how to make a function that return cell array of the month
Afficher commentaires plus anciens
Hi every one;
I am going to attempt that query:
Write a function called June2015 that returns a cell array of dimensions 30-by-3, whose rows correspond to the days of June, 2015. The three elements of each row must be set as follows:
• The first element refers to the string 'June' (uppercase ‘J’). • The second element refers to a scalar of type double that equals the date (1 through 30). • The third element refers to the three-letter abbreviation of the day chosen from this list: 'Mon', 'Tue', 'Wed', 'Thu', 'Fri', 'Sat', 'Sun'.
For example, here is a call of the function followed by a command that shows the eleventh element of the cell array that is returned by the function:
>> m = June2015;
>> m(11,:)
ans =
'June' [11] 'Thu'
I am using that code
function m = June2015
A=cell(30,3)%declar cell array of 30 by 3
for i = 1:30
[DateNumber, DateName] = weekday(datenum([2015 6 i]));% making the value of DateNume for DateNumber
%and loop run number of rows in cell array
for j=1:3% loop run for column of cell array
A(i,:)={'June', i, 'DateName'}
end
end
end
but in testing i am getting that error
Your solution is _not_ correct.
Guide me about my corrections.. thanks in advance
8 commentaires
Walter Roberson
le 2 Juin 2015
A(i,:)={'June', i, DateName(i,:)}
Muhammad Usman Saleem
le 2 Juin 2015
Walter Roberson
le 2 Juin 2015
'DateName(i,:)' means to put in the literal string 'DateName(i,:)', not what is contained in DateName(i,:)
Oh I see, I thought you were pre-calculating all of the date names. In that case, just
A(i,:) = {'June', i, DateName};
and your "for j" loop is useless
Christos Vyzantios
le 4 Juin 2015
Modifié(e) : Walter Roberson
le 4 Juin 2015
I made some small changes but the grader didnt accept :(
function m = June2015 %#ok<STOUT>
A=cell(30,3);
for i = 1:30
[~, DateName] = weekday(datenum([2015 6 i]));% making the value of DateNume for DateNumber
%and loop run number of rows in cell array
A(i,:) = {'June', i, DateName};
end
end
Walter Roberson
le 4 Juin 2015
Your "function" defines the output as going to the variable named "m" but you never assign anything to that variable.
Muhammad Usman Saleem
le 5 Juin 2015
Christos Vyzantios
le 5 Juin 2015
Modifié(e) : Walter Roberson
le 8 Juin 2015
I transform liitle the code but the problem exist
function m = June2015 %#ok<STOUT>
A=cell(30,3);%declar cell array of 30 by 3
for i = 1:30 %#ok<ALIGN>
[~, DateName] = weekday(datenum([2015 6 i]));
A(i,:) = {'June', i, DateName};
end
end
Muhammad Usman Saleem
le 7 Juin 2015
Réponse acceptée
Walter Roberson
le 2 Juin 2015
In your line
A(i,:)={'June', i, 'DateName'}
that would attempt to put the literal string 'DateName' into the array, rather than trying to put any content from the variable DateName into the array.
You probably want to select a portion of DateName rather than the whole thing.
3 commentaires
Muhammad Usman Saleem
le 2 Juin 2015
Muhammad Usman Saleem
le 2 Juin 2015
Muhammad Usman Saleem
le 5 Juin 2015
Plus de réponses (3)
Jan
le 2 Juin 2015
The loop over j is not required. Simply omit it.
The 3rd column of A should not be the string 'DateName(i,:)', but the contents of the variable DateName. So use:
A(i,:) = {'June', i, DateName} ;
7 commentaires
Muhammad Usman Saleem
le 5 Juin 2015
Muhammad Usman Saleem
le 5 Juin 2015
Jan
le 6 Juin 2015
Then please be so kind and post, which error message you see. The code runs fine on my machine.
Muhammad Usman Saleem
le 7 Juin 2015
Muhammad Usman Saleem
le 7 Juin 2015
Walter Roberson
le 8 Juin 2015
Modifié(e) : Walter Roberson
le 8 Juin 2015
function A = June2015
A=cell(30,3)%declar cell array of 30 by 3
for i = 1:30
[DateNumber, DateName] = weekday(datenum([2015 6 i]));
% making the value of DateNume for DateNumber and loop run number of rows in cell array
[A{i,:}] = deal('June', i, DateName) ;
end
end
Muhammad Usman Saleem
le 8 Juin 2015
abdo desoki
le 6 Juin 2015
0 votes
change that variable A with m and it will run correctly .
Luxman Maheswaran
le 8 Juin 2015
0 votes
You have to convert the number of DateName to a string such as 'Thu' I have checked it with a grader and it is correct
1 commentaire
Walter Roberson
le 8 Juin 2015
The second output of weekday() is a string.
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