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Another question, but it relates to this one: Deserializing JSON with Jackson - Why JsonMappingException "No suitable constructor"?

This time I am getting a different error, namely that the Jackson deserializer complains that I do not have a "single-String constructor/factory method" in my class ProtocolContainer.

However, if I add a sing-String constructor, like this:

public ProtocolContainer(String json) {}

the Exception does indeed disappear, but the ProtocolContainer that I expected to be there is all "empty", ie all its Properties are in their initial state, and not populated according to the JSON-string.

Why is that?

Im pretty sure you shouldn't need a String constructor, and if you do that you shouldnt have to populate the properties in that constructor, right?

=)

share|improve this question

The exception suggests that the JSON value you have is a String, something like:

{ "protocol" : "http" }

or perhaps "double-quoted JSON":

"\"{\"property\":\"value\"}\"

when trying to bind like:

ProtocolContainer p = mapper.readValue(json, ProtocolContainer.class);

in which case Jackson has no properties to map, just a String. And in that case it does indeed require either a custom deserializer, or a creator method. Creator methods are either single-string-argument constructors, or single-string argument static methods: the difference being that only constructors can be auto-detected (this is just a practical short-cut as there can only be one such constructor, but multiple static methods).

Your solution does indeed work, just thought I'd give some background as to what is happening.

Reading through it second time it seems more likely you have double-quoted stuff (JSON in JSON): another thing to consider is to get plain JSON, if possible. But maybe that's hard to do.

share|improve this answer
    
Thx for the info. However, im not so sure its what you think here... the JSON string looks fine to me, property and value both in there... =) – Ted Dec 4 '11 at 19:32
1  
To know for sure one would need to see JSON... agreed, I was speculating heavily. :) – StaxMan Dec 6 '11 at 1:13
    
Yes, and the JSON string is indeed printed out in the question I linked to at the top. Maybe I should have pointed that out more clearly =) – Ted Dec 7 '11 at 9:03
    
Ah. Ok, I was too lazy to check into that, sorry. :) – StaxMan Dec 7 '11 at 15:55
1  
I was facing the same issue, your answer led me to re-verify JSON string; found it to be having incorrectly quoted. Thanks. – harsh Dec 19 '12 at 5:52
up vote 10 down vote accepted

Oh, so once again I found out the answer AFTER I posted this question (even though I tried a lot of things before posting).

What I did to solve this was to use the @JsonCreator annotation. I simply annotated my static Create method, like this:

@JsonCreator
public static ProtocolContainer Create(String jsonString)
{

    ProtocolContainer pc = null;
    try {
        pc = mapper.readValue(jsonString, ProtocolContainer.class);
    } catch (JsonParseException e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    } catch (JsonMappingException e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    } catch (IOException e) {
        // TODO Auto-generated catch block
        e.printStackTrace();
    }

    return pc;
}

And then problem solved =)

share|improve this answer

It seems that you are sending to the server a string instead of an object.

Instead of sending the string to be parsed on the server side, you can do it easier just by sending JSON.parse(stringObject), and Jackson will deserialize it normally as expected.

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