Problem with using 'DisplayName' property in fplot()

8 Ansichten (letzte 30 Tage)
Lennart Reich
Lennart Reich am 23 Jul. 2020
Kommentiert: Lennart Reich am 23 Jul. 2020
Hello everbody,
I wrote a function to plot a limit value in a existing figure. You can see it below. This function works well without using 'DisplayName' in fplot().
If I want to use 'DisplayName' I have got the following error:
Error using plot
Error in color/linetype argument.
Error in fplot (line 154)
plot(xx,y,marker,'parent',cax)
Error in limits (line 48)
fplot(f, axes.XLim, 'DisplayName', 'Test')
Can someone help me to fix this problem.
Thank you in advance,
Lennart
function limits(fig, standard)
%% Code
axes = fig.CurrentAxes;
axes.NextPlot = 'add';
if strcmp(standard, 'ECE R10 10m QuasiPeak')
f1 = @(x) 32;
f2 = @(x) 32 + 15.13 .* log10(x/75000000);
f3 = @(x) 43;
elseif strcmp(standard, 'ECE R10 10m Average')
f1 = @(x) 22;
f2 = @(x) 22 + 15.13 .* log10(x/75000000);
f3 = @(x) 33;
elseif strcmp(standard, 'ECE R10 3m QuasiPeak')
f1 = @(x) 42;
f2 = @(x) 42 + 15.13 .* log10(x/75000000) ;
f3 = @(x) 53;
elseif strcmp(standard, 'ECE R10 3m Average')
f1 = @(x) 32;
f2 = @(x) 32 + 15.13 .* log10(x/75000000) ;
f3 = @(x) 43;
elseif strcmp(standard, 'ECE R10 EUB QuasiPeak')
f1 = @(x) 62 - 25.13 .* log10(x/3000000);
f2 = @(x) 52 + 15.13 .* log10(x/75000000) ;
f3 = @(x) 63;
elseif strcmp(standard, 'ECE R10 EUB Average')
f1 = @(x) 52 - 25.13 .* log10(x/3000000);
f2 = @(x) 42 + 15.13 .* log10(x/75000000) ;
f3 = @(x) 53;
else
error('Dies ist kein vorhandener Grenzwert!')
end
f = @(x) f1(x).*((30000000 <= x) & (x <= 75000000)) + f2(x).*((75000000 < x) & (x < 400000000)) + f3(x).*((400000000 <= x) & (x < 1000000000));
fplot(f, axes.XLim, 'DisplayName', 'Test')
end
  2 Kommentare
Robert U
Robert U am 23 Jul. 2020
Problem seems not to be "DisplayName" property but the limits given by axes.XLim.
Kind regards,
Robert
Lennart Reich
Lennart Reich am 23 Jul. 2020
But without axes.XLim I have got the same error.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (1)

madhan ravi
madhan ravi am 23 Jul. 2020
Bearbeitet: madhan ravi am 23 Jul. 2020
F = fplot(f);
set(F, 'DisplayName', 'Test')
  8 Kommentare
6 ältere Kommentare anzeigen
madhan ravi
madhan ravi am 23 Jul. 2020
Thank you sir Walter!
Lennart Reich
Lennart Reich am 23 Jul. 2020
Yeah this works fine. Thank you Walter.

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Line Plots finden Sie in Help Center und File Exchange

Tags

Produkte


Version

R2015b

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by