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I have ported Java code to C#. Could you please explain why I have compile-time error in the follow line (I use VS 2008):

    private long l = 0xffffffffffffffffL; // 16 'f' got here

Cannot convert source type ulong to target type long

I need the same value here as for origin Java code.

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Don't you get an error in Java when you do that? In any case, the result would be -1, wouldn't it? Java's long type is signed too. –  Mr Lister Jan 11 '12 at 19:31
    
It's all OK with Java in this case. Yes in Java the result is "-1" but if the same is true for C# - why my value can't be assigned? –  Michael Z Jan 11 '12 at 19:36
    
In that case, the wording in your question isn't correct. Everyone assumed that you wanted the maximum value for a long. And -1 isn't it. On the other hand, if you wanted -1, why not just write -1? –  Mr Lister Jan 11 '12 at 19:47

4 Answers 4

up vote 2 down vote accepted

Assuming you aren't worried about negative values, you could try using an unsigned long:

private ulong l = 0xffffffffffffffffL;

In Java the actual value of l would be -1, because it would overflow the 2^63 - 1 maximum value, so you could just replace your constant with -1.

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Hm... but for Java my value means "-1" but here - not. Don't? –  Michael Z Jan 11 '12 at 19:32
1  
Yes, because C# cares about overflowed values. Java isn't so stringent and allows it. –  mdm Jan 11 '12 at 19:34

Java doesn't mind if a constant overflows in this particular situation - the value you've given is actually -1.

The simplest way of achieving the same effect in C# is:

private long l = -1;

If you want to retain the 16 fs you could use:

private long l = unchecked((long) 0xffffffffffffffffUL);

If you actually want the maximum value for a signed long, you should use:

// Java
private long l = Long.MAX_VALUE;
// C#
private long l = long.MaxValue;
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But why "-1" represented in Hex can not be assigned to 64-bit signed long? –  Michael Z Jan 11 '12 at 19:38
    
You're not listening. 0xffffffffffffffff isn't -1 in hex, it's 18,446,744,073,709,551,615 in hex. –  Mr Lister Jan 11 '12 at 19:49
1  
@MichaelZ: 0xfff... is only -1 when it overflows the boundaries of a signed long. You can use -0x1, which is really -1 in hex. –  Jon Skeet Jan 11 '12 at 20:34

You could do this:

private long l = long.MaxValue;

... but as mdm pointed out, you probably actually want a ulong.

private ulong l = ulong.MaxValue;
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0xffffffffffffffff is larger than a signed long can represent.

You can insert a cast:

 private long l = unchecked( (long)0xffffffffffffffffL);

Since C# uses two's complement, 0xffffffffffffffff represents -1:

private long l = -1;

Or declare the variable as unsigned, which is probably the cleanest choice if you want to represent bit patterns:

private ulong l = 0xffffffffffffffffL;
private ulong l = ulong.MaxValue;

The maximal value of a singed long is:

private long l = 0x7fffffffffffffffL;

But that's better written as long.MaxValue.

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