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while doing some homework in my very strange C++ book, which I've been told before to throw away, had a very peculiar code segment. I know homework stuff always throws in extra "mystery" to try to confuse you like indenting 2 lines after a single-statement for-loop. But this one I'm confused on because it seems to serve some real-purpose.

basically it is like this:

int counter=10;
...
if(pow(floor(sqrt(counter+0.0)),2) == counter)
...

I'm interested in this part especially:

sqrt(counter+0.0)

Is there some purpose to the +0.0? Is this the poormans way of doing a static cast to a double? Does this avoid some compiler warning on some compiler I do not use? The entire program printed the exact same thing and compiled without warnings on g++ whenever I left out the +0.0 part. Maybe I'm not using a weird enough compiler?

Edit:

Also, does gcc just break standard and not make an error for Ambiguous reference since sqrt can take 3 different types of parameters?

[earlz@EarlzBeta-~/projects/homework1] $ cat calc.cpp
#include <cmath>

int main(){
  int counter=0;
  sqrt(counter);
}
[earlz@EarlzBeta-~/projects/homework1] $ g++ calc.cpp
/usr/lib/libstdc++.so.47.0: warning: strcpy() is almost always misused, please use strlcpy()
/usr/lib/libstdc++.so.47.0: warning: strcat() is almost always misused, please use strlcat()
[earlz@EarlzBeta-~/projects/homework1] $

Also, here is the relevant part of my system libraries cmath I'm not too keen on templates, so I'm not sure what it's doing

  using ::sqrt;

  inline float
  sqrt(float __x)
  { return __builtin_sqrtf(__x); }

  inline long double
  sqrt(long double __x)
  { return __builtin_sqrtl(__x); }

  template<typename _Tp>
    inline typename __gnu_cxx::__enable_if<__is_integer<_Tp>::__value,
                       double>::__type
    sqrt(_Tp __x)
    { return __builtin_sqrt(__x);
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7  
The real question is, why haven't you thrown the book away yet? :) –  Justin Ardini Apr 12 '10 at 4:10
    
@Justin required for a degree or I definitely would burn every page. –  Earlz Apr 12 '10 at 4:12

3 Answers 3

up vote 13 down vote accepted

Is this the poormans way of doing a static cast to a double?

Yes.

You can't call sqrt with an int as its parameter, because sqrt takes a float, double, or long double. You have to cast the int to one of those types, otherwise the call is ambiguous.

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1  
but why? it's not even necessary in this case. –  Earlz Apr 12 '10 at 4:03
5  
@Earlz: I don't know why anyone would recommend using + 0.0. The only thing it has going for it is that it's less to type than static_cast<double> or (double), but that's not a good reason to use it. –  James McNellis Apr 12 '10 at 4:08
1  
@James, yeah, but even an explicit cast isn't necessary. Implicit conversion should take care of it. –  Derrick Turk Apr 12 '10 at 4:11
1  
Data points: Without a cast of some sort (or forcing the expression to be of type double) MSVC 2003 or later and Comeau generate an error; GCC 3.4.5, Digital Mars and MSVC 6 do not. I wonder how the later decide to resolve the overload? –  Michael Burr Apr 12 '10 at 4:16
1  
@Earlz: The overloads are all part of the C++ standard library and have been since the language was standardized. In the C standard library they have different names (since they have to): sqrtf, sqrt, and sqrtl. You can find out pretty easily by looking in your cmath header. –  James McNellis Apr 12 '10 at 4:22

the reason for the expression counter + 0.0 is to explicitly make it a real number. if we donot add 0.0 the compiler will do implicit conversion

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It's just another way to cast to a double. This is because sqrt doesn't accept ints. Because a double is higher it will merge the int into the 0.0. The same way can be done for converting from (int,double,float) to string.

double n = 0;

string m = ""+n;

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2  
I think you are thinking of some other programming language; you can't do that in C++. –  James McNellis Apr 12 '10 at 23:17

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