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delete an element in a cell array in a for loop

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mazari ahmed
mazari ahmed 2015년 3월 12일
댓글: mazari ahmed 2015년 4월 9일
hello; l have a set called stated_n{i} where i varies from 1 to n (let n=5) for exemple
stated_n{1} = {3,7,8,9,14,99}
stated_n{2} = {14,8,19,104,98}
stated_n{3} = {67,7,8,9,14,11}
stated_n{4} = {41,76,8,18,14,56}
stated_n{5} = {65,13,16,9,8,103}
l want for exemple to delete a value k (let k= 8) how to do that to remove 8 from each stated_n (1:5)
for i=1:N
if ismember(k,stated_n{i})
%remove k from stated_n{i}
% update stated_n{i} and display it
end
end
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mazari ahmed
mazari ahmed 2015년 3월 12일
no l have just many celle array from 1 to n with different elements : stated_n{1} = {3,7,8,9,14,99} stated_n{2} = {14,8,19,104,98} . . . .
stated_n{200} = {41,76,8,18,14,56,17,999,659,7} stated_n{5} = {65,13,16,9,8,103}
the cyclist
the cyclist 2015년 3월 12일
OK, but be aware that you keep using curly brackets "{}", which is how cell arrays are specified.
I will modify my code below in a way that I hope will make it work.

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mazari ahmed
mazari ahmed 2015년 3월 14일
편집: per isakson 2015년 3월 14일
the answer is :
neighbour_n{i}= setdiff(neighbour_n{i},F);
problem solved

추가 답변 (4개)

Sara Hafeez
Sara Hafeez 2015년 3월 12일
The method will be first find the index of the number 8 in a loop in every cell array and then use the following stated_n{index}=[] this will remove the value of 8 and yes find the value ofn8 by comparing or by a conditional statement.
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mazari ahmed
mazari ahmed 2015년 3월 12일
Sara look at this exemple let k = 8 (the value of k is dynamic this is why it is mandatory to do this ismember(k,stated_n{i})) % we should verifiy in every stated_n{i} that k is a member if so delete it stated_n{1}= {4,8,9,6} % 8 is a member so delete it stated_n{98}= {6,9,78,87,34} % 8 is not a member so we do anything

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the cyclist
the cyclist 2015년 3월 12일
편집: the cyclist 2015년 3월 12일
If you really have a cell array of cell arrays, then I think this will work:
output = cellfun(@(x)num2cell(setdiff([x{:}],8)),stated_n,'UniformOutput',false)
EDIT BASED ON COMMENTS ABOVE
cellfun(@(x)setdiff(x,8),stated_n,'UniformOutput',false)
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mazari ahmed
mazari ahmed 2015년 3월 12일
here is my complete code .l tried it with the second instruction it executes but it doesn't delete the element (cellfun(@(x)setdiff(x,8),stated_n,'UniformOutput',false)) with the first instruction it returns me an error (output = cellfun(@(x)num2cell(setdiff([x{:}],8)),stated_n,'UniformOutput',false)) the error is : ??? Cell contents reference from a non-cell array object.
Error in ==> @(x)num2cell(setdiff([x{:}],F))
Error in ==> said at 96 output = cellfun(@(x)num2cell(setdiff([x{:}],F)),neighbour_n,'UniformOutput',false);
here is my entire code try to execute it :
% code %
X=100;
Y=100;
N=200; %number of nodes
nodesX(1)=rand*X;
nodesY(1)=rand*Y;
for i=2:N
nodesX(i)=rand*X;
nodesY(i)=rand*Y;
d(i-1) =((nodesX(i)-nodesX(i-1)).^2+(nodesY(i)-nodesY(i-1)).^2).^0.5;
while (d(i-1)>200)
nodesX(i)=rand*X;
nodesY(i)=rand*Y;
d(i-1) =((nodesX(i)-nodesX(i-1)).^2+(nodesY(i)-nodesY(i-1)).^2).^0.5;
end
end
h_old=plot(nodesX,nodesY,'m*');
labels=[1:N]';
labels=num2str(labels);
text(nodesX,nodesY,labels);
xlabel('X (Meters)');
ylabel('Y (Meters)');
title(['Network Topology with',num2str(N),'nodes']);
hold on
A= zeros(N,N);
neighbour_n=cell(N,1);
m=0;
for k=1:N;
for j=1:N;
if (k~=j)
d=((nodesX(k)-nodesX(j))^2+(nodesY(k)-nodesY(j))^2)^0.5;
end
if (k~=j);
if(d < 50);
line([nodesX(k),nodesX(j)],[nodesY(k),nodesY(j)]);
neighbour_n{k}= [neighbour_n{k} j];
m=m+1;% the number of created links
A(k, j)=1;
if (A(k, j)==1);
A(j, k)=1;
end
else
A(k, j)=0;
end
end
end;
display(['the neighbours of ', num2str(k), ' are ', ' = ' , num2str(neighbour_n{k})]);
end;
display(A);
display(['the total number of edges is: ', num2str(m)]);
deleted_node=cell(N,1);
for k=1:N;
for j=1:N;
if (((all(ismember(neighbour_n{k}, neighbour_n{j})))||(isequal(neighbour_n{j}, neighbour_n{k})))&&(k~=j));% incorrect syntax
delete(line([nodesX(k),nodesX(j)],[nodesY(k),nodesY(j)]));
display(['the line between ', num2str(k), ' and ', num2str(j), ' is deleted']);
deleted_node{i}= [deleted_node{i} k];
F=Unique(deleted_node{i});
L=length(F);
end
end
end
display(['the deleted nodes are ', ' = ' , num2str(F)]);
display(['the number of deleted nodes is ', ' = ' , num2str(L)]);
eliminated_all=cell(N,1);
candidate_node=cell(N,1);
%N = numel(neighbour_n);
for i=1:N
output = cellfun(@(x)num2cell(setdiff([x{:}],F)),neighbour_n,'UniformOutput',false);
display(['Display new neighbour of ', num2str(i), ' are: ', num2str(neighbour_n{i})]);
end
the cyclist
the cyclist 2015년 3월 12일
편집: the cyclist 2015년 3월 12일
My code does work.
Use this version:
cellfun(@(x)setdiff(x,8),stated_n,'UniformOutput',false)
It does not need to be inside the for loop:
output = cellfun(@(x)(setdiff(x,F)),neighbour_n,'UniformOutput',false);
for i=1:N
display(['Display new neighbour of ', num2str(i), ' are: ', num2str(neighbour_n{i})]);
end
I defined a new variable called output, but you are just displaying your old variable, neighbour, so you did not see the deletions.
The new variable has what you want. Maybe you want to do
neighbour_n = cellfun(@(x)(setdiff(x,F)),neighbour_n,'UniformOutput',false);
for i=1:N
display(['Display new neighbour of ', num2str(i), ' are: ', num2str(neighbour_n{i})]);
end

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Sara Hafeez
Sara Hafeez 2015년 3월 12일
OK don't have a PC here writing this in random on mobile just check if it runs properly For i=1:5% because there are 5 parts
For j=1:6
If stated{i,j}=8 Then set this to an empty array and the end the loop try this hope it works.
  댓글 수: 1
mazari ahmed
mazari ahmed 2015년 3월 12일
편집: mazari ahmed 2015년 3월 12일
but Sara l do't want to delete all the elments of the stated_n{i} but only the element 8

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mazari ahmed
mazari ahmed 2015년 3월 12일
편집: mazari ahmed 2015년 3월 12일
Even in this way it doesn't work.it doesn't make any changes
N=200;
stated_n=cell(N,1);
for i=1:N
if(ismember(k, stated_n{i}))
ind=num2str(find(ismember(k, neighbour_n{i})));
stated_n{i,ind}= [];
display(num2str(neighbour_n{i});
end
end

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