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When doing something like

// creating list1, adding items
LinkedList slist = new LinkedList();
slist = subList(list1, 2,5);

I will have a second object (a "copy" of the elements 2 to 5 of "list") returned by subList and contained in slist. However, I would like to have something that only gives me a "view" of list1, without creating a new object and without allocating new memory, for performance/memory reasons.

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1 Answer 1

up vote 11 down vote accepted

I think List#subList does exactly what you want:

Returns a view of the portion of this list between the specified fromIndex, inclusive, and toIndex, exclusive. (If fromIndex and toIndex are equal, the returned list is empty.) The returned list is backed by this list, so non-structural changes in the returned list are reflected in this list, and vice-versa.

List slist = list1.subList(2, 5);

Of course, a new (wrapper) object needs to be created, but the data structure for the list, and all the elements will be re-used. The wrapper just keeps track of the start and end pointers.

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Ah, so creating "slist" will only create a wrapper object? –  ptikobj Jan 12 '11 at 9:10
    
Yes, slist will need to have some memory allocated for it, but it does not maintain a copy of the original list, just pointers into it. –  Thilo Jan 12 '11 at 9:12
    
and this portion of allocated memory will not be very large compared to the list, right? it will probably only contain the "first" and "last" references of the sublist. –  ptikobj Jan 12 '11 at 9:13
1  
yes, that's right. The JavaDocs even go so far as to say "This method eliminates the need for explicit range operations (of the sort that commonly exist for arrays). Any operation that expects a list can be used as a range operation by passing a subList view instead of a whole list. ", implying that there are no performance issues. –  Thilo Jan 12 '11 at 9:16
1  
Looking at the source code, calling sublist.get(sublist.size()-1) will still use the efficient tail pointer of the linked list under the hood. So you lose nothing performance-wise, but you might miss the convenient interface getLast(). –  Thilo Jan 12 '11 at 10:29

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