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I want to display the String pattern aaabbcc to be displayed as 3a2b2c in java8

I have a working example in lower versions

String str = "aabbcccddd";

String chars[] = str.split("");
Map<String, Integer> compressMap = new LinkedHashMap<String, Integer>();
for(String s: chars) {
if("".equals(s))
    continue;
Integer count = compressMap.get(s);
if(count != null)
    compressMap.put(s, ++count);
else
    compressMap.put(s, 1);
}

StringBuffer output = new StringBuffer("");
for (Map.Entry<String, Integer> entry : compressMap.entrySet()) {
    output.append(entry.getValue()).append(entry.getKey());
}
System.out.println(output);

can anyone help on this?

3
  • 1
    Help you with what? – Sotirios Delimanolis Aug 25 '16 at 19:27
  • 1
    Are we to assume that once a new character appears, the previous one is never seen again? I mean, do you want this code to work only for "aaabbcc" or would you like it to be applicable for strings like "abaaaccs" as well? – Ishnark Aug 25 '16 at 19:34
  • 1
    If you have a working example in lower versions, then it will also work in Java 8. – sstan Aug 25 '16 at 19:35
3

What you did will still work on Java 8, but you can simplify your code by relying on Stream as next:

String str = "aabbcccddd";
// Convert the String into a Stream
// Convert int into Character
// Group by Character and count occurrences
// For each entry add the key (Character) followed by the value (Occurrences) to the result
// using the joining collector
String output = str.chars()
    .mapToObj(i -> (char)i)
    .collect(groupingBy(Function.identity(), LinkedHashMap::new, counting()))
    .entrySet()
    .stream()
    .flatMap(entry -> Stream.of(entry.getValue().toString(), entry.getKey().toString()))
    .collect(Collectors.joining());

System.out.println(output);

Output:

2a2b3c3d

Another approach slightly different where we convert Integer to char at the end:

String output = str.chars()
    .boxed()
    .collect(groupingBy(Function.identity(), LinkedHashMap::new, counting()))
    .entrySet()
    .stream()
    .flatMap(entry -> Stream.of(entry.getValue().toString(), Character.toString((char) entry.getKey().intValue())))
    .collect(Collectors.joining());

NB: I use LinkedHashMap::new as supplier instead of the default HashMap::new to preserve the order.

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3
  • I haven't voted on your answer yet. Still, your argument against me suggesting you shouldn't post answers to unclear questions shouldn't be to defend that good answers to bad questions shouldn't be downvoted. Those two things are unrelated. I want you to change your behavior to StackOverflow-first, me-later. Otherwise, StackOverflow will be overrun by garbage. (Not that this question is "garbage", but it definitely needs improvement to fit the standards.) – Sotirios Delimanolis Aug 27 '16 at 0:21
  • I always like to emphasize the 2nd to last part of How do I write a good answer?: Answer well-asked questions. – Sotirios Delimanolis Aug 27 '16 at 0:22
  • @SotiriosDelimanolis I see, thx for the link and the clear explanation – Nicolas Filotto Aug 27 '16 at 9:07
0

The other solution will be:

String output = Pattern.compile("(?<=(\\w))(?!\\1)")
        .splitAsStream(string)
        .map(part -> part.length() + part.substring(0, 1))
        .collect(Collectors.joining());

The Pattern (?<=(\\w))(?!\\1) match places in String where next char is different than previous, so it split String into parts containing separate letters, then map it to string with its length.

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0

Here is the code for above problem: Time complexity: O(n) Space complexity: O(1)

    private void printCharacterLength(char[] arr) {
    StringBuilder result = new StringBuilder();
    int count = 1;
    for (int i = 1; i < arr.length; i++) {
        if (arr[i] == arr[i - 1]) {
            count++;
        } else {
            result.append((count > 1 ? count : "")).append(arr[i - 1]);
            count = 1;
        }
    }
    result.append((count > 1 ? count : "")).append(arr[arr.length - 1]);
    System.out.println(result);
}
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