.

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char title1[] is an array so i'm not trying to modify a string literal –  Tom Feb 1 '13 at 16:13
    
@Tom It's line 10 that invokes UB through attempting to modify a string literal, as Jonathan Leffler pointed out. –  Daniel Fischer Feb 1 '13 at 16:15

The error occurs on line 10, because a string literal is a constant and therefore read only. Any write on it will cause an error.

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