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In the following C++ program:

#include <string>
using namespace std;

int main()
{
    string s = "small";
    s = "bigger";
}

is it more correct to say that the variable s has a fixed size or that the variable s varies in size?

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You have a good assortment of answers, but I'm worried about what you will do with the information... :) Are you just curious, or what problem are you /really/ trying to solve? –  Kim Gräsman Sep 29 '09 at 10:49
    
I really don't get what are you asking.... Stl string is a container, so you probably would also want to know if vector<char> has a fixed size or varies in size ?!?!? So probably for your question "s" is fixed size, but it's "content" isn't. –  João Augusto Sep 29 '09 at 11:33

7 Answers 7

up vote 3 down vote accepted

It depends on what you mean by "size".

The static size of s (as returned by sizeof(s)) will be the same.

However, the size occupied on the heap will vary between the two cases.

What do you want to do with the information?

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Right, s is not on the heap. There must be something in s that points to stuff on the heap, but that doesn't affect the size of s - correct? –  Tarquila Sep 29 '09 at 10:39
    
Nope, s is always the same size (per sizeof) -- it contains a pointer to the "stuff on the heap" but that pointer is always the same size. –  Kim Gräsman Sep 29 '09 at 10:44
    
@Tarquila: That is correct. The object itself is always the same type. But it contains one or more pointers to dynamically allocated data (on the heap), which may be reallocated to change the size. –  jalf Sep 29 '09 at 11:07
    
@Tarquila: I would say that Kim's answer is fine except for that "It depends". I don't think it does. "s" (which is a std::string) is of a fixed size. However it manages / references / points to an array of a variable size, but that no more makes "s" variable size than it makes an old fashioned char* pointer of variable size. –  AAT Sep 29 '09 at 15:50
    
By "It depends" I meant, "It depends on what you mean" -- I'll edit the post to reflect that. –  Kim Gräsman Sep 29 '09 at 19:42

i'll say yes and no. s will be the same string instance but it's internal buffer (which is preallocated depending on your STL implementation) will contain a copy of the constant string you wanted to affect to it. Should the constant string (or any other char* or string) have a bigger size than the internal preallocated buffer of s, s buffer will be reallocated depending on string buffer reallocation algorithm implemented in your STL implmentation.

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This is going to lead to a dangerous discussion because the concept of "size" is not well defined in your question.

The size of a class s is known at compile time, it's simply the sum of the sizes of it's members + whatever extra information needs to be kept for classes (I'll admit I don't know all the details) The important thing to get out of this, however is the sizeof(s) will NOT change between assignments.

HOWEVER, the memory footprint of s can change during runtime through the use of heap allocations. So as you assign the bigger string to s, it's memory footprint will increase because it will probably need more space allocated on the heap. You should probably try and specify what you want.

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I said the size of the variable s - that's pretty clear I think. –  Tarquila Sep 29 '09 at 10:45
2  
Well the size of the varaible s on the stack is going to be constant. Assigning new values to it's fields aren't going to cause any change in size. HOWEVER, s most likely has internal buffers which may or may not be references to other pieces of memory. This may or may not be on the stack. It's not clear if you're asking for the space s takes up on the stack, or the total amount of space s will take up in your program's memory. –  Falaina Sep 29 '09 at 10:49
    
I think s will cause extra memory to be taken up, but that doesn't mean that s itself is taking it up. –  Tarquila Sep 29 '09 at 10:56
    
@Tarquila: If s isn't taking it up, then what is? –  Bill Sep 29 '09 at 11:43
    
The objects which the internals of s point at. –  Tarquila Sep 29 '09 at 12:34

The std::string variable never changes its size. It just refers to a different piece of memory with a different size and different data.

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Neither, exactly. The variable s is referring to a string object.

#include <string>
using namespace std;

int main()
{
    string s = "small"; //s is assigned a reference to a new string object containing "small" 
    s = "bigger"; //s is modified using an overloaded operator
}

Edit, corrected some details and clarified point

See: http://www.cplusplus.com/reference/string/string/ and in particular http://www.cplusplus.com/reference/string/string/operator=/

The assignment results in the original content being dropped and the content of the right side of the operation being copied into the object. similar to doing s.assign("bigger"), but assign has a broader range of acceptable parameters.

To get to your original question, the contents of the object s can have variable size. See http://www.cplusplus.com/reference/string/string/resize/ for more details on this.

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If s contains a reference, then it's fixed size, right? –  Tarquila Sep 29 '09 at 10:36
    
I don't think I entirely understand your answer. The s = "bigger"; statement does not create a new std::string object in C++, it only reallocates s's internal buffers and copies the new value into them. What did you mean? –  Kim Gräsman Sep 29 '09 at 10:38
    
OK, after your additional information, I can say that this is just not true. -1. –  Kim Gräsman Sep 29 '09 at 10:39
    
@Kim: The reallocation may yield an object of different size. –  Michael Foukarakis Sep 29 '09 at 10:40
    
As I said in my answer, it depends on what you mean :) sizeof(s) will yield the same result for both s's, but the second s will consume more memory from the heap. –  Kim Gräsman Sep 29 '09 at 10:45

A variable is an object we refer to by a name. The "physical" size of an object -- sizeof(s) in this case -- doesn't change, ever. They type is still std::string and the size of a std::string is always constant. However, things like strings and vectors (and other containers for that matter) have a "logical size" that tells us how many elements of some type they store. A string "logically" stores characters. I say "logically" because a string object doesn't really contain the characters directly. Usually it has only a couple of pointers as "physical members". Since the string objects manages a dynamically allocated array of characters and provides proper copy semantics and convenient access to the characters we can thing of those characters as members ("logical members"). Since growing a string is a matter of reallocating memory and updating pointers we don't even need sizeof(s) to change.

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i would say this is string object , And it has capability to grow dynamically and vice-versa

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