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I'm wondering how to calculate precision and recall measures for multiclass multilabel classification, i.e. classification where there are more than two labels, and where each instance can have multiple labels?



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Well, false would be if you didn't classified correctly, and true where it was correctly classified. Why do you worry about multiple labels? –  Thomas Jungblut Jan 25 '12 at 17:10
+1 What's up with the downvotes without comments? I had the same question and I'm glad I found this page. @ThomasJungblut I understand how to calculate the precision for a given class, e.g. class A, but how should I calculate the precision for all classes? Is it an arithmetic mean of the precision for each class? –  mehaase May 13 '12 at 23:41
I found a similar question, this might be a duplicate: stackoverflow.com/questions/3856013/… –  mehaase May 13 '12 at 23:43
This question appears to be off-topic because it asks about the textbook formula and not programming it and so belongs on CrossValidated. In fact, it was already answered well a couple days before this question was asked: stats.stackexchange.com/questions/21551/… –  demongolem May 9 at 17:08

1 Answer 1

The answer is that you have to compute precision and recall for each class, then average them together. E.g. if you classes A, B, and C, then your precision is:

(precision(A) + precision(B) + precision(C)) / 3

Same for recall.

I'm no expert, but this is what I have determined based on the following sources:

https://list.scms.waikato.ac.nz/pipermail/wekalist/2011-March/051575.html http://stats.stackexchange.com/questions/21551/how-to-compute-precision-recall-for-multiclass-multilabel-classification

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If your data has unbalanced number of labels, this averaging may not reflect the real performance. –  tashuhka Aug 13 at 14:25

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