1

Suppose I have the array:

array = [1,2,3,4,5,6,7]

And I run this:

print(array[0<=3])

What is this called? How does it work?

  • 2
    0<=3 is just doing a boolean operation. So you are doing array[True]. Python sees True as 1, so at the end it is just array[1], which returns 2 – yellow01 Aug 27 at 1:15
  • This is probably some question from a programming course, trying to teach something about types in Python, or some really misguided code assuming the language works in a way that it doesn't. It works, but probably not as you expect. Also, calling a list in Python array doesn't change the fact that it's a list and not an array.array nor a numpy.ndarray, which are the common types of arrays you'll encounter, other than lists. – Grismar Aug 27 at 1:18
0

This isn't anything but a simple indexing.

An expression of inequality returns a boolean value. Either True (value=1) or False (value=0). Inserting it inside the brackets [ and ] means that you are evaluating the inequality and using the result for an index search.

For example, you have:

arr = [1, 2, 3, 4, 5, 6, 7]
print(arr[100 < 4]) #Which is False

It will print:

1 # Which is equivalent to arr[0]
  • Thank you so much for explaining. I understood everything. :) – Eshaan Barkataki Aug 27 at 1:24
2

0<=3 is True, which is understood as 1, so array[True] is array[1]

Besides, array[False] is array[0].

0

your code output : 2

print(array[5<2])

= false = 0 (array[0] == 1)

print(array[1<2])

= true = 1 (array[1] == 2)

If you set array to [5,7], The output will change to false = 5, true = 7.

This is because 0 means false, 1 means true.

This results in these outputs to refer to [0]th and [1]th values respectively in of array.

  • Can you please make your explanation after each code block more clear? – HashRocketSyntax Aug 27 at 1:18

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