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Are parameters evaluated in order when passed into a method?

Say I have

void foo (int x, int y)

and call it by:

foo(y: genNum(), x: genNum())

Does C# guarantee the evaluation order of x and y in this case?

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marked as duplicate by Peter Ritchie, Bot, nandeesh, Jürgen Thelen, Donal Fellows Aug 28 '12 at 18:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Interesting theoretical question, but horrible idea to code this way in practice. If you do, please include a link to this question for those that have to maintain the code in the future. –  Eric J. Aug 27 '12 at 19:30
    
The question should be closed because, as pointed out in some answers, it's a duplicate of multiple questions. –  Tipx Aug 27 '12 at 19:43
    
Might not be a duplicate. My question specifically refers to the evaluation order of named argument passing. (The linked question doesn't obviously address my concern.) –  Thomas Eding Aug 28 '12 at 17:33

3 Answers 3

up vote 7 down vote accepted

According to the specification, arguments are always evaluated from left to right. Unfortunately, there are a few bugs in some corner cases in C# 4.0. See Eric Lippert's post at Are parameters evaluated in order when passed into a method? for more details.

As an aside, this is probably bad practice. If you want to guarantee the order that the arguments are evaluated, capture the result in a local variable first and then pass the results to the consuming method like:

int capturedY = genNum(); //It is important that Y is generated before X!
int capturedX = genNum();
foo(capturedX, capturedY);

I can't think of a good reason to not do it that way.

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According to the C# In Depth – Optional Parameters and Named Arguments:

...The second of these calls reverses the order of the arguments, but the result is still the same, because the arguments are matched up with the parameters by name, not position.

In your case first will be executed y and after x, as it appears first (from the left) in the function declaration.

The fact that it's really ends up like a second parameter, is an implementation detail of C# compiler that implements named parameters.

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"The result is still the same" is only true if the call to genNum contains no side-effects. –  Pete Baughman Aug 27 '12 at 19:42
    
@PeteBaughman: Skeet, had no idea about the code written by OP, which is very dangerous and not productive. –  Tigran Aug 27 '12 at 19:45

This is not an answer, Just to show the side effect.

public void Test()
{
    foo(y: genNum(), x: genNum());
}

int X=0;
int genNum()
{
    return ++X;
}

void foo(int x, int y)
{
    Console.WriteLine(x);
    Console.WriteLine(y);
}

OUTPUT:

2
1
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