77

I have a NameValueCollection, and want to iterate through the values. Currently, I’m doing this, but it seems like there should be a neater way to do it:

NameValueCollection nvc = new NameValueCollection();
nvc.Add("Test", "Val1");
nvc.Add("Test2", "Val1");
nvc.Add("Test2", "Val1");
nvc.Add("Test2", "Val2");
nvc.Add("Test3", "Val1");
nvc.Add("Test4", "Val4");

foreach (string s in nvc)
    foreach (string v in nvc.GetValues(s))
        Console.WriteLine("{0} {1}", s, v);

Console.ReadLine();

Is there?

4
  • 3
    What's wrong with what you have?
    – Ani
    Feb 21, 2011 at 12:37
  • 2
    There's nothing wrong with it per se - just that I thought I should be able to iterate using a single loop. Looking at the answers so far, this doesn't seem to be possible if there may be duplicate key values. Feb 21, 2011 at 12:51
  • that's correct, but you can use different collection e.g. Dictionary<string, List<string>> Feb 21, 2011 at 13:07
  • see also stackoverflow.com/questions/391023/… Oct 2, 2012 at 13:30

8 Answers 8

109

You can flatten the collection with Linq, but it's still a foreach loop but now more implicit.

var items = nvc.AllKeys.SelectMany(nvc.GetValues, (k, v) => new {key = k, value = v});
foreach (var item in items)
    Console.WriteLine("{0} {1}", item.key, item.value);

The first line, converts the nested collection to a (non-nested) collection of anonymous objects with the properties key and value.

It's flatten in the way that it's now a mapping key -> value instead of key -> collection of values. The example data:

Before:

Test -> [Val],

Test2 -> [Val1, Val1, Val2],

Test3 -> [Val1],

Test4 -> [Val4]

After:

Test -> Val,

Test2 -> Val1,

Test2 -> Val1,

Test2 -> Val2,

Test3 -> Val1,

Test4 -> Val4

7
  • 3
    Tested and using using System.Linq;
    – Julian
    Feb 21, 2011 at 13:30
  • 3
    In case someone wants to know the vb.net syntax: Dim items = nvc.AllKeys.SelectMany(AddressOf col.GetValues, Function(k, v) New With {.key = k, .value = v}) Jan 30, 2013 at 9:06
  • 2
    @EndyTjahjono slight typo, change "col" to "nvp" so it becomes Dim items = nvc.AllKeys.SelectMany(AddressOf nvp.GetValues, Function(k, v) New With {.key = k, .value = v}) Sep 13, 2013 at 17:00
  • What if it's a blank value, how do I just get add string.empty instead?
    – Si8
    May 8, 2018 at 17:12
88

You can use the key for lookup instead of having two loops:

foreach (string key in nvc)
{
    Console.WriteLine("{0} {1}", key, nvc[key]);
}
1
  • 19
    Note that this will behave differently to the OP's code if there are any keys with multiple values. Your code will output "key value1,value2,value3", whereas the OP's code would output "key value1" then "key value2" then "key value3".
    – LukeH
    Feb 21, 2011 at 14:27
4

Nothing new to see here (@Julian's +1'd by me answer is functionally equivalent), y'all move along y'all please.


I have an [overkill for this case but possibly relevant] set of extension methods in an answer to a related question, which would let you do:

foreach ( KeyValuePair<string,string> item in nvc.AsEnumerable().AsKeyValuePairs() )
    Console.WriteLine("{0} {1}", item.key, item.value);
3
  • 3
    NameValueCollection does not have AsEnumerable or as keyValuePairs Mar 4, 2013 at 14:52
  • @Luis Tellez. I know. The text says I have a set of extension methods. And it links to it. And the body text is flagging that there is nothing new to see here please. Does this clarify or do I need to re-explain? Mar 4, 2013 at 16:08
  • You can make an enumerable as IEnumerable<KeyValuePair<string,string>> e = nvc.AllKeys.Select(k => new KeyValuePair<string, string>(k, nvc[k])). Another stumbling point brought to you by Microsoft.
    – Suncat2000
    Sep 13, 2021 at 21:41
2
var enu = myNameValueCollection.GetEnumerator();
while (enu.MoveNext())
{
    string key = (string)enu.Current;
    string value = myNameValueCollection[key];
}

OR when keys nullable:

for (int i = 0; i < myNameValueCollection.Count; i++)
{
    string key = myNameValueCollection.GetKey(i);
    string value = myNameValueCollection.Get(i);
}
1

The only way I found to avoid the nested loops is using additional List to store the values:

List<string> arrValues = new List<string>();
for (int i = 0; i < nvc.Count; i++)
    arrValues.AddRange(nvc.GetValues(i));
foreach (string value in arrValues)
    Console.WriteLine(value);

(Requires [only] .NET 2.0 or later)

5
  • (obviously superseded by using SelectMany like the other answer) Oct 3, 2012 at 13:09
  • @Ruben true, but I prefer to leave this one even if just for historical value showing how to do that with old .NET version. :) Oct 3, 2012 at 13:17
  • The thing with SelectMany i came across is if the key has a value that's blank it fails. Any way around it? Thanks.
    – Si8
    May 8, 2018 at 18:52
  • @Si8 what exactly fails? In theory, just throw an if statement and check for null, though if your code is one-liner, it will make it much less readable. May 8, 2018 at 19:51
  • Your method works with the null but the LINQ doesn't is what I was stating... sorry for not clear.
    – Si8
    May 8, 2018 at 19:58
1

I think this is simpler: VB.NET

For i As Integer = 0 To nvc.Count - 1
   Console.Write("No", "Key", "Value")
   Console.Write(i, nvc.GetKey(i), nvc.Get(i))
Next

C#:

for (int i = 0; i <= nvc.Count - 1; i++)
{
    Console.Write("No", "Key", "Value");
    Console.Write(i, nvc.GetKey(i), nvc.Get(i));
}
2
  • This is the worst C# I've ever seen. Apr 6, 2021 at 9:16
  • Sorry, I think in vb.net! Updated Apr 7, 2021 at 0:14
0
for (int i = 0; i < nvc.Count; i++) {
    System.Console.WriteLine(

        nvc.AllKeys[i] + " = " + nvc[i]

    );
}
-2
foreach ( string key in nvc.Keys )
   Console.WriteLine("{0} {1}", key, nvc[key]);

This will return you all keys and corresponding values.

2
  • 2
    No; it won't return duplicate values.
    – SLaks
    Feb 21, 2011 at 12:37
  • Isnt this a dup of stackoverflow.com/a/5065986/11635 which is milliseconds earlier (wow!) - personally I'd delete. @Slaks to be pedantic, it will give the duplicate values, just with commas separating them. Oct 3, 2012 at 13:07

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