Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

A colleague of mine asked if there is unsigned double, and I said there isn't, but I still checked it, and this compiles in Microsoft Visual C++ 2010:

unsigned double a;
double b;
printf("size_a=%d size_b=%d", (int) sizeof(a), (int) sizeof(b));

It outputs size_a=4 size_b=8. That is, four bytes for unsigned double, and eight bytes for double.

share|improve this question
1  
There may be unsigned double in MSVC, but there is no such thing in standard C++. In fact MSVC warns you about this construct. Your team should enable warnings, and watch them closely. –  n.m. Feb 20 '13 at 10:26
8  
A level 1 warning is issued for this, if you have warnings switched off you probably get what you deserve! ;-) Generally at least level 3 is wise and /Wx too. –  Clifford Feb 20 '13 at 10:53
10  
Warning level 4 should be the default. The first thing I try to do in any new place I work is make it mandatory and enable warnings as errors. There is no excuse for writing code with warnings in it. :) –  user420442 Feb 20 '13 at 12:04
3  
Already got answers. You may also like two read this two. Why doesn't C have unsigned floats? and Why no unsigned floating point types? –  Grijesh Chauhan Feb 20 '13 at 15:27
6  
A compiler is required to issue a diagnostic for unsigned double. A warning satisfies the language standard's requirement for a diagnostic. Nevertheless, I consider this to be a commpiler bug; there is no good reason to permit that code to compile successfully. –  Keith Thompson Feb 20 '13 at 17:11
show 3 more comments

5 Answers

up vote 134 down vote accepted

unsigned double is invalid. This is also true in MSVC. When compiling the above code in MSCV 2010 with warnings enabled you get:

warning C4076: 'unsigned' : can not be used with type 'double'

The compiler actually ignores double after unsigned, making your a actually an unsigned int.

If you try the following:

unsigned double a = 1.0;

You actually get two warnings:

warning C4076: 'unsigned' : can not be used with type 'double'
warning C4244: 'initializing' : conversion from 'double' to 'unsigned int', possible loss of data

Interestingly, there is no C4076 warning in MSDN for VS2010. It is present only for VS2005 and VS2008.

share|improve this answer
22  
@PeteBecker Not stupid. Warnings are generally made for issues that have in the past led to bugs. No one in high school or above will get confused about + vs * precedence; the same cannot be said for && vs ||. I was programming (and being confused about their precedence) long before I learned formal logic. –  Sebastian Redl Feb 20 '13 at 14:08
13  
@PeteBecker You're welcome to disable the warning and tell the people in your programming teams that they have to learn the precedence by heart. That's really your choice, assuming you actually have that kind of power wherever you work. But the reality is that this has been a source of bug and will continue to be a source of bugs, so don't call the warning stupid. –  Sebastian Redl Feb 20 '13 at 14:37
9  
@PeteBecker Do the parentheses actually cause any problems then? Do they not get optimised out anyway when compiling? If they don't cause problems, and don't even make any difference to compiled code, then all they do is make things clearer for people reading the code, which is a good thing, no? –  Matt Fellows Feb 20 '13 at 15:25
15  
@PeteBecker - I understand and agree with your point about the warning not really being a warning. But to say that it is easier to understand the line of code without parenthesis for a 'professional programmer' is simply wrong. I have been a professional programmer for 15 years and know the rules of precedence. Both lines of code in your example are equally clear to me. Adding parenthesis for clarification (just like mathematicians do) does not make it harder for me to read and understand. –  CramerTV Feb 20 '13 at 17:45
8  
@PeteBecker - return (a || b && c < d + e * f + ++g - h--); No parens needed here either. Is this really as clear as the non-minimal version? Reductio ad absurdum. Can't argue with ideologues - I'm out. –  CramerTV Feb 20 '13 at 19:43
show 12 more comments

Combining unsigned with double in the declaration specifier sequence is not valid C++. This must be an MSVC extension (or bug) of some sort.

As a general rule, at most one type-specifier is allowed in the complete decl-specifier-seq of a declaration or in a type-specifier-seq or trailing-type-specifier-seq. The only exceptions to this rule are the following:

  • const can be combined with any type specifier except itself.
  • volatile can be combined with any type specifier except itself.
  • signed or unsigned can be combined with char, long, short, or int.
  • short or long can be combined with int.
  • long can be combined with double.
  • long can be combined with long.
share|improve this answer
4  
+1 I had no idea some lunatic @ MS even considered making a floating point unsigned. I'm sure there is a reason behind it, I just can't think its a good one –  WhozCraig Feb 20 '13 at 10:26
    
+1 no idea about this. –  Arpit Feb 20 '13 at 10:28
    
I would expect long long to form part of the list in the third bullet point. –  juanchopanza Feb 20 '13 at 10:30
1  
@juanchopanza I think that's the combination of signed/unsigned with long. Then that long can be combined with another long. –  Joseph Mansfield Feb 20 '13 at 10:31
    
@sftrabbit You're right, that makes sense. –  juanchopanza Feb 20 '13 at 10:33
show 3 more comments

If you set the warning level higher (/W3 in my test), you will get an appropriate warning:

warning C4076: 'unsigned' : can not be used with type 'double'

If you then use the debugger to inspect the variable, all becomes clear:

enter image description here

You can see that the variable is in fact an unsigned int

share|improve this answer
add comment

Unsigned and signed act as type qualifiers in MSVC where possible (unsigned char, signed short etc). If it's impossible to do that, such as unsigned bool, or signed double, the requested type is not created. And the type is just treated as unsigned [int] and signed [int].

share|improve this answer
7  
Which is not legal C++. A C++ compiler must issue a diagnostic for the posted code. (And to be frank, if this is an extension, rather than an error, it is a stupid one.) –  James Kanze Feb 20 '13 at 10:33
1  
It's probably a warning due to having to scrape the header files from a large pre-existing codebase (most likely in C). If I were writing a C++ compiler I'd wave lots of things that would have been legal in C when reading in .h files that don't contain any C++ constructs. –  Joshua Feb 20 '13 at 18:12
    
@Joshua: unsigned double is invalid in both C and C++. –  Keith Thompson Feb 20 '13 at 19:13
    
Yes, but it compiles in old C as "unsigned". –  Joshua Feb 20 '13 at 21:22
add comment

It is a bug in VS2010. VS2012 gives the following error for that line of code.

error CS1002: ; expected

It is expecting a ';' before the keyword 'double'.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.