def is_odd(n):

    return n % 2 == 1

t = list(filter(is_odd, [1, 2, 3, 4, 5, 6, 7, 8, 9, 0]))

print(t)

#注意到filter()函数返回的是一个Iterator，也就是一个惰性序列，所以要强迫filter()完成计算结果，需要用list()函数获得所有结果并返回list。

def not_empty(s):

    return s and s.strip()

g = ['A', '', 'B', None, 'C', ' ']

print(g)

t = list(filter(not_empty, g))

print(t)

s = '       rain       '

print(s.strip())

t = 'www.example.com'.strip('comowle.z')

print(t)

def _odd_iterator():

    n = 1

    while(True):

        n = n + 2

        yield n

def _not_divisible(n):

    return lambda x : x % n > 0

def primes():

    it = _odd_iterator()

    yield 2

    while(True):

        n = next(it)

        yield n

        it = filter(_not_divisible(n), it)

for n in primes():

    if n < 1000:

        print(n)

    else:

        break

t = sorted([1, 5, 6, -19, 54])

print(t)

t = sorted([1, 5, 6, 7, -19, 54], key = abs)

print(t)

#忽略大小写对首字母的顺序进行排序，实际上是根据ascii码进行排序

t = sorted(['rain', 'SUN', 'rainbow', 'Thinker'], key = str.lower)

print(t)

#要实现反向排序，不必更改key函数，可传入第三个参数，reverse = True

t = sorted(['rain', 'SUN', 'rainbow', 'Thinker'], key = str.lower, reverse = True)

print(t)

L = [('Bob', 75), ('Adam', 92), ('Bart', 66), ('Lisa', 88)]

#按名字排序

def by_name(t):

    #其中t[0]是t的名字，比如Bob，t[1]是t的分数，比如75

    return t[0]

L2 = sorted(L, key=by_name)

print('按照成绩排序', L2)

#按照成绩排序

def by_score(t):

    return t[1]

L2= sorted(L, key = by_score, reverse = True)

print('按照分数排序', L2)