How to calculate Average without receiving 'Inf' as a result.

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Mahnoor
Mahnoor am 9 Okt. 2024
Kommentiert: Star Strider am 9 Okt. 2024
I am trying to find the average efficiency of this 1 column in MATLAB. I have tried N = mean(EstimatedEff,"omitnan") but get 'Inf' asa result. How can I change my code so I recieve a numerical figure for average efficiency? I have attached the Excel sheet below for reference and Using 2020b. Thankyou!

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Sameer
Sameer am 9 Okt. 2024
Bearbeitet: Sameer am 9 Okt. 2024
Hi Mahnoor
It could be due to the presence of Inf values in your "EstimatedEff" array. The "omitnan" option only ignores NaN values, not Inf. To handle Inf values, you need to remove or replace them before calculating the mean.
You can modify the code as follows:
% Remove Inf values
EstimatedEff = EstimatedEff(~isinf(EstimatedEff));
% Calculate the mean, omitting NaN values
N = mean(EstimatedEff, 'omitnan');
Please refer to the below MathWorks documentation link:
https://www.mathworks.com/help/releases/R2020b/matlab/ref/isinf.html
Hope this helps!
  1 Kommentar
Steven Lord
Steven Lord am 9 Okt. 2024
Ran in:
That would work if EstimatedEff is a vector or if you want the mean over the whole array. I'd probably use standardizeMissing to replace the Inf values with NaN and then use mean with 'omitnan' on that array (including specifying a dimension if necessary.)
EstimatedEff = randi(10, 5, 5);
nonfinitelocations = randperm(25, 10);
EstimatedEff(nonfinitelocations(1:4)) = NaN;
EstimatedEff(nonfinitelocations(5:7)) = Inf;
EstimatedEff(nonfinitelocations(8:10)) = -Inf
EstimatedEff = 5×5
6 9 7 10 9 6 5 NaN 10 1 NaN 5 -Inf Inf 8 Inf NaN 1 -Inf NaN 10 -Inf 1 4 Inf
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Replace all the Inf and -Inf values with NaN
E = standardizeMissing(EstimatedEff, [Inf, -Inf])
E = 5×5
6 9 7 10 9 6 5 NaN 10 1 NaN 5 NaN NaN 8 NaN NaN 1 NaN NaN 10 NaN 1 4 NaN
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mean(E, "omitnan")
ans = 1×5
7.3333 6.3333 3.0000 8.0000 6.0000
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mean(E, 2, "omitnan")
ans = 5×1
8.2000 5.5000 6.5000 1.0000 5.0000
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mean(E, "all", "omitnan")
ans = 6.1333

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Weitere Antworten (2)

Star Strider
Star Strider am 9 Okt. 2024
Ran in:
Uz = unzip('Matlab Copy.zip')
Uz = 1x1 cell array
{'Matlab Copy.csv'}
T1 = readtable(Uz{1}, 'VariableNamingRule','preserve')
T1 = 674835x1 table
Estimated Eff. ______________ 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0 0
NonZeros = nnz(T1{:,1})
NonZeros = 580446
NrInf = nnz(isinf(T1{:,1}))
NrInf = 29
NrNaN = nnz(isnan(T1{:,1}))
NrNaN = 0
NrFinite = nnz(isfinite(T1{:,1}))
NrFinite = 674806
mean_of_finite_values = mean(T1{isfinite(T1{:,1}),:})
mean_of_finite_values = 0.8364
locs = isfinite(T1{:,1}); % Alternative Approach
NrNonfinite = nnz(~locs)
NrNonfinite = 29
mean_of_finite_values = mean(T1{locs,:})
mean_of_finite_values = 0.8364
Of the 674835 values in the file, there are 0 NaN values, 29 are Inf and 674506 are finite.
.
  1 Kommentar
Star Strider
Star Strider am 9 Okt. 2024
Using the 'omitnan' flag is absolutely pointless in this instance!
The reason is that there are no NaN values at all, only Inf and finite values!

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Aquatris
Aquatris am 9 Okt. 2024
Ran in:
Here is one way:
% create dummy matrix
A = rand(100,1);
A([5 10 24 55 23 60]) = inf;
A([12 56 29 35]) = nan;
mean(A) % simple mean
ans = NaN
mean(A,'omitnan') % omitting nan s
ans = Inf
mean(A(~isinf(A)),'omitnan') % omitting nan and inf -inf
ans = 0.4871

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