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I am trying to create a matrix transpose function for python but I can't seem to make it work. Say I have

theArray = [['a','b','c'],['d','e','f'],['g','h','i']]

and I want my function to come up with

newArray = [['a','d','g'],['b','e','h'],['c', 'f', 'i']]

So in other words, if I were to print this 2D array as columns and rows I would like the rows to turn into columns and columns into rows.

I made this so far but it doesn't work

def matrixTranspose(anArray):
    transposed = [None]*len(anArray[0])
    for t in range(len(anArray)):
        for tt in range(len(anArray[t])):
            transposed[t] = [None]*len(anArray)
            transposed[t][tt] = anArray[tt][t]
    print transposed
share|improve this question

12 Answers 12

up vote 168 down vote accepted
>>> theArray = [['a','b','c'],['d','e','f'],['g','h','i']]
>>> zip(*theArray)
[('a', 'd', 'g'), ('b', 'e', 'h'), ('c', 'f', 'i')]
share|improve this answer
2  
enough said, this is just what I was looking for – Julio Diaz Feb 8 '11 at 19:44
6  
feel the power and clarity of python. – Stefano Borini Feb 8 '11 at 20:54
13  
just found this solution, felt new love for the language. – worker1138 Oct 13 '11 at 6:54
11  
if you're going to iterate through the results, izip from itertools can save memory for large arrays. – Antony Hatchkins Mar 28 '13 at 8:38
>>> theArray = [['a','b','c'],['d','e','f'],['g','h','i']]
>>> [list(i) for i in zip(*theArray)]
[['a', 'd', 'g'], ['b', 'e', 'h'], ['c', 'f', 'i']]

the list generator creates a new 2d array with list items instead of tuples.

share|improve this answer
1  
Your answer gives the correct output.. Great..!! :) – Saurav Kumar Nov 6 '13 at 10:38

If your rows are not equal you can also use map:

>>> uneven = [['a','b','c'],['d','e'],['g','h','i']]
>>> map(None,*uneven)
[('a', 'd', 'g'), ('b', 'e', 'h'), ('c', None, 'i')]

Edit: In Python 3 the functionality of map changed, itertools.zip_longest can be used instead:
Source: What’s New In Python 3.0

>>> import itertools
>>> uneven = [['a','b','c'],['d','e'],['g','h','i']]
>>> list(itertools.zip_longest(*uneven))
[('a', 'd', 'g'), ('b', 'e', 'h'), ('c', None, 'i')]
share|improve this answer
    
@pbfy0 Maybe lambda *x:x will work in place of None – dansalmo Jun 12 '13 at 22:08

To complete J.F. Sebastian's answer, if you have a list of lists with different lengths, check out this great post from ActiveState. In short:

The built-in function zip does a similar job, but truncates the result to the length of the shortest list, so some elements from the original data may be lost afterwards.

To handle list of lists with different lengths, use:

def transposed(lists):
   if not lists: return []
   return map(lambda *row: list(row), *lists)

def transposed2(lists, defval=0):
   if not lists: return []
   return map(lambda *row: [elem or defval for elem in row], *lists)
share|improve this answer
    
That's good catch. However, matrices doesn't have lists with different lengths. – Olli Oct 4 '12 at 8:07
    
It depends on how they are stored. – Franck Dernoncourt Mar 9 '13 at 0:59

The problem with your original code was that you initialized transpose[t] at every element, rather than just once per row:

def matrixTranspose(anArray):
    transposed = [None]*len(anArray[0])
    for t in range(len(anArray)):
        transposed[t] = [None]*len(anArray)
        for tt in range(len(anArray[t])):
            transposed[t][tt] = anArray[tt][t]
    print transposed

This works, though there are more Pythonic ways to accomplish the same things, including @J.F.'s zip application.

share|improve this answer
    
Ok I see your point, thanks – Julio Diaz Feb 8 '11 at 19:51

The "best" answer has already been submitted, but I thought I would add that you can use nested list comprehensions, as seen in the Python Tutorial.

Here is how you could get a transposed array:

def matrixTranspose( matrix ):
    if not matrix: return []
    return [ [ row[ i ] for row in matrix ] for i in range( len( matrix[ 0 ] ) ) ]
share|improve this answer

Much easier with numpy:

>>> arr = np.array([[1,2,3],[4,5,6],[7,8,9]])
>>> arr
array([[1, 2, 3],
       [4, 5, 6],
       [7, 8, 9]])
>>> arr.T
array([[1, 4, 7],
       [2, 5, 8],
       [3, 6, 9]])
>>> theArray = np.array([['a','b','c'],['d','e','f'],['g','h','i']])
>>> theArray 
array([['a', 'b', 'c'],
       ['d', 'e', 'f'],
       ['g', 'h', 'i']], 
      dtype='|S1')
>>> theArray.T
array([['a', 'd', 'g'],
       ['b', 'e', 'h'],
       ['c', 'f', 'i']], 
      dtype='|S1')
share|improve this answer
def matrixTranspose(anArray):
  transposed = [None]*len(anArray[0])

  for i in range(len(transposed)):
    transposed[i] = [None]*len(transposed)

  for t in range(len(anArray)):
    for tt in range(len(anArray[t])):            
        transposed[t][tt] = anArray[tt][t]
  return transposed

theArray = [['a','b','c'],['d','e','f'],['g','h','i']]

print matrixTranspose(theArray)
share|improve this answer
#generate matrix
matrix=[]
m=input('enter number of rows, m = ')
n=input('enter number of columns, n = ')
for i in range(m):
    matrix.append([])
    for j in range(n):
        elem=input('enter element: ')
        matrix[i].append(elem)

#print matrix
for i in range(m):
    for j in range(n):
        print matrix[i][j],
    print '\n'

#generate transpose
transpose=[]
for j in range(n):
    transpose.append([])
    for i in range (m):
        ent=matrix[i][j]
        transpose[j].append(ent)

#print transpose
for i in range (n):
    for j in range (m):
        print transpose[i][j],
    print '\n'
share|improve this answer

I followed the nice advises of these hints to transpose a matrix. I had hard time to get the correct output but eventually I did. However, I did not figure out why my first solution (A) did not work out (I spent hours, really, to troubleshoot this!). Here's the code:

# Matrix to be transposed
X = [[12, 7, 2, 4, 6],
    [4, 5, 7, 2, 4],
    [3, 8, 12, 7, 2],
    [6 ,7, 3, 8, 12]]

# initialize the transposed matrix
# initial A with zeros
row = [0 for i in range(len(X))]

transposed1 = [row] * (len(X[0]))
# initial B with zeros
transposed2 = []
for i in range(len(X[0])):
   transposed2.append([0] * len(X))

# Print the initial matrices
print transposed1
print transposed2

# iterate through rows (i) and columns (j)
for i in range(len(X)):
  for j in range(len(X[0])):
       transposed1[j][i] = X[i][j]

print transposed

The incorrect (not desired) output for this code is:

>>> 
[[0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0]]
[[0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0]]

[[6, 4, 2, 12], [6, 4, 2, 12], [6, 4, 2, 12], [6, 4, 2, 12], [6, 4, 2, 12]]

Then I changed transposed1 to be transposed2 and vice versa. This time the (desired) output is:

>>> 
[[0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0]]
[[0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0], [0, 0, 0, 0]]

[[12, 4, 3, 6], [7, 5, 8, 7], [2, 7, 12, 3], [4, 2, 7, 8], [6, 4, 2, 12]]

As you can see the initialized zero matrices look the same but the outcome is different, depending on how the zero matrix is generated. Can you figure out why?

Cheers, Risto-Matti

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a=[]
def showmatrix (a,m,n):
    for i in range (m):
        for j in range (n):
            k=int(input("enter the number")
            a.append(k)      
print (a[i][j]),

print('\t')


def showtranspose(a,m,n):
    for j in range(n):
        for i in range(m):
            print(a[i][j]),
        print('\t')

a=((89,45,50),(130,120,40),(69,79,57),(78,4,8))
print("given matrix of order 4x3 is :")
showmatrix(a,4,3)


print("Transpose matrix is:")
showtranspose(a,4,3)
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1  
Welcome on SO, please explain your code. – Sir l33tname Mar 30 '15 at 6:04

This one will preserve rectangular shape, so that subsequent transposes will get the right result:

import itertools
def transpose(list_of_lists):
  return list(itertools.izip_longest(*list_of_lists,fillvalue=' '))
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