Extract value until regexp case match

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Dyel
Dyel on 23 Sep 2022
Commented: Dyel on 26 Sep 2022
Hi,
I have this string. I was hoping to use regexp in order to extract the time and date embedded in this string. I was going to use regexp '.*?<=216', as prior to 216 is all the values I was hoping to extract. I was hoping that there would be an easy way to extract the date and time to a separate cell array. Thanks for any and all help.
"9/12/2022 7:38:51 PM
216 Indicator"
  2 Comments
Rik
Rik on 23 Sep 2022
While this could work, is there a reason why you can't match the date itself directly?
Dyel
Dyel on 23 Sep 2022
Is there a way using regexp to extract the datetime value, or something similar from a char array?

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Accepted Answer

Stephen23
Stephen23 on 23 Sep 2022
Ran in:
Does the data you want to match always occur at the start of the string?
A = "9/12/2022 7:38:51 PM 216 Indicator";
B = regexp(A,'^\S+\s+\S+\s[AP]M','match','once')
B = "9/12/2022 7:38:51 PM"
T = datetime(B,'inputFormat','d/M/u h:m:s aa')
T = datetime
09-Dec-2022 19:38:51
  1 Comment
Dyel
Dyel on 26 Sep 2022
This did the trick. Thanks Stephen.
How I did it was to split it up using the SplitString fuction, and then convert the string with the date to datetime, in case anyone may find it useful.
for j = 1:length(cf)
loopname = cf(j).name;
filetext = fileread(loopname);
txtStr = convertCharsToStrings(filetext);
indVal{i,j} = cell2mat(regexp(filetext, '(?<=Indicator[^0-9]*)[+-]?[0-9]*\.?[0-9]+', 'match'));
splitStr = regexp(txtStr,'\n','split');
dateStr = splitStr{1};
date = datetime(dateStr);
dateVal{i,j} = date;
end

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