Skip multiple iterations in loop
Question:
I have a list in a loop and I want to skip 3 elements after look has been reached.
In this answer a couple of suggestions were made but I fail to make good use of them:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
for sing in song:
if sing == 'look':
print sing
continue
continue
continue
continue
print 'a' + sing
print sing
Four times continue is nonsense of course and using four times next() doesn’t work.
The output should look like:
always
look
aside
of
life
Answers:
Actually, using .next() three times is not nonsense. When you want to skip n values, call next() n+1 times (don’t forget to assign the value of the last call to something) and then “call” continue.
To get an exact replica of the code you posted:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
songiter = iter(song)
for sing in songiter:
if sing == 'look':
print sing
songiter.next()
songiter.next()
songiter.next()
sing = songiter.next()
print 'a' + sing
continue
print sing
Of course you can use three time next (here I actually do it four time)
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
it = iter(song)
for sing in it:
if sing == 'look':
print sing
try:
sing = it.next(); sing = it.next(); sing = it.next(); sing=it.next()
except StopIteration:
break
print 'a'+sing
else:
print sing
Then
always
look
aside
of
life
I think, it’s just fine to use iterators and next here:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
it = iter(song)
while True:
word = next(it, None)
if not word:
break
print word
if word == 'look':
for _ in range(4): # skip 3 and take 4th
word = next(it, None)
if word:
print 'a' + word
or, with exception handling (which is shorter as well as more robust as @Steinar noticed):
it = iter(song)
while True:
try:
word = next(it)
print word
if word == 'look':
for _ in range(4):
word = next(it)
print 'a' + word
except StopIteration:
break
for uses iter(song) to loop; you can do this in your own code and then advance the iterator inside the loop; calling iter() on the iterable again will only return the same iterable object so you can advance the iterable inside the loop with for following right along in the next iteration.
Advance the iterator with the next() function; it works correctly in both Python 2 and 3 without having to adjust syntax:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
next(song_iter)
next(song_iter)
next(song_iter)
print 'a' + next(song_iter)
By moving the print sing line up we can avoid repeating ourselves too.
Using next() this way can raise a StopIteration exception, if the iterable is out of values.
You could catch that exception, but it’d be easier to give next() a second argument, a default value to ignore the exception and return the default instead:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
next(song_iter, None)
next(song_iter, None)
next(song_iter, None)
print 'a' + next(song_iter, '')
I’d use itertools.islice() to skip 3 elements instead; saves repeated next() calls:
from itertools import islice
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
print 'a' + next(islice(song_iter, 3, 4), '')
The islice(song_iter, 3, 4) iterable will skip 3 elements, then return the 4th, then be done. Calling next() on that object thus retrieves the 4th element from song_iter().
Demo:
>>> from itertools import islice
>>> song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
>>> song_iter = iter(song)
>>> for sing in song_iter:
... print sing
... if sing == 'look':
... print 'a' + next(islice(song_iter, 3, 4), '')
...
always
look
aside
of
life
You can do this without an iter() as well simply using an extra variable:
skipcount = -1
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
for sing in song:
if sing == 'look' and skipcount <= 0:
print sing
skipcount = 3
elif skipcount > 0:
skipcount = skipcount - 1
continue
elif skipcount == 0:
print 'a' + sing
skipcount = skipcount - 1
else:
print sing
skipcount = skipcount - 1
>>> song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
>>> count = 0
>>> while count < (len(song)):
if song[count] == "look" :
print song[count]
count += 4
song[count] = 'a' + song[count]
continue
print song[count]
count += 1
Output:
always
look
aside
of
life
I believe the following code is the simplest for me.
# data list
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
# this is one possible way
for sing in song:
if sing != 'look'
and sing != 'always'
and sing != 'side'
and sing != 'of'
and sing != 'life':
continue
if sing == 'side':
sing = f'a{sing}' # or sing = 'aside'
print(sing)
# this is another possible way
songs_to_keep = ['always', 'look', 'of', 'side', 'of', 'life']
songs_to_change = ['side']
for sing in song:
if sing not in songs_to_keep:
continue
if sing in songs_to_change:
sing = f'a{sing}'
print(sing)
This produces the results you are looking for.
always
look
aside
of
life
I have a list in a loop and I want to skip 3 elements after look has been reached.
In this answer a couple of suggestions were made but I fail to make good use of them:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
for sing in song:
if sing == 'look':
print sing
continue
continue
continue
continue
print 'a' + sing
print sing
Four times continue is nonsense of course and using four times next() doesn’t work.
The output should look like:
always
look
aside
of
life
Actually, using .next() three times is not nonsense. When you want to skip n values, call next() n+1 times (don’t forget to assign the value of the last call to something) and then “call” continue.
To get an exact replica of the code you posted:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
songiter = iter(song)
for sing in songiter:
if sing == 'look':
print sing
songiter.next()
songiter.next()
songiter.next()
sing = songiter.next()
print 'a' + sing
continue
print sing
Of course you can use three time next (here I actually do it four time)
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
it = iter(song)
for sing in it:
if sing == 'look':
print sing
try:
sing = it.next(); sing = it.next(); sing = it.next(); sing=it.next()
except StopIteration:
break
print 'a'+sing
else:
print sing
Then
always
look
aside
of
life
I think, it’s just fine to use iterators and next here:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
it = iter(song)
while True:
word = next(it, None)
if not word:
break
print word
if word == 'look':
for _ in range(4): # skip 3 and take 4th
word = next(it, None)
if word:
print 'a' + word
or, with exception handling (which is shorter as well as more robust as @Steinar noticed):
it = iter(song)
while True:
try:
word = next(it)
print word
if word == 'look':
for _ in range(4):
word = next(it)
print 'a' + word
except StopIteration:
break
for uses iter(song) to loop; you can do this in your own code and then advance the iterator inside the loop; calling iter() on the iterable again will only return the same iterable object so you can advance the iterable inside the loop with for following right along in the next iteration.
Advance the iterator with the next() function; it works correctly in both Python 2 and 3 without having to adjust syntax:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
next(song_iter)
next(song_iter)
next(song_iter)
print 'a' + next(song_iter)
By moving the print sing line up we can avoid repeating ourselves too.
Using next() this way can raise a StopIteration exception, if the iterable is out of values.
You could catch that exception, but it’d be easier to give next() a second argument, a default value to ignore the exception and return the default instead:
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
next(song_iter, None)
next(song_iter, None)
next(song_iter, None)
print 'a' + next(song_iter, '')
I’d use itertools.islice() to skip 3 elements instead; saves repeated next() calls:
from itertools import islice
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
song_iter = iter(song)
for sing in song_iter:
print sing
if sing == 'look':
print 'a' + next(islice(song_iter, 3, 4), '')
The islice(song_iter, 3, 4) iterable will skip 3 elements, then return the 4th, then be done. Calling next() on that object thus retrieves the 4th element from song_iter().
Demo:
>>> from itertools import islice
>>> song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
>>> song_iter = iter(song)
>>> for sing in song_iter:
... print sing
... if sing == 'look':
... print 'a' + next(islice(song_iter, 3, 4), '')
...
always
look
aside
of
life
You can do this without an iter() as well simply using an extra variable:
skipcount = -1
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
for sing in song:
if sing == 'look' and skipcount <= 0:
print sing
skipcount = 3
elif skipcount > 0:
skipcount = skipcount - 1
continue
elif skipcount == 0:
print 'a' + sing
skipcount = skipcount - 1
else:
print sing
skipcount = skipcount - 1
>>> song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
>>> count = 0
>>> while count < (len(song)):
if song[count] == "look" :
print song[count]
count += 4
song[count] = 'a' + song[count]
continue
print song[count]
count += 1
Output:
always
look
aside
of
life
I believe the following code is the simplest for me.
# data list
song = ['always', 'look', 'on', 'the', 'bright', 'side', 'of', 'life']
# this is one possible way
for sing in song:
if sing != 'look'
and sing != 'always'
and sing != 'side'
and sing != 'of'
and sing != 'life':
continue
if sing == 'side':
sing = f'a{sing}' # or sing = 'aside'
print(sing)
# this is another possible way
songs_to_keep = ['always', 'look', 'of', 'side', 'of', 'life']
songs_to_change = ['side']
for sing in song:
if sing not in songs_to_keep:
continue
if sing in songs_to_change:
sing = f'a{sing}'
print(sing)
This produces the results you are looking for.
always
look
aside
of
life