如何在Python中交错字符串?
鉴于
s1 = 'abc'
s2 = 'xyz'
如何获得axbycz?
答案 0 :(得分:15)
这是一种方法
>>> s1 = "abc"
>>> s2 = "xyz"
>>> "".join(i for j in zip(s1, s2) for i in j)
'axbycz'
它也适用于超过2个字符串
>>> s3 = "123"
>>> "".join(i for j in zip(s1, s2, s3) for i in j)
'ax1by2cz3'
这是另一种方式
>>> "".join("".join(i) for i in zip(s1,s2,s3))
'ax1by2cz3'
另一个
>>> from itertools import chain
>>> "".join(chain(*zip(s1, s2, s3)))
'ax1by2cz3'
没有zip
>>> b = bytearray(6)
>>> b[::2] = "abc"
>>> b[1::2] = "xyz"
>>> str(b)
'axbycz'
效率低下
>>> ((s1 + " " + s2) * len(s1))[::len(s1) + 1]
'axbycz'
答案 1 :(得分:2)
怎么样(如果字符串的长度相同):
s1='abc'
s2='xyz'
s3=''
for x in range(len(s1)):
s3 += '%s%s'%(s1[x],s2[x])
我还要注意,这篇文章现在是“python interleave strings”的#1谷歌搜索结果,鉴于上述评论我觉得很讽刺: - )
答案 2 :(得分:0)
数学的,为了好玩
s1="abc"
s2="xyz"
lgth = len(s1)
ss = s1+s2
print ''.join(ss[i//2 + (i%2)*lgth] for i in xrange(2*lgth))
还有一个:
s1="abc"
s2="xyz"
lgth = len(s1)
tu = (s1,s2)
print ''.join(tu[i%2][i//2] for i in xrange(2*lgth))
# or
print ''.join((tu[0] if i%2==0 else tu[1])[i//2] for i in xrange(2*lgth))