nanmean different outcomes?

2 ビュー (過去 30 日間)
JamJan
JamJan 2019 年 3 月 15 日
コメント済み: JamJan 2019 年 3 月 15 日
Hi,
I'm doing some analysis on data that has the following time intervals, however when I calculate the mean on two different ways (just for sanity) I ran into the following problem.
I have two arrays:
A = [NaN 1,57031250000000 1,60156250000000 1,71093750000000 1,65234375000000 1,51367187500000 1,49804687500000 1,49414062500000 1,59179687500000 1,41015625000000];
nanmean(A) = 1.5603
B = [NaN 1,64648437500000 0,796875000000000 0,667968750000000 1,65820312500000 1,69140625000000 1,39062500000000 1,66015625000000 1,40039062500000 1,57226562500000 1,65429687500000];
nanmean(B) = 1.4139
Now I have put them behind each other in a [A B] way.
C = [A B];
nanmean(C) = 1.4832
However this mean is not the same as the mean of A and B done separately.
(1.5603 + 1.4139)/2 = 1.4871
How is this possible and why is it different? Is this because of the NaNs?

サインインしてこの質問に回答する。

採用された回答

Alex Mcaulley
Alex Mcaulley 2019 年 3 月 15 日
Your two arrays don't have the same number of non nan elements (10 vs 11), then the mean is
(1.5603*sum(~isnan(A)) + 1.4139*sum(~isnan(B)))/(sum(~isnan(A))+sum(~isnan(B))) = 1.4832
  1 件のコメント
JamJan
JamJan 2019 年 3 月 15 日
Thank you, indeed very logical!

サインインしてコメントする。

その他の回答 (0 件)

カテゴリ

Help Center および File ExchangeNaNs についてさらに検索

タグ

Community Treasure Hunt

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

Start Hunting!

Translated by