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I have an 950000x1 array of values, for example [1e15 2.5e12 ...etc]. but when I do the following to get the average value, I get values as NaN.

avg=mean(g1)

I am not able to understand why I am getting this error.

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2 Answers 2

up vote 2 down vote accepted

The following code runs fine on my machine (Core i7, 16GB RAM, Linux Mint v12, Matlab 2012b):

T = 1e9;
Vec = ones(T, 1) * 1e200;
M = mean(Vec);

This suggests to me your array of values contains an NaN somewhere. Note, even if your array contained numbers larger than double floating point can handle (ie on the order of 1e320 or thereabouts), then the mean function will return Inf, not NaN.

Try any(isnan(Vec)) over your array. If it returns a 1, then you'll know it contains an NaN. If it does, then the following code will remove the NaNs.

Vec(isnan(Vec)) = [];

If you think this has resolved your query, then feel free to click the tick mark next to my answer. Cheers!

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no, I have searched well, there is no NaN –  Rohan Chakrabarty Nov 11 '12 at 4:30
    
@RohanChakrabarty Interesting. okay, next step, can you try running your code in debug mode. Specifically, try going line-by-line through the mean function (using f10 and f11 keys) and see where the NaN appears, then post the results in your question? You can initiate debug mode by setting a breakpoint in your code before the call to mean. –  Colin T Bowers Nov 11 '12 at 4:34
    
yes its returning a Nan, can you guide me on how to remove those values, i.e changing them to 0 –  Rohan Chakrabarty Nov 11 '12 at 4:38
    
@RohanChakrabarty I'll edit my answer to include code on how to remove NaNs. –  Colin T Bowers Nov 11 '12 at 4:40
    
thanks a lot!!! –  Rohan Chakrabarty Nov 11 '12 at 4:48

Instead of removing NaNs before querying the mean function, you can just use nanmean, which ignores NaN values when calcuting the mean:

nanmean:

y = nanmean(X) is the mean of X, computed after removing NaN values.

It also works on matrices, which does not work if you remove the NaNs.

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+1 very cool - I had no idea that function existed. –  Colin T Bowers Nov 13 '12 at 6:38

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