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No matter what I seem to try, replacing the white space with an input of

2x= -3

will result in the string being truncated to just 2x=.

public void parseEquation(String x){
    String adf = x;
    String z = adf.replaceAll("\\s","");
    System.out.println(z);
}

The first line is my input, the next line is my output

fail

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2  
Use StringBuilder for such string operations –  noMAD Apr 26 '13 at 16:31
    
String adf = x; is redundant here as replaceAll creates a new String –  danieln Apr 26 '13 at 16:57

2 Answers 2

Turns out i have severe mental problems.

I was using the

new Scanner.next();

vs

new Scanner.nextLine();

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1  
"mental problems"? –  Lion Apr 26 '13 at 16:32
2  
severe mental problems –  jsedano Apr 26 '13 at 16:33
2  
+1 for sense of humor :) –  Pshemo Apr 26 '13 at 16:33

If using other libraries is an option, consider StringUtils.deleteWhitespace . Its a well known library, well tested, and used in lots of projects so it is likely better and faster than what you could do on your own.

It also takes care of tabs and other non-printables. I'm not sure if the regex \s does that or not.

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