109

Is there any built-in methods that are part of lists that would give me the first and last index of some value, like:

verts.IndexOf(12.345)
verts.LastIndexOf(12.345)
3

10 Answers 10

159

Sequences have a method index(value) which returns index of first occurrence - in your case this would be verts.index(value).

You can run it on verts[::-1] to find out the last index. Here, this would be len(verts) - 1 - verts[::-1].index(value)

4
  • Thanks, how do you perform list[::-1]? verts[::-1]?
    – Joan Venge
    Feb 6, 2009 at 22:06
  • 5
    Btw verts[::-1] just reverses the list, right? So I have to compensate for the index, right?
    – Joan Venge
    Feb 6, 2009 at 22:29
  • 16
    sure, it'll be: len(verts) - 1 - verts[::-1].index(value) Feb 7, 2009 at 2:49
  • This can be simplified to guild[::-1][0]
    – c0dezer019
    May 7, 2021 at 19:19
40

Perhaps the two most efficient ways to find the last index:

def rindex(lst, value):
    lst.reverse()
    i = lst.index(value)
    lst.reverse()
    return len(lst) - i - 1
def rindex(lst, value):
    return len(lst) - operator.indexOf(reversed(lst), value) - 1

Both take only O(1) extra space and the two in-place reversals of the first solution are much faster than creating a reverse copy. Let's compare it with the other solutions posted previously:

def rindex(lst, value):
    return len(lst) - lst[::-1].index(value) - 1

def rindex(lst, value):
    return len(lst) - next(i for i, val in enumerate(reversed(lst)) if val == value) - 1

Benchmark results, my solutions are the red and green ones: unshuffled, full range

This is for searching a number in a list of a million numbers. The x-axis is for the location of the searched element: 0% means it's at the start of the list, 100% means it's at the end of the list. All solutions are fastest at location 100%, with the two reversed solutions taking pretty much no time for that, the double-reverse solution taking a little time, and the reverse-copy taking a lot of time.

A closer look at the right end: unshuffled, tail part

At location 100%, the reverse-copy solution and the double-reverse solution spend all their time on the reversals (index() is instant), so we see that the two in-place reversals are about seven times as fast as creating the reverse copy.

The above was with lst = list(range(1_000_000, 2_000_001)), which pretty much creates the int objects sequentially in memory, which is extremely cache-friendly. Let's do it again after shuffling the list with random.shuffle(lst) (probably less realistic, but interesting):

shuffled list, full range

shuffled list, tail part

All got a lot slower, as expected. The reverse-copy solution suffers the most, at 100% it now takes about 32 times (!) as long as the double-reverse solution. And the enumerate-solution is now second-fastest only after location 98%.

Overall I like the operator.indexOf solution best, as it's the fastest one for the last half or quarter of all locations, which are perhaps the more interesting locations if you're actually doing rindex for something. And it's only a bit slower than the double-reverse solution in earlier locations.

All benchmarks done with CPython 3.9.0 64-bit on Windows 10 Pro 1903 64-bit.

5
  • Be aware that reverse; index; reverse is not thread-safe. May 24, 2021 at 9:16
  • 1
    What should be operator? Do you have a little exmaple please?
    – TornaxO7
    May 17, 2022 at 15:18
  • 1
    @TornaxO7 It's the operator module from Python's standard library. May 23, 2022 at 2:00
  • Upvoting for a very high effort answer! May 31, 2022 at 9:14
  • Thank you for the detailed information. Could I know of a site or information about making the above graphs? @StefanPochmann
    – horoyoi o
    Dec 15, 2022 at 4:22
32

If you are searching for the index of the last occurrence of myvalue in mylist:

len(mylist) - mylist[::-1].index(myvalue) - 1
1
  • 1
    This will throw a ValueError if myvalue is not present in mylist. Mar 13, 2019 at 10:38
13

As a small helper function:

def rindex(mylist, myvalue):
    return len(mylist) - mylist[::-1].index(myvalue) - 1
8

Python lists have the index() method, which you can use to find the position of the first occurrence of an item in a list. Note that list.index() raises ValueError when the item is not present in the list, so you may need to wrap it in try/except:

try:
    idx = lst.index(value)
except ValueError:
    idx = None

To find the position of the last occurrence of an item in a list efficiently (i.e. without creating a reversed intermediate list) you can use this function:

def rindex(lst, value):
    for i, v in enumerate(reversed(lst)):
        if v == value:
            return len(lst) - i - 1  # return the index in the original list
    return None    

print(rindex([1, 2, 3], 3))     # 2
print(rindex([3, 2, 1, 3], 3))  # 3
print(rindex([3, 2, 1, 3], 4))  # None
0
4

Using max + enumerate to get last element occurrence

rindex = max(i for i, v in enumerate(your_list) if v == your_value)
1
  • 1
    so simple and works well
    – horoyoi o
    Dec 15, 2022 at 4:11
1

The right solution is the one that perform a "C level reversed loop match".

In pseudo C code:


for (int i = len(list) -1; i >= 0; i--)
    if list[i] == value:
        return i
raise NotFound

In Python, the right solution should be:

def rindex(lst, value):
    # reversed is a buitin backward iterator
    # operator.indexOf can handle this iterator
    # if value is not Found it raises
    #    ValueError: sequence.index(x): x not in sequence
    _ = operator.indexOf(reversed(lst), value)
    # we must fix the resersed index
    return len(lst) - _ - 1

But it would be better to have a reversed index builtin.

1

This method can be more optimized than above:

def rindex(iterable, value):
    try:
        return len(iterable) - next(i for i, val in enumerate(reversed(iterable)) if val == value) - 1
    except StopIteration:
        raise ValueError
1
  • 6
    "Optimized" in the sense of being more space-efficient, but it's about 50% slower.
    – dubiousjim
    Jun 26, 2017 at 9:43
0
s.index(x[, i[, j]])

index of the first occurrence of x in s (at or after index i and before index j)

0

How has nobody suggested to iterate in reverse rather than reversing the array? It's still O(n) because the last occurrence could be at the beginning, but it kind of has to be faster than reversing the list first, no?

def rindex(arr, value):
    for i in range(len(arr)-1, -1, -1):
        if arr[i] == value:
            return i
    return -1

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