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count = 1
for i in range(10):
    for j in range(0, i):
        print(count, end='')
        count = count +1
    print()
input()

I am writing a program that should have the output that looks like this.

1

22

333

4444

55555

666666

7777777

88888888

999999999

With the code I have written I am pretty close, but the way my count is working it just literally counts up and up. I just need help getting it to only count to 9 but display like above. Thanks.

enter image description here

share|improve this question
up vote 4 down vote accepted

You're incrementing count in the inner loop which is why you keep getting larger numbers before you want to

You could just do this.

>>> for i in range(1, 10):
        print str(i) * i


1
22
333
4444
55555
666666
7777777
88888888
999999999

or if you want the nested loop for some reason

from __future__ import print_function

for i in range(1, 10):
    for j in range(i):
        print(i, end='')
    print()
share|improve this answer
    
Yea this was per an assignment that required nested loops. So I needed it the second way. Thanks a bunch! – iMaxPrime Jul 6 '14 at 1:40

This works in both python2 and python3:

for i in range(10):
  print(str(i) * i)
share|improve this answer
for i in range(1,10):
    for j in range(0,i):
        print i,
print "\n"
share|improve this answer

Change print(count, end='') to print(i + 1, end='') and remove count. Just make sure you understand why it works.

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I suspect you mean i, not j. – Matt Bryant Jul 6 '14 at 1:29
    
@MattBryant fixed it as you were commenting. – David Ehrmann Jul 6 '14 at 1:30
    
That helped @David, but it starts my lines off at 2 instead of one now. – iMaxPrime Jul 6 '14 at 1:34
    
@iMaxPrime also start your inner range at 1, not 0. for j in range(1, i): Again, the important thing here is debugging a bit on your own and thinking things through, not just copy and pasting the code of others. – David Ehrmann Jul 6 '14 at 1:39

Is this what you want:

for i in range(10):
    print(str(i) * i)
share|improve this answer
"""2. 111 222 333 printing"""

for l in range (1,10):
    for k in range(l):
        print(l,end='')
print()
share|improve this answer
    
Please describe in short what is happening in your code for the benefit of other readers. – Jens Dec 11 '14 at 12:30

What you are trying to do involves a mathematical concept called repunit numbers https://en.wikipedia.org/wiki/Repunit you could also do it as follows:

for i in range(1,n): print (int(i*((10**i)-1)/9))

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Others have suggested some interesting solutions but this can also be done mathematically using a simple observation. Notice that:

1 - 1*1

22 - 2*11

333 - 3*111

4444 - 4*1111

and so on ....

We can have a general formula for producing 1,11,111,1111,... at every iteration. Observe that:

1 = 9/9 = (10 - 1)/9 = (10^1 - 1)/9

11 = 99/9 = (100 - 1)/9 = (10^2 - 1)/9

111 = 999/9 = (1000 - 1)/9 = (10^3 - 1)/9

......

that is we have (10^i - 1)/9 for the ith iteration.

Now it is simple enough to implement. We will multiply i with the above formula in each iteration. Hence the overall formula is:

i*(10^i - 1)/9 (for every ith iteration). Here's the python code:

for i in xrange(1,10):
    print i*(10**i-1)/9

Hope this helps.

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