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OK, I know that it's impossible, but it was the best way to formulate the title of the question. The problem is, I'm trying to use my own custom class instead of float (for deterministic simulation) and I want to the syntax to be as close as possible. So, I certainly want to be able to write something like

FixedPoint myNumber = 0.5f;

Is it possible?

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Just to make sure: You know that C# already contains a fixed-precision data type called decimal? –  Heinzi Oct 31 '12 at 14:17
    
@Heinzi: decimal is still a floating-point type. It just uses 128 bits instead of 32/64 and a decimal exponent instead of a binary one. –  Joren Oct 31 '12 at 14:27
1  
@Joren: Of course, sorry about that, I was trying to be concise. What I meant to write was: "If you are using a custom fixed point data type to avoid the rounding problems usually associated with binary floating-point data-types, you might consider using decimal instead, which is able to accurately represent decimal floating-point numbers. If you already considered and rejected that option, please ignore this comment." –  Heinzi Oct 31 '12 at 14:39
    
@Heinzi decimal is supposed to be slower than integer math (which my fixed-point essentially is). –  golergka Oct 31 '12 at 15:15
    
@golergka: Ah, ok, makes sense! –  Heinzi Oct 31 '12 at 15:16

4 Answers 4

up vote 31 down vote accepted

Yes, by creating an implicit type cast operator for FixedPoint if this class was written by you.

class FixedPoint
{
    public static implicit operator FixedPoint(double d)
    {
        return new FixedPoint(d);
    }
}

If it's not obvious to the reader/coder that a double can be converted to FixedPoint, you may also use an explicit type cast instead. You then have to write:

FixedPoint fp = (FixedPoint) 3.5;
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Care to show an example? Because the documentation clearly say that "=" is not an overloadable operator. –  LightStriker Oct 31 '12 at 12:46
    
@Marc-AndréJutras msdn.microsoft.com/en-us/library/85w54y0a.aspx –  asawyer Oct 31 '12 at 12:46
3  
Well, it won't actually overload the = operator, it'll just introduce a cast. If you'd define it as an explicit cast, you'd have: FixedPoint myNumber = (FixedPoint) 0.5f;. You'll still have a float at first, but it'll be automatically cast to a FixedPoint. Note that this means you'll still have rounding errors from the floating point representation: you can't actually read the literal 0.1f, you'll still receive a floating point number which best represents the binary repeating number 0.1 as argument to your overloaded method. –  Mattias Buelens Oct 31 '12 at 12:46
    
@Marc-AndréJutras overloading = is impossible, this isn't overloading :) –  Jon B Oct 31 '12 at 12:47
    
@Marc-AndréJutras What? That's not what it says. –  asawyer Oct 31 '12 at 12:50

Overload implicit cast operator:

class FixedPoint
{
    private readonly float _floatField;

    public FixedPoint(float field)
    {
        _floatField = field;
    }

    public static implicit operator FixedPoint(float f)
    {
        return new FixedPoint(f);
    }

    public static implicit  operator float(FixedPoint fp)
    {
        return fp._floatField;
    }
}

So you can use:

FixedPoint fp = 1;
float f = fp;
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2  
The second implicit operator is a great addition, too! Thanks. –  golergka Oct 31 '12 at 15:15

Create an implicit type cast.

This is an example:

<class> instance = new <class>();

float f = instance; // We want to cast instance to float.

public static implicit operator <Predefined Data type> (<Class> instance)
{
    //implicit cast logic
    return <Predefined Data type>;
}
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If the Implicit is not what you want in = overloading, the other option is to use the explicit operator on your class such as below, which one will cast to it, making it understood by the user:

public static explicit operator FixedPoint(float oc)     
{         

     FixedPoint etc = new FixedPoint();          
     etc._myValue = oc;          
     return etc;      
}

... usage

FixedPoint myNumber = (FixedPoint)0.5f;
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