统计列表重复项
提问
2008/12/11 卢熙 <[email protected]>
- 要到达以下的效果:
alist = ['aaa', 'ccc', 'bbb', 'aaa', 'aaa', 'ccc']
adict = fn(alist)
print {'aaa': 3, 'bbb': 1, 'ccc': 2}
- 在实际应用中,len(alist)很有可能超过10万,请问这个fn函数该如何写才能非常高效的完成这个任务?
方案1:for
萧萧 <[email protected]> reply-to [email protected] to [email protected] date Thu, Dec 11, 2008 at 22:51 subject [CPyUG:73576] Re: 如何高效的统计列表里面的重复项
>>> alist = ['aaa', 'ccc', 'bbb', 'aaa', 'aaa', 'ccc']
>>> adict = {}
>>> for i in alist:
... try:
... adict[i] += 1
... except:
... adict.setdefault(i, 1)
>>> adict
{'aaa': 3, 'bbb': 1, 'ccc': 2} ##endInc
方案2:count()
萧萧 <[email protected]> reply-to [email protected] to [email protected] date Fri, Dec 12, 2008 at 11:18
alist = ['aaa', 'ccc', 'bbb', 'aaa', 'aaa', 'ccc'] adict = dict([(i, alist.count(i) for i in list(set(alist))])
方案3:fromkeys()
don li <[email protected]> reply-to [email protected] to [email protected] date Fri, Dec 12, 2008 at 11:53
1 alist = ['aaa', 'ccc', 'bbb', 'aaa', 'aaa', 'ccc']
2 adict = dict().fromkeys(alist, 0)
3
4 for a in alist:
5 adict[a] += 1
方案4:.get()
1 alist = ['aaa', 'ccc', 'bbb', 'aaa', 'aaa', 'ccc']
2 adict = {}
3 for e in alist:
4 adict[e] = adict.get(e, 0) + 1
对比
[email protected]> reply-to [email protected] to python-cn`CPyUG`华蟒用户组 <[email protected]> date Sat, Dec 13, 2008 at 01:26 subject [CPyUG:73653] Re: 如何高效的统计列表里面的重复项
time python test2.py 865149 real 0m4.840s user 0m4.610s sys 0m0.210s time python test3.py 865113 real 0m5.724s user 0m5.490s sys 0m0.220s
- test2.py
1 #!/usr/bin/env python
2
3 import random
4
5 li = []
6 d = {}
7 for i in range(10 ** 6 * 2):
8 li.append(int(random.random() * 10 ** 6))
9
10 for e in li:
11 if d.has_key(e):
12 d[e] = d[e] + 1
13 else:
14 d[e] = 1
15
16 print len(d)
- test3.py
1 #!/usr/bin/env python
2 import random
3
4 li = []
5 d = {}
6 for i in range(10 ** 6 * 2):
7 li.append(int(random.random() * 10 ** 6))
8
9 for e in li:
10 try:
11 d[e] = d[e] + 1
12 except:
13 d[e] = 1
14
15 print len(d)
reply-to [email protected] to [email protected] date Sat, Dec 13, 2008 at 03:05 subject [CPyUG:73655] Re: 如何高效的统计列表里面的重复项
$ time python test_dict_speed.py (5.0090830326080322, 9.3741579055786133) real 0m33.376s user 0m32.002s sys 0m0.872s
$ cat test_dict_speed.py
1 不好意思,我的疏忽,改了:
2 =========================================================
3 import random, time
4 MAX = 10**6
5
6 ls = [random.randint(1, MAX) for x in xrange(2*MAX)]
7
8 t0 = time.time()
9
10 d = {}
11 for x in ls: d[x] = d.get(x, 0) + 1
12 t1 = time.time()
13
14 d = {}
15 for e in ls:
16 try: d[e] = d[e] + 1
17 except: d[e] = 1
18 t2 = time.time()
19
20 d = {}
21 for e in ls:
22 try: d[e] += 1
23 except: d.setdefault(e, 1)
24 t3 = time.time()
25
26 print (t1 - t0, t2 - t1, t3 - t2)
- 结果(运行了两次)
(1.5039999485015869, 2.1619999408721924, 2.2820000648498535) (1.4950001239776611, 2.2029998302459717, 2.2360000610351562)
所耗时间排序一样,还是这个好一些:for x in ls: d[x] = d.get(x, 0) + 1
结论
[email protected]> reply-to [email protected] to python-cn`CPyUG`华蟒用户组 <[email protected]> date Sun, Dec 14, 2008 at 23:40 subject [CPyUG:73747] Re: 如何高效的统计列表里面的重复项
1 import random, time
2 MAX = 10**6
3
4 ls = [random.randint(1, MAX) for x in xrange(2*MAX)]
5
6 t0 = time.time()
7
8 d = {}
9 for e in ls: d[e] = d.get(e, 0) + 1
10 t1 = time.time()
11
12 d = {}
13 for e in ls:
14 try: d[e] = d[e] + 1
15 except: d[e] = 1
16 t2 = time.time()
17
18 d = {}
19 for e in ls:
20 try: d[e] += 1
21 except: d.setdefault(e, 1)
22 t3 = time.time()
23
24 from collections import defaultdict
25 d = defaultdict(int)
26 for e in ls:
27 d[e] += 1
28 t4 = time.time()
29
30 print (t1 - t0, t2 - t1, t3 - t2, t4 - t3)
- 结果(运行了三次)
(1.3619999885559082, 2.187000036239624, 2.3610000610351562, 1.4879999160766602) (1.3420000076293945, 2.1319999694824219, 2.2860000133514404, 1.4579999446868896) (1.3270001411437988, 2.1959998607635498, 2.2860000133514404, 1.4579999446868896)
还是这个略胜一筹:for x in ls: d[x] = d.get(x, 0) + 1
反馈
创建 by -- ZoomQuiet [2008-12-12 01:33:16]