50

What is the pythonic way of looping through a range of numbers and skipping over one value? For example, the range is from 0 to 100 and I would like to skip 50.

Edit: Here's the code that I'm using

for i in range(0, len(list)):
    x= listRow(list, i)
    for j in range (#0 to len(list) not including x#)
        ...
  • The continue statement with a conditional? – g.d.d.c Jun 6 '14 at 20:13
  • I could do that but is there any way to get it in the structure of the loop itself? – David Jun 6 '14 at 20:15
  • what are you doing in the loop? – Padraic Cunningham Jun 6 '14 at 20:16
85

You can use any of these:

# Create a range that does not contain 50
for i in [x for x in xrange(100) if x != 50]:
    print i

# Create 2 ranges [0,49] and [51, 100] (Python 2)
for i in range(50) + range(51, 100):
    print i

# Create a iterator and skip 50
xr = iter(xrange(100))
for i in xr:
    print i
    if i == 49:
        next(xr)

# Simply continue in the loop if the number is 50
for i in range(100):
    if i == 50:
        continue
    print i
| improve this answer | |
  • The third suggestion throws TypeError because you did not explicitly create an iterator – aestrivex Jun 6 '14 at 20:22
  • (1) creates two lists, (2) concatenates two lists, (3) does not work, xrange is not a iterator. (4) should use xrange to avoid creating a list, and is the so far best solution. – Daniel Jun 6 '14 at 20:23
  • 1
    How does (1) create two lists? xrange(100) is not a list. And you can avoid creating the second list by returning a generator instead: for i in (x for x in xrange(100) if x is not 50) – aestrivex Jun 6 '14 at 20:25
  • 1
    #2 with Python 3.x: ...list(range(50)) + list(range(51, 100)): – loxosceles Feb 15 '17 at 22:17
  • 1
    @Acumenus this question is tagged python, not python3. If you have more efficient solutions, please share them so everyone can benefit :) – njzk2 Sep 12 '19 at 1:54
3

In addition to the Python 2 approach here are the equivalents for Python 3:

# Create a range that does not contain 50
for i in [x for x in range(100) if x != 50]:
    print(i)

# Create 2 ranges [0,49] and [51, 100]
from itertools import chain
concatenated = chain(range(50), range(51, 100))
for i in concatenated:
    print(i)

# Create a iterator and skip 50
xr = iter(range(100))
for i in xr:
    print(i)
    if i == 49:
        next(xr)

# Simply continue in the loop if the number is 50
for i in range(100):
    if i == 50:
        continue
    print(i)

Ranges are lists in Python 2 and iterators in Python 3.

| improve this answer | |
0
for i in range(100):
    if i == 50:
        continue
    dosomething
| improve this answer | |
0

It depends on what you want to do. For example you could stick in some conditionals like this in your comprehensions:

# get the squares of each number from 1 to 9, excluding 2
myList = [i**2 for i in range(10) if i != 2]
print(myList)

# --> [0, 1, 9, 16, 25, 36, 49, 64, 81]
| improve this answer | |
0

It is time inefficient to compare each number, needlessly leading to a linear complexity. Having said that, this approach avoids any inequality checks:

import itertools

m, n = 5, 10
for i in itertools.chain(range(m), range(m + 1, n)):
    print(i)  # skips m = 5

As an aside, you woudn't want to use (*range(m), *range(m + 1, n)) even though it works because it will expand the iterables into a tuple and this is memory inefficient.


Credit: comment by njzk2, answer by Locke

| improve this answer | |
0
for i in range(0, 101):
if i != 50:
    do sth
else:
    pass
| improve this answer | |
-1

what you could do, is put an if statement around everything inside the loop that you want kept away from the 50. e.g.

for i in range(0, len(list)):
    if i != 50:
        x= listRow(list, i)
        for j in range (#0 to len(list) not including x#)
| improve this answer | |

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