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I have a 2D list = [[1, 8, 3], [4, 5, 6], [0, 5, 7]], and I want to delete columns in a loop.
For example, columns with index: 0(first) and 2(last) - - the result after deletions should be: [8, 5, 5].
There is a problem, because when I delete the 0th column, the size of the list is decreased to (0,1), and the 2nd index is out of scope.
What is the fastest method to delete columns in a loop without the out-of-scope problem?
For a better picture:
[[1, 8, 3],
[4, 5, 6],
[0, 5, 7]]
There is no such shortcut in python except for iterating over all the list items and removing those index values.
However, you can use pandas which is meant for some other purpose but will do the task.
import pandas as pd
s = [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
df = pd.DataFrame(s,columns=['val1','val2','val3'])
li = df.drop('val1',axis=1).values.tolist()
now li will look like this
[[8, 3], [5, 6], [5, 7]]
You can use numpy like this:
import numpy as np
my_list = np.array([[1, 8, 3], [4, 5, 6], [0, 5, 7]])
new_list = my_list[:, 1].copy()
print(new_list)
Output:
>>> [8, 5, 5]
Also numpy.delete(your_list, index, axis) is do the same job:
new_list = np.delete(my_list,(0, 2), axis=1)
(0, 2) is the indices of the columns 0 and 2
axis=1 says numpy that (0, 2) are columns indices not rows.
if you want to delete rows 0 and 2 you can change axis=1 to axis=0
Output is a little different:
>>> array([[8],
[5],
[5]])
For a pure python approach:
my_list = [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
new_list = [value[1] for value in my_list]
print(new_list)
Output:
>>> [8, 5, 5]
L is 2D list:
print(map(lambda x: x[1:], L))
data= [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
index_to_remove=[0,2]
[list(x) for x in zip(*[d for i,d in enumerate(zip(*data)) if i not in index_to_remove])]
If I understood your question correctly, you want to keep the middle element (index 1) of each list,in that case I would suggest creating a new list. There could be other better ways, for sure. But you could try this, if this works for you:
twoD_list = [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
def keep_col( twoD_list ,index_to_keep = 1):
final_list = []
for x in twoD_list:
final_list.append(x[index_to_keep])
return final_list
final_list = keep_col( twoD_list , 1)
Final output:
[8,5,5]
Assuming you always want only the second element and the inner lists always have at least two elements.
Pure python with list comprehension:
lst = [
[1, 8, 3],
[4, 5, 6],
[0, 5, 7],
]
filtered_lst = [
inner_element
for inner_lst in lst
for i, inner_element in enumerate(inner_lst)
if i == 1
]
print(filtered_lst)
# [8, 5, 5]
If you want you can the reassign the new list to the old variable:
lst = filtered_lst
The advantages of this method are:
no need to worry about the list being altered while you iterate it,
no need to import other libraries
list comprehension is built-in
list comprehension is often the fastest way to filter a list (see for example this article)
easier to read and maintain that other solutions (in my opinion).
Via itemgetter to extract the value at index 1.
from operator import itemgetter
my_list = [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
result = list(map(itemgetter(1), my_list))
try this
my_list = [[1, 8, 3], [4, 5, 6], [0, 5, 7]]
filter_col=[0,2]
col_length=3
my_list=[[x[i] for i in range(col_length) if i not in filter_col] for x in my_list]
u do not want to directly mutate the list that you are working on
this performs a list comprehension to create a new list from the existing list
edit:
just saw u wanted only a flat list
assuming u only want one element for the list u can use
my_list=[x[1] for x in my_list]
I have a list
a = [[1,2,3],[3,4,5]]
In every row at the end I want to insert values from a different list
b=[6,7]
I want the results to be
[[1,2,3,6],[3,4,5,7]]
I am using:
for i in range (0,len(a)):
for j in range (0,len(b)):
if j==0:
a[i].append(b[j])
m.append(a[i])
else:
a[i][3]=b[j]
m.append(a[i])
print m
But I am not getting the expected results. This gives me:
[[1, 2, 3, 7], [1, 2, 3, 7], [3, 4, 5, 7], [3, 4, 5, 7]]
Could someone help me out with the correct code snippet.
Here is a solution using zip:
result = [sublist_a + [el_b] for sublist_a, el_b in zip(a, b)]
which gives the expected output:
[[1, 2, 3, 6], [3, 4, 5, 7]]
Using zip
Ex:
a=[[1,2,3],[3,4,5]]
b=[6,7]
for i, j in zip(a,b):
i.append(j)
print(a)
Output:
[[1, 2, 3, 6], [3, 4, 5, 7]]
I'm very new to python (using python3) and I'm trying to add numbers from one list to another list. The only problem is that the second list is a list of lists. For example:
[[1, 2, 3], [4, 5, 6]]
What I want is to, say, add 1 to each item in the first list and 2 to each item in the second, returning something like this:
[[2, 3, 4], [6, 7, 8]]
I tried this:
original_lst = [[1, 2, 3], [4, 5, 6]]
trasposition_lst = [1, 2]
new_lst = [x+y for x,y in zip(original_lst, transposition_ls)]
print(new_lst)
When I do this, I get an error
can only concatenate list (not "int") to list
This leads me to believe that I can't operate in this way on the lists as long as they are nested within another list. I want to do this operation without flattening the nested list. Is there a solution?
One approach using enumerate
Demo:
l = [[1, 2, 3], [4, 5, 6]]
print( [[j+i for j in v] for i,v in enumerate(l, 1)] )
Output:
[[2, 3, 4], [6, 7, 8]]
You can use enumerate:
l = [[1, 2, 3], [4, 5, 6]]
new_l = [[c+i for c in a] for i, a in enumerate(l, 1)]
Output:
[[2, 3, 4], [6, 7, 8]]
Why don't use numpy instead?
import numpy as np
mat = np.array([[1, 2, 3], [4, 5, 6]])
mul = np.array([1,2])
m = np.ones(mat.shape)
res = (m.T *mul).T + mat
You were very close with you original method. Just fell one step short.
Small addition
original_lst = [[1, 2, 3], [4, 5, 6]]
transposition_lst = [1, 2]
new_lst = [[xx + y for xx in x] for x, y in zip(original_lst, transposition_lst)]
print(new_lst)
Output
[[2, 3, 4], [6, 7, 8]]
Reasoning
If you print your original zip it is easy to see the issue. Your original zip yielded this:
In:
original_lst = [[1, 2, 3], [4, 5, 6]]
transposition_lst = [1, 2]
for x,y in zip(original_lst, transposition_lst):
print(x, y)
Output
[1, 2, 3] 1
[4, 5, 6] 2
Now it is easy to see that you are trying to add an integer to a list (hence the error). Which python doesn't understand. if they were both integers it would add them or if they were both lists it would combine them.
To fix this you need to do one extra step with your code to add the integer to each value in the list. Hence the addition of the extra list comprehension in the solution above.
A different approach than numpy that could work even for lists of different lengths is
lst = [[1, 2, 3], [4, 5, 6, 7]]
c = [1, 2]
res = [[l + c[i] for l in lst[i]] for i in range(len(c))]
I'm trying to create a list of the index's of the minimums of each list in a list of list. I have only been able to find an answer for a simple list.
data = [[9 ,5, 2, 8, 6], [3, 5, 1, 9, 2], [2, 9, 3, 0, 5]]
My first idea was to use
.index(min(n))
but it doesn't work for a list of lists.
Expected result:
new_list = [2, 2, 3]
use a list comprehension:
[x.index(min(x)) for x in data]
>>>data = [[9 ,5, 2, 8, 6], [3, 5, 1, 9, 2], [2, 9, 3, 0, 5]]
>>>[x.index(min(x))+1 for x in data]
[3, 3, 4] //actual index (Your required output)
Try it:
result = []
for list in data:
result.append(list.index(min(list)))
At the same time, the answer what you want to get is [2,2,3], not [3,3,4]. Because the list's index start from 0. I hope this can help you.
I have a problem with "pairing" arrays into one (by index). Here is an example:
INPUT:
inputArray = [[0, 1, 2, 3, 4], [2, 3, 5, 7, 8], [9, 6, 1]]
EXPECTED OUTPUT:
outputArray =
[[0,2,9],
[1,3,6],
[2,5,1],
[3,7,chooseRandom()],
[4,8,chooseRandom()]]
Questions:
How to avoid "out of range" "index error" problem
How to write chooseRandom() to choose N neighbour
Answers:
[SOLVED] Solutions provided by #jonrsharpe & #Christian & #Decency works as
expected
Clarification:
By N neighbour I mean:
I'm using python but feel free to share your thoughts in any language.
I think the following will do what you want:
from itertools import izip_longest # 'zip_longest' in Python 3.x
from random import choice
# Step 1
outputArray = list(map(list, izip_longest(*inputArray)))
# Step 2
for index, arr in enumerate(outputArray):
if any(item is None for item in arr):
valid = [item for item in arr if item is not None]
outputArray[index] = [choice(valid) if item is None else item
for item in arr]
This has two steps:
Combine all sub-lists of inputArray to the length of the longest sub-array, filling with None: [[0, 2, 9], [1, 3, 6], [2, 5, 1], [3, 7, None], [4, 8, None]]; and
Work through the outputArray, finding any sub-lists that contain None and replacing the None with a random choice from the other items in the sub-list that aren't None.
Example output:
[[0, 2, 9], [1, 3, 6], [2, 5, 1], [3, 7, 3], [4, 8, 8]]
Here's my approach to the problem, in Python 3.4. I don't really know what you mean by "choose N neighbour" but it should be pretty easy to write that however you'd like in the context below.
inputArray = [[0, 1, 2, 3, 4], [2, 3, 5, 7, 8], [9, 6, 1]]
import itertools
zipped = itertools.zip_longest(*inputArray, fillvalue=None)
outputArray = [list(item) for item in zipped]
# [[0, 2, 9], [1, 3, 6], [2, 5, 1], [3, 7, None], [4, 8, None]]
# Now replace the sentinel None in our sublists
for sublist in outputArray:
for i, element in enumerate(sublist):
if element is None:
sublist[i] = chooseRandom()
print(outputArray)
Not the most pythonic way, but you could try using this code snipped, read the comments in the code below:
import itertools, random
inputArray = [ [0, 1, 2, 3, 4], [2, 3, 5, 7, 8], [9, 6, 1] ]
outputArray = []
max_length = max(len(e) for e in inputArray) # maximum length of the sublists in <inputArray>
i = 0 # to keep the index of sublists of <outputArray>
for j in range(max_length):
outputArray.append([]) # add new sublist
for e in inputArray: # iterate through each element of <inputArray>
try:
outputArray[i].append(e[j]) # try to append the number, if an exception is raised
# then the code in the <except> clause will be executed
except IndexError as e:
outputArray[i].append(random.randint(0, 10)) # add the random number
i += 1 # increase the sublists index on each iteration
print outputArray
# [[0, 2, 9], [1, 3, 6], [2, 5, 1], [3, 7, 3], [4, 8, 7]]
Note:
You may want to change the part
random.randint(0, 10)
to get the "N neighbour".
Let me know whether you like this code:
import random
array = [[0, 1, 2, 3, 4], [2, 3, 5, 7, 8], [9, 6, 1]]
max_len = max([len(l) for l in array])
dictionary = {}
for l in array:
for i in range(0,len(l)):
if dictionary.has_key(i):
dictionary[i].append(l[i])
else:
dictionary[i] = [l[i]]
for i in range(len(l),max_len):
if dictionary.has_key(i):
dictionary[i].append(random.choice(l))
else:
dictionary[i] = [random.choice(l)]
print dictionary.values()