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I can't modyfing element of List this way:

for (String s : list)
{
   s = "x" + s;
}

After execution this code elements of this list are unchanged How to achieve iteration with modyfing through List in the simplest way.

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7 Answers 7

Since String objects are immutable, you cannot change the values you're iterating over. Furthermore, you cannot modify the list you're iterating over in such a loop. The only way to do this is to iterate over the list indexes with a standard loop or to use the ListIterator interface:

for (int i = 0; i < list.size(); i++)
{
    list.set(i, "x" + list.get(i));
}

for (ListIterator i = list.listIterator(); i.hasNext(); )
{
    i.set("x" + i.next());
}
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No, using the list index is not the only way and accessing e.g. a long linked list with an elements index may perform very poorly. If you want to iterate and at the same time modify a list, using an Iterator or ListIterator is better. –  jarnbjo Jan 31 '11 at 14:03
    
so I back here as I've thought to standard loop. –  j2j Jan 31 '11 at 14:12
1  
@Gabe: Too bad that stackoverflow has turned to be about being the first one to answer just to harvest reputation points. It doesn't seem to matter if the answer is correct anymore. –  jarnbjo Jan 31 '11 at 14:35
1  
@Gabe, The problem (in the question) is that the OP is trying to modify the List through a normal Iterator, which of course does not work. Your ListIterator example solves this. The OP might also be confused about String immutability but that is not important (because it does not suggest a solution) - The List still needs to be modified. Referring to String immutability just introduces more confusion. –  finnw Jan 31 '11 at 16:47
1  
@finnw: The root of the problem is that String is immutable. Had the OP been using a List<StringBuffer>, this question would have never shown up in the first place. Whether the OP is "trying" to mutate a string or modify a list is not a question we can answer because he could think that s = "x" + s; mutates the string just as easily as he could think that it modifies the list. –  Gabe Jan 31 '11 at 17:15

Strings are immutable beasts, so I can recommend to follow this philosophy and create new list instead modifying one:

List<String> mappedList = new ArrayList<String>();

for (String s : list) {
    mappedList.add("x" + s);
}

I believe, that this will make your code easier to understand and maintain.

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interesting idea. –  j2j Jan 31 '11 at 14:12
    
The list is modifiable, so there is no need to create a new one. –  finnw Jan 31 '11 at 15:22
    
@finnw: you can just pretend that it's not modifiable :) or if you want, you can make it unmodifiable like this: Collections.unmodifiableList(list). I just encourage in this answer to write more side-effect free code. –  tenshi Jan 31 '11 at 15:32

Java strings are immutable, hence they cannot be modified. Further, if you wish to modify a list use the iterator interface.

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1  
The only modification the Iterator interface allows is deletion. The ListIterator interface, on the other hand, has set() and add() methods. –  Michael Borgwardt Jan 31 '11 at 14:03
    
You're right of course, good clarification. –  Johan Sjöberg Jan 31 '11 at 14:07

As others have pointed out:

  • You can't modify strings in Java, so s = "x" + s will create a new string (which will not be contained in the list)
  • Even if you could, the variable s is a local variables, which, when assigned to, does not affect the values contained in the list.

The solution is in this case to use a StringBuilder which represents a string which you can actually modify, or to use a ListIterator as @Michael Borgwardt and @jarnbjo points out.


Using a StringBuilder:

List<StringBuilder> someStrings = new LinkedList<StringBuilder>();
someStrings.add(new StringBuilder("hello"));
someStrings.add(new StringBuilder("world"));

for (StringBuilder s : someStrings)
    s.insert(0, "x");

Using a ListIterator:

List<String> someStrings = new LinkedList<String>();
someStrings.add("hello");
someStrings.add("world");

for (ListIterator<String> iter = someStrings.listIterator(); iter.hasNext();)
    iter.set("x" + iter.next());

ideone.com demo

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I prefer to use for with iterators (split across multiple lines). while i much the same, but the iterator has an overlarge scope. And braces, of course. –  Tom Hawtin - tackline Jan 31 '11 at 14:13
    
Ah, good point. –  aioobe Jan 31 '11 at 14:15

In your loop you're just modifying the local copy of the String. A better alternative would be to use the iterator of the list, and replace the current position of the list.

Edit, Oops, way to slow.

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You can't modify a String element of a List that way, but a StringBuilder would work just fine:

for (StringBuilder sb : list) sb.append("x");

The same is true for other primitive vs reference situations and the for-each loop. In the loop, the Iterable is immutable, but the state of items in it is not - primitives (like String) do not have state and hence you're only modifying a local copy, but references can have state and hence you can mutate them via any mutator methods they might have (e.g., sb.append("x")).

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Something like this should do the job:

public static void main(String[] args) throws Exception {
    final List<String> lst = Arrays.asList("a", "b", "c");
    for(final ListIterator<String> iter = lst.listIterator(); iter.hasNext(); ) {
        final String s = iter.next();
        iter.set(s + "x");
    }
    System.out.println(lst);
}
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1  
Why declare an extra local variable s, and why make it final? –  aioobe Jan 31 '11 at 14:18
1  
@aioobe: Out of habit; I make it a point to declare everything as final unless needed otherwise. Similarly with variables. Plus I love making those who do premature optimization cringe. ;) –  Sanjay T. Sharma Jan 31 '11 at 14:33
    
Hahah, fair enough! –  aioobe Jan 31 '11 at 14:37
    
I always declare a variable to contain the result of Iterator.next() at the top of the block, to avoid bugs where next() is not called or is called more than once in the body of the loop. –  finnw Jan 31 '11 at 15:23
1  
@finnw: My rule of thumb is to give variables the lowest possible visibility. Declaring the variable at the top of the block makes it visible to the block plus the other code that follows. –  Sanjay T. Sharma Jan 31 '11 at 15:42

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