155

So I'm iterating over a range like so:

(1..100).each do |n|
    # n = 1
    # n = 2
    # n = 3
    # n = 4
    # n = 5
end

But what I'd like to do is iterate by 10's.

So in stead of increasing n by 1, the next n would actually be 10, then 20, 30, etc etc.

255
0

See http://ruby-doc.org/core/classes/Range.html#M000695 for the full API.

Basically you use the step() method. For example:

(10..100).step(10) do |n|
    # n = 10
    # n = 20
    # n = 30
    # ...
end
| improve this answer | |
  • 12
    This answer led me to what I was looking for... If you have two times, you can do (time1..time2).step(15.minutes) do |time| – daybreaker Jan 18 '14 at 20:11
11
0

You can use Numeric#step.

0.step(30,5) do |num|
  puts "number is #{num}"
end
# >> number is 0
# >> number is 5
# >> number is 10
# >> number is 15
# >> number is 20
# >> number is 25
# >> number is 30
| improve this answer | |
5
0
rng.step(n=1) {| obj | block } => rng

Iterates over rng, passing each nth element to the block. If the range contains numbers or strings, natural ordering is used. Otherwise step invokes succ to iterate through range elements. The following code uses class Xs, which is defined in the class-level documentation.

range = Xs.new(1)..Xs.new(10)
range.step(2) {|x| puts x}
range.step(3) {|x| puts x}

produces:

1 x
3 xxx
5 xxxxx
7 xxxxxxx
9 xxxxxxxxx
1 x
4 xxxx
7 xxxxxxx
10 xxxxxxxxxx

Reference: http://ruby-doc.org/core/classes/Range.html

......

| improve this answer | |
5
0

Here's another, perhaps more familiar-looking way to do it:

for i in (0..10).step(2) do
    puts i
end
| improve this answer | |
  • 10
    Sorry, but the ruby style guide strongly discourages the use for loops. – Darth Egregious Apr 10 '15 at 16:58
  • @DarthEgregious why is that? – Doug Aug 12 '18 at 21:20
  • It's an extension of the philosophy that every thing is an object and every action is a method call. So rather than using a built-in for looping with for, you should use the each method. – Darth Egregious Aug 13 '18 at 15:13

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