97

I have worked in a SOAP message to get the LoginToken from a Webservice, and store that LoginToken as a String. U used System.out.println(LoginToken); to print the value. This prints [wdsd34svdf], but I want only wdsd34svdf. How can I remove these square brackets at the start and end of the output?

Example:

String LoginToken=getName().toString();
System.out.println("LoginToken" + LoginToken);

The output is: [wdsd34svdf].

I want just wdsd34svdf

0

12 Answers 12

199

You need to find the index of [ and ] then substring. (Here [ is always at start and ] is at end):

String loginToken = "[wdsd34svdf]";
System.out.println( loginToken.substring( 1, loginToken.length() - 1 ) );
3
  • 8
    This should be loginToken.length()-2 to remove the end bracket.
    – mga911
    Jan 10, 2014 at 23:47
  • 8
    @mga911 As I mentioned in my answer, the 'substring(beginIndex,endIndex)' parameter should be '1' and 'loginToken.length()-1' respectively ( index of [ and ] ). The first parameter is inclusive and the second parameter is exclusive. Above code gives me the correct output.
    – gtiwari333
    Jan 12, 2014 at 12:30
  • i use (error.substring(2, error.length()-1)) to remove first and last brackets! Mar 27, 2016 at 1:24
27

This is generic solution:

str.replaceAll("^.|.$", "")
0
14

You can always use substring:

String loginToken = getName().toString();
loginToken = loginToken.substring(1, loginToken.length() - 1);
0
9

Another solution for this issue is use commons-lang (since version 2.0) StringUtils.substringBetween(String str, String open, String close) method. Main advantage is that it's null safe operation.

StringUtils.substringBetween("[wdsd34svdf]", "[", "]"); // returns wdsd34svdf
1
  • 3
    This will work for that specific scenario, but would return "wdsd" if "[wdsd]34svdf]" was passed as the first parameter.
    – izilotti
    Jun 4, 2014 at 13:54
5

I had a similar scenario, and I thought that something like

str.replaceAll("\[|\]", "");

looked cleaner. Of course, if your token might have brackets in it, that wouldn't work.

2
  • 1
    please note that only the replaceAll() and replaceFirst() supports the regex, so here str.replaceAll("\\[|\\]", ""); will work
    – rekinyz
    Sep 6, 2012 at 9:31
  • 1
    The correct expression is something like str = str.replaceAll("\[|\]", ""); see the missing \\ in your expression
    – Raj
    Jun 29, 2015 at 12:16
4

Try this to remove the first and last bracket of string ex.[1,2,3]

String s =str.replaceAll("[", "").replaceAll("]", "");

Exptected result = 1,2,3

1

This way you can remove 1 leading "[" and 1 trailing "]" character. If your string happen to not start with "[" or end with "]" it won't remove anything:

str.replaceAll("^\\[|\\]$", "")
2
  • Have you tested that? I may be wrong, but it looks like "start of string, then either [ or ] then end of string". Don't we need brackets here?
    – YakovL
    Jan 16, 2017 at 23:25
  • 1
    Yeah, it works perfectly fine: @Test public void testReplace(){ String str = "[wdsd34svdf]"; str = str.replaceAll("^\[|\]$", ""); assertTrue(str.equals("wdsd34svdf")); } Jan 19, 2017 at 22:16
1

this is perfectly working fine

String str = "[wdsd34svdf]";
//String str1 = str.replace("[","").replace("]", "");
String str1 = str.replaceAll("[^a-zA-Z0-9]", "");
System.out.println(str1);


String strr = "[wdsd(340) svdf]";
String strr1 = str.replaceAll("[^a-zA-Z0-9]", "");
System.out.println(strr1);
1
  • I think there's a typo on the next to last line in the code. I think you meant to say strr.replaceAll(...) instead of str.replaceAll(...) (Replace str with strr) Dec 13, 2019 at 20:07
0

StringUtils's removeStart and removeEnd method help to remove string from start and end of a string.

In this case we could also use combination of this two method

String string = "[wdsd34svdf]";
System.out.println(StringUtils.removeStart(StringUtils.removeEnd(string, "]"), "["));
0

In Kotlin

private fun removeLastChar(str: String?): String? {
    return if (str == null || str.isEmpty()) str else str.substring(0, str.length - 1)
}
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SOLUTION 1

def spaceMeOut(str1):

   print(str1[1:len(str1)-1])

str1='Hello'

print(spaceMeOut(str1))

SOLUTION 2

def spaceMeOut(str1):

  res=str1[1:len(str1)-1]

  print('{}'.format(res))

str1='Hello'

print(spaceMeOut(str1))
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  • 2
    Please elaborate on the differences between your solutions and why the OP would use one or the other.
    – sao
    Jan 24, 2020 at 15:32
-1

This will gives you basic idea

    String str="";
    String str1="";
    Scanner S=new Scanner(System.in);
    System.out.println("Enter the string");
    str=S.nextLine();
    int length=str.length();
    for(int i=0;i<length;i++)
    {
        str1=str.substring(1, length-1);
    }
    System.out.println(str1);

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