2

I have an object User defined as below

class User(){
    var id: Int? = null
    var name: String? = null}

For certain reasons, I have to create new object User of same parameters and I have to copy data from old to new type.

class UserNew(){
    var id: Int? = null
    var name: String? = null}

I was looking for easiest way to convert from old type to a new one. I want to do simply

var user = User()
var userNew = user as UserNew

But obviously, I am getting This cast can never succeed. Creating a new UserNew object and set every parameter is not feasible if I have a User object with lots of parameters. Any suggestions?

8
  • what is UserNew?
    – sasikumar
    Oct 22, 2018 at 6:25
  • Oh, just edited.
    – musooff
    Oct 22, 2018 at 6:27
  • just make a constructor in UserNew taking a User as a parameter. Problem solved.
    – jwenting
    Oct 22, 2018 at 6:27
  • @jwenting well, as I said that's not feasible if I have really lots of fields in User object
    – musooff
    Oct 22, 2018 at 6:29
  • Use a tool like modelmapper.org Oct 22, 2018 at 6:30

6 Answers 6

4

as is kotlin's cast operator. But User is not a UserNew. Therefore the cast fails.

Use an extension function to convert between the types:

fun User.toUserNew(): UserNew {
    val userNew = UserNew()
    userNew.id = id
    userNew.name = name
    return userNew
}

And use it like so

fun usingScenario(user: User) {
    val userNew = user.toUserNew()
2
  • i implemented your answer in below answer.
    – sasikumar
    Oct 22, 2018 at 6:52
  • As I mentioned in the question, this way is not feasible if I have lets say 50 fields instead of 2 (id and name). As most of people suggest, this is the only solution I suppose.
    – musooff
    Oct 22, 2018 at 6:56
2

If you don't want to write a boilerplate code, you can use some libraries that will copy values via reflection (for example http://mapstruct.org/), but it's not the best idea.

1

To achieve you can Simply use Gson and avoid boilerplate code:

var user = User(....)

val json = Gson().toJson(user)

val userNew:UserNew =Gson().fromJson(json, UserNew::class.java)
0
1

you should follow this logic for this case. note: @Frank Neblung answer i implemented

fun main(args: Array<String>) {
val user = User()
user.id = 10
user.name = "test"
var userNew = user.toUserNew()
println(userNew.id) // output is 10
println(userNew.name)// output is test
 }


class User() 
{
var id: Int? = null
var name: String? = null

fun toUserNew(): UserNew {
    val userNew = UserNew()
    userNew.id = id
    userNew.name = name
    return userNew
  }
}

  class UserNew() {
  var id: Int? = null
  var name: String? = null
  }
0

You have two options. Either create interface and implement it in both classes. then you can use this interface in both places (User,UserNew) If this is not what you want, i would use copy constructor in UserNew taking User as parameter, You can create new

NewUser nu = new UserNew(userOld)

if you have lots of properties answer from ppressives is way to go

0

To achieve that you can use the concept of inheritance:

https://www.programiz.com/kotlin-programming/inheritance

Example:

open class Person(age: Int) {
// code for eating, talking, walking
}

class MathTeacher(age: Int): Person(age) {
// other features of math teacher
}

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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