37

I want the equivalent of this with a stream:

public static <T extends Number> T getSum(final Map<String, T> data) {
    T sum = 0;
    for (String key: data.keySet())
        sum += data.get(key);
    return sum;
}

This code doesn't actually compile because 0 cannot be assigned to type T, but you get the idea.

  • 1
    You simply cannot do this because Java doesn't accept operator overloading for classes. – Luiggi Mendoza May 6 '15 at 23:37
  • 1
    I don't get the idea. What do you want the answer to be, a T or a primitive type like int? – Paul Boddington May 6 '15 at 23:39
  • @pbabcdefp Integer, Double, or it could be int, or double – Jay May 6 '15 at 23:40
  • 2
    Also see stackoverflow.com/questions/3873215/…. If generic arithmetic is your goal you will basically need to find a library or write one. – Radiodef May 6 '15 at 23:48
13

Here's another way to do this:

int sum = data.values().stream().reduce(0, Integer::sum);

(For a sum to just int, however, Paul's answer does less boxing and unboxing.)

As for doing this generically, I don't think there's a way that's much more convenient.

We could do something like this:

static <T> T sum(Map<?, T> m, BinaryOperator<T> summer) {
    return m.values().stream().reduce(summer).get();
}

int sum = MyMath.sum(data, Integer::sum);

But you always end up passing the summer. reduce is also problematic because it returns Optional. The above sum method throws an exception for an empty map, but an empty sum should be 0. Of course, we could pass the 0 too:

static <T> T sum(Map<?, T> m, T identity, BinaryOperator<T> summer) {
    return m.values().stream().reduce(identity, summer);
}

int sum = MyMath.sum(data, 0, Integer::sum);
  • 1
    there's also no generic solution to sum heterogeneous stream of Number (AtomicInteger, AtomicLong, BigDecimal, BigInteger, Byte, Double,...) and possibly custom types – harshtuna May 7 '15 at 0:38
  • The arguments for Integer.sum are both int, so in the first bit you're going to have to get from T to int somehow. I think the solution to the Optional problem is to make the method accept a zero value and use orElse. – Paul Boddington May 7 '15 at 0:44
  • 1
    @Radiodef Lambdas do unboxing, yes, but they won't unbox a Number to an int... – Paul Boddington May 7 '15 at 0:54
67

You can do this:

int sum = data.values().stream().mapToInt(Integer::parseInt).sum();
  • 2
    @Jay You can pass the mapper and summer in. You'd end up with something like MyMath.sum(map, Number::intValue, Integer::sum) and the summer is a reduce operation. That's not much better so not really. – Radiodef May 6 '15 at 23:46
  • 1
    @Jay It's already generic in the sense that T is any type extending Number. If you mean, is there any way to make it give an int or a double etc, the answer is no as primitive types in java need to be dealt with separately. – Paul Boddington May 6 '15 at 23:46
  • 3
    @Jay See this answer for how to do a reduction over a stream to get a generalized sum: stackoverflow.com/a/30019328/3973077 – Paul Boddington May 6 '15 at 23:50
  • 1
    @pbabcdefp good find! I guess I can do it if I create a class with an add method – Jay May 6 '15 at 23:53
  • 2
    What you'd have to do is make an interface Summable as in the question I link to and then make classes implement that interface for each number type (WrappedInt, WrappedDouble etc). – Paul Boddington May 6 '15 at 23:54
1

You can do it like this:

int creditAmountSum = result.stream().map(e -> e.getCreditAmount()).reduce(0, (x, y) -> x + y);

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