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Trasform an array of structs with string in an array of structs with numbers

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pamela sulis
pamela sulis el 28 de Oct. de 2015
Cerrada: MATLAB Answer Bot el 20 de Ag. de 2021
Hi, I have a array of struct: for every struct I want to trasform sting into number with the function datevec and at the end I want to obtain an array of structs with numbers. My code run but at the end I obtain only the value of the last struct and not of all structs. The code is
% Pre-allocated structures
date=repmat(struct('x',0), 1, size(s,2));
dateStart=repmat(struct('Start',0), 1, size(s,2));
dateEnd=repmat(struct('End',0), 1, size(s,2));
%
for i=1:size(s,2)
% gestisce la presenza di struct vuote
if(isempty(s(1,i).locs))
continue
%gestisce l'assenza dei valori di inizio/fine rilevazione
elseif(isempty(s(1,i).places))
continue
else
date=datevec(s(1,i).locs(:,1))
% Data di inizio rilevazione
dateStart=datevec(s(1,i).places.startdate(:,1));
% Data fine rilevazione
dateEnd=datevec(s(1,i).places.endate(:,1));
end
end
Can you help me to find the error?

Respuestas (1)

Stephen23
Stephen23 el 28 de Oct. de 2015
Editada: Stephen23 el 28 de Oct. de 2015
That code is a bit buggy, and it is not doing what you think it is:
  1. Some structures are "preallocated" using repmat(struct(...)), but when you read the documentation for the function datevec you will learn that it does not output a structure but in fact a numeric array. So this preallocation is useless because it creates an array of the wrong type.
  2. On every iteration you completely reassign the variables date, dateStart and dateEnd, so on every loop iteration they get completely redefined. This happens because you do not use any indexing to allocate the output into a new element on each iteration. This is also why the incorrect "preallocation" does not cause any error.
  3. Using the variable name date is a bad idea, as this shadows the inbuilt date function. You can check variable names using which.
  4. the continue operations are not required, they do absolutely nothing useful in this code.
A simpler alternative is to use MATLAB more efficiently:
>> S(3).locs = '2015-03-31';
>> S(2).locs = '2015-02-28';
>> S(1).locs = '2015-01-01';
>> datevec(vertcat({S.locs}))
ans =
2015 1 1 0 0 0
2015 2 28 0 0 0
2015 3 31 0 0 0
OR if the date strings have different lengths or might be missing:
>> X = cellfun(@datevec,{S.locs}','UniformOutput',false);
>> cell2mat(X)
ans =
2015 1 1 0 0 0
2015 2 28 0 0 0
2015 3 31 0 0 0
  6 comentarios
Stephen23
Stephen23 el 28 de Oct. de 2015
Can you please show the exact date strings that cause this error.
pamela sulis
pamela sulis el 28 de Oct. de 2015
Editada: pamela sulis el 29 de Oct. de 2015
I have solved the problem
% nCols: dimensione dell'array di struct colonne 106
nCols = size(s,2);
% Pre-allocazione delle matrici dateBeg e dateEnd che conterranno
% rispettivamente le date di inizio e di termine della rilevazione
dateBeg = zeros(nCols,6);
dateEnd = zeros(nCols,6);
dateAll(nCols)=struct('date',[]);
% Per k che va da 1 a 106, se i campi s.locs dell'array di struct sono non
% nulli, metto i dati in dateAll
for k = 1:nCols
if ~isempty(s(1,k).locs)
str = s(1,k).locs(:,1);
tmp = datevec(str);
dateAll(k).date = tmp;
end
% if ~isempty(s(1,k).locs)
% dateAll(k,:) = datevec(s(1,k).locs(:,1))
% end
% se i campi s.places non sono vuoti per le struct dell'array, metto i
% valori di startdate e endate rispettivamente in dateBeg e dateEnd
if ~isempty(s(1,k).places)
dateBeg(k,:) = datevec(s(1,k).places.startdate(:,1));
dateEnd(k,:) = datevec(s(1,k).places.endate(:,1));
end
end

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