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The following quote is from C++ Templates by Addison Wesley. Could someone please help me understand in plain English/layman's terms its gist?

Because string literals are objects with internal linkage (two string literals with the same value but in different modules are different objects), you can't use them as template arguments either:

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I removed the c++-faq tag. Feel free to explain why you think it is warranted, if you think it is. –  sbi Apr 5 '11 at 7:12
    
@sbi Are you talking to me? If yes, then let me tell you that the ONLY tag added by me was "templates". –  TheIndependentAquarius Apr 5 '11 at 7:16
    
@Anisha: I wasn't talking to you, I was talking to whoever put that tag there. Mind you, I didn't look who did it, so it could have been you. :) –  sbi Apr 5 '11 at 7:20
1  
@Anisha: Just so you know, C++0x is the new version of C++ slated to come out this year. Put simply, they made it so you can use any pointer value as long as it has a name. String literals do not have a name. –  GManNickG Apr 6 '11 at 5:56
1  
Thank your for the question, I have been reading the book and this baffled me as well. –  newprint Dec 28 '12 at 7:57
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4 Answers 4

up vote 34 down vote accepted

Your compiler ultimately operates on things called translation units, informally called source files. Within these translation units, you identify different entities: objects, functions, etc. The linkers job is to connect these units together, and part of that process is merging identities.

Identifiers have linkage: internal linkage means that the entity named in that translation unit is only visible to that translation unit, while external linkage means that the entity is visible to other units.

When an entity is marked static, it is given internal linkage. So given these two translation units:

// a.cpp
static void foo() { /* in a */ } 

// b.cpp
static void foo() { /* in a */ } 

Each of those foo's refer to an entity (a function in this case) that is only visible to their respective translation units; that is, each translation unit has its own foo.

Here's the catch, then: string literals are the same type as static const char[..]. That is:

// str.cpp
#include <iostream>

// this code:

void bar()
{
    std::cout << "abc" << std::endl;
}

// is conceptually equivalent to:

static const char[4] __literal0 = {'a', 'b', 'c', 0};

void bar()
{
    std::cout << __literal0 << std::endl;
}

And as you can see, the literal's value is internal to that translation unit. So if you use "abc" in multiple translation units, for example, they all end up being different entities.

Overall, that means this is conceptually meaningless:

template <const char* String>
struct baz {};

typedef baz<"abc"> incoherent;

Because "abc" is different for each translation unit. Each translation unit would be given a different class because each "abc" is a different entity, even though they provided the "same" argument.

On the language level, this is imposed by saying that template non-type parameters can be pointers to entities with external linkage; that is, things that do refer to the same entity across translation units.

So this is fine:

// good.hpp
extern const char* my_string;

// good.cpp
const char* my_string = "any string";

// anything.cpp
typedef baz<my_string> coherent; // okay; all instantiations use the same entity

†Not all identifiers have linkage; some have none, such as function parameters.

‡ An optimizing compiler will store identical literals at the same address, to save space; but that's a quality of implementation detail, not a guarantee.

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Isn't "translation unit" the canonical name and "source file" an informal/unofficial one? –  jalf Apr 5 '11 at 6:38
    
@jalf: Oops, yeah, crossed my words up. –  GManNickG Apr 5 '11 at 6:39
    
@GMan: You might want to add this link to your answer: stackoverflow.com/questions/2795443/… –  sbi Apr 5 '11 at 7:17
1  
+1, great answer! –  Nim Apr 5 '11 at 7:56
    
Thank you the detailed answer. What I have understood from your answer is, a string in double quotes is equivalent ALWAYS to a static char array. Static char array falls under "internal linkage" and templates fall under "external linkage". Therefore the two are incompatible. Please confirm whether what I have understood is clear or not. –  TheIndependentAquarius Apr 5 '11 at 8:58
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It means you can't do this...

#include <iostream>

template <const char* P>
void f() { std::cout << P << '\n'; }

int main()
{
    f<"hello there">();
}

...because "hello there" isn't 100% guaranteed to resolve to a single integral value that can be used to instantiate the template once (though most good linkers will attempt to fold all usages across linked objects and produce a new object with a single copy of the string).

You can, however, use extern character arrays/pointers:

...
extern const char p[];
const char p[] = "hello";
...
    f<p>();
...
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1  
I didn't know the second form was possible, even in the current standard? –  Nim Apr 5 '11 at 6:23
    
@Nim: yes, weird but true :-) –  Tony D Apr 5 '11 at 6:29
1  
@Anisha: integral as in integer, 1, 2, 3. Template parameters have to be types or integers; that's why enums, characters, short/int/long etc. are ok but float and double are not, nor are actual objects. The point here is that a pointer with a compile-time-constant value IS an integer of sorts, and "extern" variables satisfy that requirement while "static" variables - which are effectively hidden within the object being compiled at the time and so don't have their integer address "broadcast" for the linker to stitch together with other objects, can't be used. See also GMan's answer ;-) –  Tony D Apr 5 '11 at 6:51
1  
In the second form, you don't need two declarations for p. extern char const p[] = "..." does the trick quite nicely. –  James Kanze Apr 5 '11 at 8:16
1  
@Anisha: oh, they do have linkage :-)... see stackoverflow.com/questions/3281925/… –  Tony D Apr 5 '11 at 10:27
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Obviously, string literals like "foobar" are not like other literal built-in types (like int or float). They need to have an address (const char*). The address is really the constant value that the compiler substitutes in place of where the literal appears. That address points to somewhere, fixed at compile-time, in the program's memory.

It has to be of internal linkage because of that. Internal linkage just means that cannot be linked across translation units (compiled cpp files). The compiler could try to do this, but is not required to. In other words, internal linkage means that if you took the address of two identical literal strings (i.e. the value of the const char* they translate to) in different cpp files, they wouldn't be the same, in general.

You can't use them as template parameters because they would require a strcmp() to check that they are the same. If you used the ==, you would just be comparing the addresses, which wouldn't be the same when template are instantiated with the same literal string in different translation units.

Other simpler built-in types, as literals, are also internal linkage (they don't have an identifier and can't be linked together from different translation units). However, their comparison is trivial, as it is by value. So they can be used for templates.

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Thank you very much for the detailed explanation of the terminology. I searched Google further to make the concepts more clear. I have understood that External linkage means that objects lying under this title can communicate with others in other source files. Example: printf declared in stdio.h can be used in any other source file. Now, the template falls under external linkage. Is that correct? Because two same strings will have different addresses in different cpp files, they can't be used to refer to the same thing. Thats why they are not permitted. –  TheIndependentAquarius Apr 5 '11 at 8:27
    
@Anisha: sounds like you've got it... :-) –  Tony D Apr 5 '11 at 8:39
    
@Tony: I wrote that explanation without looking at GMan's post. Now I am reading his post and the concept is being more clear now. :) –  TheIndependentAquarius Apr 5 '11 at 8:43
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As mentioned in other answers, a string literal cannot be used as a template argument. There is, however, a workaround which has a similar effect, but the "string" is limited to four characters. This is due to multi-character constants which, as discussed in the link, are probably rather unportable, but worked for my debug purposes.

template<int32_t nFourCharName>
class NamedClass
{
    std::string GetName(void) const
    {
        // Evil code to extract the four-character name:
        const char cNamePart1 = static_cast<char>(static_cast<uint32_t>(nFourCharName >> 8*3) & 0xFF);
        const char cNamePart2 = static_cast<char>(static_cast<uint32_t>(nFourCharName >> 8*2) & 0xFF);
        const char cNamePart3 = static_cast<char>(static_cast<uint32_t>(nFourCharName >> 8*1) & 0xFF);
        const char cNamePart4 = static_cast<char>(static_cast<uint32_t>(nFourCharName       ) & 0xFF);

        std::ostringstream ossName;
        ossName << cNamePart1 << cNamePart2 << cNamePart3 << cNamePart4;
        return ossName.str();
    }
};

Can be used with:

NamedClass<'Greg'> greg;
NamedClass<'Fred'> fred;
std::cout << greg.GetName() << std::endl;  // "Greg"
std::cout << fred.GetName() << std::endl;  // "Fred"

As I said, this is a workaround. I don't pretend this is good, clean, portable code, but others may find it useful. Another workaround could involve multiple char template arguments, as in this answer.

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