0

I am trying to print a pattern using Python but I cannot seem to figure out what I am doing wrong.

 # The Pattern I am trying to create is as follows:
    *******
    ******
    *****
    ****
    ***
    **
    *

#Using the following code:

    base = 8

    for rows in range(base):
        for columns in range(7,1,-1): 
            print('*',end='')
        print()
  • 1
    change range(7,1,-1) to range(7,rows,-1) – depperm Feb 20 '17 at 20:18
7

for columns in range(7,1,-1) always prints 6 times. Maybe you meant for columns in range(7,rows,-1)? However this is easier:

for i in range(7,0,-1):
    print('*' * i)
| improve this answer | |
  • Thanks for the help. This answer did what I needed. Sorry I am such a newb to Python! – Part_Time_Nerd Feb 20 '17 at 20:31
  • Just realized that my answer won't print a blank line. If you want that, change the 0 to a -1. – BallpointBen Feb 20 '17 at 20:34
  • Very clever and slick solution – papabiceps Feb 24 '17 at 14:48
0

Another solution using "reverse order" slicing:

base = 8
for i in range(1, base)[::-1]:
    print('*' * i)

The output:

*******
******
*****
****
***
**
*
| improve this answer | |
0

Try the following:

for i in range(8):
    print("*" * i)

That will actually print in wrong order, sorry, overlooked that.

for i in range(8,0,-1):
    print("*" * i)
| improve this answer | |
  • 1
    This will print it in reverse order – Carles Mitjans Feb 20 '17 at 20:20
  • Yeah I just realised he wanted it in reversed order, not normal. – Lukasz Salitra Feb 20 '17 at 20:21
0

solution 1

for i in range(4,0,-1):
    for j in range(0,i):
        print('#',end=" ")
    print() 

solution 2

for i in range(0,4):
    for j in range(0,4-i):
        print('#',end=" ")
    print()    
| improve this answer | |

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