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i have a list of project objects:

IEnumerable<Project> projects

a Project class as a property called Tags. this is a int[]

i have a variable called filteredTags which is also a int[].

So lets say my filtered tags variable looks like this:

 int[] filteredTags = new int[]{1, 3};

I want to filter my list (projects) to only return projects that have ALL of the tags listed in the filter (in this case at least tag 1 AND tag 3 in the Tags property).

I was trying to use Where() and Contains() but that only seems to work if i am comparing against a single value. How would i do this to compare a list against another list where i need a match on all the items in the filtered list ??

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5 Answers 5

up vote 12 down vote accepted

EDIT: better yet, do it like that:

var filteredProjects = 
    projects.Where(p => filteredTags.All(tag => p.Tags.Contains(tag)));

EDIT2: Honestly, I don't know which one is better, so if performance is not critical, choose the one you think is more readable. If it is, you'll have to benchmark it somehow.


Probably Intersect is the way to go:

void Main()
{
    var projects = new List<Project>();
    projects.Add(new Project { Name = "Project1", Tags = new int[] { 2, 5, 3, 1 } });
    projects.Add(new Project { Name = "Project2", Tags = new int[] { 1, 4, 7 } });
    projects.Add(new Project { Name = "Project3", Tags = new int[] { 1, 7, 12, 3 } });

    var filteredTags = new int []{ 1, 3 };
    var filteredProjects = projects.Where(p => p.Tags.Intersect(filteredTags).Count() == filteredTags.Length);  
}


class Project {
    public string Name;
    public int[] Tags;
}

Although that seems a little ugly at first. You may first apply Distinct to filteredTags if you aren't sure whether they are all unique in the list, otherwise the counts comparison won't work as expected.

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I think your Intersect way is clearer than your 'better yet' method –  AakashM Feb 23 '11 at 12:17
    
@AakashM: I really don't know and I'm trying to decide it right now. I don't like the Count() because it has to evaluate the tags IEnumerable, but I'm puzzled myself –  Dyppl Feb 23 '11 at 12:21
var result = projects.Where(p => filtedTags.All(t => p.Tags.Contains(t)));
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Why? It won't allow project with tags "1, 2, 3" or am I missing something? –  Dyppl Feb 23 '11 at 12:07
    
i am not sure ALL is correct as it need to work if it has ATLEAST 1 and 3 but it can have more than that . . . isn't All() going to validate every item in the list against 1 & 3 ?? –  leora Feb 23 '11 at 12:08
    
we can slightly modify the above code to achieve the desired result. var result = projects.Where(p => filtedTags.All(t => p.Tags.Contains(t)) –  nyinyithann Feb 23 '11 at 12:17
    
@ooo @nyinyithann: Sorry my English is poor so I misunderstood OP's question. –  Danny Chen Feb 23 '11 at 12:40
var res = projects.Where(p => filteredTags.Except(p.Tags).Count() == 0);
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var filtered = projects;
foreach (var tag in filteredTags) {
  filtered = filtered.Where(p => p.Tags.Contains(tag))
}

The nice thing with this approach is that you can refine search results incrementally.

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Based on http://code.msdn.microsoft.com/101-LINQ-Samples-3fb9811b,

EqualAll is the approach that best meets your needs.

public void Linq96() 
{ 
    var wordsA = new string[] { "cherry", "apple", "blueberry" }; 
    var wordsB = new string[] { "cherry", "apple", "blueberry" }; 

    bool match = wordsA.SequenceEqual(wordsB); 

    Console.WriteLine("The sequences match: {0}", match); 
} 
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