一,两个小组对战,对战规则如下:
team1 = ['a','b','c']
team2 = ['x','y','z'] #a 不和x对战,b 不和y,z 对战
# for i in team1: #法一
# for j in team2:
# if i == 'a' and j == 'x':
# continue
# elif i == 'c' and (j == 'y' or j =='z'):
# continue
# else:
# print('%s VS %s'%(i,j))
for t1 in team1: #法二
if t1 == 'a':
tmp = team2[team2.index('x')+1:] #返回x 的索引
elif t1 == 'b':
tmp = team2[:team2.index('y')] #返回 y 的索引
else:
tmp = team2
for t2 in tmp:
print('%s VS %s'%(t1,t2))
def func(x):
if x > 0 :
func(x-1)
print(x)
func(5)
输出结果: 1 2 3 4 5 (递归)
二,循环删list元素
li = [1,1,2,3,4,5,6,7,8,9]
for i in li:
if i%2!=0:
li.remove(i)
print(li)
输出结果: [1, 2, 4, 6, 8]
三,获取文件扩展名
import os
def file_extension(path):
return os.path.splitext(path)[1]
print(file_extension('http://www.jb51.net/article/68958.html'))
四,获取当前系统日期的前一天或前一秒
import datetime
# now_time = datetime.date.today()
now_time = datetime.datetime.now()
yesterday = now_time + datetime.timedelta(days = -1)
second = now_time +datetime.timedelta(seconds= -1)
print(yesterday,second)
五,校验邮箱格式
'''
先看一下邮箱的一般格式:
[email protected]
x 表示一个或多个字符或数字。
1)第一个x可以字母数字
2)第二个x可以字母数字
3)第二个x可以字母,如.com,.cn,.net...等结尾
“@”和“.” 把内x拆成三部份。
整个邮箱长度最少等于5个字符
'''
import re
'''
[a-zA-Z0-9] 匹配大小写字母与数字
[a-zA-Z] 匹配大小写字母
\@ a\@b a@b (字符转义)
\. a\.b a.b (字符转义)
'''
def emails(e):
if len(e) >= 5:
if re.match("[a-zA-Z0-9]+\@+[a-zA-Z0-9]+\.+[a-zA-Z]",e) !=None:
return '邮箱格式正确。'
return '邮箱格式错误。'
e = input('请输入email:')
print(emails(e))
六、清理日志脚本
写一个清理日志的脚本,每次运行就把三天之前的日志删除,日志名的格式是xxx-20170623.log
import os,datetime
class Clear_log(object):
def __init__(self,path):
self.path = path
def clean_log(self):
if os.path.exists(self.path) and os.path.isdir(self.path):
today = str(datetime.date.today()) # 2017-01-02,如果没有强制字符转换,格式为datetime.date(2018, 2, 8)
yesterday = str(datetime.date.today() + datetime.timedelta(-1))
before_yesterday = str(datetime.date.today() + datetime.timedelta(-2))
file_name_list = [today, yesterday, before_yesterday]
# print(file_name_list)
for file in os.listdir(self.path):
file_name_sp = file.split('.')
if len(file_name_sp) > 2:
file_date = file_name_sp[1] # 取文件名里面的日期
if file_date not in file_name_list:#将日志文件中的日期与需保留的日期对比。大批量数据时适用
abs_path = os.path.join(self.path, file)
print('删除的文件是%s,' % abs_path)
os.remove(abs_path)
else:
print('没有删除的文件是%s' % file)
else:
print('路径不存在/不是目录')
if __name__ == '__main__':
res = Clear_log(r'D:\BaiduNetdiskDownload\logs\logs')
res.clean_log()
七、监控日志脚本
监控nginx日志的脚本,每分钟运行一次,如果这一分钟内同一个ip请求次数超过200次,加入黑名单
import time
class Log_script():
def __init__(self):
self.point = 0
def monitor_script(self,file_name):
while True:
ips = []
blacklist_set = set()
with open(file_name,encoding= 'utf-8') as f:
f.seek(self.point)
for line in f:
ip = line.split()[0]
ips.append(ip)
if ips.count(ip) > 200:
blacklist_set.add(ip)
for ip in blacklist_set:#防止重复加入黑名单,集合天生去重
print('加入黑名单的 ip 是 %s'%ip)
self.point = f.tell() #确定下次扫描时的指针位置
time.sleep(60)
if __name__ == '__main__':
res = Log_script()
res.monitor_script(r'C:xxx\access.log')
八、屏蔽敏感词汇
words = ['傻逼','傻b','煞笔','煞比','sb','傻B','shabi']
class Shield(object):
def file_operate(self,file1,file2):
with open(file1, encoding='utf-8') as f, open(file2, 'w', encoding='utf-8') as f2:
for line in f:
self.shield(line)
f2.write(self.string)
def shield(self,string):
# self.string = input('input_string:')
self.string = string
for i in words:
self.string = self.string.replace(i,'**')
print(self.string)
os.remove('file1') #删文件
os.rename('file1','file2') #改名
t1 = Shield()
t1.file_operate('file_2.txt','file_2.gy')
九、一个列表中,按字母从小到大排列 ,数字从小到大排列,字母在前数字在后。不用内置方法
list= [1,3,'w','g',4,5,'a','b','e','ghi',4,5,76,'c','e']
str_2 = 'abcdefghigklmnopqrstuvwxyz'
list1 = []
list2 = []
for s in list:
# print(type(s))
if type(s) == int:
list1.append(s)
elif str(s).lower() in str_2:
list2.append(s)
print(list1)
print(list2)
def bubble_sort(li):
for i in range(len(li)-1):
for j in range(len(li)-i-1):
if li[j] > li[j+1]:
li[j],li[j+1] = li[j+1],li[j]
return li
res1 = bubble_sort(list1)
res2 = bubble_sort(list2)
print(res1)
print(res2)
for i in res1:
res2.append(i)
print(res2)
十、查找数组中重复数字大于数组长度一半的数
list_1 = [1,2,3,4,5,5,5,5,5]
for i in list_1:
if list_1.count(i) > len(list_1)/2:
print(i)
break
#可得到每个数出现的次数
tmp = {}
for i in list_1:
tmp[i] = list_1.count(i)
print(tmp)
十一、一个json类型的数据,把每一个元素都放到一个一维的list 中
data = {'userFrom': '2', 'userMobile': '13266667777', 'userPasswd': '111111'}
list = []
for k in data.items():
for i in k:
list.append(i)
print(list)
输出结果:['userPasswd', '111111', 'userFrom', '2', 'userMobile', '13266667777']
十二、 取字典中最小键值对
#取最小键值对
a = {'a':'aa','b':"[{'c':'cc'},{'d':'dd'}]",'e':'ee'}
def get_kv(d):
for k, v in d.items():
try:
v = eval(v) #eval 用法
except Exception as e:
pass
if type(v) == dict:
get_kv(v)
elif type(v) == list:
for y in v:
if type(y) == dict:
get_kv(y)
else:
print('key==>{},v==>{}'.format(k, v))
else:
print('key==>{},v==>{}'.format(k, v))
get_kv(a)
输出结果:
key==>a,v==>aa
key==>c,v==>cc
key==>d,v==>dd
key==>e,v==>ee
十三、比较版本号
a = "5.4.5"
f = "4.0.0"
import re
def versionCompare(v1, v2):
v1_check = re.match("\d+(\.\d+){0,2}", v1)
v2_check = re.match("\d+(\.\d+){0,2}", v2)
if v1_check is None or v2_check is None or v1_check.group() != v1 or v2_check.group() != v2:
return "版本号格式不对,正确的应该是x.x.x,只能有3段"
v1_list = v1.split(".")
v2_list = v2.split(".")
v1_len = len(v1_list)
v2_len = len(v2_list)
if v1_len > v2_len:
for i in range(v1_len - v2_len):
v2_list.append("0")
elif v2_len > v1_len:
for i in range(v2_len - v1_len):
v1_list.append("0")
else:
pass
for i in range(len(v1_list)):
if int(v1_list[i]) > int(v2_list[i]):
return "v1大"
if int(v1_list[i]) < int(v2_list[i]):
return "v2大"
return "相等"
result = versionCompare(a,f)
print(result)
设计思想:
1.使用正则表达式判断版本号格式是否正确
2.将字符串用”.”分隔成数组
3.比较数组长度,将长度短的数组用“0”补齐成相等长度数组
4.逐个遍历数组元素,比较大小
十四、n 个已经排好序的数组(数组内存放的是int 类型的数字),需要合并成一个数组,并且保证是有序的
a = [1,3,5,6,15]
b = [2,4,6,7,8]
c = []
a.extend(b)
print ("Extended List : ", a )
a.sort()
for i in a:
if i not in c:
c.append(i)
print(c)
十五、字符串“welcome to beijing”,期望输出结果“Beijing To Welcome”
s = "welcome to beijing"
new_s = ' '.join([i.capitalize() for i in s.split()[::-1]])
print(new_s)
十六、给一个整数数组,使得他们的和等于一个给定的数 target,你需要实现的函数需要返回这两个值的下标,并且第一个下标小于第二个下标,
注意这里的下标范围是【1,m】,不是以0开始
例如:给出numbers = [2,7,11,15],target = 9,则返回 【1,2】
numbers = [15,1,17,18]
target = 16
target_index = []
for i in numbers:
if (target - i ) in numbers:
target_index.append(numbers.index(i)+1)
print(target_index)
输出结果: [1, 2]
十七、有一字符串列表【'aababbc','badabcab'】,通过程序将字符串中的‘ab’移除
s= ['aababbc','badabcab']
new_s = []
for i in s:
a = ''.join(i.split('ab'))
new_s.append(a)
print(new_s)
输入结果: ['abc', 'badc']
十八、补充缺失的代码
def print_directory_contents(sPath):
""" 这个函数接受文件夹的名称作为输入参数, 返回该文件夹中文件的路径, 以及其包含文件夹中文件的路径。 """ # 补充代码
def print_directory_contents(sPath):
import os for sChild in os.listdir(sPath): sChildPath = os.path.join(sPath,sChild) if os.path.isdir(sChildPath): print_directory_contents(sChildPath) else: print sChildPath
十九、阅读下面的代码,写出A0,A1至An的最终值。
A0 = dict(zip(('a','b','c','d','e'),(1,2,3,4,5))) A1 = range(10) A2 = [i for i in A1 if i in A0] A3 = [A0[s] for s in A0] A4 = [i for i in A1 if i in A3] A5 = {i:i*i for i in A1} A6 = [[i,i*i] for i in A1]
答案
A0 = {'a': 1, 'c': 3, 'b': 2, 'e': 5, 'd': 4} A1 = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9] A2 = [] A3 = [1, 3, 2, 5, 4] A4 = [1, 2, 3, 4, 5] A5 = {0: 0, 1: 1, 2: 4, 3: 9, 4: 16, 5: 25, 6: 36, 7: 49, 8: 64, 9: 81} A6 = [[0, 0], [1, 1], [2, 4], [3, 9], [4, 16], [5, 25], [6, 36], [7, 49], [8, 64], [9, 81]]
二十、删除一个list中重复的元素
list(set(l))
二十一、下面代码会输出什么?
def f(x,l=[]):
for i in range(x):
l.append(i*i)
print (l)
f(2)
f(3,[3,2,1])
f(3)
[0, 1]
[3, 2, 1, 0, 1, 4] [0, 1, 0, 1, 4]
第一个函数调用十分明显,for循环先后将0和1添加至了空列表l中。l是变量的名字,指向内存中存储的一个列表。
第二个函数调用在一块新的内存中创建了新的列表。l这时指向了新生成的列表。之后再往新列表中添加0、1、2和4。很棒吧。
第三个函数调用的结果就有些奇怪了。它使用了之前内存地址中存储的旧列表。这就是为什么它的前两个元素是0和1了。
二十二、请写一段python代码,替换掉目标字符串中的[北京市,技术,有限,公司]等字符,比如:目标字符串:北京市麦达技术数字有限公司,要求替换输出 麦达数字
str1 = "北京市麦达技术数字有限公司"
str2 = str1.replace("北京市","").replace("技术","").replace("有限","").replace("公司","")
二十三、把字符串“HELLO PYTHON”从大写字母全部转换成小写字母并换行显示,然后输出到计算机c盘的hello.txt文件中保存
str = "HELLO PYTHON"
with open(r'c://hello.txt','a') as f:
for letter in str:
letter = letter.lower()
f.write(letter)
f.write('\n')
二十四、给定一个值为整数的数组int_array,找出int_array中第二大的整数
说明:如果最大的整数在int_array中出现不止一次,则最大整数为第二大整数。
例:
输入:[1,2,3,4,5]
输出:4
输入:[5,5,4,4,3]
输出:5
def find_num(int_array):
if int_array.count(max(int_array)) != 1:
return max(int_array)
else:
int_array.remove(max(int_array))
return max(int_array)
list = [1,3,22,4,7,9,0,22]
max_num = find_num(list)
print(max_num)
二十五、使用python将字符串“1.2.3.4.5”转换为字符串“5|4|3|2|1”
扫描二维码关注公众号,回复:
2168173 查看本文章
str = "1.2.3.4.5"
li = str.split('.')
li = li[::-1]
new_str = '|'.join(li)
print(new_str)
二十六、设计一个函数,统计一个字符串中出现频率最高的字符及其出现次数
def find_most_freq(string):
result_dict = {}
for ch in string:
if ch in result_dict:
result_dict[ch] += 1
else:
result_dict[ch] =1
max_key = []
max_value = 0
for key,value in result_dict.items():
if value > max_value:
max_value = value
max_key.clear()
max_key.append(key)
elif value == max_key:
max_key.append(key)
return max_key,max_value
string = 'abcee1233drvfegrhpjpnp3445532'
max_key,max_value = find_most_freq(string)
print('{}出现了{}次'.format(max_key,max_value))
输出结果:['3']出现了4次
二十七、设计一个函数,计算字符串中所有数字序列的和
def sum_num_seq(string):
sum = 0
for i in range(len(string)):
if (string[i]>='0' and string[i]<= '9'):
sum = sum + int(string[i])
return sum
string = 'qwed123sfg23456dfg'
sum = sum_num_seq(string)
print(sum)
输出结果:26
二十八、打印请求报文不一样的key-value
ok_req={
"version": "9.0.0",
"is_test": True,
"store": "",
"urs": "",
"device": {
"os": "android",
"imei": "99001062198893",
"device_id": "CQliMWEyYTEzNTYyYzk5MzJmCTJlNmY3Zjkx",
"mac": "02:00:00:00:00:00",
"galaxy_tag": "CQliMWEyYTEzNTYyYzk5MzJmCTJlNmY3Zjkx",
"udid": "a34b1f67dd5797df93fdd8b072f1fb8110fd0db6",
"network_status": "wifi"
},
"adunit": {
"category": "VIDEO",
"location": "1",
"app": "7A16FBB6",
"blacklist": ""
},
"ext_param":{
"is_start" : 0,
"vId":"VW0BRMTEV"
}
}
not_ok={
"version": "9.0.0",
"is_test": True,
"urs": "",
"store": "",
"device": {
"os": "android",
"imei": "99001062298893",
"device_id": "CQliMWEyYTEzNTYyYzk5MzJmCTJlNmY3Zjkx",
"mac": "02:00:00:00:00:00",
"galaxy_tag": "CQliMWEyYTEzNTYyYzk5MzJmCTJlNmY3Zjkx",
"udid": "a34b1f67dd5797da93fdd8b072f1fb8110fd0db6",
"network_status": "wifi"
},
"adunit": {
"category": "VIDEO",
"location": "1",
"app": "7A16FBB6",
"blacklist": ""
},"ext_param": {
"is_start": 0,
"vid": "VW0BRMTEV"
}
}
def compare(d1,d2):
for k in d1:
v1 = d1.get(k)
# v2 = d2.get(k,'get不到')
v2 = d2.get(k)
if type(v1) == dict:
compare(v1,v2) # 判断如果value 也是字典的话,递归继续循环
else:
# if v1 != v2 and v2 != 'get不到':
if v1 != v2:
print('value 不一样的:key 值是%s,v1 是%s,v2是%s'%(k,v1,v2))
res = set(d1.keys()).symmetric_difference(set(d2.keys())) #把两个字典的的k取一下对称差集,就说两个里面都不存在的就是两个里面都不存在的key
if res:
print('key不一样的:',','.join(res))
compare(ok_req,not_ok)