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i have some doubts regarding character pointers:

1.when we write the declaration:

char *t;

do we need to do

t=new char[6];
strcpy(t,"terry");

or directly

 t="terry";

will do..

2.Also if we follow do

char *t;
t=new char[6];
t="terry";

will t now point to the allocated memory from heap or the first letter of terry(if we look from the point of view of manipulation of pointers).

3.if i write:

char *t;

and then i have to initialise 't' to '\0'(but t should point to an allocated memory space)..how do i do this because my mvc 2010 compiler doesnt allow...

t=new char[5](0);//0 is the ascii value of '\0'
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1  
Just don't use char*, use std::string instead (std::vector<char> if you're feeling really rebellious). –  Cat Plus Plus Sep 21 '11 at 13:58
    
Why are you writing code like this in C++? –  Lightness Races in Orbit Sep 21 '11 at 14:03
    
BTW lol at //0 is the ascii value of '\0' :) –  Lightness Races in Orbit Sep 21 '11 at 14:03
    
@CatPlusPlus...that just means avoiding the problems rather than solving them –  avinash Sep 21 '11 at 15:51
    
@TomalakGeret'kal...just wanted to make it clear why i used 0 –  avinash Sep 21 '11 at 15:52

4 Answers 4

You're tagged C++. Use string:

std::string t("terry"); and let the language take care of the details for you.

  1. Either way will do, depending on your needs. If you need to change the string later you have to allocate the memory, and when you allocate always remember to delete it later.

  2. The first letter of the literal.

  3. t=new char[5]; t[0] = 0;

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  1. You can do the latter option, but the pointer will most likely point to a read-only memory region, so you should only do that with a const char *.
  2. In this case, t will ultimately point to a read-only memory region, leaking those 6 bytes.
  3. You can use the memset() function to set a whole array to 0.

But yes, use std::string instead and stop thinking about this.

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1. If the string (e.g. "terry") is not going to get changed anywhere in you program, you can surely do

char* t = "terry";

and forget about the memory allocated for the string as it will be freed on its own. However, a better programming practice for constant strings would be declaring t as const char* like this:

const char* t = "terry";

But if it is going to get changed, then it's either

char* t = new char[6];
strcpy(t, "terry");

or

char t[6];
strcpy(t, "terry");

In the first case, where new operator is used, you will have to free the memory allocated with new after you no longer need the string:

delete[] t;

In the second case, the memory underlying the sting will be freed automatically when t leaves the C++ scope (curly braces) it was declared in (but if t is a member of an object, the memory will be freed only when the object is destructed).

2. After

char* t;
t = new char[6];
t = "terry";

t would really point at "terry", but the pointer/address you would need to free the memory allocated with new is lost for good.

3. String null terminators ('\0') are just like other characters: they need reside somewhere in the memory. You were wise enough to allocate 6 bytes for "terry", which is 5 characters in length: after

char* t = new char[6];
strcpy(t, "terry");

the 6th byte of the memory block pointed by t holds the null terminator. But

char* t;

does not allocate any memory apart from the t pointer. So, if you want a string to contain only a null terminator (be zero-length), you could do it in this way:

char* t = new char[1];
t[0] = '\0';
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@desmond...but we do write int *y=new int(7).....to initialise the the address pointed by y...cant we do that in case of an array –  avinash Sep 21 '11 at 15:56
    
Yes, if not counting the char* t = "terry" way, you can combine memory allocation with its initialization in one C++ statement if you use memory from the stack (the char t[6] way) and not memory dynamically allocated with the new operator. Say you need an array of 4 characters all being nulls ('\0'), then you write: char t[4] = {'\0', '\0', '\0', '\0'}; –  Desmond Hume Sep 21 '11 at 16:19
  1. You shoudn't do the second, because t is char*, and so t="terry" is deprecated (and your compiler might give this warning indicating the assignment statement.)

  2. The allocated memory is leaked, since you didn't use it, and t points to terry. Again, this is deprecated (and your compiler might give this warning indicating the assignment statement).

  3. Just do : t = new char[5](); It's default initialized now.

As the best practice, in general is, std::string. So use it:

std::string t = "terry";

No memory leak, no deprecated feature, no warning. No tension.

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@nawaz...i tried this... it doesnt work....error says for array initialisation curly braces are needed but even if i do {'\0'} another error crops up saying missing ';' before { and }.. –  avinash Sep 21 '11 at 16:06
    
@avinash: Ohh.. I was wrong. It's actually t = new char[5]();. –  Nawaz Sep 21 '11 at 16:07
    
@nawaz...but this is simply a getaway for the '\0' case...what if i wanted to initialise it to 'n' at all places. –  avinash Sep 21 '11 at 17:46

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