9

I was trying to convert a list of Integers into a string of comma-separated integers.

Collectors.joining(CharSequence delimiter) - Returns a Collector that concatenates the input elements, separated by the specified delimiter, in encounter order.

List<Integer> i = new ArrayList<>();    //  i.add(null);
for (int j = 1; j < 6; j++) {
    i.add(j);
}
System.out.println(i.stream().collect(Collectors.joining(","))); // Line 8

I am getting an error in line number 8:

The method collect(Collector<? super Integer,A,R>) in the type Stream is not applicable for the arguments (Collector<CharSequence,capture#20-of ?,String>)

Is there a way to do this by streams in Java 8?

If I create a list of strings with "1", "2", "3","4","5". it works.

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2
  • 2
    You need to map the Integers to Strings` to use joining. It returns Collector<CharSequence, ?, String> specifically.
    – Naman
    Aug 22, 2019 at 4:43
  • You can loop one more and give the value to string one by one with comma.
    – Bhaven Shah
    Aug 22, 2019 at 4:57

4 Answers 4

Reset to default
45

Yes. However, there is no Collectors.joining for a Stream<Integer>; you need a Stream<String> so you should map before collecting. Something like,

System.out.println(i.stream().map(String::valueOf)
        .collect(Collectors.joining(",")));

Which outputs

1,2,3,4,5

Also, you could generate Stream<Integer> in a number of ways.

System.out.println(
        IntStream.range(1, 6).boxed().map(String::valueOf)
               .collect(Collectors.joining(","))
);
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7
  • The method description says "Returns a Collector that concatenates the input elements, separated by the specified delimiter, in encounter order." Shouldn't they mention input elements should only be String?
    – Nicky
    Aug 22, 2019 at 4:42
  • Also, i thought it will automatically calls toString method of Integer to solve this
    – Nicky
    Aug 22, 2019 at 4:43
  • Documentation also states: "Returns: A Collector which concatenates CharSequence elements, separated by the specified delimiter, in encounter order" (and return type is Collector<CharSequence,​?,​String>, that is, a Collector that accepts CharSequence)
    – user85421
    Aug 22, 2019 at 4:44
  • @Naman what if i don't use overloaded method. I can also use Collectors.joining() which says "Returns a Collector that concatenates the input elements into a String, in encounter order."
    – Nicky
    Aug 22, 2019 at 4:46
  • 1
    If you read the entire definition, it says static Collector<CharSequence,?,String> joining​(CharSequence delimiter) which tells you the type it works on (CharSequence).
    – Jim Garrison
    Aug 22, 2019 at 4:48
11

It is very easy with the Apache Commons Lang library.

Commons Lang

List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7);
String str = org.apache.commons.lang.StringUtils.join(list, ","); // You can use any delimiter
System.out.println(str);  // Output: 1, 2, 3, 4, 5, 6, 7

Java 8 Solution

List<Integer> list = Arrays.asList(1, 2, 3, 4, 5, 6, 7);
String joinedList = list.stream().map(String::valueOf).collect(Collectors.joining(","));
System.out.println(joinedList);
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2

Using Guava's com.google.common.base.Joiner

String res = Joiner.on(",").join(integerlist);

Using the Java Stream API

String res = integerlist.stream()
                        .map(String::valueOf)
                        .collect(Collectors.joining(","));
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0

Perhaps the answer to your question could be:

List.toString() as below:

List<Integer> intList = new ArrayList<Integer>();
intList.add(1);
intList.add(2);
intList.add(3);

String listString = intList.toString();
System.out.println(listString); // <- this prints [1, 2, 3]

In this post below, it is very well explained. I hope you can find it useful:

Java: Convert List<Integer> to String

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