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I have a list (intensityList) with 1354 numbers. they range from 25941.9 to 1639980000.0, so there is a very big difference, and I expect that most points are closer to 1639980000.0 than 25941.9. When I make a histogram out of this

plt.title('Amount of features per intensity')

it puts almost all data in one bar and messes up the x-axis. It works with a test set (random normal numbers) so I'm pretty sure it has to do with the broad range. How can I deal with a dataset like this?

edit: The data is likely very skewed, the standard deviation is much larger than the mean. (mean = 6501401.54114, standard devaition = 49423145.7749)

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up vote 2 down vote accepted

Quite obvious answer, shows that it helps when you write a question down.. I logged the values and it's all dandy

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I was just going to say this! – samb8s Feb 9 '12 at 18:43

you can increase the number of bins or keep only the values in a range you find interesting.

intensityList = intensityList[intensityList < maxVal]
intensityList = intensityList[intensityList > minVal]
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Was thinking of that too, but the bins didn't help and I didn't want to loose data. Using the log works better for me, thanks for the answer though – Niek de Klein Feb 9 '12 at 17:21

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