我可能以错误的方式处理这个问题,但我想知道如何在 python 中处理这个问题.
I am probably going about this in the wrong manner, but I was wondering how to handle this in python.
首先是一些c代码:
int i;
for(i=0;i<100;i++){
if(i == 50)
i = i + 10;
printf("%i
", i);
}
好吧,所以我们永远不会看到 50 年代...
Ok so we never see the 50's...
我的问题是,我怎样才能在 python 中做类似的事情?例如:
My question is, how can I do something similar in python? For instance:
for line in cdata.split('
'):
if exp.match(line):
#increment the position of the iterator by 5?
pass
print line
由于我在 python 方面的经验有限,我只有一个解决方案,引入一个计数器和另一个 if 语句.在 exp.match(line) 为真后中断循环直到计数器达到 5.
With my limited experience in python, I only have one solution, introduce a counter and another if statement. break the loop until the counter reaches 5 after exp.match(line) is true.
必须有更好的方法来做到这一点,希望不涉及导入另一个模块.
There has got to be a better way to do this, hopefully one that does not involve importing another module.
提前致谢!
Python中有一个很棒的包,叫做itertools
.
There is a fantastic package in Python called itertools
.
但在我开始之前,先解释一下迭代协议是如何在 Python 中实现的.当你想在你的容器上提供迭代时,你指定 __iter__()
类方法,提供 迭代器类型."理解 Python 的 'for' 语句" 是一篇很好的文章,介绍了 for-in
语句实际上在 Python 中工作,并提供了关于迭代器类型如何工作的很好的概述.
But before I get into that, it'd serve well to explain how the iteration protocol is implemented in Python. When you want to provide iteration over your container, you specify the __iter__()
class method that provides an iterator type. "Understanding Python's 'for' statement" is a nice article covering how the for-in
statement actually works in Python and provides a nice overview on how the iterator types work.
看看以下内容:
>>> sequence = [1, 2, 3, 4, 5]
>>> iterator = sequence.__iter__()
>>> iterator.next()
1
>>> iterator.next()
2
>>> for number in iterator:
print number
3
4
5
现在回到 itertools
.该包包含用于各种迭代目的的函数.如果您需要进行特殊排序,这是首先要研究的地方.
Now back to itertools
. The package contains functions for various iteration purposes. If you ever need to do special sequencing, this is the first place to look into.
在底部,您可以找到包含 的 Recipes 部分使用现有的 itertools 作为构建块创建扩展工具集的秘诀.
At the bottom you can find the Recipes section that contain recipes for creating an extended toolset using the existing itertools as building blocks.
还有一个有趣的功能可以满足您的需求:
And there's an interesting function that does exactly what you need:
def consume(iterator, n):
'''Advance the iterator n-steps ahead. If n is none, consume entirely.'''
collections.deque(itertools.islice(iterator, n), maxlen=0)
这是一个关于其工作原理的快速、易读的示例(Python 2.5):
Here's a quick, readable, example on how it works (Python 2.5):
>>> import itertools, collections
>>> def consume(iterator, n):
collections.deque(itertools.islice(iterator, n))
>>> iterator = range(1, 16).__iter__()
>>> for number in iterator:
if (number == 5):
# Disregard 6, 7, 8, 9 (5 doesn't get printed just as well)
consume(iterator, 4)
else:
print number
1
2
3
4
10
11
12
13
14
15
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