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I am having hard time to figure out how to find min from a list for example

somelist = [1,12,2,53,23,6,17]

how can I find min and max of this list with defining (def) a function

I do not want to use built-in function min

0
66
from __future__ import division

somelist =  [1,12,2,53,23,6,17] 
max_value = max(somelist)
min_value = min(somelist)
avg_value = 0 if len(somelist) == 0 else sum(somelist)/len(somelist)

If you want to manually find the minimum as a function:

somelist =  [1,12,2,53,23,6,17] 

def my_min_function(somelist):
    min_value = None
    for value in somelist:
        if not min_value:
            min_value = value
        elif value < min_value:
            min_value = value
    return min_value

Python 3.4 introduced the statistics package, which provides mean and additional stats:

from statistics import mean, median

somelist =  [1,12,2,53,23,6,17]
avg_value = mean(somelist)
median_value = median(somelist)
8
  • 3
    would like to point out that that average value is susceptible to division by 0 errors.
    – rtpg
    Nov 19 '14 at 4:58
  • yes, but I want to find like in array list. What I mean by that is set for min = array[0] then, for i in array, if i =< 0 print min, I need to know how can find min and max this way, I tried but it doesn't work, not sure why
    – mtkilic
    Nov 19 '14 at 5:02
  • I'm not sure what you want. Do you want the index of the minimum value?
    – monkut
    Nov 19 '14 at 5:06
  • 3
    I think it's best if you figure it out and write it yourself. If you have problems understanding please ask.
    – monkut
    Nov 19 '14 at 5:23
  • 1
    So 4 x list traversals to get all of those values... Shouldn't there be a one liner for this stuff in python?
    – niken
    Mar 21 '17 at 3:20
5

Return min and max value in tuple:

def side_values(num_list):
    results_list = sorted(num_list)
    return results_list[0], results_list[-1]


somelist = side_values([1,12,2,53,23,6,17])
print(somelist)
3
  • 2
    This is the best way to find the min/max using built-ins. Sorting is O(nlogn), getting min/max is O(1)
    – Baldrickk
    Jan 16 '18 at 23:27
  • 8
    @Baldrick: Actually, min() and max() are O(n). So, sorting is slower.
    – Hinni
    Sep 26 '18 at 14:52
  • 2
    @Hinni after sorting min is at index 0 and max is at index length (or vice versa). Once sorted there is no need to use min() or max() to find those values.
    – Baldrickk
    Oct 1 '18 at 0:22
1

Only a teacher would ask you to do something silly like this. You could provide an expected answer. Or a unique solution, while the rest of the class will be (yawn) the same...

from operator import lt, gt
def ultimate (l,op,c=1,u=0):
    try:
        if op(l[c],l[u]): 
            u = c
        c += 1
        return ultimate(l,op,c,u)
    except IndexError:
        return l[u]
def minimum (l):
    return ultimate(l,lt)
def maximum (l):
    return ultimate(l,gt)

The solution is simple. Use this to set yourself apart from obvious choices.

0
list=[]
n = int(input("Enter the length of your list: "))
for i in range (1,n+1):
    a=int(input("Enter the %d number: " %i ))
    list.append(a)
min=list[0]
max=list[0]
for i in range(1,n):
    if max<list[i]:
        max=list[i]
    if min>list[i]:
        min=list[i]
print(" %d is the biggest number " %max)
print(" %d is the smallest number " %min)

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