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I have some objects with a bunch of fields and I find myself having to implement GetHashCode and Equals. It is painful to go though each field manually so I wrote them like this:

public override int GetHashCode()
{
    int hash = 17;
    foreach (PropertyInfo p in GetType().GetProperties())
    {
        hash = hash * 23 + p.GetValue(this, null).GetHashCode();
    }
    return hash;
}

public override bool Equals(object obj)
{
    foreach (PropertyInfo p in GetType().GetProperties())
    {
        if (p.GetValue(obj, null) != p.GetValue(this, null))
            return false;
    }
    return true;
}

Other than speed considerations why shouldn't I implement them like this?

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Apart from speed issues, note that not all correct implementations of GetHashCode and Equals are equivalent to the above algo. Btw, there are several issues with the posted code. You could dereference null in multiple places. Additionally, your version of Equals uses reference equality between corresponding properties, which is not the most common idiom. –  Ani Dec 7 '10 at 16:53
    
Funny you should ask, it is. –  stimms Dec 7 '10 at 16:53
    
Use ReSharper -- it'll generate correct implementations of Equals and GetHashCode for you. –  Tim Robinson Dec 7 '10 at 16:54
1  
Another bug - you're checking the properties of this.GetType(), so inheritence equivalence can introduce odd behavior (eg, aManager.Equals(anEmployee) will test different properties than anEmployee.Equals(aManager)). Also, what happens when you do anApple.Equals(anOrange)? I haven't tested, but seems like you'll have some odd behavior when calling Equals using unrelated types. –  Chris Shaffer Dec 7 '10 at 16:58
    
There is a non-prime number in the hash caclulation. I assume you meant to use 33. :-) –  Christian Hayter Dec 7 '10 at 17:02

4 Answers 4

up vote 7 down vote accepted

Here are a few reasons I would avoid this route

  • It's much more reliable to compare fields instead of properties
  • Your code makes the incorrect assumption that two objects are considered to be equal if they are the same reference (you are using ==). This is not the case as many types implement value equality via .Equals. It is very possible and legal for two different references to be considered Equals and would beat your test.
  • If this form of Equality is used in a wide spread manner through your code base it will very easily lead to infinite recursion when the object graph has cycles.
  • The GetHashCode method ignores that a property could be null

Below is a concrete example of a type which would cause infinite recursion in your application

class C1 {
  public object Prop1 { get; set; }
};

var local = new C1();
local.Prop1 = local;
var x = local.GetHashCode();  // Infinite recursion
share|improve this answer
    
Infinite recursion is a very good point –  stimms Dec 7 '10 at 17:06

Any value-type properties will be boxed by the GetValue calls, which means that they'll never compare as equal even if they have the same value.

You can avoid this by calling the static Equals(x,y) method -- which will then defer to the virtual x.Equals(y) method if necessary -- rather than using the non-virtual == operator, which will always test reference equality in this case.

if (!object.Equals(p.GetValue(obj, null), p.GetValue(this, null)))
    return false;
share|improve this answer
    
Typo fixed, but != left to keep your answer valid –  stimms Dec 7 '10 at 17:00
    
a.Equals(b) will throw if a is null; Object.Equals(a, b) will return false. –  Tim Robinson Dec 7 '10 at 17:01
    
@Tim: Good point. Updated. –  LukeH Dec 7 '10 at 17:05
  1. It may give a poorly conditioned hash (not all properties are equal in determining object identity.)

  2. As currently implemented, the hash computation may overflow.

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If your object is equal only if all properties are equal then go ahead. But I doubt it. E.g an employee is unique by it's employee Id. You will not be able to compare changes in employee data if you do this.

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