106
ArrayList<Object> list = new ArrayList<Object>();
list.add(1);
list.add("Java");
list.add(3.14);
System.out.println(list.toString());

I tried:

ArrayList<String> list2 = (String)list; 

But it gave me a compile error.

3
  • 5
    Why do you want to do that? I mean its not safe. Have a look at the example.
    – athspk
    Jan 3, 2011 at 1:00
  • 6
    You're putting non-strings into the list. What is your expectation of what happens if you force them to be strings?
    – Ben Zotto
    Jan 3, 2011 at 1:01
  • 5
    I assume you meant: ArrayList<String> list2 = (ArrayList<String>)list; Jan 3, 2011 at 1:05

11 Answers 11

152

Since this is actually not a list of strings, the easiest way is to loop over it and convert each item into a new list of strings yourself:

List<String> strings = list.stream()
   .map(object -> Objects.toString(object, null))
   .collect(Collectors.toList());

Or when you're not on Java 8 yet:

List<String> strings = new ArrayList<>(list.size());
for (Object object : list) {
    strings.add(Objects.toString(object, null));
}

Or when you're not on Java 7 yet:

List<String> strings = new ArrayList<String>(list.size());
for (Object object : list) {
    strings.add(object != null ? object.toString() : null);
}

Note that you should be declaring against the interface (java.util.List in this case), not the implementation.

8
  • 6
    I like how null values are preserved this this implementation.
    – user166390
    Jan 3, 2011 at 1:12
  • 4
    If you use String.valueOf(object), you won't have to do the object != null ? object.toString() : null thing
    – user219882
    Nov 28, 2012 at 10:24
  • 2
    @Tomas: it would add a string with value "null" instead of the literal null. It depends further on the business requitements whether that's desireable or not. For me, it wouldn't have been acceptable at all as it introduces a potentially major bug.
    – BalusC
    Nov 28, 2012 at 11:37
  • 1
    @Tomas: "null" is not null at all. The null has a special meaning in Java. It makes no sense to be forced to do if (item.equals("null")) when checking for that afterwards.
    – BalusC
    Nov 28, 2012 at 11:49
  • 2
    @Tomas: you're only defeating the strong typing nature of Java this way. But as said, it depends on the business requirements whether that's desireable. For me, that's simply unacceptable. Do whatever you want and the time will teach :)
    – BalusC
    Nov 28, 2012 at 11:53
16

It's not safe to do that!
Imagine if you had:

ArrayList<Object> list = new ArrayList<Object>();
list.add(new Employee("Jonh"));
list.add(new Car("BMW","M3"));
list.add(new Chocolate("Twix"));

It wouldn't make sense to convert the list of those Objects to any type.

1
  • 1
    Unless they have Object#toString() method overridden. However, the whole type conversion from X to String for other purposes than human presentation does indeed not make much sense.
    – BalusC
    Jan 3, 2011 at 1:17
15

Using Java 8 you can do:

List<Object> list = ...;
List<String> strList = list.stream()
                           .map( Object::toString )
                           .collect( Collectors.toList() );
15

You can use wildcard to do this as following

ArrayList<String> strList = (ArrayList<String>)(ArrayList<?>)(list);
13

If you want to do it the dirty way, try this.

@SuppressWarnings("unchecked")
public ArrayList<String> convert(ArrayList<Object> a) {
   return (ArrayList) a;
}

Advantage: here you save time by not iterating over all objects.

Disadvantage: may produce a hole in your foot.

12

Using guava:

List<String> stringList=Lists.transform(list,new Function<Object,String>(){
    @Override
    public String apply(Object arg0) {
        if(arg0!=null)
            return arg0.toString();
        else
            return "null";
    }
});
8

Here is another alternative using Guava

List<Object> lst ...    
List<String> ls = Lists.transform(lst, Functions.toStringFunction());
5

Your code ArrayList<String> list2 = (String)list; does not compile because list2 is not of type String. But that is not the only problem.

0

Using Java 8 lambda:

ArrayList<Object> obj = new ArrayList<>();
obj.add(1);
obj.add("Java");
obj.add(3.14);

ArrayList<String> list = new ArrayList<>();
obj.forEach((xx) -> list.add(String.valueOf(xx)));
0

With Java Generics Takes a list of X and returns a list of T that extends or implements X, Sweet!

    // the cast is is actually checked via the method API
@SuppressWarnings("unchecked")
public static <T extends X, X> ArrayList<T> convertToClazz(ArrayList<X> from, Class<X> inClazz, Class<T> outClazz) {
    ArrayList<T> to = new ArrayList<T>();
    for (X data : from) {
        to.add((T) data);
    }
    return to;
}
0

A simple solution:

List<Object> lst  =listOfTypeObject;   
ArrayList<String> aryLst = new ArrayList<String>();
    for (int i = 0; i < lst.size(); i++) {
        aryLst.add(lst.get(i).toString());
    }

Note: this works when the list contains all the elements of datatype String.

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