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4

The way you describe it in the question is entirely accurate. And yes, it speeds things up because, like you said, it compares four characters at a time. There are two remarks to be made, though: When you compare suffixes i and j, like in your example, you compare entries W[i] and W[j] indeed. The result of this is the same as if you had lexicographically ...


2

For the coding case, you don't need to actually build a string array - use an int (or long depending on your file size) array instead to store the index that your rotating string starts at. Create an array initialized to [0 1 2 3 ... n] sort the array with the following compareTo (assume compareTo() has access to the original string, original): int ...


2

After a quick read; I think Burrows-Wheeler have an error and meant to say to sort the elements of W using the array V to track and map the final locations of the elements of W. ie. Such that W is unchanged and V contains a sorted list of indices. The paper appears to treat V as an array of pointers to elements in W from that point forward. Check out ...


2

You can perform the transform in linear time and space without the EOF character by computing the suffix array of the string concatenated with itself. Then iterate over the suffix array. If the current value is less than n, add to your output array the last character of the rotation starting at the position denoted by the current value in the suffix array. ...


2

BWT uses all sizes of contexts, while a practical LZ implementation can hardly use contexts of size shorter then 3. BWT benefits from every matches inside a block, while normal LZ implementation only find matches in the look-forward window. But LZ is not a worse choise in many situations. LZ is an on-line algorithm and can work on streams, while BWT must ...


1

Just try to compress it with something much faster than BWT, e.g. lz4, and see how much it compresses. You can then through experiment set a threshold on that ratio above which to apply BWT, based on whatever criteria you derive for your application.


1

To reverse the BWT, you only need the index of the original last character, not the entire suffix array. If you don't have this index, I believe choosing an arbitrary index will result in a rotated version of your original string. Note that, if you include an end-of-line code (as in your example), the original last character is obvious, so the index ...


1

You only need to transmit the BWT output. The surprising thing about this transform is that the original string can be reconstructed from just the permuted output string. The wikipedia article contains example code for doing this inverse. Note that the normal mode of operation is to use run length coding to encode the BWT output before transmission (or ...


1

The goal of the MTF after the BWT is to shrink the range of symbols which is good for entropy coding. MTF replaces symbols with their rank which is usually small due to the repetitions generated by the BWT. A Zero Length Coding may be applied after that since a lot of 0s may be produced by the MTF (it is just a specific case of RLE where only runs of 0s are ...


1

Here is a shorter function which doesn't use recursion but does the same in computation. def transformString(s:String):List[String] = for(i <- s.length until 0 by - 1 toList) yield s.drop(i)+ s.take(i) Another one: def transformString(s:String):List[String] = s.inits.toList zip(s.tails.toSeq.reverse) map(z=> z._2+z._1)


1

As you are moving your splitIndex one character to the front you have to apply it to the original string: newString :: transformString(string, splitIndex - 1) Another solution would be to remove the split index param and always split off the last character, but then you have to apply it to the transformed string again.


1

I have written an implementation in Java: http://code.google.com/p/kanzi/source/browse/java/src/kanzi/function/DistanceCodec.java You can see the explanation of the algorithm at the beginning of the code (complete example). Also, take a look at the Block coder (it includes BWT + MoveToFront + Zero Length Transform + Entropy coding): ...


1

This line: String temp = (string.substring(index,string.length()) + string.substring(0,index)); is going to create a copy of the entire input text each time you call it. Since you call it N times for an input text of N characters, your algorithm will be O(N^2). See if you can optimize the originalSuffix method to avoid that copying.



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