1
a=[3,4]
b=[5,8]
c=[7,4]
d=[a,b,c]
print (d)
for i in range(3):
    for j in range(2):


        d[i][j]-=a[j]


print (d)

In this python code the output is

[[0,0], [5,8], [7,4]]

instead of

[[0,0], [2,4], [4,0]]

Can anyone tell me why?

  • Why you expect [[0,0], [2,4], [4,0]]? – Kasramvd Jul 5 '15 at 13:50
  • 1
    Hint: what are the contents of a after the first iteration of the outer loop? (Add a print statement to see.) – Mark Dickinson Jul 5 '15 at 13:51
  • @ManishKumarSingh Please accept an answer – Kshitij Saraogi Jul 13 '15 at 5:55
6

d contains a reference of a, not a copy.

a changes from [3,4] to [0,0] during the first iteration of the loop. That's why, the next iteration of the loop will do d[i][j]-=[0,0].

You should replace d=[a,b,c] by d = [list(a), b, c]

  • so is there any way to get past it other than rewriting a after i for-loop – Manish Kumar Singh Jul 5 '15 at 13:57
  • @ManishKumarSingh You just should replace d=[a,b,c] by d = [list(a), list(b), list(c)] and the problem would be solved because a won't change anymore. – clemtoy Jul 5 '15 at 13:59
  • d = map(list, [a, b, c]) would be a bit neater – yuvi Jul 5 '15 at 14:13
  • 1
    also, he only really needs to copy a so d = [list(a), b, c] would work too – yuvi Jul 5 '15 at 14:14
  • Could also use d = [a[:], b, c] to make a copy of a. – martineau Jul 5 '15 at 15:29
0

I hope you have got the logical error in your code.

If you want the output as : [[0,0],[2,4],[4,0]], change line 4 to
d = [list(a), b, c] or a better expression would be d = [list(a), list(b), list(c)].

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