Python loop counter in a for loop
Question:
In my example code below, is the counter = 0 really required, or is there a better, more Python, way to get access to a loop counter? I saw a few PEPs related to loop counters, but they were either deferred or rejected (PEP 212 and PEP 281).
This is a simplified example of my problem. In my real application this is done with graphics and the whole menu has to be repainted each frame. But this demonstrates it in a simple text way that is easy to reproduce.
Maybe I should also add that I’m using Python 2.5, although I’m still interested if there is a way specific to 2.6 or higher.
# Draw all the options, but highlight the selected index
def draw_menu(options, selected_index):
counter = 0
for option in options:
if counter == selected_index:
print " [*] %s" % option
else:
print " [ ] %s" % option
counter += 1
options = ['Option 0', 'Option 1', 'Option 2', 'Option 3']
draw_menu(option, 2) # Draw menu with "Option2" selected
When run, it outputs:
[ ] Option 0
[ ] Option 1
[*] Option 2
[ ] Option 3
Answers:
Use enumerate() like so:
def draw_menu(options, selected_index):
for counter, option in enumerate(options):
if counter == selected_index:
print " [*] %s" % option
else:
print " [ ] %s" % option
options = ['Option 0', 'Option 1', 'Option 2', 'Option 3']
draw_menu(options, 2)
Note: You can optionally put parenthesis around counter, option, like (counter, option), if you want, but they’re extraneous and not normally included.
You could also do:
for option in options:
if option == options[selected_index]:
#print
else:
#print
Although you’d run into issues if there are duplicate options.
I’ll sometimes do this:
def draw_menu(options, selected_index):
for i in range(len(options)):
if i == selected_index:
print " [*] %s" % options[i]
else:
print " [ ] %s" % options[i]
Though I tend to avoid this if it means I’ll be saying options[i] more than a couple of times.
enumerate is what you are looking for.
You might also be interested in unpacking:
# The pattern
x, y, z = [1, 2, 3]
# also works in loops:
l = [(28, 'M'), (4, 'a'), (1990, 'r')]
for x, y in l:
print(x) # prints the numbers 28, 4, 1990
# and also
for index, (x, y) in enumerate(l):
print(x) # prints the numbers 28, 4, 1990
Also, there is itertools.count() so you could do something like
import itertools
for index, el in zip(itertools.count(), [28, 4, 1990]):
print(el) # prints the numbers 28, 4, 1990
In my example code below, is the counter = 0 really required, or is there a better, more Python, way to get access to a loop counter? I saw a few PEPs related to loop counters, but they were either deferred or rejected (PEP 212 and PEP 281).
This is a simplified example of my problem. In my real application this is done with graphics and the whole menu has to be repainted each frame. But this demonstrates it in a simple text way that is easy to reproduce.
Maybe I should also add that I’m using Python 2.5, although I’m still interested if there is a way specific to 2.6 or higher.
# Draw all the options, but highlight the selected index
def draw_menu(options, selected_index):
counter = 0
for option in options:
if counter == selected_index:
print " [*] %s" % option
else:
print " [ ] %s" % option
counter += 1
options = ['Option 0', 'Option 1', 'Option 2', 'Option 3']
draw_menu(option, 2) # Draw menu with "Option2" selected
When run, it outputs:
[ ] Option 0
[ ] Option 1
[*] Option 2
[ ] Option 3
Use enumerate() like so:
def draw_menu(options, selected_index):
for counter, option in enumerate(options):
if counter == selected_index:
print " [*] %s" % option
else:
print " [ ] %s" % option
options = ['Option 0', 'Option 1', 'Option 2', 'Option 3']
draw_menu(options, 2)
Note: You can optionally put parenthesis around counter, option, like (counter, option), if you want, but they’re extraneous and not normally included.
You could also do:
for option in options:
if option == options[selected_index]:
#print
else:
#print
Although you’d run into issues if there are duplicate options.
I’ll sometimes do this:
def draw_menu(options, selected_index):
for i in range(len(options)):
if i == selected_index:
print " [*] %s" % options[i]
else:
print " [ ] %s" % options[i]
Though I tend to avoid this if it means I’ll be saying options[i] more than a couple of times.
enumerate is what you are looking for.
You might also be interested in unpacking:
# The pattern
x, y, z = [1, 2, 3]
# also works in loops:
l = [(28, 'M'), (4, 'a'), (1990, 'r')]
for x, y in l:
print(x) # prints the numbers 28, 4, 1990
# and also
for index, (x, y) in enumerate(l):
print(x) # prints the numbers 28, 4, 1990
Also, there is itertools.count() so you could do something like
import itertools
for index, el in zip(itertools.count(), [28, 4, 1990]):
print(el) # prints the numbers 28, 4, 1990