3

I a trying to convert a decimal number into a 17-bit binary number and add underscore as a separator in it. I am using the following code -

id = 18
get_bin = lambda x, n: format(x, 'b').zfill(n)
bin_num = get_bin(id, 17)

The output I am getting is in the form of -

00000000000010010

I am trying to get the following output -

0_0000_0000_0001_0010

How can I get it?

1
  • What output do you expect to see for get_bin(id, 16) and get_bin(id, 4)?
    – wim
    Jun 14 at 17:49
6

Using good'ol pal, Python's Format Specification Mini-Language

id = 18
width = 17
bin_num = format(id, '0{}_b'.format(width+3))
print(bin_num)
#0_0000_0000_0001_0010
2
  • 3
    there seems to be some bug here. width 18 makes the same output. +1 anyway ..
    – wim
    Jun 14 at 17:38
  • @wim, good catch, now I am scratching my head over it! I went with the first configuration that gave desired result, but, now I want to know why this problem!
    – anurag
    Jun 14 at 17:44
3

One way:

import textwrap
result = '_'.join(textwrap.wrap(bin_num[::-1], 4))[::-1]

output:

'0_0000_0000_0001_0010'
2
  • isn't importing a module to do it an overkill?
    – anurag
    Jun 14 at 17:33
  • 3
    @anurag that's why I added it's One way to solve the problem!!. As I know there are other better ways.
    – Nk03
    Jun 14 at 17:34
0

You need to add the _ to the format string, and also you don't need to use zfill - 017_b formats to a minimum length of 17 characters, zero filling the space, and using _ in between.

print(format(18, '021_b')) 

gives

0_0000_0000_0001_0010

Also note in binary mode, the underscores are always every 4 digits as you require there. More

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.