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I have 2 lists as described below

How can i verify that all sitempath values that exist in lstOldItems also exist in lstNewItems

C# Code

List<ItemsUnderControlObject> lstNewItems
List<ItemsUnderControlObject> lstOldItems


public class ItemsUnderControlObject
{
 public ItemsUnderControlObject();

 public bool bButtonEnabled { get; set; }
 public short iChkInterval { get; set; }
 public int iItemUnderCtrlUniqueID { get; set; }
 public DateTime? ItemCreationDateTime { get; set; }
 public DateTime? ItemLastAccessDateTime { get; set; }
 public DateTime? ItemLastModifiedDateTime { get; set; }
 public long lngItemSize { get; set; }
 public string sItemBackupLocation { get; set; }
 public string sItemcategory { get; set; }
 public string sItemCurrentStatus { get; set; }
 public DateTime sItemDatabaseCreationDateTime { get; set; }
 public string sItemName { get; set; }
 public string sItemPath { get; set; }
 public string sItemRequestStatus { get; set; }
 public string sItemTask { get; set; }
 public string sItemValue { get; set; }
 public string sItemValueSHA256 { get; set; }
 public string sSystemID { get; set; }
}
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i tried this but count isnt good enough - i need to check that they are the EXACT same. List<ItemsUnderControlObject> results = lstNewItems.FindAll(x => x.sitempath != "Add"); // If other changes have been made since these changes then abort if (results.Count != MyGlobals.ListOlditems.Count) –  user1438082 Feb 25 '13 at 21:54
1  
Are you looking for reference equality (i.e., they are the same object) or a custom equality (e.g., all of the properties are equal)? –  zimdanen Feb 25 '13 at 21:55

4 Answers 4

up vote 2 down vote accepted

One liner, in case you don't want to extract the paths to different lists:

stOldItems.All(x => lstNewItems.Any(y=> x.sItemPath == y.sItemPath));
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1  
@IronMan84 Why was == changed to .Equals? When we know the property is of type string, it's natural to use ==. And the problem with the Equals instance method is that if some string is null, it can throw an exception. –  Jeppe Stig Nielsen Feb 25 '13 at 22:21
2  
String.Equals should do the trick. "It is best to avoid using the == and != operators when you compare strings". Source: msdn.microsoft.com/en-us/library/vstudio/cc165449.aspx –  Mt. Schneiders Feb 25 '13 at 22:23
1  
"Compare strings" can mean two things: (1) Check for equality. (2) Find out if the first one is greater than or less than the other one. The default for (1) is to do an ordinal comparison. The default for (2) is to do culture-dependent and case-sensitive comparison. There are many equivalent syntaxes for both kinds of comparisons. When the compile-time types of both operands are string, and when an ordinal comparison for equality is wanted, I would always use the == operator. To me it seems crazy to write String.Equals(a, b) when it is equivalent to a == b. –  Jeppe Stig Nielsen Feb 25 '13 at 22:37
2  
O(N²) time complexity –  Magnus Feb 25 '13 at 22:38
1  
@Mt.Schneiders Maybe they want you to write String.Equals(a, b, StringComparison.Ordinal) to make it absolutely explicit that you want ordinal and case-sensitive comparison. But I don't agree with their advice, and I would do a == b as I said. –  Jeppe Stig Nielsen Feb 25 '13 at 22:53

Why not use LINQ's Except extension method seen here:

var oldItemPaths = lstOldItems.Select(l => l.sItemPath).Distinct();
var newItemPaths = lstNewItems.Select(l => l.sItemPath).Distinct();
bool isSame = !oldItemPaths.Except(newItemPaths).Any();

Or, using @Magnus' way of doing it with the above code (minus the Except):

bool isSame = oldItemPaths.All(x => newItemPaths.Contains(x));
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2  
The Distinct is not necessary since Except removes the duplicates. –  Magnus Feb 25 '13 at 22:22

For fast look-up first add the items in lstNewItems to a HashSet, than use All:

var set = new HashSet<string>(lstNewItems.Select(x => x.sItemPath));
var res = lstOldItems.All(x => set.Contains(x.sItemPath));
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1  
Or with set as above, var res = set.IsSupersetOf(lstOldItems.Select(x => x.sItemPath));. –  Jeppe Stig Nielsen Feb 25 '13 at 22:07
    
This answer clearly performs better than the other ones when the lists are long. –  Jeppe Stig Nielsen Feb 25 '13 at 22:57

try linq,

something along the lines of this

List<string> sitempaths = lstNewItems.Select(i => i.sitempath).ToList();

bool hasSitempaths = lstOldItems
    .Where(x => sitempaths.contains(x.sitempath)).ToList()
    .Count == lstOldItems.Count;

note, this is not actually tested, you might have to adjsut

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