-4

Suppose I have a function that takes a string as input:

SomeOutputType f_impl(const char* s);

Most call sites just use string literals as input, e.g. f("Hello, world"). Suppose I have implemented the following function to compute the result at compile time

template <char...> SomeOutputType f_impl();

My question is, is there a way to let the call sites like f("Hello, world") calls the templated form, while for general call sites like string s="Hello, world"; f(s.c_str()); calls the general form? For clarification, auto s = "Hello, world"; f(s); don't have to call the templated form because s is now a variable and no longer a compile time constant.

A useful case for this question is to optimize printf. In most cases the format will be string literals so a lot of things can be done at compile time to optimize things, instead of parsing the format at runtime.

  • 1
    Your function template has no input argument. Is that intended? – Andy Prowl Feb 17 '13 at 20:23
  • Yes, the string literals should be converted to the template paramters. – Kan Li Feb 17 '13 at 20:23
  • 1
    You can't invoke a function uniformly if you have to supply a function argument in one case and a template argument in another case – Andy Prowl Feb 17 '13 at 20:25
  • Well I modified my question so that it reflects my intension clearly. Users call function f and it somehow dispatches to different forms of f_impl according to whether the call site uses string literal or not. – Kan Li Feb 17 '13 at 20:31
  • So basically you want to specialise a template on whether a function argument was a string literal? – Lightness Races in Orbit Feb 17 '13 at 21:12
17

No, a string literal like "foo" has the type const char[S + 1] where S is the number of characters you wrote. It behaves like an array of that type with no special rules.

In C++03, there was a special rule that said that a string literal could convert to char*. That allowed you to say

#define isStringLiteral(X) \
  isConvertibleToCharStar(X) && hasTypeConstCharArray(X)

For example isStringLiteral(+"foo") would yield false, and isStringLiteral("foo") would yield true. Even this possibiliy would not have allowed you to call a function with a string literal argument and behave differently.

C++11 removed that special conversion rule and string literals behave like any other arrays. In C++11 as a dirty hack you can compose some macros, matching some simple string literals without handling escape sequences

constexpr bool isStringLiteral(const char *x, int n = 0) {
  return *x == '"' ? 
           n == 0 ?
             isStringLiteral(x + 1, n + 1)
             : !*(x + 1) 
           : (*x && n != 0 && isStringLiteral(x + 1, n + 1));
}

#define FastFun(X) \
  (isStringLiteral(#X) ? fConstExpr(X, sizeof(X) - 1) : f(X))
| improve this answer | |
  • 4
    @icando don't worry. it may be useful to others. – Johannes Schaub - litb Feb 17 '13 at 21:08
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    @icando no, I won't delete it. It correctly explains why it is not possible to do what you asked for. I can understand that you find it frustrating that it won't work, but having no answer instead of an answer that states it doesn't work won't change it. – Johannes Schaub - litb Feb 17 '13 at 21:10
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    @icando: Johannes Schaub is a world-reknowned expert in C++ who has contributed significant expertise to the standards committee itself, so you might want to spend a little less time blaming everybody for doing everything wrong, and a little more time in trying to figure out what it is that you are doing wrong. – Lightness Races in Orbit Feb 17 '13 at 23:12
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    @icando: Yes, that's exactly right. You are "C++ super expert". – Lightness Races in Orbit Feb 17 '13 at 23:29
  • 4
    @icando I am now invoking Godwin's Law. Discussion over; you lost. – Peter Wood Feb 18 '13 at 0:01
0

While I haven't tested this, I think if you just declare the function constexpr and compile with high optimization, the compiler will compute at compile time whenever possible. As a bonus, you don't need to write the code twice. On the other hand, you have to write it once in constexpr style.

| improve this answer | |
-2

If I understand the question correctly, I actually think something like this is possible using a function overload. Here's an article that shows the basic idea. In your case I think it would be sufficient to have the following two overloads:

void f(char const *);

template<unsigned int N>
void f(char const (&)[N]);

The latter should be invoked when the string is a string literal, the latter at other times. If the compiler is sufficiently good at optimizing then calls to the latter may be evaluated at compile time.

EDIT:

Alright, it bothered me that the above solution didn't work, so I did some playing around and I think I came up with a solution:

#include <string>
#include <boost/utility/enable_if.hpp>

template<typename T>
struct is_string_literal {
  enum { value = false };
};

template<unsigned int N>
struct is_string_literal<char const (&)[N]> {
   enum { value = true };
};

template<typename T>
typename boost::disable_if<is_string_literal<T> >::type
foo(T) {
  std::cout << "foo1" << std::endl;
}

template<int N>
void foo(char const (&)[N]) {
  std::cout << "foo2" << std::endl;
}

int main( ) {
  std::string bar = "blah";
  char const str[] = "blah";

  foo(str);
  foo("blah");

  foo(bar.data());
}

The output (on GCC 4.4 with -O3) is:

foo2
foo2
foo1

I admit that I don't completely understand why this works when the previous solution didn't. Maybe there's something about overload resolution that I don't completely understand.

| improve this answer | |
  • The non-template function is always a better match than template functions (try out the code and see which one is chosen). – Jesse Good Feb 17 '13 at 20:49
  • Well, this still relies on the optimization of the compiler and only works for simple f_impl. I don't think for functions as complicated as printf this technique helps. – Kan Li Feb 17 '13 at 20:51
  • @Jesse Seems you're right. It does beg the question of how the author got the results he did in the post. – Chris Hayden Feb 17 '13 at 20:57
  • @icando I don't understand. Any solution will rely on the optimizing capabilities of the compiler to evaluate f at compile time unless you can represent it as a constexpr in C++11. – Chris Hayden Feb 17 '13 at 20:58
  • 1
    You're so wrong, it's not even funny. Your "Is string literal" template function will be called for any array of characters, string literal or not. – Puppy Feb 17 '13 at 23:40

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