That is the wrong mental model for using NumPy efficiently. NumPy arrays are stored in contiguous blocks of memory. To append rows or columns to an existing array, the entire array needs to be copied to a new block of memory, creating gaps for the new elements to be stored. This is very inefficient if done repeatedly.

Instead of appending rows, allocate a suitably sized array, and then assign to it row-by-row:

>>> import numpy as np

>>> a = np.zeros(shape=(3, 2))
>>> a
array([[ 0.,  0.],
       [ 0.,  0.],
       [ 0.,  0.]])

>>> a[0] = [1, 2]
>>> a[1] = [3, 4]
>>> a[2] = [5, 6]

>>> a
array([[ 1.,  2.],
       [ 3.,  4.],
       [ 5.,  6.]])
Answer from Stephen Simmons on Stack Overflow
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Python - Initialize empty array of given length - GeeksforGeeks
In this example, we are using Python List comprehension for 1D and 2D empty arrays. Using list comprehension like [[0] * 4 for i in range(3)] creates independent lists for each row.
Published: July 12, 2025
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1 of 16
612

That is the wrong mental model for using NumPy efficiently. NumPy arrays are stored in contiguous blocks of memory. To append rows or columns to an existing array, the entire array needs to be copied to a new block of memory, creating gaps for the new elements to be stored. This is very inefficient if done repeatedly.

Instead of appending rows, allocate a suitably sized array, and then assign to it row-by-row:

>>> import numpy as np

>>> a = np.zeros(shape=(3, 2))
>>> a
array([[ 0.,  0.],
       [ 0.,  0.],
       [ 0.,  0.]])

>>> a[0] = [1, 2]
>>> a[1] = [3, 4]
>>> a[2] = [5, 6]

>>> a
array([[ 1.,  2.],
       [ 3.,  4.],
       [ 5.,  6.]])
2 of 16
150

A NumPy array is a very different data structure from a list and is designed to be used in different ways. Your use of hstack is potentially very inefficient... every time you call it, all the data in the existing array is copied into a new one. (The append function will have the same issue.) If you want to build up your matrix one column at a time, you might be best off to keep it in a list until it is finished, and only then convert it into an array.

e.g.


mylist = []
for item in data:
    mylist.append(item)
mat = numpy.array(mylist)

item can be a list, an array or any iterable, as long as each item has the same number of elements.
In this particular case (data is some iterable holding the matrix columns) you can simply use


mat = numpy.array(data)

(Also note that using list as a variable name is probably not good practice since it masks the built-in type by that name, which can lead to bugs.)

EDIT:

If for some reason you really do want to create an empty array, you can just use numpy.array([]), but this is rarely useful!

Discussions

How can I create a truly empty numpy array which can be merged onto (by a recursive function)?
I can't say I fully followed your problem statement, but you can create an array with a total size of zero if any of the dimensions has size zero: a = np.empty((0, 3)) # Doesn't really matter if you use `empty`, `zeros` or `ones` here Zero-size arrays are the neutral element wrt. concatenation along their zero-size dimension (if that's what you mean by "merging"): b = np.random.uniform(size=(20, 3)) c = np.concatenate([a, b], 0) (c == b).all() # True More on reddit.com
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September 21, 2023
python - How to create an empty array and append it? - Stack Overflow
The issue is that the line x = empty((2, 2), int) is creating a 2D array. More on stackoverflow.com
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Should I return None for an empty data array?
If you’re expecting an array, use an empty array More on reddit.com
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June 23, 2024
Curious about python np.empty
The values are whatever was already written in that part of your computer's memory. The specific values you're gonna get can therefore depend on many different things such as various processes running on your computer. You definitely should not rely on those values being completely "random". More on reddit.com
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Python doesn't declare sizes, but [None] * n or [0] * n gives you n slots to fill by index. With NumPy, np.zeros(n) does the same.
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Answer (1 of 6): The closest thing to an array in Python is a list, which is dynamic (the size can change). This is somewhat similar to a C++ [code ]std::vector[/code] or a Java [code ]ArrayList[/code] (if you’re familiar with those languages and data structures). To make an empty list, you ...
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September 19, 2023 - You can check out our tutorial on Array creation in Numpy . I have used the empty() function. It takes a number as input which defines the length of the empty array. The other attribute is dtype, which I have defined as an object.
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r/learnpython on Reddit: How can I create a truly empty numpy array which can be merged onto (by a recursive function)?
September 21, 2023 -

I'm kind of stuck conceptually on how to make this happen. I have a recursive method that builds a binary tree, and stores the tree as an instance variable. However, the function is not allowed to return anything, so each recursive call should (according to me) modify in-place the tree instance variable. However, I'm not sure how to set up my instance variable such that all said and done it holds a multidimensional array that represents the tree.

Say I set initialize it as a 1x1 array with element zero as a placeholder. Then as I go about recursing through my tree I can merge to it... but at the end I'm left with a spare [0] element that I don't need. In this case, I'd need some kind of final stop condition and function to remove that unnecessary placeholder stump. I don't think this is possible?

Otherwise, say I initialize the instance variable as None. Then when the first series of recursive calls, it would have to reassign the tree variable to change from None to an ndarray object, but all future calls would have to merge to the array. I don't think this is what the function should be asked to do?

Is there a way to make a truly empty array that I can merge onto? (e.g. np.empty doesn't reallly give an empty array, it gives an array with placeholder values so I'm still left with a useless stump at the end).

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May 22, 2023 - To work with arrays, the Python library provides a numpy empty array function. It is used to create a new empty array as per user instruction means giving data type and shape of the array without initializing elements.
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numpy.empty — NumPy v2.6.dev0 Manual
Object arrays will be initialized to None. ... Return an empty array with shape and type of input.
Top answer
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3

I suspect you are trying to replicate this working list code:

In [56]: x = []                                                                 
In [57]: x.append([1,2])                                                        
In [58]: x                                                                      
Out[58]: [[1, 2]]
In [59]: np.array(x)                                                            
Out[59]: array([[1, 2]])

But with arrays:

In [53]: x = np.empty((2,2),int)                                                
In [54]: x                                                                      
Out[54]: 
array([[73096208, 10273248],
       [       2,       -1]])

Despite the name, the np.empty array is NOT a close of the empty list. It has 4 elements, the shape that you specified.

In [55]: np.append(x, np.array([1,2]), axis=0)                                  
---------------------------------------------------------------------------
ValueError                                Traceback (most recent call last)
<ipython-input-55-64dd8e7900e3> in <module>
----> 1 np.append(x, np.array([1,2]), axis=0)

<__array_function__ internals> in append(*args, **kwargs)

/usr/local/lib/python3.6/dist-packages/numpy/lib/function_base.py in append(arr, values, axis)
   4691         values = ravel(values)
   4692         axis = arr.ndim-1
-> 4693     return concatenate((arr, values), axis=axis)
   4694 
   4695 

<__array_function__ internals> in concatenate(*args, **kwargs)

ValueError: all the input arrays must have same number of dimensions, but the array at index 0 has 2 dimension(s) and the array at index 1 has 1 dimension(s)

Note that np.append has passed the task on to np.concatenate. With the axis parameter, that's all this append does. It is NOT a list append clone.

np.concatenate demands consistency in the dimensions of its inputs. One is (2,2), the other (2,). Mismatched dimensions.

np.append is a dangerous function, and not that useful even when used correctly. np.concatenate (and the various stack) functions are useful. But you need to pay attention to shapes. And don't use them iteratively. List append is more efficient for that.

When you got this error, did you look up the np.append, np.empty (and np.concatenate) functions? Read and understand the docs? In the long run SO questions aren't a substitute for reading the documentation.

2 of 4
2

You can create empty list by []. In order to add new item use append. For add other list use extend.

x = [1, 2, 3]
x.append(4)
x.extend([5, 6])

print(x) 
# [1, 2, 3, 4, 5, 6]
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Object arrays will be initialized to None. ... Return an empty array with shape and type of input.
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May 7, 2025 - NumPy arrays have a fixed size. np.append cannot extend one, so it allocates a brand new array and copies everything across, every single iteration. Build a plain Python list and convert once at the end. Lists over-allocate, so appending to them is cheap. If you know the final length in advance, allocate with np.empty(n) up front and assign by index.
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Object arrays will be initialized to None. ... Return an empty array with shape and type of input.
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Creating Empty Arrays in Python: A Comprehensive Guide — codegenes.net
In Python, an array is a container that can hold multiple items of the same or different data types. An empty array is simply an array that contains no elements at the time of its creation.