7

If I have a list that varies in length each time and I want to sort it from lowest to highest, how would I do that?

If I have: [-5, -23, 5, 0, 23, -6, 23, 67]

I want: [-23, -6, -5, 0, 5, 23, 23, 67]

I start with this:

data_list = [-5, -23, 5, 0, 23, -6, 23, 67]

new_list = []

minimum = data_list[0]  # arbitrary number in list 

for x in data_list: 
  if x < minimum:
    minimum = value
    new_list.append(i)

BUT this only goes through once and I get:

new_list = [-23] 

This is where I get stuck.

How do I keep looping through until the len(new_list) = len(data_list) (i.e. all the numbers are in the new list) with everything sorted without using the built in max, min, sort functions? I'm not sure if it's necessary to create a new list either.

  • 4
    I'm curious about your constraints - why? Also, somewhat related because of that - is this homework? – Levon Aug 15 '12 at 5:18
  • 1
    standard list sorting? – Andreas Jung Aug 15 '12 at 5:20
  • Yes, this is for a fun class. I know I can do this with the sort function but looking to do this an alternate way. – user1589244 Aug 15 '12 at 5:22
  • There's lots of ways to sort, but only a handful of them are remotely efficient, and even using a good algorithm will be ~100x slower than the built in sort – John La Rooy Aug 15 '12 at 5:24
  • 2
    I don't think the intention of this exercise is to be efficient but to learn the painful/long way. – user1589244 Aug 15 '12 at 5:27

17 Answers 17

25

I guess you are trying to do something like this:

data_list = [-5, -23, 5, 0, 23, -6, 23, 67]
new_list = []

while data_list:
    minimum = data_list[0]  # arbitrary number in list 
    for x in data_list: 
        if x < minimum:
            minimum = x
    new_list.append(minimum)
    data_list.remove(minimum)    

print new_list
  • Sorry to bother, I have a another question about this solution. It worked when I input in interactive mode. I tried again and now I get an error: >>> data_list = [-5, -23, 5, 0, 23, -6, 23, 67] >>> new_list = [ ] >>> while data_list: ... minimum = data_list[0] ... for x in data_list: ... if x < minimum: ... minimum = x ... new_list.append(minimum) ... data_list.remove(minimum) ... Traceback (most recent call last): File "<stdin>", line 7, in <module> ValueError: list.remove(x): x not in list >>> – user1589244 Aug 15 '12 at 6:24
  • @user1589244, make sure you get the indenting exactly right. You can copy and paste it from here – John La Rooy Aug 15 '12 at 6:31
  • I wish I had your brain. Yes, it looks like I indented the new_list.append and data_list.remove with the if statement instead of the for statement when I did it the second time around. That must be it. Thanks so much @gnibbler. – user1589244 Aug 15 '12 at 6:34
  • @gnibbler: Could you please explain the purpose of the "while data_list:" statement? I'm having trouble figuring out your code. An explanation would be awesome! Thanks – Shankar Kumar Aug 11 '13 at 4:18
  • @ShankarKumar, When data_list is empty, while data_list: will stop looping – John La Rooy Aug 11 '13 at 5:03
5

Here is something that i have been trying.(Insertion sort- not the best way to sort but does the work)

def sort(list):
    for index in range(1,len(list)):
        value = list[index]
        i = index-1
        while i>=0:
            if value < list[i]:
                list[i+1] = list[i]
                list[i] = value
                i -= 1
            else:
                break
5
l = [64, 25, 12, 22, 11, 1,2,44,3,122, 23, 34]

for i in range(len(l)):
    for j in range(i + 1, len(l)):

        if l[i] > l[j]:
           l[i], l[j] = l[j], l[i]

print l

Output:

[1, 2, 3, 11, 12, 22, 23, 25, 34, 44, 64, 122]
4

This strictly follows your requirements not to use sort(), min(), max() but also uses Python best practice by not re-inventing the wheel.

data_list = [-5, -23, 5, 0, 23, -6, 23, 67]
import heapq
heapq.heapify(data_list)
new_list = []
while data_list:
    new_list.append(heapq.heappop(data_list)))

I suggest having a look in the Python library for heapq.py to see how it works. Heapsort is quite a fun sorting algorithm as it lets you 'sort' an infinite stream, i.e. you can quickly get at the currently smallest item but also efficiently add new items to the the data to be sorted.

1
def bubble_sort(seq):
    """Inefficiently sort the mutable sequence (list) in place.
       seq MUST BE A MUTABLE SEQUENCE.

       As with list.sort() and random.shuffle this does NOT return 
    """
    changed = True
    while changed:
        changed = False
        for i in xrange(len(seq) - 1):
            if seq[i] > seq[i+1]:
                seq[i], seq[i+1] = seq[i+1], seq[i]
                changed = True
    return None

if __name__ == "__main__":
   """Sample usage and simple test suite"""

   from random import shuffle

   testset = range(100)
   testcase = testset[:] # make a copy
   shuffle(testcase)
   assert testcase != testset  # we've shuffled it
   bubble_sort(testcase)
   assert testcase == testset  # we've unshuffled it back into a copy

From : http://rosettacode.org/wiki/Bubble_Sort#Python

  • I haven't learned shuffle yet :( – user1589244 Aug 15 '12 at 5:23
  • it just randomizes the array ... so instead of shuffle and all that just pass in your list to tje bubble_sort function – Joran Beasley Aug 15 '12 at 5:25
  • bubble_sort(data_list);print data_list – Joran Beasley Aug 15 '12 at 5:26
  • thanks but am not allowed to use bubble_sort either – user1589244 Aug 15 '12 at 5:29
  • oh well what are you supposed to use..? just selection?? – Joran Beasley Aug 15 '12 at 5:30
1

try sorting list , char have the ascii code, the same can be used for sorting the list of char.

aw=[1,2,2,1,1,3,5,342,345,56,2,35,436,6,576,54,76,47,658,8758,87,878]
for i in range(aw.__len__()):
    for j in range(aw.__len__()):
        if aw[i] < aw[j] :aw[i],aw[j]=aw[j],aw[i]
1
data = [3, 1, 5, 2, 4]
n = len(data)
    for i in range(n):
        for j in range(1,n):
            if data[j-1] > data[j]:
                (data[j-1], data[j]) = (data[j], data[j-1])
    print(data)
  • 2
    While this code may solve the question, including an explanation of how and why this solves the problem would really help to improve the quality of your post, and probably result in more up-votes. Remember that you are answering the question for readers in the future, not just the person asking now. Please edit your answer to add explanations and give an indication of what limitations and assumptions apply. – Pika the Wizard of the Whales Mar 29 at 5:22
0

Here is a not very efficient sorting algorithm :)

>>> data_list = [-5, -23, 5, 0, 23, -6, 23, 67]
>>> from itertools import permutations
>>> for p in permutations(data_list):
...     if all(i<=j for i,j in zip(p,p[1:])):
...         print p
...         break
... 
(-23, -6, -5, 0, 5, 23, 23, 67)
  • thanks for this! i'm very new to python and intertools and permutations are also things i've found when searching google but i can't use those either. – user1589244 Aug 15 '12 at 5:31
0

My method-

s = [-5, -23, 5, 0, 23, -6, 23, 67]
nl = []
for i in range(len(s)):
    a = min(s)
    nl.append(a)
    s.remove(a)

print nl
  • I presume the question's purpose was learning something about sorting algorithms. This code is very inefficient: min(s) would scan all the elements for s, and as well s.remove, assuming it's an array, would take O(n) to remove the element. This for every element in s. You end up with a quadratic sorting algorithm. – Pietro Saccardi Sep 12 '15 at 22:39
  • 1
    There's also the issue that the OP explicitly said (right in the title) order a list ... without ... min ... function – Foon Sep 13 '15 at 13:14
0

Here's a more readable example of an in-place Insertion sort algorithm.

a = [3, 1, 5, 2, 4]

for i in a[1:]:
    j = a.index(i)
    while j > 0 and a[j-1] > a[j]:
        a[j], a[j-1] = a[j-1], a[j]
        j = j - 1
0
def my_sort(lst):
    a = []
    for i in range(len(lst)):
        a.append(min(lst))
        lst.remove(min(lst))
    return a

def my_revers_sort(lst):#in revers!!!!!
    a = []
    for i in range(len(lst)):
        a.append(max(lst))
        lst.remove(max(lst))
    return a
0

You could do it easily by using min() function

`def asc(a):
    b=[]
    l=len(a)
    for i in range(l):
        x=min(a)
        b.append(x)
        a.remove(x)
    return b
 print asc([2,5,8,7,44,54,23])`
0

Solution

mylist = [1, 6, 7, 8, 1, 10, 15, 9]
print(mylist)
n = len(mylist)
for i in range(n):
    for j in range(1, n-i):
        if mylist[j-1] > mylist[j]:
             (mylist[j-1], mylist[j]) = (mylist[j], mylist[j-1])
print(mylist)
0
# Your current setup
data_list = [-5, -23, 5, 0, 23, -6, 23, 67]
new_list  = []

# Sort function
for i in data_list:
    new_list = [ x for x in new_list if i > x ] + [i] + [ x for x in new_list if i <= x ]
  • 1
    While this code may answer the question, providing additional context regarding why and/or how this code answers the question improves its long-term value. – Nic3500 Jul 10 at 23:07
  • Add explanation to your logic. – shaik moeed Sep 16 at 8:40
0
n = int(input("Input list lenght: "))
lista = []
for i in range (1,n+1):
    print ("A[",i,"]=")
    ele = int(input())
    lista.append(ele)
print("The list is: ",lista)
invers = True
while invers == True:
    invers = False 
    for i in range (n-1):
        if lista[i]>lista[i+1]:
            c=lista[i+1]
            lista[i+1]=lista[i]
            lista[i]=c
            invers = True
print("The sorted list is: ",lista)
New contributor
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-1

How do I keep looping through until the len(new_list) = len(data_list)

while len(new_list) != len(data_list):
    # ...

Maybe like this?

And no, it’s not necessary to create a new list; most sorting algorithms work by changing the list in place.

What you probably trying to do is Selection sort with a separate list. See the Wikipedia article for more information about that sorting algorithm and you’ll see how it works with a single list, and how efficient it is (spoiler: it isn’t).

  • Actually, the original code won't do anything close to the selection sort. It does not find the minimum value in the list, it finds the first value in the list which is less than the value of the minimum variable. – penartur Aug 15 '12 at 5:24
  • Oh this is helpful. But here's my follow-up question - how do I go through the list again so it doesn't give me the same minimum? I probably have to remove it from data_list? – user1589244 Aug 15 '12 at 5:25
  • You have to remember which you already sorted, which is also something you get from changing the list. By remembering that everything before index i is already sorted, you only need to look at those elements above that. – poke Aug 15 '12 at 5:27
  • @penartur I was obviously reading more than there was ;) Changed my answer to reflect that belief. – poke Aug 15 '12 at 5:29
-3
def getIndexOfMaximum(list1):
    index = 0
    emptyList = []
    value = list1[0]
    c = 0
    while (c == 0):
        for cell in list1:
            index += 1
            if (cell >= value):
                value = cell
                hold = index -1
            if (len(list1) == index):
                emptyList += [value]
                del list1[hold]
                index = 0
                value = 0
                if (len(list1) == 1):
                    newList = emptyList + list1
                    del list1[index]
                    c = 1
    return newList
print(getIndexOfMaximum([2,5,8,7,44,54,23]))

#TRY THIS!!!
  • Welcome to Stack Overflow! Please edit your answer to include more information. Code-only and "try this" answers are discouraged because they contain no searchable content, and don't explain why someone should "try this". – BrokenBinary Nov 1 '16 at 22:24

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