问题:如何在列表中找到重复项并使用它们创建另一个列表?
如何在Python列表中找到重复项并创建另一个重复项列表?该列表仅包含整数。
回答 0
要删除重复项,请使用set(a)。要打印副本,类似:
a = [1,2,3,2,1,5,6,5,5,5]
import collections
print([item for item, count in collections.Counter(a).items() if count > 1])
## [1, 2, 5]请注意,这Counter并不是特别有效(计时),并且在这里可能会过大。set会表现更好。此代码按源顺序计算唯一元素的列表:
seen = set()
uniq = []
for x in a:
if x not in seen:
uniq.append(x)
seen.add(x)或者,更简洁地说:
seen = set()
uniq = [x for x in a if x not in seen and not seen.add(x)] 我不建议您使用后者,因为not seen.add(x)这样做并不明显(set add()方法总是返回None,因此需要not)。
要计算没有库的重复元素列表:
seen = {}
dupes = []
for x in a:
if x not in seen:
seen[x] = 1
else:
if seen[x] == 1:
dupes.append(x)
seen[x] += 1如果列表元素不可散列,则不能使用集合/字典,而必须求助于二次时间解(将每个解比较)。例如:
a = [[1], [2], [3], [1], [5], [3]]
no_dupes = [x for n, x in enumerate(a) if x not in a[:n]]
print no_dupes # [[1], [2], [3], [5]]
dupes = [x for n, x in enumerate(a) if x in a[:n]]
print dupes # [[1], [3]]回答 1
>>> l = [1,2,3,4,4,5,5,6,1]
>>> set([x for x in l if l.count(x) > 1])
set([1, 4, 5])回答 2
您不需要计数,只需要查看之前是否曾查看过该项目即可。改编这个问题的答案,这一问题:
def list_duplicates(seq):
seen = set()
seen_add = seen.add
# adds all elements it doesn't know yet to seen and all other to seen_twice
seen_twice = set( x for x in seq if x in seen or seen_add(x) )
# turn the set into a list (as requested)
return list( seen_twice )
a = [1,2,3,2,1,5,6,5,5,5]
list_duplicates(a) # yields [1, 2, 5]以防万一速度很重要,以下是一些时间安排:
# file: test.py
import collections
def thg435(l):
return [x for x, y in collections.Counter(l).items() if y > 1]
def moooeeeep(l):
seen = set()
seen_add = seen.add
# adds all elements it doesn't know yet to seen and all other to seen_twice
seen_twice = set( x for x in l if x in seen or seen_add(x) )
# turn the set into a list (as requested)
return list( seen_twice )
def RiteshKumar(l):
return list(set([x for x in l if l.count(x) > 1]))
def JohnLaRooy(L):
seen = set()
seen2 = set()
seen_add = seen.add
seen2_add = seen2.add
for item in L:
if item in seen:
seen2_add(item)
else:
seen_add(item)
return list(seen2)
l = [1,2,3,2,1,5,6,5,5,5]*100结果如下:(做得很好@JohnLaRooy!)
$ python -mtimeit -s 'import test' 'test.JohnLaRooy(test.l)'
10000 loops, best of 3: 74.6 usec per loop
$ python -mtimeit -s 'import test' 'test.moooeeeep(test.l)'
10000 loops, best of 3: 91.3 usec per loop
$ python -mtimeit -s 'import test' 'test.thg435(test.l)'
1000 loops, best of 3: 266 usec per loop
$ python -mtimeit -s 'import test' 'test.RiteshKumar(test.l)'
100 loops, best of 3: 8.35 msec per loop有趣的是,除了计时本身之外,使用pypy时排名也略有变化。最有趣的是,基于计数器的方法从pypy的优化中受益匪浅,而我建议的方法缓存方法似乎几乎没有效果。
$ pypy -mtimeit -s 'import test' 'test.JohnLaRooy(test.l)'
100000 loops, best of 3: 17.8 usec per loop
$ pypy -mtimeit -s 'import test' 'test.thg435(test.l)'
10000 loops, best of 3: 23 usec per loop
$ pypy -mtimeit -s 'import test' 'test.moooeeeep(test.l)'
10000 loops, best of 3: 39.3 usec per loop显然,这种影响与输入数据的“重复性”有关。我已经设置l = [random.randrange(1000000) for i in xrange(10000)]并得到以下结果:
$ pypy -mtimeit -s 'import test' 'test.moooeeeep(test.l)'
1000 loops, best of 3: 495 usec per loop
$ pypy -mtimeit -s 'import test' 'test.JohnLaRooy(test.l)'
1000 loops, best of 3: 499 usec per loop
$ pypy -mtimeit -s 'import test' 'test.thg435(test.l)'
1000 loops, best of 3: 1.68 msec per loop回答 3
您可以使用iteration_utilities.duplicates:
>>> from iteration_utilities import duplicates
>>> list(duplicates([1,1,2,1,2,3,4,2]))
[1, 1, 2, 2]或者,如果您只希望每个重复项之一,可以将其与iteration_utilities.unique_everseen:
>>> from iteration_utilities import unique_everseen
>>> list(unique_everseen(duplicates([1,1,2,1,2,3,4,2])))
[1, 2]它还可以处理不可散列的元素(但是以性能为代价):
>>> list(duplicates([[1], [2], [1], [3], [1]]))
[[1], [1]]
>>> list(unique_everseen(duplicates([[1], [2], [1], [3], [1]])))
[[1]]这是这里仅有的其他几种方法可以处理的。
基准测试
我做了一个快速基准测试,其中包含这里提到的大多数(但不是全部)方法。
第一个基准测试仅包含一小部分列表长度,因为某些方法具有 O(n**2)行为。
在曲线图中,y轴表示时间,因此值越低越好。它还绘制了对数-对数,因此可以更好地可视化各种值:
除去这些O(n**2)方法,我做了另一个基准测试,列表中最多有500万个元素:
如您所见 iteration_utilities.duplicates方法比其他任何方法甚至链式方法都快unique_everseen(duplicates(...))都快也比其他方法快或同样快。
这里要注意的另一件有趣的事情是,对于小名单,熊猫方法非常慢,但可以轻松竞争更长的名单。
但是,由于这些基准测试表明大多数方法的性能大致相同,因此使用哪种方法都无关紧要(除了具有O(n**2)运行时的三种方法外)。
from iteration_utilities import duplicates, unique_everseen
from collections import Counter
import pandas as pd
import itertools
def georg_counter(it):
return [item for item, count in Counter(it).items() if count > 1]
def georg_set(it):
seen = set()
uniq = []
for x in it:
if x not in seen:
uniq.append(x)
seen.add(x)
def georg_set2(it):
seen = set()
return [x for x in it if x not in seen and not seen.add(x)]
def georg_set3(it):
seen = {}
dupes = []
for x in it:
if x not in seen:
seen[x] = 1
else:
if seen[x] == 1:
dupes.append(x)
seen[x] += 1
def RiteshKumar_count(l):
return set([x for x in l if l.count(x) > 1])
def moooeeeep(seq):
seen = set()
seen_add = seen.add
# adds all elements it doesn't know yet to seen and all other to seen_twice
seen_twice = set( x for x in seq if x in seen or seen_add(x) )
# turn the set into a list (as requested)
return list( seen_twice )
def F1Rumors_implementation(c):
a, b = itertools.tee(sorted(c))
next(b, None)
r = None
for k, g in zip(a, b):
if k != g: continue
if k != r:
yield k
r = k
def F1Rumors(c):
return list(F1Rumors_implementation(c))
def Edward(a):
d = {}
for elem in a:
if elem in d:
d[elem] += 1
else:
d[elem] = 1
return [x for x, y in d.items() if y > 1]
def wordsmith(a):
return pd.Series(a)[pd.Series(a).duplicated()].values
def NikhilPrabhu(li):
li = li.copy()
for x in set(li):
li.remove(x)
return list(set(li))
def firelynx(a):
vc = pd.Series(a).value_counts()
return vc[vc > 1].index.tolist()
def HenryDev(myList):
newList = set()
for i in myList:
if myList.count(i) >= 2:
newList.add(i)
return list(newList)
def yota(number_lst):
seen_set = set()
duplicate_set = set(x for x in number_lst if x in seen_set or seen_set.add(x))
return seen_set - duplicate_set
def IgorVishnevskiy(l):
s=set(l)
d=[]
for x in l:
if x in s:
s.remove(x)
else:
d.append(x)
return d
def it_duplicates(l):
return list(duplicates(l))
def it_unique_duplicates(l):
return list(unique_everseen(duplicates(l)))基准1
from simple_benchmark import benchmark
import random
funcs = [
georg_counter, georg_set, georg_set2, georg_set3, RiteshKumar_count, moooeeeep,
F1Rumors, Edward, wordsmith, NikhilPrabhu, firelynx,
HenryDev, yota, IgorVishnevskiy, it_duplicates, it_unique_duplicates
]
args = {2**i: [random.randint(0, 2**(i-1)) for _ in range(2**i)] for i in range(2, 12)}
b = benchmark(funcs, args, 'list size')
b.plot()基准2
funcs = [
georg_counter, georg_set, georg_set2, georg_set3, moooeeeep,
F1Rumors, Edward, wordsmith, firelynx,
yota, IgorVishnevskiy, it_duplicates, it_unique_duplicates
]
args = {2**i: [random.randint(0, 2**(i-1)) for _ in range(2**i)] for i in range(2, 20)}
b = benchmark(funcs, args, 'list size')
b.plot()免责声明
1这来自我编写的第三方库iteration_utilities。
You can use iteration_utilities.duplicates:
>>> from iteration_utilities import duplicates
>>> list(duplicates([1,1,2,1,2,3,4,2]))
[1, 1, 2, 2]
or if you only want one of each duplicate this can be combined with iteration_utilities.unique_everseen:
>>> from iteration_utilities import unique_everseen
>>> list(unique_everseen(duplicates([1,1,2,1,2,3,4,2])))
[1, 2]
It can also handle unhashable elements (however at the cost of performance):
>>> list(duplicates([[1], [2], [1], [3], [1]]))
[[1], [1]]
>>> list(unique_everseen(duplicates([[1], [2], [1], [3], [1]])))
[[1]]
That’s something that only a few of the other approaches here can handle.
Benchmarks
I did a quick benchmark containing most (but not all) of the approaches mentioned here.
The first benchmark included only a small range of list-lengths because some approaches have O(n**2) behavior.
In the graphs the y-axis represents the time, so a lower value means better. It’s also plotted log-log so the wide range of values can be visualized better:
Removing the O(n**2) approaches I did another benchmark up to half a million elements in a list:
As you can see the iteration_utilities.duplicates approach is faster than any of the other approaches and even chaining unique_everseen(duplicates(...)) was faster or equally fast than the other approaches.
One additional interesting thing to note here is that the pandas approaches are very slow for small lists but can easily compete for longer lists.
However as these benchmarks show most of the approaches perform roughly equally, so it doesn’t matter much which one is used (except for the 3 that had O(n**2) runtime).
from iteration_utilities import duplicates, unique_everseen
from collections import Counter
import pandas as pd
import itertools
def georg_counter(it):
return [item for item, count in Counter(it).items() if count > 1]
def georg_set(it):
seen = set()
uniq = []
for x in it:
if x not in seen:
uniq.append(x)
seen.add(x)
def georg_set2(it):
seen = set()
return [x for x in it if x not in seen and not seen.add(x)]
def georg_set3(it):
seen = {}
dupes = []
for x in it:
if x not in seen:
seen[x] = 1
else:
if seen[x] == 1:
dupes.append(x)
seen[x] += 1
def RiteshKumar_count(l):
return set([x for x in l if l.count(x) > 1])
def moooeeeep(seq):
seen = set()
seen_add = seen.add
# adds all elements it doesn't know yet to seen and all other to seen_twice
seen_twice = set( x for x in seq if x in seen or seen_add(x) )
# turn the set into a list (as requested)
return list( seen_twice )
def F1Rumors_implementation(c):
a, b = itertools.tee(sorted(c))
next(b, None)
r = None
for k, g in zip(a, b):
if k != g: continue
if k != r:
yield k
r = k
def F1Rumors(c):
return list(F1Rumors_implementation(c))
def Edward(a):
d = {}
for elem in a:
if elem in d:
d[elem] += 1
else:
d[elem] = 1
return [x for x, y in d.items() if y > 1]
def wordsmith(a):
return pd.Series(a)[pd.Series(a).duplicated()].values
def NikhilPrabhu(li):
li = li.copy()
for x in set(li):
li.remove(x)
return list(set(li))
def firelynx(a):
vc = pd.Series(a).value_counts()
return vc[vc > 1].index.tolist()
def HenryDev(myList):
newList = set()
for i in myList:
if myList.count(i) >= 2:
newList.add(i)
return list(newList)
def yota(number_lst):
seen_set = set()
duplicate_set = set(x for x in number_lst if x in seen_set or seen_set.add(x))
return seen_set - duplicate_set
def IgorVishnevskiy(l):
s=set(l)
d=[]
for x in l:
if x in s:
s.remove(x)
else:
d.append(x)
return d
def it_duplicates(l):
return list(duplicates(l))
def it_unique_duplicates(l):
return list(unique_everseen(duplicates(l)))
Benchmark 1
from simple_benchmark import benchmark
import random
funcs = [
georg_counter, georg_set, georg_set2, georg_set3, RiteshKumar_count, moooeeeep,
F1Rumors, Edward, wordsmith, NikhilPrabhu, firelynx,
HenryDev, yota, IgorVishnevskiy, it_duplicates, it_unique_duplicates
]
args = {2**i: [random.randint(0, 2**(i-1)) for _ in range(2**i)] for i in range(2, 12)}
b = benchmark(funcs, args, 'list size')
b.plot()
Benchmark 2
funcs = [
georg_counter, georg_set, georg_set2, georg_set3, moooeeeep,
F1Rumors, Edward, wordsmith, firelynx,
yota, IgorVishnevskiy, it_duplicates, it_unique_duplicates
]
args = {2**i: [random.randint(0, 2**(i-1)) for _ in range(2**i)] for i in range(2, 20)}
b = benchmark(funcs, args, 'list size')
b.plot()
Disclaimer
1 This is from a third-party library I have written: iteration_utilities.
回答 4
我在寻找相关问题时遇到了这个问题-想知道为什么没人提供基于生成器的解决方案?解决此问题的方法是:
>>> print list(getDupes_9([1,2,3,2,1,5,6,5,5,5]))
[1, 2, 5]我担心可伸缩性,因此测试了几种方法,包括幼稚的项目,这些项目在小列表上都可以很好地工作,但是随着列表变大就可怕地扩展(注意-使用timeit会更好,但这只是说明性的)。
我加入了@moooeeeep进行比较(这是非常快的:如果输入列表是完全随机的,则是最快的),而itertools方法对于大多数已排序的列表来说甚至更快…现在包括@firelynx的pandas方法-慢,但没有很可怕,而且很简单。注意-对于大型的有序列表,sort / tee / zip方法在我的机器上始终是最快的,对于混洗的列表,moooeeeep最快,但是您的里程可能会有所不同。
优点
- 使用相同的代码非常容易地测试“任何”重复项
假设条件
- 重复应仅报告一次
- 重复的订单不需要保留
- 重复项可能在列表中的任何位置
最快的解决方案,一百万个条目:
def getDupes(c):
'''sort/tee/izip'''
a, b = itertools.tee(sorted(c))
next(b, None)
r = None
for k, g in itertools.izip(a, b):
if k != g: continue
if k != r:
yield k
r = k经过测试的方法
import itertools
import time
import random
def getDupes_1(c):
'''naive'''
for i in xrange(0, len(c)):
if c[i] in c[:i]:
yield c[i]
def getDupes_2(c):
'''set len change'''
s = set()
for i in c:
l = len(s)
s.add(i)
if len(s) == l:
yield i
def getDupes_3(c):
'''in dict'''
d = {}
for i in c:
if i in d:
if d[i]:
yield i
d[i] = False
else:
d[i] = True
def getDupes_4(c):
'''in set'''
s,r = set(),set()
for i in c:
if i not in s:
s.add(i)
elif i not in r:
r.add(i)
yield i
def getDupes_5(c):
'''sort/adjacent'''
c = sorted(c)
r = None
for i in xrange(1, len(c)):
if c[i] == c[i - 1]:
if c[i] != r:
yield c[i]
r = c[i]
def getDupes_6(c):
'''sort/groupby'''
def multiple(x):
try:
x.next()
x.next()
return True
except:
return False
for k, g in itertools.ifilter(lambda x: multiple(x[1]), itertools.groupby(sorted(c))):
yield k
def getDupes_7(c):
'''sort/zip'''
c = sorted(c)
r = None
for k, g in zip(c[:-1],c[1:]):
if k == g:
if k != r:
yield k
r = k
def getDupes_8(c):
'''sort/izip'''
c = sorted(c)
r = None
for k, g in itertools.izip(c[:-1],c[1:]):
if k == g:
if k != r:
yield k
r = k
def getDupes_9(c):
'''sort/tee/izip'''
a, b = itertools.tee(sorted(c))
next(b, None)
r = None
for k, g in itertools.izip(a, b):
if k != g: continue
if k != r:
yield k
r = k
def getDupes_a(l):
'''moooeeeep'''
seen = set()
seen_add = seen.add
# adds all elements it doesn't know yet to seen and all other to seen_twice
for x in l:
if x in seen or seen_add(x):
yield x
def getDupes_b(x):
'''iter*/sorted'''
x = sorted(x)
def _matches():
for k,g in itertools.izip(x[:-1],x[1:]):
if k == g:
yield k
for k, n in itertools.groupby(_matches()):
yield k
def getDupes_c(a):
'''pandas'''
import pandas as pd
vc = pd.Series(a).value_counts()
i = vc[vc > 1].index
for _ in i:
yield _
def hasDupes(fn,c):
try:
if fn(c).next(): return True # Found a dupe
except StopIteration:
pass
return False
def getDupes(fn,c):
return list(fn(c))
STABLE = True
if STABLE:
print 'Finding FIRST then ALL duplicates, single dupe of "nth" placed element in 1m element array'
else:
print 'Finding FIRST then ALL duplicates, single dupe of "n" included in randomised 1m element array'
for location in (50,250000,500000,750000,999999):
for test in (getDupes_2, getDupes_3, getDupes_4, getDupes_5, getDupes_6,
getDupes_8, getDupes_9, getDupes_a, getDupes_b, getDupes_c):
print 'Test %-15s:%10d - '%(test.__doc__ or test.__name__,location),
deltas = []
for FIRST in (True,False):
for i in xrange(0, 5):
c = range(0,1000000)
if STABLE:
c[0] = location
else:
c.append(location)
random.shuffle(c)
start = time.time()
if FIRST:
print '.' if location == test(c).next() else '!',
else:
print '.' if [location] == list(test(c)) else '!',
deltas.append(time.time()-start)
print ' -- %0.3f '%(sum(deltas)/len(deltas)),
print
print“所有重复”测试的结果是一致的,在此数组中找到“第一个”重复项,然后是“所有”重复项:
Finding FIRST then ALL duplicates, single dupe of "nth" placed element in 1m element array
Test set len change : 500000 - . . . . . -- 0.264 . . . . . -- 0.402
Test in dict : 500000 - . . . . . -- 0.163 . . . . . -- 0.250
Test in set : 500000 - . . . . . -- 0.163 . . . . . -- 0.249
Test sort/adjacent : 500000 - . . . . . -- 0.159 . . . . . -- 0.229
Test sort/groupby : 500000 - . . . . . -- 0.860 . . . . . -- 1.286
Test sort/izip : 500000 - . . . . . -- 0.165 . . . . . -- 0.229
Test sort/tee/izip : 500000 - . . . . . -- 0.145 . . . . . -- 0.206 *
Test moooeeeep : 500000 - . . . . . -- 0.149 . . . . . -- 0.232
Test iter*/sorted : 500000 - . . . . . -- 0.160 . . . . . -- 0.221
Test pandas : 500000 - . . . . . -- 0.493 . . . . . -- 0.499 当列表首先被洗牌时,排序的价格显而易见-效率显着下降,@ moooeeeep方法占主导地位,set和dict方法相似,但表现较差:
Finding FIRST then ALL duplicates, single dupe of "n" included in randomised 1m element array
Test set len change : 500000 - . . . . . -- 0.321 . . . . . -- 0.473
Test in dict : 500000 - . . . . . -- 0.285 . . . . . -- 0.360
Test in set : 500000 - . . . . . -- 0.309 . . . . . -- 0.365
Test sort/adjacent : 500000 - . . . . . -- 0.756 . . . . . -- 0.823
Test sort/groupby : 500000 - . . . . . -- 1.459 . . . . . -- 1.896
Test sort/izip : 500000 - . . . . . -- 0.786 . . . . . -- 0.845
Test sort/tee/izip : 500000 - . . . . . -- 0.743 . . . . . -- 0.804
Test moooeeeep : 500000 - . . . . . -- 0.234 . . . . . -- 0.311 *
Test iter*/sorted : 500000 - . . . . . -- 0.776 . . . . . -- 0.840
Test pandas : 500000 - . . . . . -- 0.539 . . . . . -- 0.540 回答 5
使用熊猫:
>>> import pandas as pd
>>> a = [1, 2, 1, 3, 3, 3, 0]
>>> pd.Series(a)[pd.Series(a).duplicated()].values
array([1, 3, 3])回答 6
collections.Counter是python 2.7中的新功能:
Python 2.5.4 (r254:67916, May 31 2010, 15:03:39)
[GCC 4.1.2 20080704 (Red Hat 4.1.2-46)] on linux2
a = [1,2,3,2,1,5,6,5,5,5]
import collections
print [x for x, y in collections.Counter(a).items() if y > 1]
Type "help", "copyright", "credits" or "license" for more information.
File "", line 1, in
AttributeError: 'module' object has no attribute 'Counter'
>>> 在早期版本中,您可以改用常规dict:
a = [1,2,3,2,1,5,6,5,5,5]
d = {}
for elem in a:
if elem in d:
d[elem] += 1
else:
d[elem] = 1
print [x for x, y in d.items() if y > 1]回答 7
这是一个简洁明了的解决方案-
for x in set(li):
li.remove(x)
li = list(set(li))回答 8
如果不转换为列表,可能最简单的方法如下所示。 当他们要求不使用布景时,这可能在面试中很有用
a=[1,2,3,3,3]
dup=[]
for each in a:
if each not in dup:
dup.append(each)
print(dup)=======否则将获得2个单独的唯一值和重复值列表
a=[1,2,3,3,3]
uniques=[]
dups=[]
for each in a:
if each not in uniques:
uniques.append(each)
else:
dups.append(each)
print("Unique values are below:")
print(uniques)
print("Duplicate values are below:")
print(dups)回答 9
我会用熊猫做这件事,因为我经常使用熊猫
import pandas as pd
a = [1,2,3,3,3,4,5,6,6,7]
vc = pd.Series(a).value_counts()
vc[vc > 1].index.tolist()给
[3,6]可能不是很有效,但是肯定比许多其他答案要少的代码,所以我想我会做出贡献
回答 10
接受的答案的第三个示例给出了错误的答案,并且没有尝试重复。这是正确的版本:
number_lst = [1, 1, 2, 3, 5, ...]
seen_set = set()
duplicate_set = set(x for x in number_lst if x in seen_set or seen_set.add(x))
unique_set = seen_set - duplicate_set回答 11
如何通过检查出现次数来简单地循环遍历列表中的每个元素,然后将它们添加到集合中,然后将其打印出来。希望这可以帮助某人。
myList = [2 ,4 , 6, 8, 4, 6, 12];
newList = set()
for i in myList:
if myList.count(i) >= 2:
newList.add(i)
print(list(newList))
## [4 , 6]回答 12
我们可以使用itertools.groupby来查找所有具有重复项的项目:
from itertools import groupby
myList = [2, 4, 6, 8, 4, 6, 12]
# when the list is sorted, groupby groups by consecutive elements which are similar
for x, y in groupby(sorted(myList)):
# list(y) returns all the occurences of item x
if len(list(y)) > 1:
print x 输出将是:
4
6回答 13
我想在列表中查找重复项的最有效方法是:
from collections import Counter
def duplicates(values):
dups = Counter(values) - Counter(set(values))
return list(dups.keys())
print(duplicates([1,2,3,6,5,2]))它使用Counter所有元素和所有唯一元素。将第一个与第二个相减将只保留重复项。
回答 14
有点晚了,但可能对某些人有所帮助。对于一个庞大的清单,我发现这对我有用。
l=[1,2,3,5,4,1,3,1]
s=set(l)
d=[]
for x in l:
if x in s:
s.remove(x)
else:
d.append(x)
d
[1,3,1]只显示所有重复项并保留顺序。
回答 15
在Python中一次迭代即可找到重复对象的非常简单快捷的方法是:
testList = ['red', 'blue', 'red', 'green', 'blue', 'blue']
testListDict = {}
for item in testList:
try:
testListDict[item] += 1
except:
testListDict[item] = 1
print testListDict输出如下:
>>> print testListDict
{'blue': 3, 'green': 1, 'red': 2}这以及我博客中的更多内容http://www.howtoprogramwithpython.com
回答 16
我要进入这个讨论的很晚了。即使,我也想用一个衬纸来解决这个问题。因为那是Python的魅力。如果我们只想将重复项放入单独的列表(或任何集合)中,我建议按照以下步骤进行操作。说我们有一个重复的列表,我们可以将其称为“目标”
target=[1,2,3,4,4,4,3,5,6,8,4,3]现在,如果要获取重复项,可以使用一种衬纸,如下所示:
duplicates=dict(set((x,target.count(x)) for x in filter(lambda rec : target.count(rec)>1,target)))这段代码会将重复的记录作为键并作为值存入字典’duplicates’中。’duplicate’字典如下所示:
{3: 3, 4: 4} #it saying 3 is repeated 3 times and 4 is 4 times如果只想将所有重复的记录都放在一个列表中,那么它的代码又要短得多:
duplicates=filter(lambda rec : target.count(rec)>1,target)输出将是:
[3, 4, 4, 4, 3, 4, 3]这在python 2.7.x +版本中完美工作
回答 17
如果您不愿意编写自己的算法或使用库,则使用Python 3.8一线式:
l = [1,2,3,2,1,5,6,5,5,5]
res = [(x, count) for x, g in groupby(sorted(l)) if (count := len(list(g))) > 1]
print(res)打印项目和计数:
[(1, 2), (2, 2), (5, 4)]groupby具有分组功能,因此您可以以不同的方式定义分组,并Tuple根据需要返回其他字段。
groupby 很懒,所以不要太慢。
回答 18
其他一些测试。当然可以…
set([x for x in l if l.count(x) > 1])…太贵了 使用下一个最终方法大约要快500倍(更长的数组会带来更好的结果):
def dups_count_dict(l):
d = {}
for item in l:
if item not in d:
d[item] = 0
d[item] += 1
result_d = {key: val for key, val in d.iteritems() if val > 1}
return result_d.keys()仅2个循环,没有非常昂贵的l.count()操作。
例如,下面是比较这些方法的代码。代码如下,这是输出:
dups_count: 13.368s # this is a function which uses l.count()
dups_count_dict: 0.014s # this is a final best function (of the 3 functions)
dups_count_counter: 0.024s # collections.Counter测试代码:
import numpy as np
from time import time
from collections import Counter
class TimerCounter(object):
def __init__(self):
self._time_sum = 0
def start(self):
self.time = time()
def stop(self):
self._time_sum += time() - self.time
def get_time_sum(self):
return self._time_sum
def dups_count(l):
return set([x for x in l if l.count(x) > 1])
def dups_count_dict(l):
d = {}
for item in l:
if item not in d:
d[item] = 0
d[item] += 1
result_d = {key: val for key, val in d.iteritems() if val > 1}
return result_d.keys()
def dups_counter(l):
counter = Counter(l)
result_d = {key: val for key, val in counter.iteritems() if val > 1}
return result_d.keys()
def gen_array():
np.random.seed(17)
return list(np.random.randint(0, 5000, 10000))
def assert_equal_results(*results):
primary_result = results[0]
other_results = results[1:]
for other_result in other_results:
assert set(primary_result) == set(other_result) and len(primary_result) == len(other_result)
if __name__ == '__main__':
dups_count_time = TimerCounter()
dups_count_dict_time = TimerCounter()
dups_count_counter = TimerCounter()
l = gen_array()
for i in range(3):
dups_count_time.start()
result1 = dups_count(l)
dups_count_time.stop()
dups_count_dict_time.start()
result2 = dups_count_dict(l)
dups_count_dict_time.stop()
dups_count_counter.start()
result3 = dups_counter(l)
dups_count_counter.stop()
assert_equal_results(result1, result2, result3)
print 'dups_count: %.3f' % dups_count_time.get_time_sum()
print 'dups_count_dict: %.3f' % dups_count_dict_time.get_time_sum()
print 'dups_count_counter: %.3f' % dups_count_counter.get_time_sum()回答 19
方法1:
list(set([val for idx, val in enumerate(input_list) if val in input_list[idx+1:]]))说明: [idx的val,如果input_list [idx + 1:]中的val,则enumerate(input_list)中的val]是一个列表推导,如果从当前位置的列表中存在相同的元素,则返回一个元素。
例如:input_list = [42,31,42,31,3,31,31,5,6,6,6,6,6,7,42]
从列表42中的第一个元素开始,索引为0,它会检查input_list [1:]中是否存在元素42(即,从索引1到列表末尾),因为input_list [1:]中存在42 ,它将返回42。
然后转到具有索引1的下一个元素31,并检查input_list [2:]中是否存在元素31(即,从索引2到列表末尾),因为input_list [2:]中存在31,它将返回31。
类似地,它遍历列表中的所有元素,并且仅将重复/重复的元素返回到列表中。
然后,因为我们有重复项,所以在列表中,我们需要从每个重复项中选择一个,即删除重复项中的重复项,然后调用python内置的名为set()的python,它会删除重复项,
然后我们剩下一个集合,而不是列表,因此要从一个集合转换为列表,我们使用typecasting,list(),并将元素集转换为一个列表。
方法2:
def dupes(ilist):
temp_list = [] # initially, empty temporary list
dupe_list = [] # initially, empty duplicate list
for each in ilist:
if each in temp_list: # Found a Duplicate element
if not each in dupe_list: # Avoid duplicate elements in dupe_list
dupe_list.append(each) # Add duplicate element to dupe_list
else:
temp_list.append(each) # Add a new (non-duplicate) to temp_list
return dupe_list说明: 在这里,我们首先创建两个空列表。然后继续遍历列表的所有元素,以查看它是否存在于temp_list中(最初为空)。如果temp_list中没有它,则使用append方法将其添加到temp_list中。
如果它已经存在于temp_list中,则意味着该列表的当前元素是重复的,因此我们需要使用append方法将其添加到dupe_list中。
回答 20
raw_list = [1,2,3,3,4,5,6,6,7,2,3,4,2,3,4,1,3,4,]
clean_list = list(set(raw_list))
duplicated_items = []
for item in raw_list:
try:
clean_list.remove(item)
except ValueError:
duplicated_items.append(item)
print(duplicated_items)
# [3, 6, 2, 3, 4, 2, 3, 4, 1, 3, 4]您基本上可以通过转换为set(clean_list)来删除重复项,然后对其进行迭代raw_list,同时从item清除列表中删除每个重复项以在中出现raw_list。如果item未找到,ValueError则捕获引发的Exception并将其item添加到duplicated_items列表中。
如果需要重复项的索引,则只需enumerate列出并使用索引即可。(for index, item in enumerate(raw_list):),速度更快,并针对大型列表(如数千个元素以上)进行了优化
回答 21
使用list.count()列表中的方法找出给定列表中的重复元素
arr=[]
dup =[]
for i in range(int(input("Enter range of list: "))):
arr.append(int(input("Enter Element in a list: ")))
for i in arr:
if arr.count(i)>1 and i not in dup:
dup.append(i)
print(dup)回答 22
单线,乐趣无穷,并且需要一个声明。
(lambda iterable: reduce(lambda (uniq, dup), item: (uniq, dup | {item}) if item in uniq else (uniq | {item}, dup), iterable, (set(), set())))(some_iterable)回答 23
list2 = [1, 2, 3, 4, 1, 2, 3]
lset = set()
[(lset.add(item), list2.append(item))
for item in list2 if item not in lset]
print list(lset)回答 24
一线解决方案:
set([i for i in list if sum([1 for a in list if a == i]) > 1])回答 25
这里有很多答案,但是我认为这是一种相对易读且易于理解的方法:
def get_duplicates(sorted_list):
duplicates = []
last = sorted_list[0]
for x in sorted_list[1:]:
if x == last:
duplicates.append(x)
last = x
return set(duplicates)笔记:
- 如果您希望保留重复计数,请取消强制转换为底部的“ set”以获取完整列表
- 如果您更喜欢使用生成器,请用yield x和底部的return语句替换duplicates.append(x)(可以稍后进行设置)
回答 26
这是一个快速生成器,它使用字典将每个元素存储为具有布尔值的键,以检查是否已产生重复项。
对于具有所有元素都是可哈希类型的列表:
def gen_dupes(array):
unique = {}
for value in array:
if value in unique and unique[value]:
unique[value] = False
yield value
else:
unique[value] = True
array = [1, 2, 2, 3, 4, 1, 5, 2, 6, 6]
print(list(gen_dupes(array)))
# => [2, 1, 6]对于可能包含列表的列表:
def gen_dupes(array):
unique = {}
for value in array:
is_list = False
if type(value) is list:
value = tuple(value)
is_list = True
if value in unique and unique[value]:
unique[value] = False
if is_list:
value = list(value)
yield value
else:
unique[value] = True
array = [1, 2, 2, [1, 2], 3, 4, [1, 2], 5, 2, 6, 6]
print(list(gen_dupes(array)))
# => [2, [1, 2], 6]回答 27
def removeduplicates(a):
seen = set()
for i in a:
if i not in seen:
seen.add(i)
return seen
print(removeduplicates([1,1,2,2]))回答 28
使用toolz时:
from toolz import frequencies, valfilter
a = [1,2,2,3,4,5,4]
>>> list(valfilter(lambda count: count > 1, frequencies(a)).keys())
[2,4] 回答 29
这是我必须这样做的方法,因为我向自己提出挑战,不要使用其他方法:
def dupList(oldlist):
if type(oldlist)==type((2,2)):
oldlist=[x for x in oldlist]
newList=[]
newList=newList+oldlist
oldlist=oldlist
forbidden=[]
checkPoint=0
for i in range(len(oldlist)):
#print 'start i', i
if i in forbidden:
continue
else:
for j in range(len(oldlist)):
#print 'start j', j
if j in forbidden:
continue
else:
#print 'after Else'
if i!=j:
#print 'i,j', i,j
#print oldlist
#print newList
if oldlist[j]==oldlist[i]:
#print 'oldlist[i],oldlist[j]', oldlist[i],oldlist[j]
forbidden.append(j)
#print 'forbidden', forbidden
del newList[j-checkPoint]
#print newList
checkPoint=checkPoint+1
return newList因此您的示例工作方式为:
>>>a = [1,2,3,3,3,4,5,6,6,7]
>>>dupList(a)
[1, 2, 3, 4, 5, 6, 7]声明:本站所有文章,如无特殊说明或标注,均为本站原创发布。任何个人或组织,在未征得本站同意时,禁止复制、盗用、采集、发布本站内容到任何网站、书籍等各类媒体平台。如若本站内容侵犯了原著者的合法权益,可联系我们进行处理。
