Interpreting varargin name-value pairs.

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Chad Greene
Chad Greene on 1 May 2014
Answered: Kevin Schroeder on 20 Jul 2021
I've been writing a lot of functions lately. I like allowing the user to declare options in my functions using name-value pairs, but I have not found a good clean method of interpreting varargin. Here are two methods I tend to use, but both feel a bit clunky:
% Method 1:
for k = 1:length(varargin)
if strcmpi(varargin{k},'fontname')
fontname = varargin{k+1};
varargin{k+1}=[];
varargin{k}=[];
end
end
% Method 2:
nk = 1:length(varargin);
for k = 1:length(varargin)
if strcmpi(varargin{k},'fontsize')
fontsize = varargin{k+1};
nk(k:k+1) = [];
end
end
varargin = varargin(nk);
Is there a better standard procedure for interpreting a list of varargin arguments?

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Accepted Answer

Sean de Wolski
Sean de Wolski on 1 May 2014
Yes... Use inputParser
  8 Comments
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Chad Greene
Chad Greene on 1 May 2014
Sean: the inputParser looks promising, especially for a long list of possible inputs. If I were using it to get font name and size from a list of varargin it'd look like this :
p = inputParser;
defaultFontSize = 12;
defaultFont = 'times';
addParamValue(p,'font',defaultFont,@ischar);
addParamValue(p,'fontsize',defaultFontSize,@isnumeric);
parse(p,varargin{:});
font = p.Results.font;
fontsize = p.Results.fontsize;
Above I've used addParamValue instead of the recommended addParameter because R2012b does not recognize addParameter. Now, is there a way to keep track of which varargin arguments have been evaluated? In the original post I had lines that delete names and values from varargin because at the end of the function sometimes I like to put all the leftover varargin arguments into a function. For example,
function [h] = myfunction( varargin )
% Parse inputs:
p = inputParser;
defaultFontSize = 12;
defaultFont = 'times';
addParamValue(p,'font',defaultFont,@ischar);
addParamValue(p,'fontsize',defaultFontSize,@isnumeric);
parse(p,varargin{:});
font = p.Results.font;
fontsize = p.Results.fontsize;
% use leftover varargin:
h = plot(1:10,11:20,varargin{:});
text(5,14,'this is my text','fontsize',fontsize)
end
The function above does not work, but it's a design that I would like to get to work. I'd like to let the user create some plot with any plot options and format the text with a command like
myfunction('linewidth',5,'fontsize',30)
Cedric
Cedric on 2 May 2014
Edited: Cedric on 2 May 2014
Hi Chad, almost there, look at the KeepUnmatched and Unmatched properties of the parser. You might also be interested in functions fieldnames and struct2cell if you want to build a comma separated list for passing unmatched param/values further.

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More Answers (3)

Kevin Schroeder
Kevin Schroeder on 20 Jul 2021
If it is of any value to others, I have always used a switch case nested in a for loop.
function myFunction(varargin)
for setting = 1:2:nargin
switch varargin{setting}
case 'SettingName1'
value = varargin{setting + 1}
[]; %do stuff with value
case 'SettingName2'
value = varargin{setting + 1}
[]; %do stuff with value
case 'SettingName3'
value = varargin{setting + 1}
[]; %do stuff with value
otherwise
[];
end
end
end
Functionally it should be similar to the nested if statements, but it looks much cleaner.
Justin
Justin on 1 May 2014
I'm always a fan of cellfun.
inputExist = find(cellfun(@(x) strcmpi(x, 'fontname') , varargin));
if inputExist
fontsize = varargin{inputExist+1};
end
I have used this or something similar before. You can wrap this in a for loop that goes through your expected inputs and instead of assigning them directly to fontsize you could assign it to a structure like:
inputs.(currentName) = varargin{inputExist+1};
Let me know if that makes sense.
  1 Comment
Cedric
Cedric on 2 May 2014
Edited: Cedric on 2 May 2014
STRCMPI does work on cell arrays, so there is no need to use CELLFUN. Yet, it is likely not to be suited here, because Chad would have to test for all possible parameter names for both the function and the internal function. Using the parser and its Unmachted property is more flexible for this reason.

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Alexander
Alexander on 17 Jul 2016
Dont use inputParser if you need to codegen - it is not supported in R2016a.
  1 Comment
Sean de Wolski
Sean de Wolski on 19 Jul 2016
With codegen, you won't be using variable number of inputs since everything needs to be defined.

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