Error: "Dimension argument must be a positive integer scalar within indexing range" using trapz
101 visualizzazioni (ultimi 30 giorni)
Mostra commenti meno recenti
Jacqueline Rigatto
il 28 Feb 2021
Commentato: Mathieu NOE
il 8 Mar 2021
x_24= [0; 4.6958; 5.6732; 14.2002; 15.4490; 16.0151; 17.9994; 21.7987; 24.1082; 29.8818; 37.4162; 41.1113; 55.6853; 59.9431]
z_24=[ 6.1876; 7.1381; 7.2346; 4.4075; 4.4321; 4.2854; 3.9659; 3.4729; 3.1695; 2.2887; 1.2414; 0.8183; -0.0147; -0.2389]
NM_18=0.82;
MHWS_18=1.5-NM_18;
z_MHWS_24=z_24-MHWS_18;
MHWS_vector_18=repmat(MHWS_18,79,1);
figure(1)
plot (x_24,z_MHWS_24,'Yellow')
hold on
plot(MHWS_vector_18,'Blue')
hold off
x=x_24;
z=z_MHWS_24;
xi=5.67;
xf=14.20;
xRange = [xi,xf];
% find logical indices for range of interest
idl = x >= xRange(1) & x <= xRange(2);
% provide just values of interest to trapz
area_selected=trapz(x(idl),z(idl))
area_total=trapz(x,z)
The error that is happening is in the last two lines of the code above (from bottom to top).
0 Commenti
Risposta accettata
Mathieu NOE
il 3 Mar 2021
hello Jacqueline
with the given limits xi=5.67; xf=14.20; , idl contains only one valid x value , so trapz will throw an error, because it needs at least vector of 2 scalars (and you give only one value)
I guessed that you needed to include the 14.2002 value in your x vector , so simply make the second limit a bit higher : xf=14.21;
and then it's fine, you can do the trapz computation
results :
area_selected = 43.8377
area_total = 123.3377
2 Commenti
Più risposte (0)
Vedere anche
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!