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I'm looking for the best way to read integers+strings from a small text file, save them in an array, add a few new integers+strings, sort them by integers and then write highest few in the same file. (sth like highscores)

Example:

sth.txt:

5 aa
4 bb
3 cc
3 dd

Into

a["5 aa","4 bb","3 cc","3 dd"] 

Add some new strings

a["5 aa","4 bb","3 cc","3 dd","1 aa","7 bb"]

Sort and write back into sth.txt

7 bb
5 aa
4 bb
3 cc

How can I do it in Java?

4
  • Try a Java Map, which will allow you to associate a string to a score. – mstorkson Jan 17 '17 at 19:21
  • There are many questions about how to read text file in Java, how to store data in arrays (or list), how to sort arrays/lists, how to write text to file. Which step you are having problem with? Show us your code and describe specific problem which you are facing. – Pshemo Jan 17 '17 at 19:24
  • Use a class to parse the test file and use a List of that class then use Collections.sort with a custom comparator ! can you do that ? – StackFlowed Jan 17 '17 at 19:30
  • @RAZ_Muh_Taz Sorry, should've started with that. I tried to read/write to different files first, then found like 10 different ways to do it and got lost somewhere. My latest and, I think, most succesful try: pastebin.com/m424enLC – Jasiul Jan 17 '17 at 20:35
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You can do as follow, code contains a comments to make a better understanding.

public static void main(String[] args) throws IOException {
    Data[] map = new Data[6];
    //Then read the data from your file , in my case
    //i will make a dummy data.
    map[0] = new Data(5, "aa");
    map[1] = new Data(4, "bb");
    map[2] = new Data(3, "cc");
    map[3] = new Data(3, "dd");
    map[4] = new Data(1, "aa");
    map[5] = new Data(7, "bb");
    //Then sorting this array
    java.util.Arrays.sort(map);
    //Then print the highet 4 records
    for (int i = 0; i < 4; i++) {
        System.out.println(map[i].FirstPart + " " + map[i].SecondPart);
    }
}

Making a class than fits to your need assuming that the first part of the record is of type int and the second part is a String

class Data implements Comparable<Data> {

    int FirstPart;
    String SecondPart;

    public Data(int FirstPart, String SecondPart) {
        this.FirstPart = FirstPart;
        this.SecondPart = SecondPart;
    }
//compareTo method will be called whenever you call a sort method like
// "java.util.Arrays.sort(map);" in the main method

    @Override
    public int compareTo(Data o) {
        if (this.FirstPart < o.FirstPart) {
            return 1;
        } else {
            return -1;
        }
    }
}

Output:

7 bb
5 aa
4 bb
3 dd
4
  • What if two objects have equal FirstPart? Should we swap such elements? Anyway you don't need to write conditions manually. Let Integer.compare do it for you and simply return its result. – Pshemo Jan 17 '17 at 19:39
  • If two objects have equal FirstPart, then he can do first occur >> first show or vice versa. Or even he can then sort depending on the SecondPart. Its all about the OP needed @Pshemo – Null Jan 17 '17 at 19:44
  • Yeah, seems like it's good as well, I'll try to fix the errors and answer. @Pshemo I didn't precise, but it doesn't matter. – Jasiul Jan 17 '17 at 21:13
  • My concern is that shown comparison doesn't respect ordering rules. Normally if A>B it means that B<A. So it is expected that sgn(A.compareTo(B)) = -sgn(B.compareTo(A)). But this fails in your case if A and B will be considered equal (like map[2] and map[3]), since you will always get -1 regardless if you are comparing (A,B) or (B,A). This may cause IllegalArgumentException: Comparison method violates its general contract!. For now algorithms can allow this mistake, but it doesn't mean it will always be like that. – Pshemo Jan 17 '17 at 21:16
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Check Below Solution --

abc.txt
4 test1
6 test2
0 test3
12 test4
5 test5
9 test6

import java.io.BufferedReader;
import java.io.FileInputStream;
import java.io.IOException;
import java.io.InputStreamReader;
import java.io.PrintWriter;
import java.util.Iterator;
import java.util.Map;
import java.util.TreeMap;


public class ReadWriteDataInFile {

    public static void main(String[] args) throws IOException {
        String path="C:\\test\\";
        String fileName=path+"abc.txt";
        String newFileName=path+"abcNew.txt";

        System.out.println("Reading Data from File "+fileName + " started...");
        Map<Integer, String> readDataFromTextFile = readDataFromTextFile(fileName);

        System.out.println("Writing Sorted Data to File "+newFileName + " started...");
        writeDataInNewFile(readDataFromTextFile,newFileName);
        System.out.println("Writing Data to File Completed...");
    }


    private static void writeDataInNewFile(Map<Integer, String> readDataFromTextFile, String newFileName) throws IOException {

        PrintWriter writer = new PrintWriter(newFileName, "UTF-8");

        Iterator it = readDataFromTextFile.entrySet().iterator();
        while (it.hasNext()) {
            Map.Entry pair = (Map.Entry)it.next();
            String data1=pair.getKey() + " " + pair.getValue();
            writer.println(data1);
        }
        writer.close();
    }

    private static Map<Integer, String> readDataFromTextFile(String fileName) throws IOException {

        FileInputStream fis = new FileInputStream(fileName);
        InputStreamReader input = new InputStreamReader(fis);
        BufferedReader br = new BufferedReader(input);

        String data;
        String result[] ;

        Map<Integer,String> dataMap= new TreeMap<Integer,String> ();
        while ((data = br.readLine()) != null) {
            result = data.split(" ");
            dataMap.put(Integer.parseInt(result[0]), result[1]);
        }
        return dataMap;
    }
}

newabc.txt
0 test3
4 test1
5 test5
6 test2
9 test6
12 test4

2
  • This one works for me. I'll try to add some new strings between reading and writing then copy "newabc.txt" into "abc.txt" and tell how it worked. – Jasiul Jan 17 '17 at 22:08
  • sure , post your results as well. – sachin k Jan 18 '17 at 21:53
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Here is sample solution including reading and writing to file:

public class Main {
    static class Entry<T, U> {
        public T value1;
        public U value2;

        public Entry(T value1, U value2) {
            this.value1 = value1;
            this.value2 = value2;
        }
    }

    static Entry<Integer, String> parseLine(String line) {
        String[] intAndString = line.split(" ");
        Integer i = Integer.parseInt(intAndString[0]);
        String s = intAndString[1];
        return new Entry<>(i, s);
    }

    public static void main(String[] args) throws IOException {
        Path path = Paths.get("spl.txt");
        List<Entry<Integer, String>> resultList = new LinkedList<>();
        try (BufferedReader reader = Files.newBufferedReader(path)) {
            String nextLine;
            while ((nextLine = reader.readLine()) != null) {
                if (nextLine.equals("\n") || nextLine.isEmpty()) continue;
                resultList.add(parseLine(nextLine));
            }
        }
        Collections.sort(resultList, (e1, e2) -> e1.value1 - e2.value1 != 0 ? e1.value1 - e2.value1 : e1.value2.compareTo(e2.value2));
        try (BufferedWriter writer = Files.newBufferedWriter(path)) {
            resultList.forEach((e) -> {
                try {
                    writer.write(e.value1 + " " + e.value2 + "\n");
                } catch (IOException e1) {
                    e1.printStackTrace();
                }
            });
        }
    }
}

Encapsulation of class Entry omitted due to readability.
Sorting in ascending order.
Hope it will help.

6
  • Yeah, that's nearly exactly what i was looking for. The problem is, they were written in one line without visible separators (like "\n" didn't work), so I separated them with [enter] and saved and reran the app and I got a nasty exception: pastebin.com/5TT6HqxC. I can't see why, since they were separated with [enter] originally. – Jasiul Jan 17 '17 at 20:43
  • The problem was in the new line sign at the end of the file, please check my new solution. – Michał Szewczyk Jan 17 '17 at 21:16
  • Somehow it still works the same for me - returns the strings in one line and ends with a new line, like the "\n" only worked at the end and also seems to add empty chars somewhere, because whenever I just put enters between them and delete the new line sign at the end (checked - it doesn't matter if I delete it or not), I get the exception I mentioned above. – Jasiul Jan 17 '17 at 22:00
  • Ok I changed it. but keep in mind, that it works for the format which you gave in question: number string and new line after, for example: "5 aa" – Michał Szewczyk Jan 17 '17 at 22:07
  • Yup, file's always read well, but the result is always like C's strcpy of all lines, like "1 aa2 aa3 aa" + new line at the end. After I separate the lines with [enter], delete new line at the end, save the file, close it and rerun, it always throws that exception. After I delete whole text form the text file and retype manually, it doesn't throw the exception, but the result is the same. Checked that one as well, still the same. I don't know why, though, as far as I understand Java, your code seems legit for me. – Jasiul Jan 17 '17 at 22:22

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