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What is the clearest way to comma-delimit a list in Java?

I know several ways of doing it, but I'm wondering what the best way is (where "best" means clearest and/or shortest, not the most efficient.

I have a list and I want to loop over it, printing each value. I want to print a comma between each item, but not after the last one (nor before the first one).

List --> Item ( , Item ) *
List --> ( Item , ) * Item

Sample solution 1:

boolean isFirst = true;
for (Item i : list) {
  if (isFirst) {
    System.out.print(i);        // no comma
    isFirst = false;
  } else {
    System.out.print(", "+i);   // comma
  }
}

Sample solution 2 - create a sublist:

if (list.size()>0) {
  System.out.print(list.get(0));   // no comma
  List theRest = list.subList(1, list.size());
  for (Item i : theRest) {
    System.out.print(", "+i);   // comma
  }
}

Sample solution 3:

  Iterator<Item> i = list.iterator();
  if (i.hasNext()) {
    System.out.print(i.next());
    while (i.hasNext())
      System.out.print(", "+i.next());
  }

These treat the first item specially; one could instead treat the last one specially.

Incidentally, here is how List toString is implemented (it's inherited from AbstractCollection), in Java 1.6:

public String toString() {
    Iterator<E> i = iterator();
    if (! i.hasNext())
        return "[]";

    StringBuilder sb = new StringBuilder();
    sb.append('[');
    for (;;) {
        E e = i.next();
        sb.append(e == this ? "(this Collection)" : e);
        if (! i.hasNext())
            return sb.append(']').toString();
        sb.append(", ");
    }
}

It exits the loop early to avoid the comma after the last item. BTW: this is the first time I recall seeing "(this Collection)"; here's code to provoke it:

List l = new LinkedList();
l.add(l);
System.out.println(l);

I welcome any solution, even if they use unexpected libraries (regexp?); and also solutions in languages other than Java (e.g. I think Python/Ruby have an intersperse function - how is that implemented?).

Clarification: by libraries, I mean the standard Java libraries. For other libraries, I consider them with other languages, and interested to know how they're implemented.

EDIT toolkit mentioned a similar question: Last iteration of for loop in java

And another: Does the last element in a loop deserve a separate treatment?

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28 Answers 28

up vote 89 down vote accepted

See also #285523

String delim = "";
for (Item i : list) {
    sb.append(delim).append(i);
    delim = ",";
}
share|improve this answer
    
A very surprising way to store state! It's almost OO polymorphic. I don't like the unnecessary assignment every loop, but I bet it's more efficient than an if. Most solutions repeat a test we know won't be true - though inefficient, they're probably the clearest. Thanks for the link! –  13ren Mar 21 '09 at 12:03
    
I like this, but because it's clever and surprising, I thought it wouldn't be appropriate to use (surprising is not good!). However, I couldn't help myself. I'm still not sure about it; however, it is so short that it is easy to work out provided there's a comment to tip you off. –  13ren Mar 25 '09 at 7:29
3  
@13ren: You and Uncle Bob need to have a talk about code that is "clever and surprising." –  Stefan Kendall Aug 31 '11 at 1:11
    
concise and neat. –  Jack Jul 2 at 6:25
org.apache.commons.lang.StringUtils.join(list,",");
share|improve this answer
1  
Found the source: svn.apache.org/viewvc/commons/proper/lang/trunk/src/java/org/… The join method has 9 overloadings. The iteration-based ones are like "Sample solution 3"; the index-based ones use: if (i > startIndex) { <add separator> } –  13ren Mar 21 '09 at 11:15
    
I'm really after implementations though. It's a good idea to wrap it up in a function, but in practice, my delimiter is sometimes a newline, and each line is also indented to some specified depth. Unless... join(list, "\n"+indent) ...will that always work? Sorry, just thinking aloud. –  13ren Mar 21 '09 at 13:04
5  
+1 for using a more or less standard library –  keuleJ Feb 9 '10 at 13:42
1  
In my opinion, this is the prettiest and shortest solution –  Jesper Rønn-Jensen Mar 17 '11 at 9:10
    
probably, list.iterator()? –  Vanuan Aug 30 '13 at 17:00
Joiner.on(",").join(myList)

Joiner.

share|improve this answer
    
I came here looking for something that does exactly this. Thanks! +1 –  javamonkey79 Mar 25 '13 at 23:07
1  
Same. Thanks for this. Finally, someone sane. –  T.W.R.Cole Jun 18 at 19:25

Based on Java's List toString implementation:

Iterator i = list.iterator();
for (;;) {
  sb.append(i.next());
  if (! i.hasNext()) break;
  ab.append(", ");
}

It uses a grammar like this:

List --> (Item , )* Item

By being last-based instead of first-based, it can check for skip-comma with the same test to check for end-of-list. I think this one is very elegant, but I'm not sure about clarity.

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If you use the Spring Framework you can do it with StringUtils:

public static String arrayToDelimitedString(Object[] arr)
public static String arrayToDelimitedString(Object[] arr, String delim)
public static String collectionToCommaDelimitedString(Collection coll)
public static String collectionToCommaDelimitedString(Collection coll, String delim)
share|improve this answer
    
Thanks, but how is it implemented? –  13ren Mar 21 '09 at 23:45
StringBuffer result = new StringBuffer();
for(Iterator it=list.iterator; it.hasNext(); ) {
  if (result.length()>0)
    result.append(", ");
  result.append(it.next());
}

Update: As Dave Webb mentioned in the comments this may not produce correct results if the first items in the list are empty strings.

share|improve this answer
    
Cute, unexpected, I like it! thanks. –  13ren Mar 21 '09 at 8:15
    
meh.. still has the if in the loop. –  sfossen Mar 21 '09 at 8:16
    
You can use a foreach loop to make it shorter. –  Peter Lawrey Mar 21 '09 at 8:37
    
That won't work if the first item in the list is an empty string. –  Dave Webb Mar 21 '09 at 9:03
    
@Dave Webb: Yes, thanks. The question does not have such a requirement though. –  cherouvim Mar 21 '09 at 9:08

I usually do this :

StringBuffer sb = new StringBuffer();
Iterator it = myList.iterator();
if (it.hasNext()) { sb.append(it.next().toString()); }
while (it.hasNext()) { sb.append(",").append(it.next().toString()); }

Though I think I'll to a this check from now on as per the Java implementation ;)

share|improve this answer
    
That's same logic as Sample 3, I like it because it does nothing unnecessary. However, I don't know if it is the clearest. BTW: it's slightly more efficient if you put the while inside the if, by avoiding two tests when the list is empty. It also makes it slighly clearer, to me. –  13ren Mar 21 '09 at 12:58

One option for the foreach loop is:

StringBuilder sb = new StringBuilder();
for(String s:list){
  if (sb.length()>0) sb.append(",");
  sb.append(s);
}
share|improve this answer

I usually use something similar to version 3. It works well c/c++/bash/... :P

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for(int i=0, length=list.size(); i<length; i++)
  result+=(i==0?"":", ") + list.get(i);
share|improve this answer
    
Not exactly "pretty", but it works... –  David Z Mar 21 '09 at 8:27
    
Yes it's a bit cryptic, but an alternative to what's already been posted. –  cherouvim Mar 21 '09 at 8:41
1  
I think the code looks fine, IMHO its more pretty than your other answer and its hardly 'cryptic'. Wrap it up in a method called Join and your laughing, still I would expect the language to have a better way of solving what is really a common problem. –  tarn Mar 21 '09 at 8:48
    
@tarn: you think it looks good because you have a Python/perl background ;) I like it as well –  cherouvim Mar 21 '09 at 8:53

If you can use Groovy (which runs on the JVM):

def list = ['a', 'b', 'c', 'd']
println list.join(',')
share|improve this answer
    
thanks, but I'm interested in implementations. How is this one implemented? –  13ren Mar 21 '09 at 23:10
StringBuffer sb = new StringBuffer();

for (int i = 0; i < myList.size(); i++)
{ 
    if (i > 0) 
    {
        sb.append(", ");
    }

    sb.append(myList.get(i)); 
}
share|improve this answer
    
I find this one to be very easy to embed into a static utility class, while being very easy to read and understand as well. It also does't require any extra variables or state other than the list itself, the loop and the delimiter. –  Joachim H. Skeie Oct 9 '11 at 9:56
    
This will provide something like: Item1Item2, Item3, Item4, –  user1181445 Mar 12 '13 at 20:48

In Python its easy

",".join( yourlist )

In C# there is a static method on the String class

String.Join(",", yourlistofstrings)

Sorry, not sure about Java but thought I'd pipe up as you asked about other languages. I'm sure there would be something similar in Java.

share|improve this answer
    
IIRC, you get a trailing , in the .Net version. :-( –  Tommy Mar 21 '09 at 8:21
1  
Just tested, no trailing delimiter in .NET or Python –  tarn Mar 21 '09 at 8:25
1  
thanks! I found the source for it: svn.python.org/view/python/branches/release22-branch/Objects/… search for "Catenate everything". It omits the separator for the last item. –  13ren Mar 21 '09 at 8:38
    
@13ren Nicely done! Does it help? I had a lock and quickly remembered why I choose not to program in C these days :P –  tarn Mar 21 '09 at 8:43
    
I mean look, not lock. –  tarn Mar 21 '09 at 8:44

I didn't compile it... but should work (or be close to working).

public static <T> String toString(final List<T> list, 
                                  final String delim)
{
    final StringBuilder builder;

    builder = new StringBuilder();

    for(final T item : list)
    {
        builder.append(item);
        builder.append(delim);
    }

    // kill the last delim
    builder.setLength(builder.length() - delim.length());

    return (builder.toString());
}
share|improve this answer
    
I like this way, i would just prefer an other formatting. But to mention one small fix: If the list is empty, this will throw an IndexOutOfBounds exception. So, either do a check before the setLength, or use Math.max(0,...) –  tb- Oct 29 '12 at 19:16

This is very short, very clear, but gives my sensibilities the creeping horrors. It's also a bit awkward to adapt to different delimiters, especially if a String (not char).

for (Item i : list)
  sb.append(',').append(i);
if (sb.charAt(0)==',') sb.deleteCharAt(0);

Inspired by: http://stackoverflow.com/questions/285523/last-iteration-of-for-loop-in-java/669221#669221

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I somewhat like this approach, which I found on a blog some time ago. Unfortunately I don't remember the blog's name/URL.

You can create a utility/helper class that looks like this:

private class Delimiter
{
    private final String delimiter;
    private boolean first = true;

    public Delimiter(String delimiter)
    {
        this.delimiter = delimiter;
    }

    @Override
    public String toString()
    {
        if (first) {
            first = false;
            return "";
        }

        return delimiter;
    }
}

Using the helper class is simple as this:

StringBuilder sb = new StringBuilder();
Delimiter delimiter = new Delimiter(", ");

for (String item : list) {
    sb.append(delimiter);
    sb.append(item);
}
share|improve this answer
    
Just a note: it should be "delimiter", not "delimeter". –  Michael Myers Mar 23 '09 at 15:27
    
Oops. Thank you. Fixed. –  Tobias Müller Mar 23 '09 at 15:54

(Copy paste of my own answer from here.) Many of the solutions described here are a bit over the top, IMHO, especially those that rely on external libraries. There is a nice clean, clear idiom for achieving a comma separated list that I have always used. It relies on the conditional (?) operator:

Edit: Original solution correct, but non-optimal according to comments. Trying a second time:

int[] array = {1, 2, 3};
StringBuilder builder = new StringBuilder();
for (int i = 0 ;  i < array.length; i++)
       builder.append(i == 0 ? "" : ",").append(array[i]);

There you go, in 4 lines of code including the declaration of the array and the StringBuilder.

2nd Edit: If you are dealing with an Iterator:

    List<Integer> list = Arrays.asList(1, 2, 3);
    StringBuilder builder = new StringBuilder();
    for (Iterator it = list.iterator(); it.hasNext();)
        builder.append(it.next()).append(it.hasNext() ? "," : "");
share|improve this answer
    
This and stackoverflow.com/questions/668952/… above are similar. It's short and clear, but if you only have an iterator, you'd first need to convert. Inefficient, but maybe worth it for the clarity of this approach? –  13ren Mar 21 '09 at 23:09
    
Ugh, string concatenation creating a temporary StringBuilder within use of a StringBuilder. Inefficient. Better (more likes of Java, but better running code) would be "if (i > 0) { builder.append(','); }" followed by builder.append(array[i]); –  Eddie Mar 22 '09 at 4:49
    
Yes, if you look in the bytecode, you are right. I can't believe such a simple question can get so complicated. I wonder if the compiler can optimize here. –  Julien Chastang Mar 22 '09 at 5:01
    
Provided 2nd, hopefully better solution. –  Julien Chastang Mar 22 '09 at 15:31
    
Might be better to split them (so people can vote on one or other). –  13ren Mar 24 '09 at 3:47

I like this solution:

String delim = " - ", string = "";

for (String item : myCollection)
    string += delim + item;

string = string.substring(delim.length());

I assume it can make use of StringBuilder too.

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I didn't see anybody with this solution, so I thought I would toss it out there:

list.toString().replaceAll("^\\[|\\]$", "").replaceAll(", ", delimiter);

It's a nice one-liner, but it relies on the fact that AbstractCollection.toString() comes in the form [item1, item2, ...] so it's not exactly intuitive for Java newbies.

EDIT

After reading the comment from @Leigh, I saw that there is one major flaw with using List.toString(): it is impossible detect when a ", " (comma followed by a space) is part of the list or is a delimiting element, so this little trick CANNOT work in instances where your list has commas and spaces. So you won't see this in Apache Commons, but it's a nice little one-off that works in 99% of all cases.

share|improve this answer
    
It's an interesting idea. But I do not think the toString() format is documented anywhere, like the other methods. Plus it has the side effect of removing any square brackets within the list values. So I would probably go with one of the other approaches instead, despite being longer. –  Leigh Apr 5 '12 at 3:28
    
Nice point. I updated the example to not strip out any brackets contained in the list. I also added a note about the one case where this method completely breaks down. Here are the docs on AbstractCollection which does state how it's toString will be performed. –  Tim Pote Apr 6 '12 at 19:40
    
Interesting, so it is documented. My bad. I must have only looked in the concrete classes. I still love Apache Commons best ;) but +1 for a very thorough answer. –  Leigh Apr 6 '12 at 19:53

None of the answers uses recursion so far...

public class Main {

    public static String toString(List<String> list, char d) {
        int n = list.size();
        if(n==0) return "";
        return n > 1 ? Main.toString(list.subList(0, n - 1), d) + d
                  + list.get(n - 1) : list.get(0);
    }

    public static void main(String[] args) {
        List<String> list = Arrays.asList(new String[]{"1","2","3"});
        System.out.println(Main.toString(list, ','));
    }

}
share|improve this answer
String delimiter = ",";
StringBuilder sb = new StringBuilder();
for (Item i : list) {
    sb.append(delimiter).append(i);
}
sb.toString().replaceFirst(delimiter, "");
share|improve this answer

You can also unconditionally add the delimiter string, and after the loop remove the extra delimiter at the end. Then an "if list is empty then return this string" at the beginning will allow you to avoid the check at the end (as you cannot remove characters from an empty list)

So the question really is:

"Given a loop and an if, what do you think is the clearest way to have these together?"

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public static String join (List<String> list, String separator) {
  String listToString = "";

  if (list == null || list.isEmpty()) {
   return listToString;
  }

  for (String element : list) {
   listToString += element + separator;
  }

  listToString = listToString.substring(0, separator.length());

  return listToString;
}
share|improve this answer
1  
I think you meant to say listToString.substring(0, listToString.length()-separator.length()); –  13ren Sep 23 '10 at 3:32
if (array.length>0)          // edited in response Joachim's comment
  sb.append(array[i]);
for (int i=1; i<array.length; i++)
  sb.append(",").append(array[i]);

Based on Clearest way to comma-delimit a list (Java)?

Using this idea: Does the last element in a loop deserve a separate treatment?

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1  
For this to work, you need to know that there is at least 1 element in the list, otherwise your first for-loop will crash with an IndexOutOfBoundsException. –  Joachim H. Skeie Oct 9 '11 at 10:03
    
@Joachim thanks, you're right of course. What an ugly solution I wrote! I'll change for (int i=0; i<1; i++) to if (array.length>0). –  13ren Oct 10 '11 at 18:45
public String toString(List<Item> items)
{
    StringBuilder sb = new StringBuilder("[");

    for (Item item : items)
    {
        sb.append(item).append(", ");
    }

    if (sb.length() >= 2)
    {
        //looks cleaner in C# sb.Length -= 2;
        sb.setLength(sb.length() - 2);
    }

    sb.append("]");

    return sb.toString();
}
share|improve this answer
1  
Just noticed it's similar to the answer TofuBeer gave –  Eblis Nov 22 '11 at 15:46

Because your delimiter is ", " you could use any of the following:

public class StringDelim {

    public static void removeBrackets(String string) {
        System.out.println(string.substring(1, string.length() - 1));
    }

    public static void main(String... args) {
        // Array.toString() example
        String [] arr = {"Hi" , "My", "name", "is", "br3nt"};
        String string = Arrays.toString(arr);
        removeBrackets(string);

        // List#toString() example
        List<String> list = new ArrayList<String>();
        list.add("Hi");
        list.add("My");
        list.add("name");
        list.add("is");
        list.add("br3nt");
        string = list.toString();
        removeBrackets(string);

        // Map#values().toString() example
        Map<String, String> map = new LinkedHashMap<String, String>();
        map.put("1", "Hi");
        map.put("2", "My");
        map.put("3", "name");
        map.put("4", "is");
        map.put("5", "br3nt");
        System.out.println(map.values().toString());
        removeBrackets(string);

        // Enum#toString() example
        EnumSet<Days> set = EnumSet.allOf(Days.class);
        string = set.toString();
        removeBrackets(string);
    }

    public enum Days {
        MON("Monday"),
        TUE("Tuesday"),
        WED("Wednesday"),
        THU("Thursday"),
        FRI("Friday"),
        SAT("Saturday"),
        SUN("Sunday");

        private final String day;

        Days(String day) {this.day = day;}
        public String toString() {return this.day;}
    }
}

If your delimiter is ANYTHING else then this isn't going to work for you.

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In my opinion, this is the simplest to read and understand:

StringBuilder sb = new StringBuilder();
for(String string : strings) {
    sb.append(string).append(',');
}
sb.setLength(sb.length() - 1);
String result = sb.toString();
share|improve this answer

Java 8 provides several new ways of doing this:

// Util method for strings
List<String> strs = Arrays.asList("1", "2", "3");
String listStr1 = String.join(",", strs);

// For any type using streams and collectors
List<Object> objs = Arrays.asList(1, 2, 3);
String listStr2 = objs.stream().map(s -> s.toString()).collect(joining(",", "[", "]"));
share|improve this answer

protected by Lukas Eder Apr 6 '12 at 19:29

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