2

I have to print the list values in the form of String. But I am held up with the [ and ] in the list. Here is my code.

List dbid=new ArrayList();
dbid.add(ar.getdbID());
String check=ar.getdbID().toString();

output for the above code :

[2, 3,4]

But I just need this:

2,3,4
2
  • one of the reasons I am liking Scala.
    – Nishant
    Mar 18 '11 at 7:34
  • ar.getdbID() what it returns? Mar 18 '11 at 7:41
8

There are no [ and ] "in the List". It's only the String representation (produced by toString()) that contains those characters. It's important to distinguish those two things.

I'd use a Guava Joiner:

Joiner.on(',').join(dbid);

Of you can manually implement it:

StringBuilder b = new StringBuilder();
Iterator<?> it = dbid.iterator();
while (it.hasNext()) {
  b.append(it.next());
  if (it.hasNext()) {
    b.append(',');
  }
}
String result = b.toString();
6
  • No need for dbid.next().toString(), append(Object) does the same. Otherwise: +1 Mar 18 '11 at 7:36
  • @Sean: true, append(Object) is even better as it avoids the NPE on null values. Mar 18 '11 at 7:37
  • Btw your code doesn't compile. Looks like early morning code :-) Mar 18 '11 at 8:21
  • oops ... yes. It is early morning and I still haven't got that Eclipse plugin for SO ;-) at least 4 people didn't mind that, however. Mar 18 '11 at 8:24
  • 1
    This code now is verified to compile, if dbid is an Iterable. I will just claim that all of this was done on purpose to demonstrate how much better it is to use pre-made code for this ;-) Mar 18 '11 at 8:35
2

Apache StringUtils join method is very useful for this:

StringUtils.join(new String[] { "1", "2", "3"}, ",");

This will return the string "1,2,3"

1
  • There's also join(Collection) which might be more suitable, since he's got a List already. Mar 18 '11 at 11:58
1

Like this:

StringBuilder sb = new StringBuilder();
Iterator it = dbid.iterator();
if(it.hasNext()){
  sb.append(it.next());
  while(it.hasNext()){
    sb.append(',').append(it.next());
  }
}
return sb.toString();
1

toString() function will merely convert the object into its String form. So it is printing the String array as a string in your case. That is why [ ] has come.

You will have to do the following to get your required result.

List dbid=new ArrayList();
dbid.add(ar.getdbID());

String[] checks=ar.getdbID();
for(String check:checks) {
    System.out.print(check+" ");
}
System.out.print("\n");

Hope you understand the usage.

1
        String pattern = "[\\[\\]]";
        String result = yourstring.replaceAll(pattern, "");

This is the best option by far that I have tried and it worked for me. "yourstring"in this case will be your string object.

1

I think it is better just to iterate through the list. Something like this will do the trick:

for(int i=0; i<yourList().size();i++){
                out.println(yourList().get(i));
            }
2
  • Could you please elaborate more your answer adding a little more description about the solution you provide?
    – abarisone
    Jun 17 '15 at 6:33
  • I agree about a simple iteration doing the trick in this case - anything that prints all values will have to iterate through the list anyway. However, you're currently printing a whole line for each element, whereas the OP wanted them comma-separated. Perhaps you could add that to your answer? Jun 17 '15 at 7:05
0

You can use replace method of String class to remove those brackets or you can use regular expression also (i guess regex will be overkill in your case)

1
  • 2
    String replace is a bad idea, because some of the List's members could also contain square brackets. The only safe way to post process the String is string.substring(1, string.length() - 1) Mar 18 '11 at 8:55

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