我有一个函数来将给定的字符串截断为给定的字节长度:
LENGTH_BY_PREFIX = [
(0xC0, 2), # first byte mask, total codepoint length
(0xE0, 3),
(0xF0, 4),
(0xF8, 5),
(0xFC, 6),
]
def codepoint_length(first_byte):
if first_byte < 128:
return 1 # ASCII
for mask, length in LENGTH_BY_PREFIX:
if first_byte & mask == mask:
return length
assert False, 'Invalid byte %r' % first_byte
def cut_string_to_bytes_length(unicode_text, byte_limit):
utf8_bytes = unicode_text.encode('UTF-8')
cut_index = 0
while cut_index < len(utf8_bytes):
step = codepoint_length(ord(utf8_bytes[cut_index]))
if cut_index + step > byte_limit:
# can't go a whole codepoint further, time to cut
return utf8_bytes[:cut_index]
else:
cut_index += step
# length limit is longer than our bytes strung, so no cutting
return utf8_bytes
在引入表情符号的问题之前,这似乎工作正常:
string = u"\ud83d\ude14"
trunc = cut_string_to_bytes_length(string, 100)
Traceback (most recent call last):
File "<console>", line 1, in <module>
File "<console>", line 5, in cut_string_to_bytes_length
File "<console>", line 7, in codepoint_length
AssertionError: Invalid byte 152
任何人都可以准确地解释这里发生了什么,以及可能的解决方案是什么?
编辑:我在这里有另一个代码片段,它不会抛出异常,但有时会有奇怪的行为:
import encodings
_incr_encoder = encodings.search_function('utf8').incrementalencoder()
def utf8_byte_truncate(text, max_bytes):
""" truncate utf-8 text string to no more than max_bytes long """
byte_len = 0
_incr_encoder.reset()
for index,ch in enumerate(text):
byte_len += len(_incr_encoder.encode(ch))
if byte_len > max_bytes:
break
else:
return text
return text[:index]
>>> string = u"\ud83d\ude14\ud83d\ude14\ud83d\ude14\ud83d\ude14\ud83d\ude14"
>>> print string
(prints a set of 5 Apple Emoji...)
>>> len(string)
10
>>> trunc = utf8_byte_truncate(string, 4)
>>> print trunc
???
>>> len(trunc)
1
所以在第二个例子中,我有一个10字节的字符串,将其截断为4,但发生了奇怪的事情,结果是一个大小为1字节的字符串.
Mar*_*nen 11
该算法错误,如@jwpat7所示.一个更简单的算法是:
# s = u'\ud83d\ude14\ud83d\ude14\ud83d\ude14\ud83d\ude14\ud83d\ude14'
# Same as above
s = u'\U0001f614' * 5 # Unicode character U+1F614
def utf8_lead_byte(b):
'''A UTF-8 intermediate byte starts with the bits 10xxxxxx.'''
return (ord(b) & 0xC0) != 0x80
def utf8_byte_truncate(text, max_bytes):
'''If text[max_bytes] is not a lead byte, back up until a lead byte is
found and truncate before that character.'''
utf8 = text.encode('utf8')
if len(utf8) <= max_bytes:
return utf8
i = max_bytes
while i > 0 and not utf8_lead_byte(utf8[i]):
i -= 1
return utf8[:i]
# test for various max_bytes:
for m in range(len(s.encode('utf8'))+1):
b = utf8_byte_truncate(s,m)
print m,len(b),b.decode('utf8')
0 0
1 0
2 0
3 0
4 4
5 4
6 4
7 4
8 8
9 8
10 8
11 8
12 12
13 12
14 12
15 12
16 16
17 16
18 16
19 16
20 20
如果数字f是这样的话f & 0xF0 == 0xF0,那么情况也是如此,f & 0xC0 == 0xC0因为0xF0具有0xC0具有的所有位,然后是一些.也就是说,除了其他问题之外codepoint_length(),当函数应为4时,函数将返回2的步长.如果反转LENGTH_BY_PREFIX列表,则该函数与第一个示例一起正常工作.
LENGTH_BY_PREFIX = [
(0xFC, 6),
(0xF8, 5),
(0xF0, 4),
(0xE0, 3),
(0xC0, 2), # first byte mask, total codepoint length
]