12

I want to print a staircase like pattern using .format() method. I tried this,

for i in range(6, 0, -1):
    print("{0:>"+str(i)+"}".format("#"))

But it gave me following error :

ValueError: Single '}' encountered in format string

Basically the idea is to print

     #
    #
   #
  #
 #
#

with code that looks similar to,

for i in range(6, 0, -1):
    print("{0:>i}".format("#"))
3
  • 1
    Just add parenthesis around the string being constructed: print(("{0:>"+str(i)+"}").format("#"))
    – niemmi
    May 1, 2016 at 4:22
  • 2
    You can pass its value through format(): print("{0:>{1}}".format("#", i)) May 1, 2016 at 4:22
  • @AshwiniChaudhary the # is fixed. So would it be possible to get it into the string instead of as a parameter? Like "{#:>{0}}".format(i), which doesn't work.
    – BlackShift
    Jul 28, 2017 at 10:32

2 Answers 2

12

Much simpler : instead of concatenating strings, you can use format again

for i in range(6, 0, -1): 
    print("{0:>{1}}".format("#", i))

Try it in idle:

>>> for i in range(6, 0, -1): print("{0:>{1}}".format("#", i))

     #
    #
   #
  #
 #
#

Or even fstring (as Florian Brucker suggested - I'm not an fstrings lover, but it would be incomplete to ignore them)

for i in range(6, 0, -1): 
    print(f"{'#':>{i}}")

in idle :

>>> for i in range(6, 0, -1): print(f"{'#':>{i}}")

     #
    #
   #
  #
 #
#
1
  • 1
    This obviously also works with f-strings: x = '#'; y = 3; z = f'{x:>{y}}' Jul 30, 2020 at 7:55
6

Currently your code interpreted as below:

for i in range(6, 0, -1):
    print ( ("{0:>"+str(i))     +     ("}".format("#")))

So the format string is constructed of a single "}" and that's not correct. You need the following:

for i in range(6, 0, -1):
    print(("{0:>"+str(i)+"}").format("#"))

Works as you want:

================ RESTART: C:/Users/Desktop/TES.py ================
     #
    #
   #
  #
 #
#
>>> 
1
  • Yep, the '}'.format is the same as the typical some_object.method. May 1, 2016 at 4:47

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