问题描述
我阅读了关于如何使用 的那个问题bisect
在元组列表上,我使用该信息来回答 那个问题.它有效,但我想要一个更通用的解决方案.
I read that question about how to use bisect
on a list of tuples, and I used that information to answer that question. It works, but I'd like a more generic solution.
由于 bisect
不允许指定 key
函数,如果我有这个:
Since bisect
doesn't allow to specify a key
function, if I have this:
import bisect
test_array = [(1,2),(3,4),(5,6),(5,7000),(7,8),(9,10)]
我想找到 x > 的第一项.5
对于那些 (x,y)
元组(根本不考虑 y
,我目前正在这样做:
and I want to find the first item where x > 5
for those (x,y)
tuples (not considering y
at all, I'm currently doing this:
bisect.bisect_left(test_array,(5,10000))
我得到了正确的结果,因为我知道没有 y
大于 10000,所以 bisect
指向我的索引 <代码>(7,8)代码>.如果我用 1000
代替,那就错了.
and I get the correct result because I know that no y
is greater than 10000, so bisect
points me to the index of (7,8)
. Had I put 1000
instead, it would have been wrong.
对于整数,我可以这样做
For integers, I could do
bisect.bisect_left(test_array,(5+1,))
但是在一般情况下可能存在浮动,在不知道第二个元素的最大值的情况下如何做到这一点?
but in the general case when there may be floats, how to to that without knowing the max values of the 2nd element?
test_array = [(1,2),(3,4),(5.2,6),(5.2,7000),(5.3,8),(9,10)]
我试过这个:
bisect.bisect_left(test_array,(min_value+sys.float_info.epsilon,))
它没有用,但我试过这个:
and it didn't work, but I have tried this:
bisect.bisect_left(test_array,(min_value+sys.float_info.epsilon*3,))
它奏效了.但这感觉像是一个糟糕的黑客攻击.有什么干净的解决方案吗?
and it worked. But it feels like a bad hack. Any clean solutions?
推荐答案
bisect
支持任意序列.如果您需要将 bisect
与密钥一起使用,而不是将密钥传递给 bisect
,您可以将其构建到序列中:
bisect
supports arbitrary sequences. If you need to use bisect
with a key, instead of passing the key to bisect
, you can build it into the sequence:
class KeyList(object):
# bisect doesn't accept a key function, so we build the key into our sequence.
def __init__(self, l, key):
self.l = l
self.key = key
def __len__(self):
return len(self.l)
def __getitem__(self, index):
return self.key(self.l[index])
然后你可以使用 bisect
和一个 KeyList
,具有 O(log n) 性能并且不需要复制 bisect
源或编写你自己的二分搜索:
Then you can use bisect
with a KeyList
, with O(log n) performance and no need to copy the bisect
source or write your own binary search:
bisect.bisect_right(KeyList(test_array, key=lambda x: x[0]), 5)
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