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Is it possible to find out if two expressions are the same?

Like given the following four expressions:

        Expression<Func<int, bool>> a = x => false;
        Expression<Func<int, bool>> b = x => false;
        Expression<Func<int, bool>> c = x => true;
        Expression<Func<int, bool>> d = x => x == 5;

Then, at least we can see that:

  • a == b
  • a != c
  • a != d

But can I do anything to find this out in my code?

Took a peek in the msdn library, where it says that

Equals: Determines whether the specified Object is equal to the current Object. (Inherited from Object.)

which I guess means that at least the Expression class hasn't overrided the equals method to become Equatable? So how would you do this? Or am I asking too much here? :p

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marked as duplicate by nawfal, Fox32, Fls'Zen, Jean, Dominik Honnef Apr 27 '13 at 22:26

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.

    
If there is a MemberInfo involved there, I mean some method, property of field, then you can get the memberinfo first, and compute its hash –  nawfal Apr 21 '13 at 4:45

3 Answers 3

up vote 26 down vote accepted

You can have a look at the type ExpressionEqualityComparer that is used inside Linq to db4o. It implements the interface IEqualityComparer<T>, so it's usable for generic collections, as well as for a standalone usage.

It uses the type ExpressionComparison to compare two Expressions for equality, and HashCodeCalculation, to compute a hashcode from an Expression.

It all involves visiting the expression tree, so it can be pretty costly if you do it repeatedly, but it can also be quite handy.

The code is available under the GPL or the dOCL

For instance, here's your test:

using System;
using System.Linq.Expressions;

using Db4objects.Db4o.Linq.Expressions;

class Test {

    static void Main ()
    {
    	Expression<Func<int, bool>> a = x => false;
    	Expression<Func<int, bool>> b = x => false;
    	Expression<Func<int, bool>> c = x => true;
    	Expression<Func<int, bool>> d = x => x == 5;

    	Func<Expression, Expression, bool> eq =
    		ExpressionEqualityComparer.Instance.Equals;

    	Console.WriteLine (eq (a, b));
    	Console.WriteLine (eq (a, c));
    	Console.WriteLine (eq (a, d));
    }
}

And it indeed prints True, False, False.

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Did look promising, but what are these ExpressionComparison(a, b).AreEqual and HashCodeCalculation(expression).HashCode? –  Svish Mar 23 '09 at 12:50
    
You can browse the implementation, they're in the same folder. –  Jb Evain Mar 23 '09 at 12:53
    
I think I'll just try to find another way to solve what I am trying to figure out :p But your answer seems to provide a working solution, so I'll mark it as Accepted =) –  Svish Mar 23 '09 at 13:11
    
You have to pull in great swathes of code to get this to work,such as the reimplementation of ExpressionVisitor :( –  John Nolan Jan 3 '12 at 14:40
3  
@JohnNolan, you do. For .net 3.5, ExpressionVisitor is not exposed, so you have to roll your own. For .net 4.0, this code needs to be updated to new types of expressions. As it's not a built-in, it's not surprising it's quite a bit of work. –  Jb Evain Jan 3 '12 at 14:59

It strikes me that this might be difficult to do, except in the simplest of cases.

For example:

var numbers1 = Enumerable.Range(1, 20);
Expression<Func<int, IEnumerable<int>>> a = x => numbers1;
var numbers2 = Enumerable.Range(1, 20);
Expression<Func<int, IEnumerable<int>>> b = x => numbers2;

Technically, these are equal, but how could it be determined without evaluating the IEnuemrable returned in each expression?

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1  
I'm asking you guys here :p hehe. But yes, I can see the problem.. but I can also.. not see it. Cause like you said, technically those are in fact equal. And, at least I, would think that one expression tree should be comparable to another expression tree based on their nodes and data types. –  Svish Mar 23 '09 at 12:45
1  
In your example I think I might have considered those expressions unequal though, since they contain a reference to an object which are not the same... –  Svish Mar 23 '09 at 12:46
    
numbers1 or numbers2 will be serialized as a ConstantExpression node, whose values won't be equal. –  Jb Evain Mar 23 '09 at 12:48
    
@Jb: are Expressions serializeable? –  Svish Mar 23 '09 at 12:54
    
Nope, they're not. –  Jb Evain Mar 23 '09 at 13:12

As a lazy answer, you can check ToString() - it should at least indicate where they are clearly different (although it will include the var-name in there, so that would have to be the same).

For checking equivalence accurately... much harder - a lot of work, over a lot of different node types.

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Lol, now that may actually kind of work... :D –  Svish Mar 23 '09 at 12:53
1  
No, not every expression has a usable string representation. Convert for instance doesn't indicate which types it converts to. –  Jb Evain Mar 23 '09 at 12:55
1  
Exactly - I said it would find obviously wrong answers, but that is about it. You'd need to walk the tree properly, checking the actual operators used, etc, to do a thorough job. –  Marc Gravell Mar 23 '09 at 13:01

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