Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an arbitrary number of dictionaries (which are in a list, already in order) that I wish to outer join. For example, for N = 2:

List<Dictionary<string, int>> lstInput = new List<Dictionary<string, int>>();
Dictionary<string, int> dctTest1 = new Dictionary<string, int>();
Dictionary<string, int> dctTest2 = new Dictionary<string, int>();
dctTest1.Add("ABC", 123);
dctTest2.Add("ABC", 321);
dctTest2.Add("CBA", 321);
lstInput.Add(dctTest1);
lstInput.Add(dctTest2);

Each dictionary already has unique keys.

I wish to transform lstInput into:

Dictionary<string, int[]> dctOutput = new Dictionary<string, int[]>();

where dctOutput looks like:

"ABC": [123, 321]
"CBA": [0, 321]

That is, the set of keys of dctOutput is equal to the union of the set of keys of each dictionary in lstInput; moreover, the *i*th position of each value in dctOutput is equal to the value of the corresponding key in the *i*th dictionary in lstInput, or 0 if there is no corresponding key.

How can I write C# code to accomplish this?

share|improve this question
add comment

1 Answer

The following should do what you want.

var dctOutput = new Dictionary<string, int[]>();
for (int i = 0; i < lstInput.Count; ++i)
{
    var dict = lstInput[i];
    foreach (var kvp in dict)
    {
        int[] values;
        if (!dctOutput.TryGetValue(kvp.Key, out values))
        {
            // Allocating the array zeros the values
            values = new int[lstInput.Count];
            dctOutput.Add(kvp.Key, values);
        }
        values[i] = kvp.Value;
    }
}

This works because allocating the array initializes all values to 0. So if a previous dictionary didn't have an item with that key, its values will be 0 in that position. If you wanted your sentinel value to be something other than 0, then you would initialize the array with that value after allocating it.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.