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Using the command get_param(maskBlock,'MaskVariables'), I get a string that look like this :

'AB=@1;AC=@2;AD=@3;AE=@4;..AZ=@26;'

I wanted to change the numbers and add 1 to them in order to get :

'AB=@2;AC=@3;AD=@4;AE=@5;..AZ=@27;'

Here what i have coded :

strSplit = regexp(theStringFromGetParam , ';', 'split')'; % split the string at the ; to get multiple strings
str1 = cellfun(@(x) str2double(regexp(x,'(\d+)','tokens','once'))+1, strSplit, 'UniformOutput', false); % cell containing the last numbers
str2 = cellfun(@(x) regexp(x,'(\w+)(\W+)','tokens','once'), strSplit, 'UniformOutput', false); % cell containing everything that is not a number
str3 = cellfun(@(x) strcat(x{1}, x{2}), str2, 'UniformOutput', false); % join the two parts from the line above
str4 = cellfun(@(x,y) strcat(x,num2str(y)), str3, str1, 'UniformOutput', false); % join the number numbers with the "letters=@"

It works, but I'm almost certain that there is a better way to do this. Anyone could help me find a better way than using 4 times the command cellfun?

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4 Answers 4

up vote 6 down vote accepted

Here's a one-liner:

str = 'AB=@1;AC=@2;AD=@3;AE=@4;AZ=@26;';
regexprep(str,'(?<=@)(\d+)','${sprintf(''%d'',str2double($1)+1)}')

The match is easy: at any point in the string, look back for an @, if found then match onwards one or more consecutive digits and capture into a token.

The replacement: str2double() the captured token, add 1 and convert back to an integer. The command is executed with the dynamic expression '${command}'.

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Very nice! I'll try to understand everything (other answer as well) before accepting the final answer. –  m_power Jun 27 '13 at 19:44

I have an answer without using cellfun but using tokens instead:

%the given string
str = 'AB=@1;AC=@2;AD=@3;AE=@4;..AZ=@26;';
%find the numbers using tokens
regex = '=@(\d+);';
%dynamic replacement - take the token, convert it to a number - add 1 - and
%convert it back to a string
replace = '=@${num2str(str2num($1)+1)};';
%here is your result - replace all found numbers with the replace string
regexprep(str, regexp, replace)
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Another good answer! –  m_power Jun 27 '13 at 19:47
    
I haven't seen yours at first! Same in spirit, although the str2num and num2str damages performance. –  Oleg Komarov Jun 27 '13 at 20:19
1  
nice answer. However, it is unwise to use regexp as a variable name: it is a built-in function name! –  Shai Jun 27 '13 at 20:22
    
@Shai - You're right, I changed it to regex now. –  kiki Jun 28 '13 at 11:14

How about:

num = regexp( theStringFromGetParam, '@(\d+);', 'tokens' ); % get the numbers
num = cellfun( @(x) str2double(x), num ); % convert to numbers
frmt = regexprep( theStringFromGetParam, '@(\d+);', '@%%d;' );
sprintf( frmt, num ); % print the updated numbers into the format string.
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I like this answer as well! Going to be difficult to make my choice! –  m_power Jun 27 '13 at 19:47
    
@m_power I'd go with Oleg's answer –  Shai Jun 27 '13 at 20:22

Woops, I started writing this last night before I left work and forgot to finish it. Just an example using textscan rather than regexp.

ManyCells=textscan(theStringFromGetParam,'%s%d', 'delimiter','@;');
S=arrayfun(@(x) sprintf('%s@%d;',ManyCells{1}{x},1+ManyCells{2}(x)),1:length(ManyCells{1}),'uniformoutput',false)
NewString=cat(2,S{:});

I tried playing around with indexing and cellfun to dispose of the arrayfun but couldn't work it out; any ideas anybody?

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