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I have a nested list which looks like this.

[[0.0, 1.4142135623730951, 2.8284271247461903, 2.23606797749979],
 [1.4142135623730951, 0.0, 1.4142135623730951, 1.0],
 [2.8284271247461903, 1.4142135623730951, 0.0, 1.0],
 [2.23606797749979, 1.0, 1.0, 0.0]]

I want to find the minimum element in every sub list. Thanks for the help!

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  • 2
    Well, what have you tried? – pstatix Dec 17 '17 at 3:22
  • Honestly I tried googling this answer before before posting. I am not sure why people are giving negative feedback to the question. Did I do something wrong? – Ashley Larson Dec 17 '17 at 3:36
  • @AshleyLarson Surely you have tried something? – RoadRunner Dec 17 '17 at 3:40
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    All your numbers are square roots of integers, the main diagonal is all zeros, and the matrix is symmetric. Why? What problem are you really solving? XY Problem. – Stefan Pochmann Dec 17 '17 at 3:53
  • I am trying to solve the travelling salesman problem. The nested list is the distance matrix for 4 different cities. So choosing zeros would not make sense. So I replaced all the zeros by a very high number and now the next problem I am stuck is about not repeating the indexes. – Ashley Larson Dec 17 '17 at 4:00
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Well because others are already posting answers, you can store the minimum value of each sublist in a list using what is called list comprehension like so:

new_s = [min(x) for x in s]

Python has a built-in min() function that takes an iterable (i.e. one of your sublists) and finds the minimum value. By using list comprehension you build a list of those values. It can be read as:

"A list of minimum values for each x (sublist) in s (parent list)"

Edit: For commented use:

new_s = [sorted(x)[1] for x in s]

Can be read as:

"A list of the 2nd element in the sorted array of x for each x (sublist) in s (parent list)"

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  • If I need not the lowest element but the second lowest element. I tried something like new_s=[min(x) for x in s if min(x)>0] but it gave the same answer. – Ashley Larson Dec 17 '17 at 3:48
  • @AshleyLarson Please see my edit. However, you really should have updated your question if your true goal was to get the 2nd to lowest, not the lowest. – pstatix Dec 17 '17 at 22:58
  • I replaced all the zeros with a very large number and used your method then. It worked fine. – Ashley Larson Dec 17 '17 at 23:28
  • @AshleyLarson But do you understand what has happened. That is more important than "it worked fine" – pstatix Dec 17 '17 at 23:34
  • Yep you created a sorted list and then chose the element with index 1. Thanks for the answer! – Ashley Larson Dec 19 '17 at 0:19
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You can use map, which is slightly more efficient than list comprehension when utilizing a builtin function, in this case min:

s = [[0.0, 1.4142135623730951, 2.8284271247461903, 2.23606797749979],
[1.4142135623730951, 0.0, 1.4142135623730951, 1.0],
[2.8284271247461903, 1.4142135623730951, 0.0, 1.0],
[2.23606797749979, 1.0, 1.0, 0.0]]
new_s = list(map(min, s))

Output:

[0.0, 0.0, 0.0, 0.0]

An alternative list comprehension as @pstatix mentioned:

new_s = [min(i) for i in s]
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  • That does not output that. In fact, new_s will store a map object. You have to convert the map to a list by setting new_s = list(map(min, s)). – pstatix Dec 17 '17 at 3:24
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    Better yet is list comprehension: new_s = [min(x) for x in s] – pstatix Dec 17 '17 at 3:24
  • It's self explanatory, isn't it? – P.hunter Dec 17 '17 at 3:42
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    For something as simple as this, both are pythonic solutions. – RoadRunner Dec 17 '17 at 3:45
  • @StefanPochmann one would declare an empty list, and then followed by a for loop and a operation to append to that list with min() or do the stuff within the [] which increases the readability, I'd choose latter ,for you i don't know. – P.hunter Dec 17 '17 at 3:47

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