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Input 1: List<string>, e.g:

"hello", "world", "stack", "overflow".

Input 2: List<Foo> (two properties, string a, string b), e.g:

Foo 1: a: "Hello there!" b: string.Empty

Foo 2: a: "I love Stack Overflow" b: "It's the best site ever!"

So i want to end up with a Dictionary<string,int>. The word, and the number of times it appears in the List<Foo>, either in the a or the b field.

Current first-pass/top of my head code, which is far too slow:

var occurences = new Dictionary<string, int>();
foreach (var word in uniqueWords /* input1 */)
{
    var aOccurances = foos.Count(x => !string.IsNullOrEmpty(x.a) && x.a.Contains(word));
    var bOccurances = foos.Count(x => !string.IsNullOrEmpty(x.b) && x.b.Contains(word));
    occurences.Add(word, aOccurances + bOccurances);
}
share|improve this question
    
What is the use of input1? –  Hossein Narimani Rad Apr 23 '13 at 5:13
1  
If first list is list of words (i.e. "help" and you don't need to match "helpless dog") than you can tokenize strings in List<Foo> first (and put in dictionary for each Foo) and match would be much faster. –  Alexei Levenkov Apr 23 '13 at 5:16
    
@HosseinNarimaniRad - that's the list of words i want to match on (e.g count the number of occurences) –  RPM1984 Apr 23 '13 at 5:17
    
@AlexeiLevenkov - code please? –  RPM1984 Apr 23 '13 at 5:18
    
@Aron already provided reasonable code that converts 2 strings (combined with space in between) into dictionary with word count. Just keep your current iteration by instead of Contains use ContainsKey (or TryGetValue) - free count... –  Alexei Levenkov Apr 23 '13 at 5:27

2 Answers 2

up vote 1 down vote accepted

Roughly:

  1. Build a dictionary (occurrences) from the first input, optionally with a case-insensitive comparer.
  2. For each Foo in the second input, use RegEx to split a and b into words.
  3. For each word, check if the key exists in occurrences. If it exists, increment and update the value in the dictionary.
share|improve this answer
    
perfect. thanks –  RPM1984 Apr 23 '13 at 5:43

You could try concating the two strings a + b. Then doing a regex to pull out all the words into a collection. Then finally indexing that using a group by query.

For example

void Main()
{
    var a = "Hello there!";
    var b =  "It's the best site ever!";

    var ab = a + " " + b;

    var matches = Regex.Matches(ab, "[A-Za-z]+");
    var occurences = from x in matches.OfType<System.Text.RegularExpressions.Match>()
                    let word = x.Value.ToLowerInvariant()
                    group word by word into g
                    select new { Word = g.Key, Count = g.Count() };
    var result = occurences.ToDictionary(x => x.Word, x => x.Count);
    Console.WriteLine(result);
}

Example with some changes suggested... Edit. Just reread the requirement....kinda strange but hey...

void Main()
{
    var counts = GetCount(new [] {
        "Hello there!",
        "It's the best site ever!"
    });
    Console.WriteLine(counts);
}


public IDictionary<string, int> GetCount(IEnumerable<Foo> inputs)
{
    var allWords =      from input in inputs
                        let matchesA = Regex.Matches(input.A, "[A-Za-z']+").OfType<System.Text.RegularExpressions.Match>()
                        let matchesB = Regex.Matches(input.B, "[A-Za-z']+").OfType<System.Text.RegularExpressions.Match>()
                        from x in matchesA.Concat(matchesB)
                        select x.Value;
    var occurences = allWords.GroupBy(x => x, (x, y) => new{Key = x, Count = y.Count()}, StringComparer.OrdinalIgnoreCase);

    var result = occurences.ToDictionary(x => x.Key, x => x.Count, StringComparer.OrdinalIgnoreCase);
    return result;
}
share|improve this answer
    
Now I know there are a few bugs in here, especially with European languages. Also its doing something slightly different from your code. Since I am not going to match "stack" or "overflow" to "stackoverflow". –  Aron Apr 23 '13 at 5:25
1  
Instead of OfType<Match>(), I would suggest from Match x in matches (which translates to Cast<Match>() behind the scenes, and reads better). –  dahlbyk Apr 23 '13 at 5:25
    
@dahlbyk Thanks for that. Very much a stylistic thing. Personally I tend to use my own casting function for safety, HOWEVER +1 for adding something I've never seen before! –  Aron Apr 23 '13 at 5:27
    
Reasonable tokenization. Missing outer portion of the search, but it could be enough to get number of matching words in linear time (O(n+m+k) instead of O(n * (m+k) - where n length of input 1, m,k - length of 2 other strings) –  Alexei Levenkov Apr 23 '13 at 5:31
    
im not sure how to apply this to a list of <T>. this example only shows 1 source input. –  RPM1984 Apr 23 '13 at 5:32

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