34

I have the following qustion:

How can I convert the following code snipped to Java 8 lambda style?

List<String> tmpAdresses = new ArrayList<String>();
for (User user : users) {
    tmpAdresses.add(user.getAdress());
}

Have no idea and started with the following:

List<String> tmpAdresses = users.stream().map((User user) -> user.getAdress());
2
  • 7
    You're almost there. Assuming your map lambda returns a String just add .collect(Collectors.toList()) to map(...).
    – Thomas
    Aug 8, 2018 at 13:15
  • 3
    Note: (User user) -> user.getAddress() can be written as user -> user.getAddress() or just User::getAddress
    – user85421
    Aug 8, 2018 at 13:24

4 Answers 4

81

You need to collect your Stream into a List:

List<String> adresses = users.stream()
    .map(User::getAdress)
    .collect(Collectors.toList());

For more information on the different Collectors visit the documentation.

User::getAdress is just another form of writing (User user) -> user.getAdress() which could as well be written as user -> user.getAdress() (because the type User will be inferred by the compiler)

0
6

It is extended your idea:

List<String> tmpAdresses = users.stream().map(user ->user.getAdress())
.collect(Collectors.toList())
2
  • 7
    You should add a new answer if its better/ alternative than the other one. Explain how its better. Aug 8, 2018 at 13:32
  • This was indeed helpful to get it from List<Map>, thanks. Jun 5, 2020 at 14:20
3

One more way of using lambda collectors like above answers

 List<String> tmpAdresses= users
                  .stream()
                  .collect(Collectors.mapping(User::getAddress, Collectors.toList()));
-3

You can use this to convert Long to String:

List<String> ids = allListIDs.stream()
                             .map(listid-> String.valueOf(listid))
                             .collect(Collectors.toList());
1
  • This doesn't attempt to answer the OPs question, though. OP is explicitly asking to map a User to its adress. Also how is your question different to the already existing ones?
    – Lino
    Oct 22, 2020 at 9:31

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