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Ignoring the ResolveUsing overloads that take an IValueResolver, and looking only at these 2 methods:

void ResolveUsing(Func<TSource, object> resolver);
void MapFrom<TMember>(Expression<Func<TSource, TMember>> sourceMember);

The main difference between these 2 seems to be that ResolveUsing takes a Func<TSource, object>, whereas MapFrom takes an Expression<Func<TSource, TMember>>.

However in client code that actually uses one of these methods with a lambda expression, they seem to be interchangeable:

Mapper.CreateMap<SourceType, DestType>() // uses ResolveUsing
   .ForMember(d => d.DestPropX, o => o.ResolveUsing(s => s.SourcePropY));

Mapper.CreateMap<SourceType, DestType>() // uses MapFrom
   .ForMember(d => d.DestPropX, o => o.MapFrom(s => s.SourcePropY));

So what ultimately is the difference between the above 2 choices? Is one faster than the other? Is one a better choice than the other and if so, when / why?

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3 Answers 3

up vote 14 down vote accepted

In the past I had a long email exchange on the mailing list with the author of Automapper. MapFrom will do null checks all the way trough the expression:

So you can do opt => opt.MapFrom(src => src.SomeProp.Way.Down.Here.Somewhere) and each level will get checked for nulls (as it already does for flattening).

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+1, this link is extremely helpful, thanks. –  danludwig Feb 15 '13 at 12:34
    
Info from that link: MapFrom is intended for redirecting source members - things like ForMember(dest => dest.Foo, opt => opt.MapFrom(src => src.Bar)). MapFrom has all of the null-checking that flattening has, so it can be thought of as redirecting the flattening algorithm. ResolveUsing is for pretty much anything else, any additional custom logic beyond member access. It's a Func<> instead of an Expression<Func<>>, so you don't get null checking. –  Mightymuke Feb 15 '13 at 18:07

MapFrom has a few extra smarts. For example (from the mailing list):

In MapFrom, I try to be smart about digging in to child properties (much like the normal flattening does). MapFrom is an attempt to mimic flattening, with an added bit of allowing redirection. ResolveUsing doesn't have this behavior.

I'm not sure if this is fully documented anywhere (apart from in the source code).

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1  
So then it seems as long as you are mapping scalars and not complex objects, they are functionally the same. I wonder if ResolveUsing is faster because of the extra smarts in MapFrom.....? –  danludwig Feb 14 '13 at 21:52
1  
Possibly, although I don't think any official performance tests have been done. If its important enough for you, it shouldn't take you long to set up a couple of tests for your particular scenario. –  Mightymuke Feb 14 '13 at 22:05
1  
Not that important. I just have calls all over where one or the other is used, with no real consistency. Wanted to become less ignorant about it, so posted this question. –  danludwig Feb 15 '13 at 12:33

According to the source code, ResolveUsing is more complicated. The source value can be any object; therefore, you can use any value you want to fill the destination member, such as int or bool that you get by "Resolving" the given object. However, MapFrom only uses member to map from.

/// <summary>
/// Resolve destination member using a custom value resolver callback. Used instead of MapFrom when not simply redirecting a source member
/// This method cannot be used in conjunction with LINQ query projection
/// </summary>
/// <param name="resolver">Callback function to resolve against source type</param>
void ResolveUsing(Func<TSource, object> resolver);

/// <summary>
/// Specify the source member to map from. Can only reference a member on the <typeparamref name="TSource"/> type
/// This method can be used in mapping to LINQ query projections, while ResolveUsing cannot.
/// Any null reference exceptions in this expression will be ignored (similar to flattening behavior)
/// </summary>
/// <typeparam name="TMember">Member type of the source member to use</typeparam>
/// <param name="sourceMember">Expression referencing the source member to map against</param>
void MapFrom<TMember>(Expression<Func<TSource, TMember>> sourceMember);
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