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Is it possible to write similar construction?
I want to set, somehow, default value for argument of type T.

    private T GetNumericVal<T>(string sColName, T defVal = 0)
    {
        string sVal = GetStrVal(sColName);
        T nRes;
        if (!T.TryParse(sVal, out nRes))
            return defVal;

        return nRes;
    }

Upd:
Thanks for answers!
Additionally, I found following link
Generic type conversion FROM string
I think, this code must work


private T GetNumericVal(string sColName, T defVal = default(T)) where T : IConvertible
{
    string sVal = GetStrVal(sColName);
    try
    {
        return (T)Convert.ChangeType(sVal, typeof(T));
    }
    catch (FormatException)
    {
        return defVal;
    }            
}
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3 Answers 3

up vote 6 down vote accepted

I haven't tried this but change T defVal = 0 to T defVal = default(T)

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Thanks, default(T) works ) –  hardsky Mar 27 '12 at 13:33

If you know that T will have a parameterless constructor you can use new T() as such:

private T GetNumericVal<T>(string sColName, T defVal = new T()) where T : new()

Otherwise you can use default(T)

private T GetNumericVal<T>(string sColName, T defVal = default(T))
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1  
default(T) is solution, thanks<br> but new T() is not, because you need constant in compile-time –  hardsky Mar 27 '12 at 13:34

To answer the question that would work to set the default value

private T GetNumericVal<T>(string sColName, T defVal = default(T)) 
{
    string sVal = GetStrVal(sColName);
    T nRes;
    if (!T.TryParse(sVal, out nRes))
        return defVal;

    return nRes;
}

But you cannot call the static TryParse method since the compiler has no way to know type T declares this static method.

share|improve this answer
    
Yes, I cant call TryParse. But maybe something similar? Maybe add some constraint to type parameter (I mean 'where: ...')? If numeric types implement some converting interface. –  hardsky Mar 27 '12 at 13:47
    
the CLR has no concept of "virtual static methods", the compiler cannot infer static methods from a type. As far as I know there is no clean solution for that. –  Jf Beaulac Mar 27 '12 at 14:11
    
stackoverflow.com/questions/196661/… for more details –  Jf Beaulac Mar 27 '12 at 14:12
    
Thanks! I found solution. –  hardsky Mar 27 '12 at 14:26

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