并不是我本身不理解它们;我只是不知道如何像其他语言一样随意使用它们,而且我也不确定Ruby中的哪些方法会将它们变成背后的数组,将整个序列卸载到内存中是不必要的.
是的,我一直在研究Ruby参考手册.其实半小时,专注.或者显然不是.
例如,如果我要实现卡片组,它在Python中看起来像这样(未经测试):
# Python 3
from itertools import chain,count
face_ranks =
dict(
zip(
('jack','queen','king','ace'),count(11)))
sorted_deck =
map(
lambda suit:
map(
lambda rank:
{
'rank' : rank,'suit' : suit
},chain(
range(2,11),face_ranks.keys())),('clubs','diamonds','hearts','spades'))
那么,我如何在Ruby中完成这项工作,完全避免使用数组呢?请注意,据我所知,上面的代码只使用元组和生成器:在任何时候都不会将整个序列转储到内存中,就像我使用了数组一样.我对上面的代码可能是错的,但是你得到了我想要的东西.
我如何链接迭代器(如Python的chain())?如何生成无限范围的迭代器(如Python的count())?如何在迭代器中添加一个数组(比如将元组传递给Python的链())而不将整个过程转换为数组?
我见过解决方案,但它们涉及阵列或不必要的复杂性,如光纤.
在Python中,我可以像数组一样简单地操作和抛出迭代器.我几乎可以把它们当作Haskell列表来对待,我最熟悉的就是它,而且在编码时我的想法就是这样.我对Ruby数组感到不舒服,这就是为什么我寻求其替代品的帮助.
我已经设法在互联网上获取有关它的信息,但我找不到任何涵盖Ruby中这种数据结构的基本操作?有帮助吗?
解决方法
iter.rb
def get_enums_from_args(args)
args.collect { |e| e.is_a?(Enumerator) ? e.dup : e.to_enum }
end
def build(y,&block)
while true
y << (begin yield; rescue StopIteration; break; end)
end
end
def zip(*args)
enums = get_enums_from_args args
Enumerator.new do |y|
build y do
enums.collect { |e| e.next }
end
end
end
def chain(*args)
enums = get_enums_from_args args
Enumerator.new do |y|
enums.each do |e|
build y do
e.next
end
end
end
end
def multiply(*args)
enums = get_enums_from_args args
duped_enums = enums.collect { |e| e.dup }
Enumerator.new do |y|
begin
while true
y << (begin; enums.collect { |e| e.peek }; rescue StopIteration; break; end )
index = enums.length - 1
while true
begin
enums[index].next
enums[index].peek
break
rescue StopIteration
# Some iterator ran out of items.
# If it was the first iterator,we are done,raise if index == 0
# If it was a different iterator,reset it
# and then look at the iterator before it.
enums[index] = duped_enums[index].dup
index -= 1
end
end
end
rescue StopIteration
end
end
end
我使用rspec编写了一个规范来测试函数并演示它们的作用:
iter_spec.rb:
require_relative 'iter'
describe "zip" do
it "zips together enumerators" do
e1 = "Louis".chars
e2 = "198".chars
zip(e1,e2).to_a.should == [ ['L','1'],['o','9'],['u','8'] ]
end
it "works with arrays too" do
zip([1,2],[:a,nil]).to_a.should == [ [1,:a],[2,nil] ]
end
end
describe "chain" do
it "chains enumerators" do
e1 = "Jon".chars
e2 = 0..99999999999
e = chain(e1,e2)
e.next.should == "J"
e.next.should == "o"
e.next.should == "n"
e.next.should == 0
e.next.should == 1
end
end
describe "multiply" do
it "multiplies enumerators" do
e1 = "ABC".chars
e2 = 1..3
multiply(e1,e2).to_a.should == [["A",1],["A",3],["B",["C",3]]
end
it "is lazily evalutated" do
e1 = 0..999999999
e2 = 1..3
e = multiply(e1,e2)
e.next.should == [0,1]
e.next.should == [0,2]
e.next.should == [0,3]
e.next.should == [1,1]
e.next.should == [1,2]
end
it "resulting enumerator can not be cloned effectively" do
ranks = chain(2..10,[:jack,:queen,:king,:ace])
suits = [:clubs,:diamonds,:hearts,:spades]
cards = multiply(suits,ranks)
c2 = cards.clone
cards.next.should == [:clubs,2]
c2.next.should == [:clubs,3]
c2.next.should == [:clubs,4]
c2.next.should == [:clubs,5]
cards.next.should == [:clubs,6]
end
it "resulting enumerator can not be duplicated after first item is evaluated" do
ranks = chain(2..10,:spades]
cards = multiply(ranks,suits)
cards.peek
lambda { cards.dup }.should raise_error TypeError
end
end
如上面的规范所示,这些方法使用惰性评估.
此外,这里定义的zip,chain和multiply函数的主要缺点是生成的枚举器不能轻易复制或克隆,因为我们没有编写任何代码来复制这些新枚举器所依赖的枚举参数.你可能需要创建一个Enumerator的子类,或者创建一个包含Enumerable模块的类或者类似的东西来使dup更好地工作.