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I am wondering how do we write java code from the following PuedoCode

 foreach file F in file directory D
        foreach int I in file F
               sort all I from each file

Basically this is part of the Eexternal Sorting algorithm, so those files contain list of sorted integer, and I want to read the first one from each file and sort it and then output to another file, and then move to the next integer from each file again until all the integers are fully sorted. The problem is that as far as I understand for each file we need a reader, so if we have N files then does that mean we need N file readers ?

======update=======

I am wondering is it something that look like this ? correct me if I miss anything or any other better approach.

int numOfFiles = 10;
Scanner [] scanners = new Scanner[numOfFiles];
try{
    //reader all the files
    for(int i = 0 ; i < numOfFiles; i++){
       scanners[i] = new Scanner(new BufferedReader(new FileReader("file"+i+".txt");
    }
}
catch(FileNotFoundException fnfe){

}
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5 Answers 5

up vote 1 down vote accepted

The problem is that as far as I understand for each file we need a reader, so if we have N files then does that mean we need N file readers ?

Yes, that's right - unless you want to either have to go back over the data, or the whole of each file into memory. Either of those would let you get away with only one file open at a time - but that may well not suit what you want to do.

Operating systems usually only allow you to open a certain number of files at a time. If you're trying to do something like create a single sorted set of results from a very large number of files, you might want to consider operating on a few of them at a time, producing larger intermediate files. At its simplest, this would just sort two files at a time, e.g.

input1 + input2 => tmp-a1
input3 + input4 => tmp-a2
input5 + input6 => tmp-a3
input7 + input8 => tmp-a4

tmp-a1 + tmp-a2 => tmp-b1
tmp-a3 + tmp-a4 => tmp-b2

tmp-b1 + tmp-b2 => result
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will the operation be expensive ? is there any other efficient way for solving this ? –  user1389813 Nov 19 '12 at 6:51
    
Define "expensive" - and tell us how many files there will be. So long as you don't run over your file handle limit, it shouldn't be too bad. (That will vary by operating system and installation.) –  Jon Skeet Nov 19 '12 at 6:56
    
lets say there are 1000 files, and each file is about 1MB big. by meant 'expensive' I was concerning about accessing 1000 files at the same time during iteration. –  user1389813 Nov 19 '12 at 7:02
    
@user1389813: You still haven't really said what sort of cost you're thinking about. The operating system will often buffer reads, which should avoid the disk head moving too inefficiently - and of course on an SSD the considerations are somewhat different anyway. See my edited answer for an alternative approach you could consider. –  Jon Skeet Nov 19 '12 at 7:06
    
I think you just answered my concern. Can you provide the code please. –  user1389813 Nov 19 '12 at 7:10

Yes, you need N File readers.

public void workOnFiles(){

    File []D = new File("directoryName").listFiles(); //D.length should equal to N.

    for(File F:D){

        doSortingForEachFile(F);//do sorting part here. The same reader cannot open same file here again.

    }
}

public void doSortingForEachFile(File f){
    try{
        ArrayList<Integer> list=new ArrayList<Integer>();
        Scanner s=new Scanner(f);
        while(s.hasNextInt()){//store ints inside the file.
            list.add(s.nextInt());
        }
        s.close();//once closed, cannot open again.
        Collections.sort(list);//this method will sort the ArrayList of int.
        //...write numbers inside list to another file...
    }catch(Exception e){}
}
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Can I ask questions here again? –  User7829300192 Nov 19 '12 at 6:49
4  
I'm not sure why this has been upvoted, as it doesn't answer the question at all: "I want to read the first one from each file and sort it, and then move to the next integer from each file" - your code doesn't do that, nor does it answer the question about what's required to do that. –  Jon Skeet Nov 19 '12 at 6:56
1  
@User7829300192 You have received a link explaining your question ban. It clearly states the ban is automatic. Nobody can lift if for you at all. Not even a moderator. This is not a manual thing. Keep working on your reputation and the ban might eventually be automatically lifted. But nobody can or will tell you when exactly this will happen. –  Bart Nov 19 '12 at 11:26

Yes, we must have N file readers for reading N files.

Inorder to iterate all the files in a directory, read the files one by one, and store them in a List. Then sort that list again to get your output.

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just provide the code, not answering "need N file readers ?" :)

use commons-io :

//get line iterators :
Collection<File> files = FileUtils.listFiles(/* TODO : filter conf*/);
ArrayList<LineIterator> iters = new ArrayList<LineIterator>();
for(File i : files) {
  iters.add(FileUtils.lineIterator(file, "UTF-8"));
}

//collect a line from each file
ArrayList<String> numbers = new ArrayList<String>();
for(LineIterator li : iters) {
  numbers.add(li.nextLine());
}

//sort
//Arrays.sort(numbers/*will fail*/);  :)
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There's a method called Polyphase merge sort I recently learnt in my ds class where you traverse the files in form of runs (a run is a sorted sequence). There are n sources, and a destination.

The gist of this polyphase method is having to keep no file (given a set of files) idle. It significantly reduces the iterations. It's done by taking an fibonacci sequence of an order equal to that of number of files. So in case of 5 files, I'll take the fib sequence of order 5: [1,1,2,4,8], which represent the number of runs you're going to take out of each file and place them, where from files corresponding to runs=1, one of them will be the destination.

In short:

  1. Distribute a file into runs according to the fib sequence. [which would mean the entire dataset is in a single file. if that's not the case, you can always create in situ runs where you might want to add dummy runs to suit the sequence]
  2. Take first n runs from every file into the buffer, sort them (insertion preferred) and dump them into ONE files. That ONE file is again selected by the fibonacci sequence.
  3. Run to a point you get a single file with single run.

This is the paper which neatly explains the polyphase concept. ftp://reports.stanford.edu/pub/cstr/reports/cs/tr/76/543/CS-TR-76-543.pdf

http://en.wikipedia.org/wiki/Polyphase_merge_sort explains the algo better

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