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.
ulong foo = 0;
ulong bar = 0UL;//this seems redundant and unnecessary. but I see it a lot.

I also see this in referencing the first element of arrays a good amount

blah = arr[0UL];//this seems silly since I don't expect the compiler to magically
                //turn '0' into a signed value

Can someone provide some insight to why I need 'UL' throughout to specify specifically that this is an unsigned long?

share|improve this question

5 Answers 5

up vote 19 down vote accepted
void f(unsigned int x)
{
//
}

void f(int x)
{
//
}
...
f(3); // f(int x)
f(3u); // f(unsigned int x)

It is just another tool in C++; if you don't need it don't use it!

share|improve this answer

Some compiler may emit a warning I suppose.
The author could be doing this to make sure the code has no warnings?

share|improve this answer
    
+1 Yes, this should really be done anywhere the compiler is generating a warning. –  patros Aug 13 '09 at 18:35

In the examples you provide it isn't needed. But suffixes are often used in expressions to prevent loss of precision. For example:

unsigned long x = 5UL * ...

You may get a different answer if you left off the UL suffix, say if your system had 16-bit ints and 32-bit longs.

Here is another example inspired by Richard Corden's comments:

unsigned long x = 1UL << 17;

Again, you'd get a different answer if you had 16 or 32-bit integers if you left the suffix off.

The same type of problem will apply with 32 vs 64-bit ints and mixing long and long long in expressions.

share|improve this answer
    
You should flesh this example out a bit. This is a pretty common source of bugs in production code (assuming 16bit int, 32 bit long): int x = 17; unsigned long ul = (1 << x); –  Richard Corden Aug 14 '09 at 9:11
    
Here's another example that relates to the signedness and not the size of the types: "unsigned long ul = (( possiblyNegativeValue + 1 ) > 100 ) ? v1 : v2;" In the example if possiblyNevativeValue is say -2, then the result of he relational operation is false. If we have '1ul' then '-2' is first promoted to unsigned long (and so becomes MAX_ULONG-2) and the result of the relational operation is true. –  Richard Corden Aug 14 '09 at 9:20

You don't normally need it, and any tolerable editor will have enough assistance to keep things straight. However, the places I use it in C# are (and you'll see these in C++):

  • Calling a generic method (template in C++), where the parameter types are implied and you want to make sure and call the one with an unsigned long type. This happens reasonably often, including this one recently:
    Tuple<ulong, ulong> = Tuple.Create(someUlongVariable, 0UL);
    where without the UL it returns Tuple<ulong, int> and won't compile.
  • Implicit variable declarations using the var keyword in C# or the auto keyword coming to C++. This is less common for me because I only use var to shorten very long declarations, and ulong is the opposite.
share|improve this answer

When you feel obligated to write down the type of constant (even when not absolutely necessary) you make sure:

  1. That you always consider how the compiler will translate this constant into bits
  2. Who ever reads your code will always know how you thought the constant looks like and that you taken it into consideration (even you, when you rescan the code)
  3. You don't spend time if thoughts whether you need to write the 'U'/'UL' or don't need to write it

also, several software development standards such as MISRA require you to mention the type of constant no matter what (at least write 'U' if unsigned)

in other words it is believed by some as good practice to write the type of constant because at the worst case you just ignore it and at the best you avoid bugs, avoid a chance different compilers will address your code differently and improve code readability

share|improve this answer

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.