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Java novice here.

Say I'm given a string:

===This 銳is a= stri = ng身===

How would I use pattern-matching to efficiently figure out how many "=" signs there are at the edges of "This 銳is a= stri = ng身"?

Also, I'm trying to use Java escape sequences such as \G, but apparently they don't compile.

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Are you asking for the regex to do the matching or a way to get the count? –  Thihara Feb 15 '13 at 5:02
1  
The answer is 3. And \G works just fine in Java, according to the docs‌​. –  Qtax Feb 15 '13 at 5:04
2  
Why would you use a regex for that? –  Brian Roach Feb 15 '13 at 5:14
    
@Qtax Wouldn't the answer be 6, because there are 3 equal signs on each edge. –  aa8y Feb 15 '13 at 5:17

6 Answers 6

up vote 3 down vote accepted

I personally probably wouldn't use a regex for this, but ... this is what works:

Matcher m = Pattern.compile("^(=+).+[^=](=+)$").matcher("===Som=e=Text====");
m.find();
int count = m.group(1).length() + m.group(2).length();
System.out.println(count);

(Note this isn't doing error checking and assume there are = on both ends)

Edit to Add: And here's one that works regardless if there's = on either end:

public static int equalsCount(String source)
{
    int count = 0;
    Matcher m = Pattern.compile("^(=+)?.+[^=](=+)?$").matcher(source);
    if (m.find())
    {
        count += m.group(1) == null ? 0 : m.group(1).length();
        count += m.group(2) == null ? 0 : m.group(2).length();
    }

    return count;
}

public static void main(String[] args)
{
    System.out.println(equalsCount("===Some=tex=t="));
    System.out.println(equalsCount("===Some=tex=t"));
    System.out.println(equalsCount("Some=tex=t="));
    System.out.println(equalsCount("Some=tex=t"));
}

On the other hand ... you could avoid the regex and do:

String myString = "==blah=";
int count = 0;
int i = 0;
while (myString.charAt(i++) == '=')
{
    count++;    
}
i = myString.length() - 1;
while (myString.charAt(i--) == '=')
{
    count++;
}
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Don't know why I didn't think of that...that's how I'd do it in C...must be something to do with the whole "Strings are immutable in Java" thing. –  Soyuz Feb 15 '13 at 6:31
    
My background is in C; I'm a terrible Java programmer ... always wanting to just get things done rather than using a framework or a design pattern ;) –  Brian Roach Feb 15 '13 at 6:33
    
For the given problem, using Pattern.compile("^(=+).+(=+)$") is just enough. Is there any special reason for using [^=] in between? –  MGPJ Mar 8 '13 at 2:30

If you want to count the number of occurrence of "=" at the edges then try this.

int count = str.length() - str.replaceAll("[^=]=[^=]", "").length();
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You're missing the vital part of the question, "are at the edges". Hint: Add some anchors, quantifiers and an alternation. –  Qtax Feb 15 '13 at 5:06
1  
That would return the count of all equal signs, not just the ones which border "This 銳is a= stri = ng身". –  Dracs Feb 15 '13 at 5:07
    
It would also remove equals in the text. Im not sure if it will get all, though. "[^=]+(=[^=])* should work better. –  Cephalopod Feb 15 '13 at 5:30
1  
@Arian It would not, because strings are immutable. An even cleaner approach would be ^=+|=+$ as the pattern. –  Vulcan Feb 15 '13 at 5:32
    
This has naught to do with strings being immutable. replaceAll returns a new instance. –  Cephalopod Feb 15 '13 at 5:52

This can be one probable answer:

public static void main(String[] args) {
    int count = 0;
    String str = "===This is a= stri = ng===";
    Pattern edgeEq = Pattern.compile("=");
    Pattern wordEq = Pattern.compile("[^=]=+[^=]");

    Matcher edgeMatch = edgeEq.matcher(str);
    while (edgeMatch.find()) {
        count++;
    }

    Matcher wordMatch = wordEq.matcher(str);
    while (wordMatch.find()) {
        count--;
    }

    System.out.println(count);
}

This will help you find the number of = on the edges of the string.

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Assuming there are always the same number of = at the start as at the end:

import java.util.regex.*;
Matcher m = Pattern.compile("^=*").matcher(s);
int count = m.find()? m.group(0).length(): 0;
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Use the following code

    String s1 = "===This 銳is a= stri = ng身===";
    System.out.println("Length : "+s1.length());
    p = Pattern.compile("^=+");

    m = p.matcher(s1);
    int count = 0;
    while (m.find())
    {
        count = m.group().length();
        System.out.println("Group : "+m.group());
    }


    p = Pattern.compile("(=+)$");
    m = p.matcher(s1);
    while (m.find())
    {
        count += m.group().length();
        System.out.println("End Group : "+m.group());
    }

    System.out.println("Total : " + count);
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If = at the edges are balanced you can use

^(=+).*\1$

Group1's length is the length of = at the edges

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