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I have a feeling that there is a simple answer to this question, but I am having trouble getting the answer without having to write many many lines of code. I was hoping someone may give me something that will make my life easier in regards to list comprehensions in python.

What I have is this:

highest_peak = sorted([(self.Y[x]-self.background_model[x]) for x in peaks_index_list])[0]

How do I obtain the index (x) of the highest_peak from the peaks_index_list where this occurs?

index_of_highest_peak = sorted(???)[0]
index_of_second_highest_peak = sorted(???)[1]

Thanks for any help.

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4 Answers

up vote 2 down vote accepted

You should be sorting a list of tuples of the form (value,index) --

info = sorted((self.Y[x]-self.background_model[x],x) for x in peaks_index_list)

Now your index of the highest peak is:

info[-1][1]

Or you can unpack it a little more nicely:

highest_peak_value,highest_peak_index = info[-1]

(highest peak is last in the sorted list since we didn't specify reverse=True)

The second highest peak index is:

info[-2][1]

and so on.

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Wonderful! I always forget about tuples and the idea of adding two variables (value, index) to iterate over in loops (forgot what that's called). This is a good amount of information and extremely useful, thank you very much. –  chase Feb 15 '13 at 16:49
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(note: edited based on comments)

Add the index to the objects being sorted:

highest_peak, index = sorted([(self.Y[x]-self.background_model[x], x)
    for x in peaks_index_list])[0]

(originally I suggested using enumerate(), which is great when you want the index of the elements you are enumerating. In this case, the peaks_index_list is already the index the poster was after.)

highest_peak, index = sorted([(self.Y[x]-self.background_model[x], i)
    for i, x in enumerate(peaks_index_list]))[0]
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OP wants the index x, not index i (If I understand corectly) –  mgilson Feb 15 '13 at 16:43
    
Yes, I wanted the x value, however this is still useful as it calls attention to enumerate() in general, which may be helpful to anyone who Google's an issue similar to this. Thanks, tdelaney. –  chase Feb 15 '13 at 16:54
    
oops, I changed it while you were typing! I think I'll add the old one back. –  tdelaney Feb 15 '13 at 16:55
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I take it the peak height is self.Y[i] - self.background_model[i] for a peak index i? If all you want is the index of the highest peak:

max(peaks_index_list, key=lambda i: self.Y[i] - self.background_model[i])

Likewise, if you really want the sorted list, use the above key to sort peaks_index_list.

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this is true, but it won't give OP the second largest -- Although you could accomplish that by using sorted instead of max I suppose. –  mgilson Feb 15 '13 at 16:49
    
@mgilson That's what I had in mind with the second part of my answer. Starting out with a list of indices is a little cumbersome, but based on OP's literal question it wasn't obvious he needed a list of peak heights themselves. –  kojiro Feb 15 '13 at 18:00
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If you use numpy you can

import numpy as np
highest_peak = np.asarray(highest_peak)

max_index = highest_peak.argmax()
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Thank you for the answer, this is a very understandable and concise code piece. I think mgilson has a more versatile form for arriving to get the second and 3rd ranked items, but this is still very useful. –  chase Feb 15 '13 at 16:51
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