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I have the following code:

new_index = index + offset
if new_index < 0:
    new_index = 0
if new_index >= len(mylist):
    new_index = len(mylist) - 1
return mylist[new_index]

Basically, I calculate a new index and use that to find some element from a list. In order to make sure the index is inside the bounds of the list, I needed to write those 2 if statements spread into 4 lines. That's quite verbose, a bit ugly... Dare I say, it's quite un-pythonic.

Is there any other simpler and more compact solution? (and more pythonic)

Yes, i know I can use if else in one line, but it is not readable:

new_index = 0 if new_index < 0 else len(mylist) - 1 if new_index >= len(mylist) else new_index

I also know I can chain max() and min() together. It's more compact, but I feel it's kinda obscure, more difficult to find bugs if I type it wrong. In other words, I don't find it very straightforward.

new_index = max(0, min(new_index, len(mylist)-1))
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If it feels "kinda obscure", make a function out of it? –  Santa Nov 3 '10 at 23:40
    
Yeah, I can write a function, but that's not the point. The question is how to implement that (either inline or in a function). –  Denilson Sá Nov 5 '10 at 12:15

9 Answers 9

up vote 21 down vote accepted

This is pretty clear, actually. Many folks learn it quickly. You can use a comment to help them.

new_index = max(0, min(new_index, len(mylist)-1))
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5  
Although I feel it isn't as pythonic as it should be, I also feel this is the best solution we have now. –  Denilson Sá Nov 13 '10 at 1:14
sorted((minval, value, maxval))[1]

for example:

>>> minval=3
>>> maxval=7
>>> for value in range(10):
...   print sorted((minval, value, maxval))[1]
... 
3
3
3
3
4
5
6
7
7
7
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2  
+1 for creative usage of sorted() built-in. Very compact, but it is just a little bit obscure. Anyway, it's always nice to see other creative solutions! –  Denilson Sá Nov 4 '10 at 0:06
2  
Very creative, and actually about as fast as the min(max()) construction. Very slightly faster in the case that the number is in the range and no swaps are needed. –  kindall Nov 4 '10 at 0:35

See numpy.clip:

index = numpy.clip(index, 0, len(my_list) - 1)
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~~~ exactly! ~~~ –  wim May 24 '11 at 0:23
    
The docs say the first parameter of clip is a, an “array containing elements to clip”. So you would have to write numpy.clip([index], …, not numpy.clip(index, …. –  Rory O'Kane Aug 27 '13 at 21:20
3  
@RoryO'Kane: Did you try it? –  Neil G Aug 28 '13 at 0:33

many interesting answers here, all about the same, except... which one's faster?

import numpy
np_clip = numpy.clip
mm_clip = lambda x, l, u: max(l, min(u, x))
s_clip = lambda x, l, u: sorted((x, l, u))[1]
py_clip = lambda x, l, u: l if x < l else u if x > u else x
>>> import random
>>> rrange = random.randrange
>>> %timeit mm_clip(rrange(100), 10, 90)
1000000 loops, best of 3: 1.02 µs per loop
>>> %timeit s_clip(rrange(100), 10, 90)
1000000 loops, best of 3: 1.21 µs per loop
>>> %timeit np_clip(rrange(100), 10, 90)
100000 loops, best of 3: 6.12 µs per loop
>>> %timeit py_clip(rrange(100), 10, 90)
1000000 loops, best of 3: 783 ns per loop

paxdiablo has it!, use plain ol' python. The numpy version is, perhaps not surprisingly, the slowest of the lot. Probably because it's looking for arrays, where the other versions just order their arguments.

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Whatever happened to my beloved readable Python language? :-)

Seriously, just make it a function:

def addInRange (val, add, minval, maxval):
    newval = val + add
    if newval < minval: return minval
    if newval > maxval: return maxval
    return newval

then just call it with something like:

val = addInRange (val, 7, 0, 42)

Or a simpler, more flexible, solution where you do the calculation yourself:

def restrict (val, minval, maxval):
    if val < minval: return minval
    if val > maxval: return maxval
    return val

x = restrict (x+10, 0, 42)

If you wanted to, you could even make the min/max a list so it looks more "mathematically pure":

x = restrict (val+7, [0, 42])
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4  
Putting it in a function is fine (and advised, if you're doing it a lot), but I think min and max are much clearer than a bunch of conditionals. (I don't know what add is for--just say clamp(val + 7, 0, 42).) –  Glenn Maynard Nov 3 '10 at 23:40

Why not write your own clamp() function taking three arguments: value, min, and max?

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Chaining max() and min() together is the normal idiom I've seen. If you find it hard to read, write a helper function to encapsulate the operation:

def clamp(minimum, x, maximum):
    return max(minimum, min(x, maximum))
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If your code seems too unwieldy, a function might help:

def clamp(minvalue, value, maxvalue):
    return max(minvalue, min(value, maxvalue))

new_index = clamp(0, new_index, len(mylist)-1)
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Avoid writing functions for such small tasks, unless you apply them often, as it will clutter up your code.

for individual values:

min(clamp_max, max(clamp_min, value))

for lists of values:

map(lambda x: min(clamp_max, max(clamp_min, x)), values)
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