Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an intermediary object between my Entity Framework entities and a JSON object that I serialize/deserialize in order to import and export to a text file.

When I am exporting from the entity framework I use the following code to iterate through the entity types properties...If the property in the entity matches the property from an enum that I have, the property gets saved to the JSON object. This stops entity specific properties from cluttering up my JSON.

var blockProperties = typeof(FixedLengthBlock).GetProperties(BindingFlags.Public | BindingFlags.Instance);
foreach (var property in blockProperties)
{

    if (Enum.GetNames(typeof(ModuleSettingEnum)).Contains(property.Name.ToLower()) && property.GetValue((FixedLengthBlock)element, null) != null)
        blockJsonEntity.Properties.Add(property.Name, property.GetValue((FixedLengthBlock)element, null).ToString());
}

While the above code works, I cannot think of a similar way to do the opposite. When reading back from JSON I have the properties/values in a dictionary. I know that I can run through the properties of the EF Entity and search the dictionary if it contains a key like this:

var blockProperties = typeof(FixedLengthBlock).GetProperties(BindingFlags.Public | BindingFlags.Instance);
foreach (var property in blockProperties)
{
        if (block.Properties.ContainsKey(property.Name))
   {
     ???????What goes here??????
   }
}

How do I get the matched property into the newly created entity I've made to receive the information. I'd really like to avoid a large switch statement.

My Json object looks like this:

public class JsonEntity
{
    public string Name { get; set; }
    public string Type { get; set; }
    public Dictionary<string, string> Properties { get; set; }
    public List<JsonEntity> SubEntities { get; set; } 

    public JsonEntity()
    {
        Properties = new Dictionary<string, string>();

    }
}
share|improve this question
    
I think there is some relevant code missing here for those on the outside looking in to get a good picture of what entity you're serializing/deserializing into. In the section for ???????What goes here?????? are you trying to deserialize into the same type that you serialized from? If not, is there a map dictionary somehwere saying these properties map to these? Maybe it's a different type but the properties match exactly. –  Michael Perrenoud Oct 22 '12 at 18:42
    
@BigM, I originally made a mistake in the code I copied onto here. Yes, assume that I am trying to deserialize into the same entity I serialize into in the code above. In this example, they are both 'FixedLengthBlock'. 'block' is a JsonEntity, so if the EF entity property matches a key in the JsonEntity I would like the value of that dictionary key-pair to be inserted into the corresponding EF property. –  Scottingham Oct 22 '12 at 18:50

1 Answer 1

up vote 2 down vote accepted

Okay, so if we're deserializing into the same type let's try this:

var bindingFlags = BindingFlags.Public | BindingFlags.Instance;
var blockProperties = typeof(FixedLengthBlock).GetProperties(bindingFlags);
var newObj = Activator.CreateInstance(typeof(FixedLengthBlock))
foreach (var property in blockProperties)
{
    if (block.Properties.ContainsKey(property.Name))
    {
        var propertyInfo = newObj.GetType().GetProperty(property.Name, bindingFlags);
        if (propertyInfo == null) { continue; }
        propertyInfo.SetValue(newObj, block.Properties[property.Name]);
    }
}
share|improve this answer
    
Excellent! I only thing I had to add was a null parameter like so: propertyInfo.SetValue(newObj, block.Properties[property.Name], null); –  Scottingham Oct 22 '12 at 19:11
    
@Scottingham, glad I could be of assistance! –  Michael Perrenoud Oct 22 '12 at 23:25

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.