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I have a small list of bytes and I want to test that they're all different values. For instance, I have this:

List<byte> theList = new List<byte> { 1,4,3,6,1 };

What's the best way to check if all values are distinct or not?

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2  
As this is a typical class room question, I will answer with a question. How would you do it if it was sorted? – richard Aug 18 '13 at 21:40
up vote 52 down vote accepted
bool isUnique = theList.Distinct().Count() == theList.Count();
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I love linq! Thanks for the answer. – frenchie Aug 18 '13 at 21:39
    
Just curious: what are the space and time requirements of this? – dtb Aug 18 '13 at 21:44
4  
@dtb should be about O(N). Of course, considering this is a "small list", it will be lightning-fast with almost any algorithm. IMO this wins on readability and conciseness, and since speed's not an issue, that makes it perfect. – Tim S. Aug 18 '13 at 22:04

Here's another approach which is more efficient than Enumerable.Distinct + Enumerable.Count (all the more if the sequence is not a collection type). It uses a HashSet<T> which eliminates duplicates, is very efficient in lookups and has a count-property:

var distinctBytes = new HashSet<byte>(theList);
bool allDifferent = distinctBytes.Count == theList.Count;

or another - more subtle and efficient - approach:

var diffChecker = new HashSet<byte>();
bool allDifferent = theList.All(diffChecker.Add);

HashSet<T>.Add returns false if the element could not be added since it was already in the HashSet. Enumerable.All stops on the first "false".

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so simple and obvious, why didn't I think about it first :) I used this one-liner in unit test to confirm 10 million elements generated by my awesome code are really unique Assert.IsTrue(samples.Add(AwesomeClass.GetUnique()));. They were and are :) +1 for you Tim :) – grapkulec Apr 4 '15 at 14:34
    
i have tried your answer on this question but it is not working sir:stackoverflow.com/questions/34941162/… – Learning Jan 22 at 9:22

There are many solutions.

And no doubt more beautiful ones with the usage of LINQ as "juergen d" and "Tim Schmelter" mentioned.

But, if you bare "Complexity" and speed, the best solution will be to implement it by yourself. One of the solution will be, to create an array of N size (for byte it's 256). And loop the array, and on every iteration will test the matching number index if the value is 1 if it does, that means i already increment the array index and therefore the array isn't distinct otherwise i will increment the array cell and continue checking.

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1  
you can use a bit vector with 256 bits = 32 byte = 8 integers. But your Big O = O(n) still will be the same as using a Hashet proposed in the other answer. – BrokenGlass Aug 18 '13 at 21:55
    
This is O(n) so maybe fastest, (test it). Would checking counts as you go or at the end be the quickest? I suspect that at the end will improve worst case, but as you go may improve average and best case). If there is no duplicates this will be worst case performance. Also for bigger data types this will not work well, for a 16bit type you would have to use 64k of count, well 64k bit (8k byte), but for anything bigger the memory usage will start to get silly. However I like this answer for 8bit values. – richard Aug 18 '13 at 21:56

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