<p>这应该可以做到:</p>
<pre><code>import re
def split_once_by(s, delims):
delims = set(delims)
parts = []
while delims:
delim_re = '({})'.format('|'.join(re.escape(d) for d in delims))
result = re.split(delim_re, s, maxsplit=1)
if len(result) == 3:
first, delim, s = result
parts.append(first)
delims.remove(delim)
else:
break
parts.append(s)
return parts
</code></pre>
<p>例如:</p>
<pre><code>>>> split_once_by('it; seems; like\ta good\tday to watch\va\vmovie.', '\t\v;')
['it', ' seems; like', 'a good\tday to watch', 'a\x0bmovie.']
</code></pre>
<hr/>
<p>燃烧酒精的答案启发我写了这个(IMO)更好的函数:</p>
<pre><code>def split_once_by(s, delims):
split_points = sorted((s.find(d), -len(d), d) for d in delims)
start = 0
for stop, _longest_first, d in split_points:
if stop < start: continue
yield s[start:stop]
start = stop + len(d)
yield s[start:]
</code></pre>
<p>使用方法:</p>
<pre><code>>>> list(split_once_by('it; seems; like\ta good\tday to watch\va\vmovie.', '\t\v;'))
['it', ' seems; like', 'a good\tday to watch', 'a\x0bmovie.']
</code></pre>