Removing the columns of a matrix
1 visualizzazione (ultimi 30 giorni)
Mostra commenti meno recenti
Hi,
I try to write a code that compares strings in a cell array. In this code, after it compares the strings in the cell array "type", it assigns the corresponding element in lat matrix to lat1 matrix. This situation is same in lat2 and long2 matrices. But in if statement, when it TF≠1, then it assigns 0 element in lat1 matrix. How can I remove the 0 elements from lat1,lat2,long1 and long2 matrices?
clear all
[lat,long,station,type]=textread('latandlong.txt','%f%f%s%s');
lat1=[];
long1=[];
lat2=[];
long2=[];
for i=1:24
TF=strcmpi('down',type{i,:})
if TF==1
lat1(i,:)=lat(i,:);
long1(i,:)=long(i,:);
elseif TF==0
lat2(i,:)=lat(i,:);
long2(i,:)=long(i,:);
end
end
1 Commento
Jan
il 19 Ott 2011
About the useless "clear all" see: http://www.mathworks.com/matlabcentral/answers/16484-good-programming-practice#answer_22301
Risposta accettata
Jan
il 19 Ott 2011
The 0 are not written into lat1 in the "if TF==0" block, but lat1(1, :) is filled with zeros automatically if you assign lat1(2, :). Try this:
x = [];
x(2) = 5
Modification of your code:
lat1=[];
long1=[];
lat2=[];
long2=[];
for i=1:24
TF=strcmpi('down', typeC{i,:}) % "type" => "typeC"!
if TF==1
lat1 = cat(1, lat1, lat(i,:));
long1 = cat(1, long1, long(i,:));
elseif TF==0
lat2 = cat(1, lat2, lat(i,:));
long2 = cat(1, long2, long(i,:));
end
end
But letting a matrix grow in each iteration is very inefficient. Faster and nicer:
index = strcmpi('down', typeC); % "type" => "typeC"!
lat1 = lat(index, :);
long1 = long(index, :);
lat2 = lat(~index, :);
long2 = long(~index, :);
Do not use "type" as name of a variable, because this shadows the built-in function with the same name.
0 Commenti
Più risposte (2)
Vedere anche
Categorie
Scopri di più su Resizing and Reshaping Matrices in Help Center e File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!
Start Hunting!