21

I have the follwing string and I split it:

>>> st = '%2g%k%3p'
>>> l = filter(None, st.split('%'))
>>> print l
['2g', 'k', '3p']

Now I want to print the g letter two times, the k letter one time and the p letter three times:

ggkppp

How is it possible?

  • Is this coming from html code? – Iron Fist Feb 8 '16 at 9:42
  • 1
    Will the number before the letter ever be more than a single digit? Will the number ever be zero? – PM 2Ring Feb 8 '16 at 9:50
  • @Irano No this isnt .. – MLSC Feb 8 '16 at 9:51
  • @PM Yes it may be mor than one digit... – MLSC Feb 8 '16 at 9:52
  • 1
    You need a more formal/flushed out specification of the input language. What exactly does the % mean, what values for the number are valid, and what values for the "string to print" are valid? For example, what would %234 mean? Would it mean "print 34 twice," or is it invalid since no letter follows, or something else? What about %55a5? Print a5 fifty five times, maybe, or print 5a5 five times, or print 5 five times and then print a5? There are a ton of cases you haven't specified here. – jpmc26 Feb 8 '16 at 23:51
7

LATE FOR THE SHOW BUT READY TO GO

Another way, is to define your function which converts nC into CCCC...C (ntimes), then pass it to a map to apply it on every element of the list l coming from the split over %, the finally join them all, as follows:

>>> def f(s):
        x = 0
        if s:
            if len(s) == 1:
                out = s
            else:
                for i in s:
                    if i.isdigit():
                        x = x*10 + int(i)
                out = x*s[-1]

        else:
            out = ''
        return out

>>> st
'%4g%10k%p'
>>> ''.join(map(f, st.split('%')))
'ggggkkkkkkkkkkp'
>>> st = '%2g%k%3p'
>>> ''.join(map(f, st.split('%')))
'ggkppp'

Or if you want to put all of these into one single function definition:

>>> def f(s):
        out = ''
        if s:
            l = filter(None, s.split('%'))
            for item in l:
                x = 0
                    if len(item) == 1:
                        repl = item
                    else:
                        for c in item:
                            if c.isdigit():
                                x = x*10 + int(c)
                        repl = x*item[-1]
                    out += repl

        return out

>>> st
'%2g%k%3p'
>>> f(st)
'ggkppp'
>>> 
>>> st = '%4g%10k%p'
>>> 
>>> f(st)
'ggggkkkkkkkkkkp'
>>> st = '%4g%101k%2p'
>>> f(st)
'ggggkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkkpp'
>>> len(f(st))
107

EDIT :

In case of the presence of _ where the OP does not want this character to be repeated, then the best way in my opinion is to go with re.sub, it will make things easier, this way:

>>> def f(s):
        pat = re.compile(r'%(\d*)([a-zA-Z]+)')
        out = pat.sub(lambda m:int(m.group(1))*m.group(2) if m.group(1) else m.group(2), s)
        return out

>>> st = '%4g_%12k%p__%m'
>>> f(st)
'gggg_kkkkkkkkkkkkp__m'
  • good, But if I say st = %2g_%12k%3p result is not gg__kkkkkkkkkkkkkppp .... – MLSC Feb 9 '16 at 4:45
  • @MLSC...what's your expected output in this case? gg_kkkkkkkkkkkkkppp ? – Iron Fist Feb 9 '16 at 6:36
  • Pardon I meant: But if I say st = %2g_%12k%3p result is not gg_kkkkkkkkkkkkkppp` or even when st = %2g___%12k%3p result must be gg___kkkkkkkkkkkkkppp – MLSC Feb 9 '16 at 6:39
  • Thank you... Complete answer... – MLSC Feb 10 '16 at 4:59
  • @MLSC .. no pblm .. :) – Iron Fist Feb 10 '16 at 5:04
15

You could use generator with isdigit() to check wheter your first symbol is digit or not and then return following string with appropriate count. Then you could use join to get your output:

''.join(i[1:]*int(i[0]) if i[0].isdigit() else i for i in l)

Demonstration:

In [70]: [i[1:]*int(i[0]) if i[0].isdigit() else i for i in l ]
Out[70]: ['gg', 'k', 'ppp']

In [71]: ''.join(i[1:]*int(i[0]) if i[0].isdigit() else i for i in l)
Out[71]: 'ggkppp'

EDIT

Using re module when first number is with several digits:

''.join(re.search('(\d+)(\w+)', i).group(2)*int(re.search('(\d+)(\w+)', i).group(1)) if re.search('(\d+)(\w+)', i) else i for i in l)

Example:

In [144]: l = ['12g', '2kd', 'h', '3p']

In [145]: ''.join(re.search('(\d+)(\w+)', i).group(2)*int(re.search('(\d+)(\w+)', i).group(1)) if re.search('(\d+)(\w+)', i) else i for i in l)
Out[145]: 'ggggggggggggkdkdhppp'

EDIT2

For your input like:

st = '%2g_%3k%3p'

You could replace _ with empty string and then add _ to the end if the work from list endswith the _ symbol:

st = '%2g_%3k%3p'
l = list(filter(None, st.split('%')))
''.join((re.search('(\d+)(\w+)', i).group(2)*int(re.search('(\d+)(\w+)', i).group(1))).replace("_", "") + '_' * i.endswith('_') if re.search('(\d+)(\w+)', i) else i for i in l)

Output:

'gg_kkkppp'

EDIT3

Solution without re module but with usual loops working for 2 digits. You could define functions:

def add_str(ind, st):
    if not st.endswith('_'):
        return st[ind:] * int(st[:ind])
    else:
        return st[ind:-1] * int(st[:ind]) + '_'

def collect(l):
    final_str = ''
    for i in l:
        if i[0].isdigit():
            if i[1].isdigit():
                final_str += add_str(2, i)
            else:
                final_str += add_str(1, i)
        else:
            final_str += i
    return final_str

And then use them as:

l = ['12g_', '3k', '3p']

print(collect(l))
gggggggggggg_kkkppp
  • What happens when there are more than 9 of a letter? – Sayse Feb 8 '16 at 9:37
  • Then you could use i[1:], edited for that – Anton Protopopov Feb 8 '16 at 9:37
  • 2
    ''.join(i[1:]*int(i[0]) if i[0].isdigit() else i for i in ['12g', 'k', '3p']) = '2gkppp' – Sayse Feb 8 '16 at 9:40
  • 1
    @MLSC do you need that behavior only for _ sign? – Anton Protopopov Feb 8 '16 at 12:25
  • 1
    @MLSC try edited version. You could extend it to what you like – Anton Protopopov Feb 8 '16 at 14:29
13

One-liner Regex way:

>>> import re
>>> st = '%2g%k%3p'
>>> re.sub(r'%|(\d*)(\w+)', lambda m: int(m.group(1))*m.group(2) if m.group(1) else m.group(2), st)
'ggkppp'

%|(\d*)(\w+) regex matches all % and captures zero or moredigit present before any word character into one group and the following word characters into another group. On replacement all the matched chars should be replaced with the value given in the replacement part. So this should loose % character.

or

>>> re.sub(r'%(\d*)(\w+)', lambda m: int(m.group(1))*m.group(2) if m.group(1) else m.group(2), st)
'ggkppp'
  • can u explain why you used \b ?...because I think it's not necessary? – Iron Fist Feb 8 '16 at 9:59
  • Test: re.sub(r'%(\d*)(\w*)', '-RE-',st) ---> '-RE--RE--RE-' – Iron Fist Feb 8 '16 at 10:01
  • @IronFist ya, here it's not necessary.. – Avinash Raj Feb 8 '16 at 10:05
  • For lowercase letters only r'%(\d*)([a-z]+)' – Avinash Raj Feb 9 '16 at 9:46
11

Assumes you are always printing single letter, but preceding number may be longer than single digit in base 10.

seq = ['2g', 'k', '3p']
result = ''.join(int(s[:-1] or 1) * s[-1] for s in seq)
assert result == "ggkppp"
  • Or as a one-liner: result = ''.join([int(s[:-1] or 1) * s[-1] for s in st.split('%') if s]). You can give .join a generator expression but it's actually more efficient to give it a list comp. .join has to parse its input twice: the 1st pass determines the size of the output string, the 2nd pass builds the output. So if you give .join a gen exp it has to run the generator and build a list from it before it can start doing the actual joining. – PM 2Ring Feb 8 '16 at 10:18
4

Loop the list, check first entry for number, and then append the second digit onwards:

string=''
l = ['2g', 'k', '3p']
for entry in l:
    if len(entry) ==1:
        string += (entry)
    else:
        number = int(entry[0])
        for i in range(number):
            string += (entry[1:])
  • string isn't a great variable name since it's the name of a standard Python module. Also, this answer won't work properly if a number has more than 1 digit. – PM 2Ring Feb 8 '16 at 12:46

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