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I have a String such as this, with the delimiter being ';':

 String line = ";;7.52;;;;;;2.89;3.05;2.48;";

How can I replace the empty entries within it with zero so it looks like this:

 ";0;7.52;0;0;0;0;0;2.89;3.05;2.48;"

Everything I've tried gives me an error.

I've tried:

line = line.replace(null, 0);

and

line = line.replace("", 0)

all which give me this or something similar:

No signature of method: java.lang.String.replaceAll() is applicable for argument types: (java.lang.String, java.lang.Integer) values: [, 0]

4
  • 4
    Please show your best good-faith attempt and the errors that you're receiving. – Hovercraft Full Of Eels Oct 21 '19 at 19:26
  • I've tried "line = line.replace(null, 0)" and "line = line.replace("", 0)" all which give me this or something similar: No signature of method: java.lang.String.replaceAll() is applicable for argument types: (java.lang.String, java.lang.Integer) values: [, 0] – Sulteric Oct 21 '19 at 19:33
  • 3
    Please don't try to expand your question with comments on it. Instead, edit your question to add any additional information. SO isn't a chat board; all the information required to answer your question needs to be contained in the question itself. – azurefrog Oct 21 '19 at 19:34
  • 0 is an integer value, "0" is a string. Replace doesn't understand the intent of your string, that between ;; is "something empty". Try and replace ";;" with ";0;" (which doesn't fill a first or last field) – Hans Kesting Oct 22 '19 at 9:03
3

It is as simple as follows:

public class Demo {   
    public static void main(String[] args) {
        String str=";;7.52;;;;;;2.89;3.05;2.48;";
        while(str.contains(";;"))
            str=str.replaceAll(";;", ";0;");            
        System.out.println(str);
    }
}

Output:

;0;7.52;0;0;0;0;0;2.89;3.05;2.48;
3

shortest one:

String line = ";;7.52;;;;;;2.89;3.05;2.48;";
String newLine = line.replace(";;", ";0;")
                     .replace(";;", ";0;")
                     .replace(";;", ";");
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  • 2
    Its will produce wrong output, there should be 5 zeroes between 7.52 and 2.89. – Shubham Saraswat Oct 21 '19 at 19:58
  • @ShubhamSaraswat - you right.I fixed, but now it is not so short :) Thanks – VeryNiceArgumentException Oct 21 '19 at 20:17
0

Convert the string into an character array, create a arraylist of characters and add each character into the arraylist. if a two adjacent characters are ; then add 0. Then use Streams to convert the arraylist into a string.

        String s = ";;7.52;;;;;;2.89;3.05;2.48;";
        char arr[] = s.toCharArray();
        ArrayList<Character> list = new ArrayList<>();
        for(int i = 0; i < arr.length-1; i++) {
            list.add(arr[i]);
            if ( arr[i]==';' && arr[i+1]==';') {
                list.add('0');
            }
        }
        String newStr = list.stream()
                            .map(String::valueOf)
                            .collect(Collectors.joining()); 

Note: Don't forget to import Collectors (import java.util.stream.Collectors;).

1
  • Or just String replaced = Arrays.stream(line.split(";")) .map(e -> e.isEmpty()?"0":e).collect(Collectors.joining(";")); – Eritrean Oct 21 '19 at 20:01
0

Try using this method:

    int countOf(String s, char c) {
        int ct, i, j;
        char _c;

        for (ct = i = 0, j = s.length(); i < j; i++) {
            _c = s.charAt(i);
            ct += (_c == c) ? 1 : 0;
        }

        return ct;
    }

to count the number of semicolons in your string.

Managing the delimiter character is the key to solving the problem.

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