Splitting a matrix according to there labels

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NotA_Programmer 2022 年 5 月 10 日

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コメント済み: Jon 2022 年 5 月 11 日

I have a matrix of (1900 x 4 double), fourth column contains labels 3, 2 and 1. I want to split this data in 20:80 ratio of A and B where A contains 20% of each labels 3,2,&1. And B contains 80% of each labels i.e. 80% of label 3, 80% of label 2 and 80% of label 1. Please help how can this be achieved.

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NotA_Programmer 2022 年 5 月 10 日

@Dyuman Joshi

Randomly.

But,

A (containing 20% of data rows) should contain [20% from label 3 rows + 20% from label 2 rows + 20% from label 1 rows].

B (containing 80% of data rows) should contain [80% from label 3 rows + 80% from label 2 rows + 80% from label 1 rows].

dpb 2022 年 5 月 10 日

Add splitapply or if using table rowfun to above...

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Answer 1

Jon 2022 年 5 月 10 日

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https://jp.mathworks.com/matlabcentral/answers/1715735-splitting-a-matrix-according-to-there-labels#answer_961075

編集済み: Jon 2022 年 5 月 10 日

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This is one way to do it

% make an example data file with last column having either a "label" of 1,
% 2, or 3
data = [rand(1900,3),randi(3,[1900,1])];
% loop through labels making training and validation data sets
Aparts = cell(3,1);
Bparts = cell(3,1);
for k = 1:3
    % get the indices of the rows with kth label
    idx = find(data(:,4)==k);
    numWithLabel = numel(idx);
    idxrand = idx(randperm(numWithLabel)); % randomize the selection
    % randomly put (within rounding) 80% in training, 20% in validation
    numTrain = round(0.8*numWithLabel);
    Aparts{k} = data(idxrand(1:numTrain),:);
    Bparts{k} = data(idxrand(numTrain+1:end),:); % the rest go to validation
end
% put all of the parts in one matrix of doubles 
A = cell2mat(Aparts);
B = cell2mat(Bparts);

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NotA_Programmer 2022 年 5 月 10 日

Hi Jon, thanks for your reponse.

My early data changed to Combined_Data = (7886 x 8 double). Last column i.e. column 8 contains labels 3,2,1.

I tried this below code but it does not give the desired result. can you please have a check on this.

Desired ouput:

matrix A(xyz x 8 double)

matrix B(uvw x 8 double)

A (containing 20% of data rows) should contain [20% from label 3 rows + 20% from label 2 rows + 20% from label 1 rows].

B (containing 80% of data rows) should contain [80% from label 3 rows + 80% from label 2 rows + 80% from label 1 rows].

code:

filename = 'C.xlsx';

Combined_Data = xlsread(filename);

% loop through labels making training and validation data sets

Aparts = cell(7,1);

Bparts = cell(7,1);

for k = 1:7

idx = find(Combined_Data(:,8)==k);

numWithLabel = numel(idx);

idxrand = idx(randperm(numWithLabel)); % randomize the selection

% randomly put (within rounding) 80% in training, 20% in validation

numTrain = round(0.8*numWithLabel);

Aparts{k} = Combined_Data(idxrand(1:numTrain),:);

Bparts{k} = Combined_Data(idxrand(numTrain+1:end),:); % the rest go to validation

end

% put all of the parts in one matrix of doubles

A = cell2mat(Aparts);

B = cell2mat(Bparts);

Jon 2022 年 5 月 10 日

編集済み: Jon 2022 年 5 月 10 日

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The only thing that needs to change is the column that the labels are in. You are still looping through three possible labels 1,2,3 so don't change the dimensions that have to do with the label you are looping through

Combined_Data = xlsread(filename);
% loop through labels making training and validation data sets
Aparts = cell(3,1); % first dimension is number of labels
Bparts = cell(3,1);
for k = 1:3 % just loop through the labels
    idx = find(Combined_Data(:,8)==k);
    numWithLabel = numel(idx);
    idxrand = idx(randperm(numWithLabel)); % randomize the selection
    % randomly put (within rounding) 80% in training, 20% in validation
    numTrain = round(0.8*numWithLabel);
    Aparts{k} = Combined_Data(idxrand(1:numTrain),:);
    Bparts{k} = Combined_Data(idxrand(numTrain+1:end),:); % the rest go to validation
end
% put all of the parts in one matrix of doubles 
A = cell2mat(Aparts);
B = cell2mat(Bparts);

Jon 2022 年 5 月 11 日

編集済み: Jon 2022 年 5 月 11 日

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In case it is of interest, here is a much simpler way to do the splitting without using any loops. I also made it more general so that you can use any list of labels you want, they don't even have to be consecutive, and there can be an arbitrary number of labels

% parameters
numPoints = 1900; % only needed to generate example data
labelColNo = 8; % column number of labels
labels = [1,2,3]; % possible labels
% make an example data file with last column having random label values
% from set of possible labels
numLabels = numel(labels);
labelColumn = labels(randi(numLabels,numPoints,1));
data = [rand(numPoints,labelColNo-1),labelColumn(:)];
% randomize (shuffle) the rows
data = data(randperm(numPoints),:);
% make a number of data points by number of possible label values 
% matrix with a column for each label, whose i,jth entry is true if
% the jth label occurs in the ith row of the labelColumn
isLabel = data(:,labelColNo)==labels;
% count entries and normalize to get cumulative fractions
% record cumulative fraction corresponding to each occurence of label
counts = cumsum(isLabel);
f = counts./counts(end,:).*isLabel; % sets values to zero where label doesn't occur
% mark all the rows with up to 0.8 as being in the training set
isTraining = any(f>0 &f<=0.8,2);
A = data(isTraining,:);
B = data(~isTraining,:);

dpb 2022 年 5 月 11 日

編集済み: dpb 2022 年 5 月 11 日

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Oh, if you want categorical labels, then use categorical variables -- that's what its for...

labels=randi(3,10,1);       % dummy dataset for show...
labels=categorical(labels,[1:3],{'Good','Average','Bad'},'ordinal',1);  % convert to categorical
labels = 
  10×1 categorical array
     Bad 
     Good 
     Bad 
     Average 
     Average 
     Bad 
     Bad 
     Good 
     Bad 
     Good 
>> 

Plots are aware of categorical variables so you get the labels automagically; you may have to use

>> categories(labels)
ans =
  3×1 cell array
    {'Good'    }
    {'Avgerage'}
    {'Bad'     }
>> 

or string or cellstr occasionally to get a string representation if need it specifically.

But, manipulating table data as categorical instead of as string is far easier and more effiicient besides.

While I showed as a standalone new variable called labels, what you really want to do is convert the actual variable to categorical and use it instead of the original...then the labels come along for free.

Jon 2022 年 5 月 11 日

@dpb Thanks I realize I need to get more familiar with categorical variables. From your example, and I think another one I saw recently I see that they provide some powerful capabilities.

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Answer 2

dpb 2022 年 5 月 10 日

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https://jp.mathworks.com/matlabcentral/answers/1715735-splitting-a-matrix-according-to-there-labels#answer_961110

編集済み: dpb 2022 年 5 月 10 日

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[ix,idx]=findgroups(X(:,4));        % get grouping variable on fourth column X
for i=idx.'                         % for each group ID (must be numeric as here)
  I=I(find(ix==i));                 % the indices into X for the group
  N=numel(I);                       % how many in this group
  I=I(randperm(N));                 % rearrange randomly the elements of index vector
  nA=floor(0.8*N);                  % how many to pick for A (maybe round() instead???)
  iA{i}=I(1:nA);                    % the randomized selection for A
  iB{i}=I(nA+1:end);                % rest for B
end

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dpb 2022 年 5 月 10 日

編集済み: dpb 2022 年 5 月 10 日

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You've got a missing ".'" transpose operator on the for loop iterator -- it must be a row vector; passing a column vector will result in the problem that all three indices are passed at once. I could have made the code more robust by writing

for i=idx(:).'

instead which (:) forces a column vector and ".'" turns it into row.

However, I see I missed an important step in the cleanup from the anonymous function version -- the line

I=randperm(N);

needs to be

I=I(randperm(N));

to rearrange the subset indices to the grouped variables; the randperm(N) call simply generates the right length of vector subscripts in a random order; still need the actual subscripts from the matching operation of finding the ones in the given group.

With those corrections, it should work as is...cleanest would be to copy and paste the actual code instead of retyping; then you also get indenting and comments and all... :)

I did make the above correction in the Answer code...sorry I missed that first time; glad there was another issue that you reposted so had the chance to see it! :)

NotA_Programmer 2022 年 5 月 10 日

-cleanest would be to copy and paste the actual code instead of retyping; then you also get indenting and comments and all... :)

Yeah, I should have done it in tha way.

Thanks @dpb for your help!

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Splitting a matrix according to there labels

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