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So far, reflection seems to be the only way to dynamically check if two objects are the same. You would do this by iterating through the object's members and checking for which ones contain a different value. However, research has told me that reflection is bad on performance when used this way.

If someone can confirm here whether or not reflection is indeed not a good choice for what I need to do, perhaps there is an alternative?

Note that, whatever route I go, I need the solution to be dynamic. This means no overriding of Equals and then comparing each property one by one. If it's dynamic, I can write one method that will work for all types.

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You need to refine your definition of "same" and "performance". –  mathieu Jun 22 '12 at 12:37
    
Otherwise I would propose you to serialize those objects to string (JSON, XML...) and compare the strings for equality. –  mathieu Jun 22 '12 at 12:38
    
Reflection is not black magic. Its not always "slow". its slower than some things, but sometimes its the right tool to use. –  Ryan Bennett Jun 22 '12 at 14:30
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Reflection is a good way to do it. So is writing your own object hashing method. If you write a hashing method that looks at all properties that need to be compared and makes a hash out of it, it should be a pretty fast comparision. You'll probably need to use reflection for that as well. Sort of an override of object.GetHashCode() but do not take into account which reference is being looked at - just values.

Try something - then decide whether performance is a problem afterwards.

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If you were going to write a hashing method and use reflection, you might as well just override Equals or use reflection. –  joelmdev Jun 22 '12 at 19:38
    
yeah... essentially reflection is the answer here if you need it to be dynamic. –  Ryan Bennett Jun 22 '12 at 19:45
    
Even if two objects hashes are equal, that doesn't mean all the members are. You'd be able to eliminate a vast majority of inequalities more quickly, but you can't avoid the memberwise comparison for equality with any sort of lossy algorithm like a hash. –  jswolf19 Aug 1 '12 at 0:11
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