1

I have two lists of dictionaries as:

list1 = [
    {'vehicle': 1, 'mileage': 25, 'speed': 80}, 
    {'vehicle': 2, 'mileage': 35, 'speed': 70},
    {'vehicle': 3, 'mileage': 40, 'speed': 90},
    {'vehicle': 5, 'mileage': 40, 'speed': 90}
]

list2 = [
    {'vehicle': 1, 'mileage': 35, 'speed': 80}, 
    {'vehicle': 2, 'mileage': 35, 'speed': 70},
    {'vehicle': 3, 'mileage': 40, 'speed': 80},
    {'vehicle': 4, 'mileage': 40, 'speed': 80}
]

I have to print dictionaries from list1 if vechiles of same name is on list2 and mileage and speed of corresponding vehilce is greater than or equal to that of in list2. In this example, output should be:

[{'vehicle': 1, 'mileage': 25, 'speed': 80}, 
 {'vehicle': 2, 'mileage': 35, 'speed': 70}]

Any help is highly appreciated.

1
  • What have you tried? You can nest two loops and check if the current values match your requirements. If this is true, add the value to an empty list otherwise keep going.
    – amaurs
    Apr 21 '20 at 15:22
2

You could do create a lookup dictionary to search for the corresponding matches in O(1):

list1 = [{'vehicle': 1, 'mileage': 25, 'speed': 80},
         {'vehicle': 2, 'mileage': 35, 'speed': 70},
         {'vehicle': 3, 'mileage': 40, 'speed': 90},
         {'vehicle': 5, 'mileage': 40, 'speed': 90}]

list2 = [{'vehicle': 1, 'mileage': 35, 'speed': 80},
         {'vehicle': 2, 'mileage': 35, 'speed': 70},
         {'vehicle': 3, 'mileage': 40, 'speed': 80},
         {'vehicle': 4, 'mileage': 40, 'speed': 80}]


lookup = {e['vehicle'] : e for e in list1 }

result = []
for e in list2 :
    if e['vehicle'] in lookup:
        d = lookup[e['vehicle']]
        if e['mileage'] >= d['mileage'] and e['speed'] >= d['speed']:
            result.append(d)

print(result)

Output

[{'vehicle': 1, 'mileage': 25, 'speed': 80}, {'vehicle': 2, 'mileage': 35, 'speed': 70}]

An alternative using a list comprehension:

def better(e, d, keys=('mileage', 'speed')):
    return all(e[k] >= d[k] for k in keys)


result = [lookup[e['vehicle']] for e in list2 if e['vehicle'] in lookup and better(e, lookup[e['vehicle']])]

print(result)

The overall complexity of both approaches is O(n).

0
2

I would use pandas Dataframe. Not the most effecient but very readable

import pandas as pd
df1 = pd.DataFrame(list1)
df2 = pd.DataFrame(list2)
result_df = df1[(df1.vehicle.isin(df2.vehicle)) & (df1.speed <= df2.speed) & (df1.mileage <= df2.mileage)]
result_list = result_df.to_dict('records')

print(result_list)

output:

[{'mileage': 25, 'speed': 80, 'vehicle': 1},
 {'mileage': 35, 'speed': 70, 'vehicle': 2}]
0
2

You could convert your list of dicts to nested dicts, where vehicle is the key:

list1 = [
    {"vehicle": 1, "mileage": 25, "speed": 80},
    {"vehicle": 2, "mileage": 35, "speed": 70},
    {"vehicle": 3, "mileage": 40, "speed": 90},
    {"vehicle": 5, "mileage": 40, "speed": 90},
]

list2 = [
    {"vehicle": 1, "mileage": 35, "speed": 80},
    {"vehicle": 2, "mileage": 35, "speed": 70},
    {"vehicle": 3, "mileage": 40, "speed": 80},
    {"vehicle": 4, "mileage": 40, "speed": 80},
]

dict1 = {x["vehicle"]: x for x in list1}
# {1: {'vehicle': 1, 'mileage': 25, 'speed': 80}, 2: {'vehicle': 2, 'mileage': 35, 'speed': 70}, 3: {'vehicle': 3, 'mileage': 40, 'speed': 90}, 5: {'vehicle': 5, 'mileage': 40, 'speed': 90}}

dict2 = {x["vehicle"]: x for x in list2}
# {1: {'vehicle': 1, 'mileage': 35, 'speed': 80}, 2: {'vehicle': 2, 'mileage': 35, 'speed': 70}, 3: {'vehicle': 3, 'mileage': 40, 'speed': 80}, 4: {'vehicle': 4, 'mileage': 40, 'speed': 80}}

Then take the intersection of keys and return the result as a list of dicts using a list comprehension:

result = [
    dict1[k]
    for k in dict1.keys() & dict2.keys()
    if dict2[k]["mileage"] >= dict1[k]["mileage"]
    and dict2[k]["speed"] >= dict1[k]["speed"]
]

print(result)

Output:

[{'vehicle': 1, 'mileage': 25, 'speed': 80}, {'vehicle': 2, 'mileage': 35, 'speed': 70}]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.