Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

This is the error I received:


Error using maineffectsplot (line 99)
GROUP must be a cell array or matrix of grouping variables with the same length as Y.

This is my code:

%% main effect plot

data = [0.9000    1.0000    1.0000;    1.1000    1.1000    1.2000;    1.2000    1.1000    1.1000;    1.4000    1.4000    1.4000;
    1.0000    1.0000    0.9000;    1.1000    1.2000    1.1000;    0.9000    0.8000    0.8000;    0.9000    1.0000    0.9000;
    0.7000    0.8000    0.7000;    1.1000    1.2000    1.2000;    1.1000    1.0000    1.1000;    1.1000    1.1000    0.9000;
    0.8000    0.8000    0.7000;    0.9000    1.1000    1.0000;    0.8000    0.9000    0.8000;    1.1000    1.1000    1.0000];

    data = data';

    g1 = {'(1)', 'A', 'B' ,'C', 'D', 'AB', 'AC', 'AD', 'BC', 'BD', 'CD', 'ABC', 'BCD', 'ABD', 'ACD', 'ABCD'};
maineffectsplot(data, g1)

The help maineffectsplot says "Each grouping variable must have the same number of rows as Y" Y has 16 rows, g1 has 16 rows as well, I don't understand why do I receive this error

I tried different combination of data, g1 ; data, g1' etc none of these work

This picture confirmed that I somehow managed to have them both have 16 rows

screen capture

Thank you!

share|improve this question

1 Answer 1

You only need one cell in g1, but it has to contain 16 rows. Try using

g1 = {['(1)';'A';...;'ABCD']}
share|improve this answer
    
I did different combination of data, g1; data', g1, data, g1', data', g1' none of these work, thanks –  Sharon Lau Mar 28 '13 at 4:23
    
Sorry I don't have access to that package (mainefectsplot), I was just giving what seemed like an obvious answer. Looking at the documentation it appears that the cells in "g1" are for different subplots and you only need one cell. So try using g1 = {['(1)';'A';...;'ABCD']}. I think that should work but I can't test it here. –  Stuart Mar 28 '13 at 5:54

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.