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Why C# compiler does not allow you to compile this:

int a;
Console.WriteLine(a);

but does allow you to compile:

MyStruct a;
Console.WriteLine(a);

where MyStruct is defined as:

struct MyStruct
{

}

Update: in the firsts case the error is:

Error 1 Use of unassigned local variable 'a'

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2  
Neither example compiles for me (.NET 3.5). Also, 'int a;' does not declare a struct. –  Anna Lear Nov 24 '10 at 15:31
1  
@Anna: Are you claiming that int/Int32 isn't a struct? –  LukeH Nov 24 '10 at 15:36
    
it's a shame we have to guess for the error message. –  Henk Holterman Nov 24 '10 at 15:37
    
@Henk Holterman: I've amended my question with the error message. –  mgamer Nov 24 '10 at 15:44
    
@LukeH: I didn't think it was, but I stand corrected. Learned something today. :) –  Anna Lear Nov 24 '10 at 15:52

3 Answers 3

up vote 8 down vote accepted

C# does not allow reading from uninitialized locals. Here's an extract from language specification that applies in this context:

5.3 Definite assignment

...

A struct-type variable is considered definitely assigned if each of its instance variables is considered definitely assigned.


Clearly, since your struct has no fields, this isn't an issue; it is considered definitely assigned. Adding a field to it should break the build.

On a somewhat related note:

11.3.8 Constructors

No instance member function can be called until all fields of the struct being constructed have been definitely assigned.

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This happens because an int local variable (unlike an int as a class or struct member) has no default value. The struct output in your example only works because it has no members.

Default values discussed here.

This would work:

struct MyStruct
{
    int c;
}

int a = new int();
MyStruct b = new MyStruct();

Console.WriteLine(a);
Console.WriteLine(b);
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The compiler simply doesn't like the fact that your integer is used before being initialized.

Error   5   Use of unassigned local variable 'a'    
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