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Can't figure out why I get a void error with this attempt to sort my list. parameterList is a dictionary originally then I convert it to a generic list then try sorting. I want back the list as a generic list as you can see:

   List<KeyValuePair<string,string>> sortedList = parameterList.ToList().Sort((left, right) => left.Key.Equals(right.Key, StringComparison.Ordinal)
                                                    ? string.Compare(left.Value, right.Value, StringComparison.Ordinal) 
                                                    : string.Compare(left.Key, right.Key, StringComparison.Ordinal));

Error: "Cannot convert source type 'void' to target type List<System.Collections.Generic.KeyValuePair<string,string>>

What is this void it's talking about....??

UPDATED

The list sorting still won't sort, using any of the sugestions or my original sort code that I grabbed from http://oauth.googlecode.com/svn/code/csharp/OAuthBase.cs

So this is how I have it:

        Dictionary<string, string> authParamsNonNormalized = new Dictionary<string, string> {
                                                                                                  {Constants.OAuthConsumerKey, consumerKey},
                                                                                                  {Constants.OAuthSignatureMethodKey, methodType},
                                                                                                  {Constants.OAuthTimestampKey, timeStamp()},
                                                                                                  {Constants.OAuthTokenKey, accessToken},
                                                                                                   {Constants.OAuthNonceKey, nonce},
                                                                                                  {Constants.OAuthVersionKey, Constants.OAuthVersion}
                                                                                              };

Then I convert it to a Generic list with the ToList()t as this was an incoming dictionary to my method that contains this code:

List<KeyValuePair<string,string>> sortedParamList = parameterList.ToList();
            sortedParamList.OrderBy(p => p.Key, StringComparer.Ordinal)
                                    .ThenBy(p => p.Value, StringComparer.Ordinal).ToList();

when I check sortedParamList, it's still in the same order...nothing happened.

UPDATED:

crap, yea I screwed up the last one, here is the working code:

List<KeyValuePair<string, string>> sortedParamList = parameterList.OrderBy(p => p.Key, StringComparer.Ordinal)
                            .ThenBy(p => p.Value, StringComparer.Ordinal).ToList();
share|improve this question
    
I'd consider writing a comparer for that since that's a really complicated comparison. That way you can get that nasty looking code out of that line and in its own place. –  Jeff Mercado Feb 29 '12 at 19:28
    
Nooo… OrderBy returns the sorted enumerable; it doesn’t sort it in-place like Sort does. I know this may be confusing for many. You need to assign the result of the parameterList.OrderBy operation to your target variable. See my example below. –  Douglas Feb 29 '12 at 21:16
    
yea I probably will create a utility method later on...for now this is just code to try to get this working, this is a new wrapper I'm building, then I'll go back and clean it up. –  MSSucks Feb 29 '12 at 21:25
    
Doug I tried that also, did not work. Problem is the way you stated it infers that you said it does sort in place by the wording you gave me "The following LINQ is semantically equivalent, but significantly clearer:" –  MSSucks Feb 29 '12 at 21:26
    
Could you paste the corrected code? –  Douglas Feb 29 '12 at 21:27

4 Answers 4

up vote 2 down vote accepted

List<T>.Sort does not returned the sorted list; rather, it performs the sort “in-place”, altering the list instance on which it is called. You probably mean to use:

List<KeyValuePair<string, string>> sortedList = parameterList.ToList();
sortedList.Sort((left, right) => left.Key.Equals(right.Key, StringComparison.Ordinal)
    ? string.Compare(left.Value, right.Value, StringComparison.Ordinal)
    : string.Compare(left.Key, right.Key, StringComparison.Ordinal));

The following LINQ is semantically equivalent, but significantly clearer:

List<KeyValuePair<string, string>> sortedList =
    parameterList.OrderBy(p => p.Key, StringComparer.Ordinal)
                 .ThenBy(p => p.Value, StringComparer.Ordinal)
                 .ToList();
share|improve this answer
    
yea I finally see that now...duh. –  MSSucks Feb 29 '12 at 20:55
    
for some reason either of the above sorts my list. I still end up with an unordered list after the sort. –  MSSucks Feb 29 '12 at 21:02
    
Are you sure you’re accessing sortedList to check, not parameterList? If yes, could you post some example code of how you’re initializing parameterList? –  Douglas Feb 29 '12 at 21:05
    
updated....see my code. –  MSSucks Feb 29 '12 at 21:16
    
Replied; see comment. –  Douglas Feb 29 '12 at 21:19

All of the overloads of List<T>.Sort sort in place and don't return anything.

Perhaps IEnumerable<T>.OrderBy would be more appropriate for what you're trying to do.

share|improve this answer
    
It'd certainly be a lot better than creating a list then sorting. It should be sort the collection and put the results into a list. –  Jeff Mercado Feb 29 '12 at 19:30

The Sort method is an instance method of List and sorts the current instance, thus does not return a list.

You'll need to split up your code.

List<KeyValuePair<string,string>> sortedList = parameterList.ToList();
sortedList.Sort((left, right) => left.Key.Equals(right.Key, StringComparison.Ordinal)
                                     ? string.Compare(left.Value, right.Value, StringComparison.Ordinal) 
                                     : string.Compare(left.Key, right.Key, StringComparison.Ordinal));
share|improve this answer
.Sort((left, right) => ...

the Sort method is void, and you can't put it inside a List<...>

share|improve this answer

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