24

I have an class A with multiple List members.

class A {
    List<X> xList;
    List<Y> yList;
    List<Z> zList;
    
    // getters and setters
}

class X {
     String desc;
     String xtype;
    
     // getters and setters    
}

class Y {   
    String name;
    String ytype;
    
    //getters and setters
}

class Z {
    String description;
    String ztype;
    
    // getters and setters    
}

And a class B with just 2 attributes:

class B {
    String name;
    String type;     
}

I need to iterate through the various lists in class A and create class B object and add to a list like this:

public void convertList(A a) {  
   List<B> b = new ArrayList<>();
    
    if (!a.getXList().isEmpty()) {
      for (final X x : a.getXList()) {
           b.add(new B(x.getDesc(), x.getXType()));
      }
    }
    
    if (!a.getYList().isEmpty()) {
      for (final Y y : a.getYList()) {
           b.add(new B(y.getName(), y.getYType()));
      }
    }
    
    if (!a.getZList().isEmpty()) {
      for (final Z z : a.getZList()) {
           b.add(new B(z.getDescription(), z.getZType()));
      }
    }    
}

As the if and for loops are repeated here.

How can I achieve this using Java streams?

Note: There is no relation between the classes X, Y and Z and there is no common interface.

  • have you tried using FlatMap, if not have a look here. stackoverflow.com/questions/23112874/… – vikas kumar May 25 at 10:10
  • Does X,Y and Z extend the same base class or implement the same interface containing both getName and getType? – Joakim Danielson May 25 at 10:11
  • Address the question properly because you are having multiple lists but passing x,z,y as a type but expecting a list of B. – rahul sharma May 25 at 10:16
  • 1
    @JoakimDanielson Updated the question. There is no base class or interface. The attributes are all different in those classes. I need to convert to Class B based on the getters of each class. – DarkCrow May 25 at 10:27
18
1

Since your X, Y and Z types don't have a common super-type, you have to convert them into some common type, such as Map.Entry<String,String>.

You can create a Stream of all pairs of names and types, and then map it to instances of B:

List<B> b =
    Stream.of(
        a.getXList().stream().map(x -> new SimpleEntry<>(x.getDesc(),x.getXType())),
        a.getYList().stream().map(y -> new SimpleEntry<>(y.getName(),y.getYType())),
        a.getZList().stream().map(z -> new SimpleEntry<>(z.getDescription(),z.getZType())))
          .flatMap(Function.identity())
          .map(e -> new B(e.getKey(), e.getValue()))
          .collect(Collectors.toList());

Or directly generate B instances:

List<B> b =
    Stream.of(
        a.getXList().stream().map(x -> new B(x.getDesc(),x.getXType())),
        a.getYList().stream().map(y -> new B(y.getName(),y.getYType())),
        a.getZList().stream().map(z -> new B(z.getDescription(),z.getZType())))
          .flatMap(Function.identity())
          .collect(Collectors.toList());
| improve this answer | |
  • What would be the point of generating a SimpleEntry and then mapping it to B? – Hans-Peter Störr May 30 at 6:42
14
1

You can use Stream.concat() like following

public List<B> convertList (A a) {
    return Stream.concat(Stream.concat(a.getXList().stream().map(x -> new B(x.getDesc(), x.getXType()))
            , a.getYList().stream().map(y -> new B(y.getName(), y.getYType())))
            , a.getZList().stream().map(z -> new B(z.getDescription(), z.getZType()))).collect(Collectors.toList());
}
| improve this answer | |
  • 3
    @Hadi J I'm getting Bad return type in lambda expression. B cannot be converted to R – DarkCrow May 25 at 11:02
  • 1
    I have run this version in my local machine it works for me – janith1024 May 25 at 11:11
  • 2
    My bad I had close braces at the wrong place. This looks good. Thanks! – DarkCrow May 25 at 11:32
7
0

Since you don't have a common interface, you would have to use a forEach method to iterate through each list.

a.getXList().forEach(i -> b.add(new B(i.getDesc(), i.getXType())));
a.getYList().forEach(i -> b.add(new B(i.getName(), i.getYType())));
a.getZList().forEach(i -> b.add(new B(i.getDescription(), i.getZType())));
| improve this answer | |
  • OP needs java streams answer you can mention in your answer for non-stream answer. – Eklavya May 26 at 19:10
5
0

You are using the different property for X, Y, Z class, and not having common interface, you can add one by one in the list.

b.addAll(a.getXList().stream().map(x ->new B(x.getDesc(), x.getXType())).collect(Collectors.toList()));
b.addAll(a.getYList().stream().map(y ->new B(y.getName(), y.getYType())).collect(Collectors.toList()));
b.addAll(a.getZList().stream().map(z ->new B(z.getDescription(), z.getZType())).collect(Collectors.toList()));
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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