Why I get 1×0 empty double row vector?

4 visualizaciones (últimos 30 días)
Aleksandra Pawlak
Aleksandra Pawlak el 27 de Dic. de 2020
Comentada: Image Analyst el 28 de Dic. de 2020
Hi, I have problem with my code. I don't know why fidx1 is 1x0 empty double row vector?
min(oh1) and max(oh1) results are:
>>min(oh1)
ans = 102.8890
>> max(oh1)
ans = 106.2470
d1=[0 min(oh1) min(oh1)];
e1=[max(oh1) max(oh1) max([oh1 oh2 oh3 oh4 oh5 oh7 oh11 oh13 oh19 oh23 oh25 oh29 oh35 oh37])];
X1=[xq1];
Y1=[100*r1];
lidx1 = find(X1 == max(oh1));
Ylidx1 = Y1(lidx1);
fidx1 = find(X1 == min(oh1));
Yfidx1 = Y1(fidx1);
  4 comentarios
Mostrar 2 comentarios más antiguos
Aleksandra Pawlak
Aleksandra Pawlak el 27 de Dic. de 2020
My code works only for max value.
There's something wrong with part:
fidx1 = find(X1 == min(oh1));
Yfidx1 = Y1(fidx1);
I can't understand this

Iniciar sesión para comentar.

Iniciar sesión para responder a esta pregunta.

Respuesta aceptada

Ive J
Ive J el 27 de Dic. de 2020
Editada: Ive J el 27 de Dic. de 2020
xq1 (and therefore X1) simply may don't contain min(oh1) since you are discretizing [0, max(oh1)]. What you can do is to find the idx corresponding to the closest value to min_oh1
max_oh1 = 104;
xq1 = 0:104/200:104;
[~, fidx1] = min(abs(xq1 - min(oh1)));
  5 comentarios
Mostrar 3 comentarios más antiguos
Ive J
Ive J el 27 de Dic. de 2020
The first output argument is the minimum value itself, and the second one is it's index.
Aleksandra Pawlak
Aleksandra Pawlak el 27 de Dic. de 2020
Ok, get it, thanks!

Iniciar sesión para comentar.

Más respuestas (0)

Categorías

Más información sobre Logical en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

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

Start Hunting!

Translated by