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I wrote these instructions in a test program:

char *p;

then

p="gibberish";

went then to print p as follows

printf("%s\n", p);

and I got "gibberish" printed which surprised me as p address was not initialised; I was expecting an error when running the code but I have not...any explanation, please?

Also when using a struct with a pointer as one its fields, e.g.

struct dummy
{
int *m;
....
}

How can I dereference m in a dummy variable dv? I have tried dv.m and it did work although I was expecting dv.(*m); any explanation please?

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This should have been two questions, each of which would have been off topic, because any textbook on C answers them. –  Guntram Blohm Dec 8 '13 at 8:12
    
To access the pointer in the structure, you would use *dv.m or dv.m[0] or something similar; dv.m is simply the pointer. After a . or ->, you always have a member name (a simple identifier, though it could be enclosed in parentheses if the coder was perverse enough and not kept under control by code reviewers). –  Jonathan Leffler Dec 8 '13 at 8:18
2  
"and I got "gibberish" printed which surprised me as p address was not initialised" - huh... what do you think p = "gibberish"; does? –  user529758 Dec 8 '13 at 8:22

3 Answers 3

For the first question, the line p="gibberish" initializes p to point at the first character of the string "gibberish".

For the second question, assuming that dv is of type struct dummy and not of type struct dummy *, you want *(dv.m) to deference the pointer.

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thanks , i c cuz the constant "gibberish" is a char* itself –  user2005893 Dec 8 '13 at 10:19

This is also initialization:

int main()
{
    int t=3;
    int* p;
    p=&t; /* intitialization */
}
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pointers are variables as well,

and "gibberish" is a literal string (study about it), what you are doing right here

p="gibberish";

is taking the address of that literal string and assigning to p pointer

*the second question

pointers where made to point something

struct dummy dv;
int i =2;
dv.m=&i;
printf("%i",*dv.m);

first, you have to create something to point to, then assign it to the pointer

    dv.m=&i;

and then derreferencing the pointer printf("%i",*dv.m);

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