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Is there a support in C# 4.0 to do that in one line?

I did for objects:

 if (ReferenceEquals(null, myDynamicVar))

so now I need to see if this a zero. how to do it and is there a statement that can do both?

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Why do you think a ValueType is always zero? bool for example is false (this is not zero). See here:… – Amiram Korach Aug 15 '12 at 14:13

3 Answers 3

up vote 2 down vote accepted
if (ReferenceEquals(null, myDynamicVar) || Equals(0, myDynamicVar)) ...
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Thank you all - I'll use this. – user1025852 Aug 15 '12 at 14:26
You're welcome to use what you want, and this does answer your question exactly, but please bear in mind Amiram's comment when implementing. – Jaime Torres Aug 15 '12 at 14:33
ok thanks, will do. – user1025852 Aug 15 '12 at 14:46
watch out if myDynamicVar would have value of DateTime.MinValue – Ilya Ivanov Aug 15 '12 at 15:05
public bool IsDefault<T>(T value)
    if(value == null) return true;
    return value.Equals(default(T));

int v = 5;
object o = null;
IsDefault(v); //False
IsDefault(0); //True
IsDefault(o); //True
IsDefault("ty"); //False
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Unfortunately, if o was type dynamic, like in the question, this code would not work. – jbtule Aug 15 '12 at 14:51
you can try to call it IsDefault<dynamic>(o) and it will work. The case is that it will return false if dynamic o = 0; That's why you shouldn't use dynamic is it is unnecessary. – Ilya Ivanov Aug 15 '12 at 15:02
the case of Tim Rogers won't work if dynamic o = DateTime.MinValue – Ilya Ivanov Aug 15 '12 at 15:04
Actually all you need to make yours work for every case is an overload public bool IsDefault(object value) { return (value == null); } The dynamic binder would choose the generic form except when it's null and then it would choose the object version. – jbtule Aug 15 '12 at 16:21


if (ReferenceEquals(null, myDynamicVar) || myDynamicVar ==
   (myDynamicVar.GetType().IsValueType ? Activator.CreateInstance(myDynamicVar.GetType()) : null)
    //Code greatness


    public static bool IsDefault(dynamic input)
        if (input == null)
            return true;
        else if (input.GetType().IsValueType)
            return input == Activator.CreateInstance(input.GetType());
            return false;
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Doesn't compile. default requires the type name, not Type instance. – Amiram Korach Aug 15 '12 at 14:17
That was a stupid mistake... fixed. Thanks for pointing that out. – Jaime Torres Aug 15 '12 at 14:32

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