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By trying, I came to know that it is necessary to put brackets around a conditional operator in a cout statement. Here a small example:

#include <iostream>

int main() {
  int a = 5;
  float b = (a!=0) ? 42.0f : -42.0f;
  // works fine
  std::cout << b << std::endl;
  // works also fine
  std::cout << ( (a != 0) ? 42.0f : -42.0f ) << std::endl;
  // does not work fine
  std::cout << (a != 0) ? 42.0f : -42.0f;

  return 0;
}

The output is:

42
42
1

Why is this bracket necessary? The resulting type of the conditional operator is known in both cases, isn't it?

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2 Answers 2

up vote 6 down vote accepted

The ?: operator has lower precedence than the << operator. I.e., the compiler interprets your last statement as:

(std::cout << (a != 0)) ? 42.0f : -42.0f;

Which will first stream the boolean value of (a!=0) to cout. Then the result of that expression (i.e., a reference to cout) will be cast to an appropriate type for use in the ?: operator (namely void*: see http://www.cplusplus.com/reference/iostream/ios/operator_voidpt/), and depending on whether that value is true (i.e., whether cout has no error flags set), it will grab either the value 42 or the value -42. Finally, it will throw that value away (since nothing uses it).

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Just a note, cout<< returns cout, not anything about valid state. failbit/badbit will be set, but (std::cout << (a != 0)) always returns a reference to std::cout. -42.0f should never be returned, as that reference should always boolean evaluate to true. –  Sam DeHaan Mar 8 '12 at 14:53
    
thanks, didn't even think about precedences –  m47h Mar 8 '12 at 15:01
1  
@SamDeHaan: yes. Sorry, I was perhaps being a little sloppy in my explanation. The expression "cout<<x" returns cout. But in order for the expression "cout?a:b" to be evaluated, cout must first be cast to some value that's a valid operand to the ?: operator. In this case, it is (operator void*) that does the work. That operator returns NULL iff an error flag is set. See: <cplusplus.com/reference/iostream/ios/operator_voidpt/>; –  Edward Loper Mar 8 '12 at 15:50
    
And there I go trying to sound smart again. Thanks for the correction to my correction. :) –  Sam DeHaan Mar 8 '12 at 15:51

Because << has higher precedence than ?.

Fun exercise:

float ftest = std::cout << (a != 0) ? 42.0f : -42.0f;

Take that, Coding Horror!!!

Your code is equivalent to:

if ( std::cout << (a != 0) )
     42.0f;
else
    -42.0f;

It outputs 1 because, well, (a != 0) == true;

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