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if I run this C# code

int realInt = 3;  
string foo = "bar";  
Int32.TryParse(foo, out realInt); 

Console.WriteLine(realInt);  
Console.Read();

I get 0. And I would like to know why! Cause I cannot find any reason why it would. This forces me to make temp variables for every parsing. So please! Great coders of the universe, enlighten me!

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I formatted the code for you. Next time, if you are unsure about how to format something in the MarkDown editor, use the little toolbar above the text area. There's a code formatting option. – OregonGhost Jul 17 '09 at 8:31
    
Thanks for the help =) – Carl Bergquist Jul 17 '09 at 8:49
up vote 28 down vote accepted

It is "out", not "ref". Inside the method it has to assign it (without reading it first) to satisfy the meaning of "out".

Actually, "out" is a language concern (not a framework one) - so a managed C++ implementation could probably ignore this... but it is more consistent to follow it.

In reality; if the method returns false you simply shouldn't look at the value; treat it as garbage until it is next assigned. It is stated to return 0, but that is rarely useful.


Also - if it didn't do this (i.e. if it preserved the value); what would this print:

int i;
int.TryParse("gibber", out i);
Console.WriteLine(i);

That is perfectly valid C#... so what does it print?

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2  
An explanation as to why it is like this, is so that you can assert that the variable will always have been set in any code after the TryParse call, even if the variable was not initialized earlier in the code (so the compiler doesn't throw an error when you use the variable after the TryParse call; try doing the same with a function that uses the ref keyword.) – Blixt Jul 17 '09 at 8:16

The Int32.TryParse Method (String, Int32) doc says:

Converts the string representation of a number to its 32-bit signed integer equivalent. A return value indicates whether the conversion succeeded.

result

Type: System.Int32

When this method returns, contains the 32-bit signed integer value equivalent to the number contained in s, if the conversion succeeded, or zero if the conversion failed. The conversion fails if the s parameter is null reference (Nothing in Visual Basic), is not of the correct format, or represents a number less than MinValue or greater than MaxValue. This parameter is passed uninitialized.

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@Luke - look at the bit in bold... – Marc Gravell Jul 17 '09 at 8:08
    
@Marc: That second paragraph was added after I made the comment. (Comment deleted now.) – LukeH Jul 17 '09 at 8:17

Because the parameter is an out parameter you don't have to initialize realInt when you declare it, since the compiler can see that you're passing it to a method that is guaranteeded to set it to something (because of the "out").

Now, becuase it's an out parameter the TryParse is required to set it to something. It sets it to 0 becuase this is the default value for an int under most situations in C#.

You could write it as:

int realInt;
string foo="bar";
if(int.TryParse(foo,out realInt)==false)
{
  realInt=3;
}
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Better way of writing it would be just to put a ! operator at the beginning of the TryParse i.e. if (!Int32.TryParse(foo, out realInt)) – James Jul 17 '09 at 8:12

Because this is how the 'out' contract works. Whenever you pass an out param to a function, its the responsibility of the function to initialize it.

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public static class IntHelper
{
    public static bool TryParse(string s, ref int outValue)
    {
        int newValue;
        bool ret = int.TryParse(s, out newValue);
        if (ret) outValue = newValue;
        return ret;
    }
}
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Because (at least in C#) the method that takes one or more out parameters must guarantee that they write back to them. That way you do not need to initialize local fields in a method before passing them as out arguments to a method.

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My guess is that it's part of the C# spec:

10.5.1.3 Output parameters ... Within a method, just like a local variable, an output parameter is initially considered > unassigned and must be definitely assigned before its value is used.

Every output parameter of a method must be definitely assigned before the method returns.

If this is the case, you shouldn't rely on the resulting value.

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Since the second parameter to TryParse is an out parameter the TryParse method is forced to initialize the parameter. Had the parameter been ref instead of out you would get your desired behaviour. However, since the TryParse method only needs to ouput a number and not get any number as input out is the proper choice for the parameter.

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the MSDN documentation for Int32.TryParse states that if the conversion fails the result will always return 0.

You are usually supposed to either use a temporary result variable i.e.

int value;
bool succeeded = Int32.TryParse("astring", out value);
if (succeeded)
{
  // use value in some way
}

Or you just wrap the full method in an if statement

int value;
if (Int32.TryParse("astring", out value))
{
  // use value in some way
}

Personally I find the latter the better option.

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