-1

So i have this array that has ten elements each with the value of ten:

int health1[] = {10, 10, 10, 10, 10, 10, 10, 10, 10, 10};

How is it possible to decrement (- -) all the elements in the array at the same time?

health1--; 

Call above gives: Type mismatch, "int[]" does not match with "int"

3
  • 3
    Is it okay to iterate through each value in the loop? Jan 20, 2016 at 23:50
  • 3
    Just because the answer is "you can't" doesn't make this an unreasonable question. Here, have an upvote :-)
    – dnault
    Jan 20, 2016 at 23:55
  • Thanks lol ;D Sure got a lot of down-voting for asking this :( Jan 29, 2017 at 5:50

7 Answers 7

7

I don't believe there is a way to decrement every value in a single operation.

I would iterate over the array:

for (int i = 0; i < health1.length; i++) {
  health1[i]--;
}

About the error you are getting: This is because health1 is an array of integers, but -- is an operator for an integer itself. Because of this, it doesn't make sense to the compiler to subtract 1 from a container, as a container is not numerical. Thus the "types" are "mismatched".

2
  • 2
    Doing it in a single line is easy. Just keep your fingers away from the Enter key. ;-) Jan 20, 2016 at 23:53
  • This is now possible with Java 8 streams, please see my answer.
    – braedy.
    Feb 14, 2019 at 11:31
5

It is not possible. You must use a loop:

for (int i = 0; i < health1.length(); ++i) --health1[i];
3

Since for(;;) header allows for any kind of expression in the third position (where i++ usually goes), you can write a for loop with an empty body:

for (int i = 0; i != health1.length; health1[i++]--);

Despite the "cool" look of this one-liner, its readability is rather poor, compared to a regular for loop.

1
  • And executionally no faster than the conventional for.
    – Trunk
    Aug 7, 2019 at 12:30
1

Of course you cannot.

Explanation is simple: you are running code in the main single thread, which means that your code will transform in a stack of instructions that will run in order how they are, so you have just one solution to iterate this array and decrement each element by element.

for (int i = 0; i < health1.length; i++) health1[i]--;
0

If you know ahead of time that all of the elements of the array are the same, you can use Arrays.fill to create a new array of the same length and get the required value from the first element.

Arrays.fill(health1, health1[0] - 1);

Otherwise, you have to loop.

1
  • 2
    But if all of the elements were the same, it'd be silly to have an array in the first place! Jan 20, 2016 at 23:54
0

Java 8 streams introduced .map().

int numbers[] = {10, 11, 12, 13, 14, 15, 16, 17, 18, 19};

int[] result = Arrays.stream(numbers).map(x -> --x).toArray();
/* result contains [9, 10, 11, 12, 13, 14, 15, 16, 17, 18]. */

To get it even more "at the same time" you could add .parallel() between .stream() and .map(), but this will cost performance for setting up and would not recommend unless the list was huge.

0

For loop principles: initialisation, condition, interration

I knows the length of the health1 I is >= 0. (It will loop until reaches that point) Since it knows the length it will decrement from the end.

for(int i = health1.length; i >= 0; i--){
 System.out.println(health[i])  
}

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