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I was doing something like this:

SqlParameter param = new SqlParameter("@Param", 0) { SqlDbType = SqlDbType.Int };

private void TestParam(SqlParameter param) {
   string test = param.Value.ToString();  // Getting NullReferenceException here
}

But I stop getting the exception when I put it like this:

SqlParameter param = new SqlParameter("@Param", SqlDbType.Int)  { Value = 0 };

private void TestParam(SqlParameter param) {
    string test = param.Value.ToString();  // Everything OK
}

Can anyone tell me why SqlParameter assumes 0 is the same as null?

Edit: MSDN Explains this here: SqlParameter Constructor

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1  
Ok, it is explained here: msdn.microsoft.com/en-us/library/0881fz2y%28v=VS.80%29.aspx When creating a new SqlParameter with default value "0", you need to cast it explicitly to integer. Otherwise it assumes you're passing a SqlDbType enum as the second parameter. –  Meryovi Mar 18 '11 at 19:25
1  
This would have been prevented if not using magic numbers :-) –  user420667 Mar 27 at 20:23
    
@user420667 You´re right. I´ll let the creator of the SPROC know that. :) –  Meryovi Mar 28 at 12:26
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2 Answers 2

up vote 16 down vote accepted

Use caution when you use this overload of the SqlParameter constructor to specify integer parameter values. Because this overload takes a value of type Object, you must convert the integral value to an Object type when the value is zero, as the following C# example demonstrates.

Parameter = new SqlParameter("@pname", Convert.ToInt32(0));

If you do not perform this conversion, the compiler assumes that you are trying to call the SqlParameter (string, SqlDbType) constructor overload.

Thanks Msdn :)

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I found it too just after posting the question. Thanks! :) –  Meryovi Mar 18 '11 at 19:37
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The 0 you are passing in is the type, not the value. 0 literals (and constant values) are allowed for any enum type - meaning the 0 of the underlying enum type, and are a better "match" than object, since it doesn't need boxing.

Personally, I would use;

Value = 0

perhaps in the object initializer.

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1  
Yeah, that's what I did to fix it, but wanted to ask anyway because I was curious. –  Meryovi Mar 18 '11 at 19:38
    
Nice Answer, saved me some trouble thanks! –  Ben Pretorius Jul 16 at 11:11
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