title according to the file name

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Fercho_Sala
Fercho_Sala am 15 Apr. 2021
Kommentiert: Rik am 24 Mär. 2022
Does anybody know how to (in a plot) put the ‘title’ as the name of the file where the X,Y,Z variables are included? the idea is to generate several and independent plots, based on ‘imagesc’, ‘contolchart’ and other plotting functions. Thanks.
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John Ostrander
John Ostrander am 24 Mär. 2022
@Rik I am looking for something similar. There is a python code for it (I am learning both and very much a newbie) but in my case and I suspect the qeustion is the same:
C:\path\morepath\.......\filename.csv some of my files are buried deep in the file structure.
Strip "filename" from this automatically and insert it as the graph title.
I work with many files, and many graphs look alike. This would save time.
Rik
Rik am 24 Mär. 2022
Ran in:
The fileparts function should do what you need:
[p,f,e]=fileparts('C:\path\morepath\filename.csv')
p = 0×0 empty char array
f = 'C:\path\morepath\filename'
e = '.csv'
%(these results are on Linux, on Windows you should get this)
p = 'C:\path\morepath'
f = 'filename'
e = '.csv'

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Akzeptierte Antwort

Constantino Carlos Reyes-Aldasoro
Perhaps you want to add values to the titles of your figures, try something like this
for k=1:9
subplot(3,3,k)
title(strcat('Subplot number =',num2str(k)))
end
If this does not answer your question, we would need more information.
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Adam Danz
Adam Danz am 15 Apr. 2021
or,
title(['Subplot number = ', num2str(k)])
or,
title(sprintf('Subplot number = %d', k))

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Weitere Antworten (1)

Chunru
Chunru am 15 Apr. 2021
filename = "abc";
load(filename, "x", "y");
plot(x, y)
title(sprintf("File name: %s", filename));
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Rik
Rik am 15 Apr. 2021
You shouldn't encourage loading variables like this. Always load to a struct:
S=load(filename, "x", "y");x=S.x;y=S.y;

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