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I have a list of dicts and I wants to get the elements at index `0,1,list/2,(list/2+1),2,3,....

As an example i have following list of dicts.

test = [{'aa':0},{'ab':0},{'ba':0},{'bb':0},{'ca':0},{'cb':0},{'da':0},{'db':0},{'ea':0},{'eb':0},{'fa':0},{'fb':0}]
output: [{'aa':0},{'ab':0},{'da':0},{'db':0},{'ba':0},{'bb':0},{'ea':0},{'eb':0},{'ca':0},{'cb':0},{'fa':0},{'fb':0}]

Is there an easy way to do this? If is do sommeting like this.

[item for sublist in zip(test[:middel], test[middel:]) for item in sublist]

I get following output.

[{'aa':0},
 {'da':0},
 {'ab':0},
 {'db':0},
 {'ba':0},
 {'ea':0},
 {'bb':0},
 {'eb':0},
 {'ca':0},
 {'fa':0},
 {'cb':0},
 {'fb':0}]

if I split test in 2 (in the middle)

list1 = [{'aa': 0}, {'ab': 0}, {'ba': 0}, {'bb': 0}, {'ca': 0}, {'cb': 0}]
list2 = [{'da': 0}, {'db': 0}, {'ea': 0}, {'eb': 0}, {'fa': 0}, {'fb': 0}]

I wants a new list with the first 2 dicts of list1, then the 2 first of list2, then the middle 2 of list1, then the middle 2 of list2 then the last 2 of list1, then the last 2 of list2

The real dicts does look like this

{'datasource': 'InfluxDB', 'fieldConfig': {'defaults': {'mappings': [], 'thresholds': {'mode': 'absolute', 'steps': [{'color': 'yellow', 'value': None}, {'color': 'green', 'value': 50}, {'color': 'red', 'value': 400}]}, 'unit': 'kwatt'}, 'overrides': []}, 'gridPos': {'h': 5, 'w': 4, 'x': 14, 'y': 14}, 'id': 104, 'options': {'colorMode': 'background', 'graphMode': 'none', 'justifyMode': 'auto', 'orientation': 'horizontal', 'reduceOptions': {'calcs': ['lastNotNull'], 'fields': '', 'values': False}, 'text': {'titleSize': 16, 'valueSize': 16}, 'textMode': 'auto'}, 'pluginVersion': '8.1.1', 'targets': [{'alias': 'Gevraagd vermogen', 'groupBy': [{'params': ['$__interval'], 'type': 'time'}, {'params': ['null'], 'type': 'fill'}], 'orderByTime': 'ASC', 'policy': 'default', 'refId': 'B', 'resultFormat': 'time_series', 'select': [[{'params': ['GV'], 'type': 'field'}, {'params': [], 'type': 'last'}, {'params': [' / 10'], 'type': 'math'}]], 'tags': []}, {'alias': 'Geleverd vermogen', 'groupBy': [{'params': ['$__interval'], 'type': 'time'}, {'params': ['null'], 'type': 'fill'}], 'orderByTime': 'ASC', 'policy': 'default', 'refId': 'A', 'resultFormat': 'time_series', 'select': [[{'params': ['Actief vermogen'], 'type': 'field'}, {'params': [], 'type': 'last'}]], 'tags': []}], 'timeFrom': None, 'timeShift': None, 'type': 'stat'}
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  • 2
    I don't understand, is test the input? what is the expected output?
    – mozway
    Commented Jan 6, 2022 at 15:02
  • Dicts have no indexes
    – DeepSpace
    Commented Jan 6, 2022 at 15:02
  • @DeepSpace this is a list of dictionaries ;)
    – mozway
    Commented Jan 6, 2022 at 15:03
  • test is input and output: is expected output Commented Jan 6, 2022 at 15:05
  • 1
    So you want to relocate the back half of the list after index 1? What happens after index 3? What size limitations are there on the list? Why do you need dictionaries to represent this? Commented Jan 6, 2022 at 15:06

3 Answers 3

1

You example is a bit complex and can be simplified to:

Change this input:

i = [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11]

into this output:

o = [0, 1, 6, 7, 2, 3, 8, 9, 4, 5, 10, 11]

using the algorithm you describe.

This can be achieved easily using iterators:

def reorder(l, by=2):
    half = len(l)//2
    a, b = iter(l[:half]), iter(l[half:])
    out = []
    for i in range(len(l)//(2*by)):
        for i in range(by):
            out.append(next(a))
        for i in range(by):
            out.append(next(b))
    return out
    
o = reorder(i)

on the provided data:

>>> reorder(test)
[{'aa': 0},
 {'ab': 0},
 {'da': 0},
 {'db': 0},
 {'ba': 0},
 {'bb': 0},
 {'ea': 0},
 {'eb': 0},
 {'ca': 0},
 {'cb': 0},
 {'fa': 0},
 {'fb': 0}]
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  • This works for me. Thanks @mozway Commented Jan 6, 2022 at 15:39
  • I think it doesn't work with lists of an odd lenght. Commented Jan 6, 2022 at 15:45
  • @TheProgrammer indeed, your algorithm requires a multiple of by*2, what would be the output for an input of non-multiple length?
    – mozway
    Commented Jan 6, 2022 at 15:47
  • if the list is non-multiple the 2 values in the middle gets seperated. Commented Jan 6, 2022 at 15:52
  • Can you provide the exact input/output for a linear integer range as in my answer? you have actually 4 cases to handle for lenghts 12 (the one already solved), 13, 14, 15 ;)
    – mozway
    Commented Jan 6, 2022 at 15:53
0
new_list = []
l_2 = int(len(test) / 2)
for one, two, mid_one, mid_two in zip(test[:l_2:2], test[1:l_2:2], test[l_2::2], test[1 + l_2 :: 2]):
    new_list.append(one)
    new_list.append(two)
    new_list.append(mid_one)
    new_list.append(mid_two)
print(new_list)
0

I think this can be a solution that avoids a for loop:

from itertools import pairwise

inputs = [1, 2, 3, 4, 5, 6, 7, 8]
pair = list(pairwise(inputs)) # -> [(1, 2), (2, 3), (3, 4), ...]
del pair[1::2] # remove [(2, 3), (4, 5), ...]
first, second = pair[:len(pair)//2], pair[len(pair)//2:] # first = [(1, 2), (3, 4)], second = [(5, 6), (7, 8)]

def merge_tuple(x):
    return x[0] + x[1]

output = list(map(merge_tuple, zip(first, second))) # -> [(1, 2, 5, 6), (3, 4, 7, 8)]
output = output[0] + output[1]

If your python version is too old to have pairwise you can use this

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