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Each sort algorithm will be the job, but it's a OVERKILL.

For input like:

aa
cc
aa
bb
dd
bb
cc

I just need something like:

aa
aa
cc
cc
bb
bb
dd

The order of each pattern is not required.

Is there such an algorithm for this kind of job?

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Wouldn't creating a dictionary with the key being the word and the value the count suffice? You could just pass through your list, add the key with 1 count if it's not there and update the key otherwise. –  Mathias Jan 15 '13 at 1:30

2 Answers 2

up vote 6 down vote accepted

You simply want to use a hashtable here, or more abstractly an associative array. Iterate over the input, adding it to the hashtable with value (tag, if you prefer) of 1 if it hasn't yet been seen, or incrementing the count by one if it already exists in the hashtable.

The algorithm is thus O(n) in both time and space, which is as good as you could reasonably expect. I recommend some reading up on hashtables, as it is a highly useful data structure that appears in all sorts of places in algorithm and software design.

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More detailed and implementation-level than mine -- I approve. +1 –  BlackVegetable Jan 15 '13 at 1:53
    
@BlackVegetable: Ah thank you. I didn't see yours when you posted, but we seem to have just explained the same solution in different ways. :) +1 in any case. –  Noldorin Jan 15 '13 at 12:52

Well, off of the top of my head you could run a pass that counts how many of each element exist and then create a new array with them posted in order. That would be O(n) but is not "in-place".

Thus:

// Make outputArrayCounter
// While inputArray has elements left:
//   if current element is new, add to outputArrayCounter
//   if current element has been seen before, increment a counter associated with that 
//   element.
// Part 2...
// Make outputArray
// create the appropriate number of elements as found in the outputArrayCounter for
// every different element type.

Let's try an example:

We have an original input of aa bb aa cc cc dd cc.

We will make our counter device, and scan the input. aa, the first element is read and as we have never encountered an aa before, we will add this to our counter device.

Counter device: [(aa, 1)]

Now let's continue by reading the next input, bb. It is also not found and is added:

Counter device: [(aa, 1), (bb, 1)]

Step again and read aa as the third element. This is found in our device, and so instead of adding it again, we increment the counter associated with aa by 1.

Counter device: [(aa, 2), (bb, 1)]

I will continue and give you the end counter device state:

[(aa, 2), (bb, 1), (cc, 3), (dd, 1)]

Now we go through the device and print out the number of each element that many times, with each element of the same name together. (if order matters, that is an implementation detail that will determine whether to use an associated set-dictionary, or some kind of duple-array device that stores ordering. That is language specific but I'm sure you can figure that out. If you cannot, comment here and I will describe a solution.)

print aa aa bb cc cc cc dd

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