Understanding NumPy's einsum

本小妞迷上赌 提交于 2019-11-26 01:55:38

问题


I\'m struggling to understand exactly how einsum works. I\'ve looked at the documentation and a few examples, but it\'s not seeming to stick.

Here\'s an example we went over in class:

C = np.einsum(\"ij,jk->ki\", A, B)

for two arraysA and B

I think this would take A^T * B, but I\'m not sure (it\'s taking the transpose of one of them right?). Can anyone walk me through exactly what\'s happening here (and in general when using einsum)?


回答1:


(Note: this answer is based on a short blog post about einsum I wrote a while ago.)

What does einsum do?

Imagine that we have two multi-dimensional arrays, A and B. Now let's suppose we want to...

  • multiply A with B in a particular way to create new array of products; and then maybe
  • sum this new array along particular axes; and then maybe
  • transpose the axes of the new array in a particular order.

There's a good chance that einsum will help us do this faster and more memory-efficiently that combinations of the NumPy functions like multiply, sum and transpose will allow.

How does einsum work?

Here's a simple (but not completely trivial) example. Take the following two arrays:

A = np.array([0, 1, 2])

B = np.array([[ 0,  1,  2,  3],
              [ 4,  5,  6,  7],
              [ 8,  9, 10, 11]])

We will multiply A and B element-wise and then sum along the rows of the new array. In "normal" NumPy we'd write:

>>> (A[:, np.newaxis] * B).sum(axis=1)
array([ 0, 22, 76])

So here, the indexing operation on A lines up the first axes of the two arrays so that the multiplication can be broadcast. The rows of the array of products is then summed to return the answer.

Now if we wanted to use einsum instead, we could write:

>>> np.einsum('i,ij->i', A, B)
array([ 0, 22, 76])

The signature string 'i,ij->i' is the key here and needs a little bit of explaining. You can think of it in two halves. On the left-hand side (left of the ->) we've labelled the two input arrays. To the right of ->, we've labelled the array we want to end up with.

Here is what happens next:

  • A has one axis; we've labelled it i. And B has two axes; we've labelled axis 0 as i and axis 1 as j.

  • By repeating the label i in both input arrays, we are telling einsum that these two axes should be multiplied together. In other words, we're multiplying array A with each column of array B, just like A[:, np.newaxis] * B does.

  • Notice that j does not appear as a label in our desired output; we've just used i (we want to end up with a 1D array). By omitting the label, we're telling einsum to sum along this axis. In other words, we're summing the rows of the products, just like .sum(axis=1) does.

That's basically all you need to know to use einsum. It helps to play about a little; if we leave both labels in the output, 'i,ij->ij', we get back a 2D array of products (same as A[:, np.newaxis] * B). If we say no output labels, 'i,ij->, we get back a single number (same as doing (A[:, np.newaxis] * B).sum()).

The great thing about einsum however, is that is does not build a temporary array of products first; it just sums the products as it goes. This can lead to big savings in memory use.

A slightly bigger example

To explain the dot product, here are two new arrays:

A = array([[1, 1, 1],
           [2, 2, 2],
           [5, 5, 5]])

B = array([[0, 1, 0],
           [1, 1, 0],
           [1, 1, 1]])

We will compute the dot product using np.einsum('ij,jk->ik', A, B). Here's a picture showing the labelling of the A and B and the output array that we get from the function:

You can see that label j is repeated - this means we're multiplying the rows of A with the columns of B. Furthermore, the label j is not included in the output - we're summing these products. Labels i and k are kept for the output, so we get back a 2D array.

It might be even clearer to compare this result with the array where the label j is not summed. Below, on the left you can see the 3D array that results from writing np.einsum('ij,jk->ijk', A, B) (i.e. we've kept label j):

Summing axis j gives the expected dot product, shown on the right.

Some exercises

To get more of feel for einsum, it can be useful to implement familiar NumPy array operations using the subscript notation. Anything that involves combinations of multiplying and summing axes can be written using einsum.

Let A and B be two 1D arrays with the same length. For example, A = np.arange(10) and B = np.arange(5, 15).

  • The sum of A can be written:

    np.einsum('i->', A)
    
  • Element-wise multiplication, A * B, can be written:

    np.einsum('i,i->i', A, B)
    
  • The inner product or dot product, np.inner(A, B) or np.dot(A, B), can be written:

    np.einsum('i,i->', A, B) # or just use 'i,i'
    
  • The outer product, np.outer(A, B), can be written:

    np.einsum('i,j->ij', A, B)
    

For 2D arrays, C and D, provided that the axes are compatible lengths (both the same length or one of them of has length 1), here are a few examples:

  • The trace of C (sum of main diagonal), np.trace(C), can be written:

    np.einsum('ii', C)
    
  • Element-wise multiplication of C and the transpose of D, C * D.T, can be written:

    np.einsum('ij,ji->ij', C, D)
    
  • Multiplying each element of C by the array D (to make a 4D array), C[:, :, None, None] * D, can be written:

    np.einsum('ij,kl->ijkl', C, D)  
    



回答2:


Grasping the idea of numpy.einsum() is very easy if you understand it intuitively. As an example, let's start with a simple description involving matrix multiplication.


To use numpy.einsum(), all you have to do is to pass the so-called subscripts string as an argument, followed by your input arrays.

Let's say you have two 2D arrays, A and B, and you want to do matrix multiplication. So, you do:

np.einsum("ij, jk -> ik", A, B)

Here the subscript string ij corresponds to array A while the subscript string jk corresponds to array B. Also, the most important thing to note here is that the number of characters in each subscript string must match the dimensions of the array. (i.e. two chars for 2D arrays, three chars for 3D arrays, and so on.) And if you repeat the chars between subscript strings (j in our case), then that means you want the einsum to happen along those dimensions. Thus, they will be sum-reduced. (i.e. that dimension will be gone)

The subscript string after this ->, will be our resultant array. If you leave it empty, then everything will be summed and a scalar value is returned as result. Else the resultant array will have dimensions according to the subscript string. In our example, it'll be ik. This is intuitive because we know that for matrix multiplication the number of columns in array A has to match the number of rows in array B which is what is happening here (i.e. we encode this knowledge by repeating the char j in the subscript string)


Here are some more examples illustrating the use/power of np.einsum() in implementing some common tensor or nd-array operations, succinctly.

Inputs

# a vector
In [197]: vec
Out[197]: array([0, 1, 2, 3])

# an array
In [198]: A
Out[198]: 
array([[11, 12, 13, 14],
       [21, 22, 23, 24],
       [31, 32, 33, 34],
       [41, 42, 43, 44]])

# another array
In [199]: B
Out[199]: 
array([[1, 1, 1, 1],
       [2, 2, 2, 2],
       [3, 3, 3, 3],
       [4, 4, 4, 4]])

1) Matrix multiplication (similar to np.matmul(arr1, arr2))

In [200]: np.einsum("ij, jk -> ik", A, B)
Out[200]: 
array([[130, 130, 130, 130],
       [230, 230, 230, 230],
       [330, 330, 330, 330],
       [430, 430, 430, 430]])

2) Extract elements along the main-diagonal (similar to np.diag(arr))

In [202]: np.einsum("ii -> i", A)
Out[202]: array([11, 22, 33, 44])

3) Hadamard product (i.e. element-wise product of two arrays) (similar to arr1 * arr2)

In [203]: np.einsum("ij, ij -> ij", A, B)
Out[203]: 
array([[ 11,  12,  13,  14],
       [ 42,  44,  46,  48],
       [ 93,  96,  99, 102],
       [164, 168, 172, 176]])

4) Element-wise squaring (similar to np.square(arr) or arr ** 2)

In [210]: np.einsum("ij, ij -> ij", B, B)
Out[210]: 
array([[ 1,  1,  1,  1],
       [ 4,  4,  4,  4],
       [ 9,  9,  9,  9],
       [16, 16, 16, 16]])

5) Trace (i.e. sum of main-diagonal elements) (similar to np.trace(arr))

In [217]: np.einsum("ii -> ", A)
Out[217]: 110

6) Matrix transpose (similar to np.transpose(arr))

In [221]: np.einsum("ij -> ji", A)
Out[221]: 
array([[11, 21, 31, 41],
       [12, 22, 32, 42],
       [13, 23, 33, 43],
       [14, 24, 34, 44]])

7) Outer Product (of vectors) (similar to np.outer(vec1, vec2))

In [255]: np.einsum("i, j -> ij", vec, vec)
Out[255]: 
array([[0, 0, 0, 0],
       [0, 1, 2, 3],
       [0, 2, 4, 6],
       [0, 3, 6, 9]])

8) Inner Product (of vectors) (similar to np.inner(vec1, vec2))

In [256]: np.einsum("i, i -> ", vec, vec)
Out[256]: 14

9) Sum along axis 0 (similar to np.sum(arr, axis=0))

In [260]: np.einsum("ij -> j", B)
Out[260]: array([10, 10, 10, 10])

10) Sum along axis 1 (similar to np.sum(arr, axis=1))

In [261]: np.einsum("ij -> i", B)
Out[261]: array([ 4,  8, 12, 16])

11) Batch Matrix Multiplication

In [287]: BM = np.stack((A, B), axis=0)

In [288]: BM
Out[288]: 
array([[[11, 12, 13, 14],
        [21, 22, 23, 24],
        [31, 32, 33, 34],
        [41, 42, 43, 44]],

       [[ 1,  1,  1,  1],
        [ 2,  2,  2,  2],
        [ 3,  3,  3,  3],
        [ 4,  4,  4,  4]]])

In [289]: BM.shape
Out[289]: (2, 4, 4)

# batch matrix multiply using einsum
In [292]: BMM = np.einsum("bij, bjk -> bik", BM, BM)

In [293]: BMM
Out[293]: 
array([[[1350, 1400, 1450, 1500],
        [2390, 2480, 2570, 2660],
        [3430, 3560, 3690, 3820],
        [4470, 4640, 4810, 4980]],

       [[  10,   10,   10,   10],
        [  20,   20,   20,   20],
        [  30,   30,   30,   30],
        [  40,   40,   40,   40]]])

In [294]: BMM.shape
Out[294]: (2, 4, 4)

12) Sum along axis 2 (similar to np.sum(arr, axis=2))

In [330]: np.einsum("ijk -> ij", BM)
Out[330]: 
array([[ 50,  90, 130, 170],
       [  4,   8,  12,  16]])

13) Sum all the elements in array (similar to np.sum(arr))

In [335]: np.einsum("ijk -> ", BM)
Out[335]: 480

14) Sum over multiple axes (i.e. marginalization)
(similar to np.sum(arr, axis=(axis0, axis1, axis2, axis3, axis4, axis6, axis7)))

# 8D array
In [354]: R = np.random.standard_normal((3,5,4,6,8,2,7,9))

# marginalize out axis 5 (i.e. "n" here)
In [363]: esum = np.einsum("ijklmnop -> n", R)

# marginalize out axis 5 (i.e. sum over rest of the axes)
In [364]: nsum = np.sum(R, axis=(0,1,2,3,4,6,7))

In [365]: np.allclose(esum, nsum)
Out[365]: True

15) Double Dot Products (similar to np.sum(hadamard-product) cf. 3)

In [772]: A
Out[772]: 
array([[1, 2, 3],
       [4, 2, 2],
       [2, 3, 4]])

In [773]: B
Out[773]: 
array([[1, 4, 7],
       [2, 5, 8],
       [3, 6, 9]])

In [774]: np.einsum("ij, ij -> ", A, B)
Out[774]: 124

16) 2D and 3D array multiplication

Such a multiplication could be very useful when solving linear system of equations (Ax = b) where you want to verify the result.

# inputs
In [115]: A = np.random.rand(3,3)
In [116]: b = np.random.rand(3, 4, 5)

# solve for x
In [117]: x = np.linalg.solve(A, b.reshape(b.shape[0], -1)).reshape(b.shape)

# 2D and 3D array multiplication :)
In [118]: Ax = np.einsum('ij, jkl', A, x)

# indeed the same!
In [119]: np.allclose(Ax, b)
Out[119]: True

On the contrary, if one has to use np.matmul() for this verification, we have to do couple of reshape operations to achieve the same result like:

# reshape 3D array `x` to 2D, perform matmul
# then reshape the resultant array to 3D
In [123]: Ax_matmul = np.matmul(A, x.reshape(x.shape[0], -1)).reshape(x.shape)

# indeed correct!
In [124]: np.allclose(Ax, Ax_matmul)
Out[124]: True

Bonus: Read more math here : Einstein-Summation and definitely here: Tensor-Notation




回答3:


Lets make 2 arrays, with different, but compatible dimensions to highlight their interplay

In [43]: A=np.arange(6).reshape(2,3)
Out[43]: 
array([[0, 1, 2],
       [3, 4, 5]])


In [44]: B=np.arange(12).reshape(3,4)
Out[44]: 
array([[ 0,  1,  2,  3],
       [ 4,  5,  6,  7],
       [ 8,  9, 10, 11]])

Your calculation, takes a 'dot' (sum of products) of a (2,3) with a (3,4) to produce a (4,2) array. i is the 1st dim of A, the last of C; k the last of B, 1st of C. j is 'consumed' by the summation.

In [45]: C=np.einsum('ij,jk->ki',A,B)
Out[45]: 
array([[20, 56],
       [23, 68],
       [26, 80],
       [29, 92]])

This is the same as np.dot(A,B).T - it's the final output that's transposed.

To see more of what happens to j, change the C subscripts to ijk:

In [46]: np.einsum('ij,jk->ijk',A,B)
Out[46]: 
array([[[ 0,  0,  0,  0],
        [ 4,  5,  6,  7],
        [16, 18, 20, 22]],

       [[ 0,  3,  6,  9],
        [16, 20, 24, 28],
        [40, 45, 50, 55]]])

This can also be produced with:

A[:,:,None]*B[None,:,:]

That is, add a k dimension to the end of A, and an i to the front of B, resulting in a (2,3,4) array.

0 + 4 + 16 = 20, 9 + 28 + 55 = 92, etc; Sum on j and transpose to get the earlier result:

np.sum(A[:,:,None] * B[None,:,:], axis=1).T

# C[k,i] = sum(j) A[i,j (,k) ] * B[(i,)  j,k]



回答4:


I found NumPy: The tricks of the trade (Part II) instructive

We use -> to indicate the order of the output array. So think of 'ij, i->j' as having left hand side (LHS) and right hand side (RHS). Any repetition of labels on the LHS computes the product element wise and then sums over. By changing the label on the RHS (output) side, we can define the axis in which we want to proceed with respect to the input array, i.e. summation along axis 0, 1 and so on.

import numpy as np

>>> a
array([[1, 1, 1],
       [2, 2, 2],
       [3, 3, 3]])
>>> b
array([[0, 1, 2],
       [3, 4, 5],
       [6, 7, 8]])
>>> d = np.einsum('ij, jk->ki', a, b)

Notice there are three axes, i, j, k, and that j is repeated (on the left-hand-side). i,j represent rows and columns for a. j,k for b.

In order to calculate the product and align the j axis we need to add an axis to a. (b will be broadcast along(?) the first axis)

a[i, j, k]
   b[j, k]

>>> c = a[:,:,np.newaxis] * b
>>> c
array([[[ 0,  1,  2],
        [ 3,  4,  5],
        [ 6,  7,  8]],

       [[ 0,  2,  4],
        [ 6,  8, 10],
        [12, 14, 16]],

       [[ 0,  3,  6],
        [ 9, 12, 15],
        [18, 21, 24]]])

j is absent from the right-hand-side so we sum over j which is the second axis of the 3x3x3 array

>>> c = c.sum(1)
>>> c
array([[ 9, 12, 15],
       [18, 24, 30],
       [27, 36, 45]])

Finally, the indices are (alphabetically) reversed on the right-hand-side so we transpose.

>>> c.T
array([[ 9, 18, 27],
       [12, 24, 36],
       [15, 30, 45]])

>>> np.einsum('ij, jk->ki', a, b)
array([[ 9, 18, 27],
       [12, 24, 36],
       [15, 30, 45]])
>>>


来源:https://stackoverflow.com/questions/26089893/understanding-numpys-einsum

易学教程内所有资源均来自网络或用户发布的内容,如有违反法律规定的内容欢迎反馈
该文章没有解决你所遇到的问题?点击提问,说说你的问题,让更多的人一起探讨吧!