Effacer les filtres
Effacer les filtres

How to replace outliers with NaN

53 vues (au cours des 30 derniers jours)
012786534
012786534 le 22 Août 2019
Réponse apportée : Steven Lord le 22 Août 2019
Hello,
I am trying to replace values above the 99th percentile (outliers) by NaN for each group (for both group A and group B) in a table t.
group = repelem(['A' 'B'], 1000)';
val = repelem(1:1000, 2)';
t = table(group, val);
unique_gr = unique(t.group);
for g = 1:length(unique_gr)
sub = t(strcmp(t.group, unique_gr(g, 1)), :);
f = filloutliers(sub.val, 'NaN', 'percentiles', [0 99])
end
Ideas ? Please note that I do not have any toolboxes.
  2 commentaires
Walter Roberson
Walter Roberson le 22 Août 2019
Use unique with three outputs and iterate through the group numbers,
[unique_gr, ~, groupnum] = unique(t.group);
for g = 1 : size(unique_gr,1)
mask = groupnum == g;
t(mask,:) = filloutliers(t(mask,:), nan, 'percentiles', [0 99]);
end
012786534
012786534 le 22 Août 2019
Thank you Walter, work like a charm

Connectez-vous pour commenter.

Connectez-vous pour répondre à cette question.

Réponses (1)

Steven Lord
Steven Lord le 22 Août 2019
You can use grouptransform with an anonymous function that calls filloutliers. Let's use your sample data.
group = repelem(['A' 'B'], 1000)';
val = repelem(1:1000, 2)';
t = table(group, val);
This grouptransform call uses the variable group from the table t as the grouping variable. The anonymous function is the same as what you used and Walter each used in your for loops, though I chose to replace it with the double NaN rather than the text 'NaN' like Walter did.
t2 = grouptransform(t, 'group', ...
@(x) filloutliers(x, NaN, 'percentiles', [0 99]));
Let's see what values of val in t were replaced by NaN in t2.
t(isnan(t2.val), :)
By the way you built t, those do look like the top 1% of values for each group.

Catégories

En savoir plus sur Logical dans Help Center et File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by