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I need to convert a certain JSON string to a Java object. I am using Jackson for JSON handling. Here is my Java class-

public class RequestClass {

String email_id;
String password;

public String getEmailId() {
    return email_id;
}

public String getPassword() {
    return password;
}

@Override
public String toString(){

    return email_id+" "+password;
}

} Here is the web service code-

    @POST
@Consumes(MediaType.APPLICATION_JSON)
@Produces(MediaType.APPLICATION_JSON)
@Path("/dbconnect3")
public String connectToDbTest3(RequestClass rc) {
    System.out.println("connectToDbTest3");
    String email_id = rc.getEmailId();
    String password = rc.getPassword();
    System.out.println(email_id+" "+password);

}

This throws exception UnrecognizedPropertyException with message "Unrecognized field "email_id" (Class jaxrs.RequestClass), not marked as ignorable".

In case i am not using the annotation @JsonIgnoreProperties(ignoreUnknown = true) in my Java class, the output I am getting on line 09 is -

null myPassword

So I don't want to ignore Unrecognized field instead I want to get the value of email_id.

Please tell why It shows email_id as Unrecognized field while password is fetched successfully.

Thanks in advance

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It should be @JsonProperty("email_id") answer updated –  Kris Mar 2 '13 at 5:54

1 Answer 1

Just add JsonProperty("email_id") before the getEmailId()

like given below

@JsonProperty("email_id")
public String getEmailId() {
return email_id;
}
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