71

I tracked down an obscure logging bug to the fact that initializer lists of length 2 appear to be a special case! How is this possible?

The code was compiled with Apple LLVM version 5.1 (clang-503.0.40), using CXXFLAGS=-std=c++11 -stdlib=libc++.

#include <stdio.h>

#include <string>
#include <vector>

using namespace std;

typedef vector<string> Strings;

void print(string const& s) {
    printf(s.c_str());
    printf("\n");
}

void print(Strings const& ss, string const& name) {
    print("Test " + name);
    print("Number of strings: " + to_string(ss.size()));
    for (auto& s: ss) {
        auto t = "length = " + to_string(s.size()) + ": " + s;
        print(t);
    }
    print("\n");
}

void test() {
    Strings a{{"hello"}};                  print(a, "a");
    Strings b{{"hello", "there"}};         print(b, "b");
    Strings c{{"hello", "there", "kids"}}; print(c, "c");

    Strings A{"hello"};                    print(A, "A");
    Strings B{"hello", "there"};           print(B, "B");
    Strings C{"hello", "there", "kids"};   print(C, "C");
}

int main() {
    test();
}

Output:

Test a
Number of strings: 1
length = 5: hello

Test b
Number of strings: 1
length = 8: hello

Test c
Number of strings: 3
length = 5: hello
length = 5: there
length = 4: kids

Test A
Number of strings: 1
length = 5: hello

Test B
Number of strings: 2
length = 5: hello
length = 5: there

Test C
Number of strings: 3
length = 5: hello
length = 5: there
length = 4: kids

I should also add that the length of the bogus string in test b seems to be indeterminate - it's always greater than the first initializer string but has varied from one more than the length of the first string to the total of the lengths of the two strings in the initializer.

15
  • 5
    Why the double braces?
    – chris
    Commented Jun 9, 2014 at 0:35
  • 2
    i would investigate interaction with vector constructors, especially the iterator and iterator one Commented Jun 9, 2014 at 0:50
  • 4
    Got it. Let me form an answer
    – chris
    Commented Jun 9, 2014 at 0:52
  • 1
    It crashes with VIsual C++, which is evidence of UB at work, which is evidence of constructor interaction. Commented Jun 9, 2014 at 0:52
  • 1
    What's even weirder is that the program throws an exception when you instantiate a Strings in main but it goes away when you comment out the print() calls in test(). I think there's some UB going on. -- coliru.stacked-crooked.com/a/bf9b59160c6f46b0
    – David G
    Commented Jun 9, 2014 at 0:55

2 Answers 2

77

Introduction

Imagine the following declaration, and usage:

struct A {
  A (std::initializer_list<std::string>);
};

A {{"a"          }}; // (A), initialization of 1 string
A {{"a", "b"     }}; // (B), initialization of 1 string << !!
A {{"a", "b", "c"}}; // (C), initialization of 3 strings

In (A) and (C), each c-style string is causing the initialization of one (1) std::string, but, as you have stated in your question, (B) differs.

The compiler sees that it's possible to construct a std::string using a begin- and end-iterator, and upon parsing statement (B) it will prefer such construct over using "a" and "b" as individual initializers for two elements.

A { std::string { "a", "b" } }; // the compiler's interpretation of (B)

Note: The type of "a" and "b" is char const[2], a type which can implicitly decay into a char const*, a pointer-type which is suitable to act like an iterator denoting either begin or end when creating a std::string.. but we must be careful: we are causing undefined-behavior since there is no (guaranteed) relation between the two pointers upon invoking said constructor.


Explanation

When you invoke a constructor taking an std::initializer_list using double braces {{ a, b, ... }}, there are two possible interpretations:

  1. The outer braces refer to the constructor itself, the inner braces denotes the elements to take part in the std::initializer_list, or:

  2. The outer braces refer to the std::initializer_list, whereas the inner braces denotes the initialization of an element inside it.

It's prefered to do 2) whenever that is possible, and since std::string has a constructor taking two iterators, it is the one being called when you have std::vector<std::string> {{ "hello", "there" }}.

Further example:

std::vector<std::string> {{"this", "is"}, {"stackoverflow"}}.size (); // yields 2

Solution

Don't use double braces for such initialization.

6
  • Thanks for fleshing it out, not that you hadn't already figured it out before I posted :)
    – chris
    Commented Jun 9, 2014 at 0:58
  • @chris It takes time to fix some nicer formatting, and as always that renders me somewhat slower than all others :P Commented Jun 9, 2014 at 1:01
  • Well yeah, I probably would have formatted mine nicely after giving the answer, but there's not much point now that I'd basically be copying your post :p Instead, I just linked to yours, though hopefully yours is the accepted one. @tom, hint hint
    – chris
    Commented Jun 9, 2014 at 1:02
  • 1
    The types of "a" is NOT const char*, it is const char[2], which is freely convertible to const char*. Commented Jun 9, 2014 at 17:03
  • @MooingDuck very good point, thanks. satisfied with the new wording? Commented Jun 9, 2014 at 17:17
20

First of all, this is undefined behaviour unless I'm missing something obvious. Now let me explain. The vector is being constructed from an initializer list of strings. However this list only contains one string. This string is formed by the inner {"Hello", "there"}. How? With the iterator constructor. Essentially, for (auto it = "Hello"; it != "there"; ++it) is forming a string containing Hello\0.

For a simple example, see here. While UB is reason enough, it would seem the second literal is being placed right after the first in memory. As a bonus, do "Hello", "Hello" and you'll probably get a string of length 0. If you don't understand anything in here, I recommend reading Filip's excellent answer.

7
  • … and if the compiler decides to put "there" at a lower address than "Hello", you get a crash. Commented Jun 9, 2014 at 0:56
  • 3
    Hah! It had to be undefined behavior. But wait, why isn't an infinite loop? Answer: because due to a whim of the compiler, the two strings were laid out more or less contiguously in memory!
    – Tom Swirly
    Commented Jun 9, 2014 at 0:57
  • @Potatoswatter, Yeah, this is a really interesting occurrence. I noticed doing "Hello", "Hello" gave a string of length 0.
    – chris
    Commented Jun 9, 2014 at 0:57
  • I'm off for food now. I'm not going to mark it correct until I get back just to encourage you to edit it but, well, I'm pretty sure you're right... :-)
    – Tom Swirly
    Commented Jun 9, 2014 at 0:57
  • @chris: depends on compiler settings, they might have a length of zero, or any other length Commented Jun 9, 2014 at 17:04

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