name=['Alice', 'Bob', 'Candy', 'David', 'Ellena']
name.append('Phoebe')
name.append('Zero')
name.insert(5,'Gen')
print(name)
name.append('Phoebe')
name.append('Zero')
name.insert(5,'Gen')
print(name)
2021-04-09
score=[95.5, 85, 59, 66, 72]
number=1
while number<=3:
print(score[-number])
number=number+1
//print(score[-3,-1]) 不知道为什么错
number=1
while number<=3:
print(score[-number])
number=number+1
//print(score[-3,-1]) 不知道为什么错
2021-04-09
L = [75, 92, 59, 68, 99]
sum = 0
for cj in L:
sum += cj
print(sum / len(L))
sum = 0
for cj in L:
sum += cj
print(sum / len(L))
2021-04-08
age = 0 #python虽然不要先声明变量类型 但是必须要先有这个变量才能用于逻辑判断
if age < 18:
print('teenager')
else:
print('adult')
if age < 18:
print('teenager')
else:
print('adult')
2021-04-08
最赞回答 / ak_1
<...code...>开始循环的时候先运行sum = sum * num ,所以 sum = 1 * 1 =1然后运行 num = num +1 ,所以 num = 1 + 1 = 2然后这个while循环中的语句执行完了 ,这时num = 2,num &程中就= 10 依然成立所以接着又一遍运...
2021-04-08
已采纳回答 / 半勺暖阳
d = { 'Alice': 45, 'Bob': 60, 'Candy': 75, 'David': 86, 'Ellena': 49}d['Gaven'] = 86print(d)不要着急,后面有教哦
2021-04-07
已采纳回答 / corySoft
[3,4]为list,为引用类型,当其他变量赋其值的时候,赋的其实是他的一个内存地址,指向[3,4],当其他变量进行索引赋值,直接导致内存中的list改变。也就是你所说的L和T[2]其实指向了一个内存地址,修改了一个另一个也会跟着变
2021-04-07
这个任务题目不严谨,可以理解为按List前后顺序的第一名第二名第三名,即依次打印出L[0]、L[1]、L[2];也可以理解为按成绩高低的第一名第二名第三名,即依次打印出L[0]、L[1]、L[4]
2021-04-07
# Enter a code
L = [[1, 2, 3], [5, 3, 2], [7, 3, 2]]
List = []
for i in L:
s = (i[0] * i[1] * 2) + (i[0] * i[2] * 2) + (i[1] * i[2] * 2)
List.append(s)
print(List)
L = [[1, 2, 3], [5, 3, 2], [7, 3, 2]]
List = []
for i in L:
s = (i[0] * i[1] * 2) + (i[0] * i[2] * 2) + (i[1] * i[2] * 2)
List.append(s)
print(List)
2021-04-07
s1 = set([1, 2, 3, 4, 5])
s2 = set([1, 2, 3, 4, 5, 6, 7, 8, 9])
s1.isdisjoint(s2)
print(s1)
s2 = set([1, 2, 3, 4, 5, 6, 7, 8, 9])
s1.isdisjoint(s2)
print(s1)
2021-04-07
# Enter a code
num = 1
mul = 1
while num <= 10:
mul = num * mul
num = num + 1
print(mul)#过程结果
print(mul)#最终结果
num = 1
mul = 1
while num <= 10:
mul = num * mul
num = num + 1
print(mul)#过程结果
print(mul)#最终结果
2021-04-06
