Fastest way to determine if a character index is a carriage return (\n)?
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Hi all.
1.15 seconds per 100,000 iterations:
if regexp(text(index),'[\n]','once')
y = 1;
else
y = 0;
end
1.25 seconds per 100,000 iterations:
ret = regexp(text(index),'[\n]');
if any(ret==index)
y = 1;
else
y = 0;
end
I would think there is a faster way, but I have yet to find it. Any Suggestions??
Thanks so Much!
Will
EDIT: I acknowledge there are more than 1 type of carriage return, for simplicity lets assume the text only has one type.
댓글 수: 2
Stephen23
2016년 7월 29일
편집: Stephen23
2016년 7월 29일
"there are more than 1 type of carriage return,"
There exactly one carriage return character, in MATLAB represented by the escaped character \r.
8 \b Backspace
9 \t Horizontal Tab
10 \n Line Feed
11 \v Vertical Tab
12 \f Form Feed
13 \r Carriage Return
Several of these (and combinations thereof) have been used to indicate a newline in a text file, but a newline standard is not the same thing as a carriage return character.
Guillaume
2016년 7월 29일
편집: Guillaume
2016년 7월 29일
AS per dpb answer, for finding a single character, direct comparison is going to be A LOT faster than involving a regular expression engine. I just wanted to comment on the regular expression.
[] is used in regular expressions to group several characters together (i.e. match any of the characters within the brackets). When there's only one character to match, the brackets serve no purpose, so
regexp(text, '\n', once)
would have worked just as well and would avoid wondering if the fact that there's only one character in the class is a bug or not.
I doubt it would make any difference to speed.
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Image Analyst
2016년 7월 29일
I'm not sure what 15 is (it's a "shift in" character) but, like Stephen says carriage return is 13. And you don't need char(). So it would be
crIndexes = yourText == 13;
Here's a full demo showing lots of possible ways that new lines show up in the ASCII bytes:
yourText = sprintf('abc\n def \r hij \r\n klm \n\r theEnd')
crIndexes = yourText == 13 % Find all CR
lfIndexes = yourText == 10 % Find all LF
% Find pairings with strfind():
crLF_location = strfind(yourText, [13, 10])
lfCR_location = strfind(yourText, [10, 13])
댓글 수: 1
dpb
2016년 7월 29일
..."you don't need char()..."
Good catch, IA; I'll make the correction. Normally I don't do that, not sure why did this go-'round... :(
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