How do I prepend an integer to the beginning of a list?
[1, 2, 3] ⟶ [42, 1, 2, 3]
10 Answers
>>> x = 42
>>> xs = [1, 2, 3]
>>> xs.insert(0, x)
>>> xs
[42, 1, 2, 3]
How it works:
list.insert(index, value)
Insert an item at a given position. The first argument is the index of the element before which to insert, so xs.insert(0, x) inserts at the front of the list, and xs.insert(len(xs), x) is equivalent to xs.append(x). Negative values are treated as being relative to the end of the list.
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28The most efficient approach. Faster than [x]+[y]. See solutions here: stackoverflow.com/questions/8537916/… Oct 19, 2015 at 21:41
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1@BlackJack The question is about how to append integer to beginning of list. Whatever he describe that is not the right thing to follow. So why to guide him to take the wrong path? when there are better thing he can do for his requirement.– KousikOct 19, 2016 at 8:19
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1In that case question title should be different. Anyway there is no point of arguing, as the point is clear for both of us. Anyway thank you for pointing out. :)– KousikOct 19, 2016 at 13:00
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use append(), then reverse() function, as insert(0,val) function will take more time,because it will involve shifting of every element. i have experienced a time out issue due to insert Feb 5, 2021 at 14:09
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>>> x = 42
>>> xs = [1, 2, 3]
>>> [x] + xs
[42, 1, 2, 3]
Note: don't use list as a variable name.
answered Jul 28, 2013 at 17:55
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401I just did some benchmarking.
li.insert(0, a)is around 5x faster thanli = [a] + li. Keep this in mind if you are doing this many times. May 26, 2015 at 8:09 -
101@MarcelPfeiffer It should be noted that
li.insert(0, a)is mutatingli.li = [a] + liis creating a new instance will all of the values. This is an important distinction if other things have a reference to the list instance. May 31, 2015 at 20:48 -
6It would be nice for python to add a list.push_front(item) function. This will be obvious and less error-prone. Sep 18, 2016 at 3:21
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23@KeminZhou I'd prefer the name "prepend" as it follows naturally from "append" as "push_front" follows naturally from "push_back". Nov 15, 2016 at 0:29
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1
Note that if you are trying to do that operation often, especially in loops, a list is the wrong data structure.
Lists are not optimized for modifications at the front, and somelist.insert(0, something) is an O(n) operation.
somelist.pop(0) and del somelist[0] are also O(n) operations.
The correct data structure to use is a deque from the collections module. deques expose an interface that is similar to those of lists, but are optimized for modifications from both endpoints. They have an appendleft method for insertions at the front.
Demo:
In [1]: lst = [0]*1000
In [2]: timeit -n1000 lst.insert(0, 1)
1000 loops, best of 3: 794 ns per loop
In [3]: from collections import deque
In [4]: deq = deque([0]*1000)
In [5]: timeit -n1000 deq.appendleft(1)
1000 loops, best of 3: 73 ns per loop
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6Sometimes switching structures isn't a thing you can do easily, and if you need to append a bunch of stuff to the front, you can call .reverse then add all the stuff to the end, then call reverse again. You'd get two O(n) operations but then use the O(1) adds of list.– TatarizeOct 1, 2018 at 20:22
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1in terms of computation time, is
new_list = [x] + your_listless efficient thanyour_list.insert(x)? Jul 21, 2021 at 17:16 -
That's not the question though. Keep in mind, sometimes you didn't create the list and it came from some other team/library where you'd like to append in the front. There are times when you have no control over externalities. :-)– NeilOct 2, 2022 at 23:57
Another way of doing the same,
list[0:0] = [a]
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32You don't need the first 0. The colon already say that's before the start -- my_list[:0]=[a] does it. Sep 14, 2014 at 13:39
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4This is interesting to know about, but I would avoid this because I think it might cause confusion.– xjclFeb 5, 2019 at 20:06
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2This is not elegant, it's unnecessarily confusing and difficult to read.– pigi5Nov 23, 2021 at 7:14
You can use Unpack list:
a = 5
li = [1,2,3]
li = [a, *li]
=> [5, 1, 2, 3]
Based on some (minimal) benchmarks using the timeit module it seems that the following has similar if not better performance than the accepted answer
new_lst = [a, *lst]
As with [a] + list this will create a new list and not mutate lst.
If your intention is to mutate the list then use lst.insert(0, a).
list_1.insert(0,ur_data)
make sure that ur_data is of string type
so if u have data= int(5) convert it to ur_data = str(data)
Alternative:
>>> from collections import deque
>>> my_list = deque()
>>> my_list.append(1) # append right
>>> my_list.append(2) # append right
>>> my_list.append(3) # append right
>>> my_list.appendleft(100) # append left
>>> my_list
deque([100, 1, 2, 3])
>>> my_list[0]
100
[NOTE]:
collections.deque is faster than Python pure list in a loop Relevant-Post.
answered Nov 21, 2019 at 11:41
None of these worked for me. I converted the first element to be part of a series (a single element series), and converted the second element also to be a series, and used append function.
l = ((pd.Series(<first element>)).append(pd.Series(<list of other elements>))).tolist()
New lists can be made by simply adding lists together.
list1 = ['value1','value2','value3']
list2 = ['value0']
newlist=list2+list1
print(newlist)
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3This is already covered by the top rated answer. Please explain how this adds new information to the issue. Apr 12, 2018 at 7:56
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4
new_list = [x] + your_listless efficient thanyour_list.insert(x)?