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For example

List<string> name_list1 = new List<string>();
List<string> name_list2 = new List<string>();

later in the code:

name_list1.Add("McDonald");
name_list1.Add("Harveys");
name_list1.Add("Wendys");

name_list2 = name_list1; // I make a copy of namelist1 to namelist2

So, from this point I would like to keep adding element or making changes in name_list2 without affecting name_list1. How do I do that?

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3 Answers 3

up vote 24 down vote accepted
name_list2 = new List<string>(name_list1);

This will clone the list.

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+1 - Eloquent, I like it when the new operator is used like this. –  Travis J Nov 19 '12 at 3:30
    
This is a nice, clean solution. Let me just add for clarification that if you do this, you shouldn't bother to initialize name_list2 with the new List<string>() constructor a few lines above, as you'll be creating an object just to throw it away. Not a huge deal, but a bad coding habit to get into. –  adv12 Nov 19 '12 at 3:44
1  
this still references to name_list1 –  Dev Sep 23 at 15:26
    
@Dev No, it doesn't –  Inisheer Sep 23 at 15:30
    
@Inisheer I was doing thi and it affected listExport after that listStructuresExport = new List<StructuresDS>(listExport); listStructuresExport.ForEach(val => val.term = SortTerm(val.term)); listStructuresExport.ForEach(val => val.term = ProcessTerms(val.term)); –  Dev Sep 23 at 15:56
name_list2 = new List<string>(name_list1); // Clone list into a different object

At this point, the two lists are different objects. You can add items to list2 without affecting list1

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The problem is the assignment. Until the assignment name_list2 = name_list1;, you have two different List objects on the heap pointed to by the variables name_list1 and name_list2. You fill up name_list1, which is fine. But the assignment says, "make name_list2 point to the same object on the heap as name_list1." The List that name_list2 used to point to is no longer accessible and will be garbage collected. What you really want is to copy the contents of name_list1 into name_list2. You can do this with List.AddRange. Note that this will result in a "shallow" copy, which is fine for the example you cite, where the list contents are strings, but may not be what you want when the list members are more complex objects. It all depends on your needs.

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This answer explains what's going on a bit more than the others I've read so far, but I agree that the name_list2 = new List<string>(name_list1); solution proposed by others is probably a cleaner way of actually doing the copy. –  adv12 Nov 19 '12 at 3:39

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