5

I have seen answers about this question but no one helped me. Some used numpy, and some people answered using other platforms that help Python to be simpler. I don't want these type of things, I want with the simple Python without importing libraries or anything more.

Let's say: I would want to do a method that checks if there's at least one column in the 2D array that the column has the same values. For example:

arr = [[2,0,3],[4,2,3],[1,0,3]]

Sending arr to my method would return True because in the third column there is in each term the number 3.

How would I write this method? How do I loop through each column in the 2D array?

  • You will have to write an algorithm that loops over rows. – Lev Levitsky Dec 20 '15 at 22:22
6

Loop through column

How do I loop through each column in the 2D array?

In order to loop through each column just loop through the transposed matrix (a transposed matrix is just a new matrix where the rows of original matrix are now columns and vice-versa).

# zip(*matrix) generates a transposed version of your matrix
for column in zip(*matrix): 
    do_something(column)

An answer to your proposed problem/example

I would want to do a method that checks if there's at least one column in the 2D array that the column has the same values

General method:

def check(matrix):
    for column in zip(*matrix):
        if column[1:] == column[:-1]:
            return True
    return False

One-liner:

arr = [[2,0,3],[4,2,3],[1,0,3]]
any([x[1:] == x[:-1] for x in zip(*arr)])

Explanation:

arr = [[2,0,3],[4,2,3],[1,0,3]]
# transpose the matrix
transposed = zip(*arr) # transposed = [(2, 4, 1), (0, 2, 0), (3, 3, 3)]
# x[1:] == x[:-1] is a trick.
# It checks if the subarrays {one of them by removing the first element (x[1:])
# and the other one by removing the last element (x[:-1])} are equals.
# They will be identical if all the elements are equal. 
equals = [x[1:] == x[:-1] for x in transposed] # equals = [False, False, True]
# verify if at least one element of 'equals' is True
any(equals) # True

Update 01

@BenC wrote:

"You could also skip the [] around the list comprehension so that any just gets a generator that can be stopped early once/if it returns false"

so:

arr = [[2,0,3],[4,2,3],[1,0,3]]
any(x[1:] == x[:-1] for x in zip(*arr))

Update 02

You could also use sets (merged with the answer of @HelloV).

One-liner:

arr = [[2,0,3],[4,2,3],[1,0,3]]
any(len(set(x))==1 for x in zip(*arr))

General method:

def check(matrix):
    for column in zip(*matrix):
        if len(set(column)) == 1:
            return True
    return False

A set does not have repeated elements, so if you transform a list into a set set(x) any duplicated element goes away, so, if all elements are equals, the lenght of resulting set is equal to one len(set(x))==1.

  • 3
    You could also skip the [] around the list comprehension so that any just gets a generator that can be stopped early once/if it returns false. – BenC Dec 20 '15 at 22:26
0

A simple example, without adding the complexity of list comprehensions and the zip function is the following:

arr = [[2,0,3],[4,2,3],[1,0,2]]

def check_column_equals_index(colum):
    for row in arr:
        if row[colum-1] != colum:
            return False
    return True

print check_column_equals_index(3)

which will output True if the 3th column is equal to 3 for every row.

Nonetheless, as you might have read in some other related discussions, it might be worth considering to use Numpy or Pandas.

  • Here are you sending the array column to the method? I want to loop a 2D array without needing to put it on a variable before. – user139316 Dec 20 '15 at 22:36
  • The method is just to show you how a function can be defined that uses the 2D array. You do not necessarily write a function for it, but it might be a good idea. The column parameter in the example is just the column number that you want to check. In your question you explained the example of column 3, which needed to be 3. This is how you could do that. In order to check all columns, you will also have to iterate over the columns with an additional for column in row: statement. Or you might use the more advanced approach as described by @iuridiniz – DJanssens Dec 20 '15 at 22:56
0
1 in [len(set(i)) for i in zip(*arr)]
  • you could use just: any(len(set(i))==1 for i in zip(*arr)) – iuridiniz Dec 20 '15 at 22:43
0

Loop through a column in 2D list and no imports? How about extract columns elements to auxiliary list and then compare among themselves. You can control the process in this synoptical function:

def checkcolumn(colnum, arrex=[]):
    for i in range(len(arr)):
        arrex.append(arr[i][colnum])

    if arrex.count(arrex[0]) == len(arrex):
        return True
    else:
        return False

print checkcolumn(1) 

Seems easiest and pretty didactic to me. Other ways of comparing elements in column can be found at: https://www.csestack.org/python-check-if-all-elements-in-list-are-same/

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