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So I have a script like this

for key, Value in mydictionary.iteritems():
    if 'Mammal' in Value[1]: 
    #because the value is a list of 2 items and I want to get at the second one
        Value[1] = Value[1].strip('Mammal')

This code effectively removes Mammal from the beginning of the second item in the Value list. Now I want to make this nicer python looking with list comprehension so I came up with this but obviously is wrong.... Any help?

Value[1] = [Value[1].strip('Mammal') for Key, Value in mydictionary.iteritems() if 'Mammal' in Value[1] ]

Also, on the same lines, a list comprehension to list all the keys in this dictionary. I am having a hard time coming up with that one.

I came up with:

for key, Value in mydictionary.iteritems():
Templist.append(key)

but as a list comprehension I am thinking....but it doesn't work :(

alist = [key for Key, Value in mydictionary.iteritems()]
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2  
I recommend against CamelCase variable names and sticking to PEP8 ... –  hochl Oct 22 '12 at 11:49
    
Why don't you simply use the iterkeys method? Actually iterating on a dictionary will iterate on its keys. –  Pedro Romano Oct 22 '12 at 11:49
    
To get a list of keys you don't need a list comprehension. Use myDict.keys() –  Matt Oct 22 '12 at 11:50
    
Do you really understand what do you want to do? If "This code effectively removes Mammal from the beginning of the second item in the Value list.", And the Value list is a value in a dictionary, WHY would you need list comprehension here? oO –  BasicWolf Oct 22 '12 at 11:50
1  
s.strip("Mammal") doesn't do what you think it does. For example, "Malamman".strip("Mammal") == "n", and so you could strip more characters than you want to. –  DSM Oct 22 '12 at 12:03

4 Answers 4

up vote 1 down vote accepted
mydictionary = {
    1: [4, "ABC Mammal"],
    2: [8, "Mammal 123"],
    3: [15, "Bird (Not a Mammal)"]
}

mydictionary = {key: ([value[0], value[1].strip('Mammal')] if 'Mammal' in value[1] else value) for key, value in mydictionary.iteritems()}
print mydictionary

Output:

{1: [4, 'ABC '], 2: [8, ' 123'], 3: [15, 'Bird (Not a Mammal)']}

Although I wouldn't call this objectively "nicer looking", so the iterative method may be preferable.

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You are actually creating a new dictionary - seem to be a wasteful approach. –  volcano Oct 22 '12 at 12:01
    
This worked!! Thank you so much! I agree with you that the iterative way, especially for a newbee like me at least is more comprehensible whilst running code in my head. But I have to learn this anyways so thanks! –  StudentOfScience Oct 22 '12 at 12:05
    
Also yes, it does create a new dictionary. The iterative way is at least for that matter alone better on the memory. But unless there is a way to do this without creating a new list, then this works for what I needed. How to make a list comprehension (I guess a dictionary comprehension) from a loop. –  StudentOfScience Oct 22 '12 at 12:07

List comprehension creates a new list

If you were able to use strip(), then Value[1] is a string - not a list

You may do 2nd part just with dictionary method keys() - both your attempts are redundant.

alist = mydictionary.keys()
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you are right, Value[1] is a string, in a list called Value. But I don't think I ever said Value[1] is a list. –  StudentOfScience Oct 22 '12 at 11:58
mydict = {'a':['Mammal','BC','CD'],
        'b':['AB','XY','YZ'],
        'c':['Mammal','GG','FD'],}

print [x for x,y in mydict.items() if y[0]=='Mammal']
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You should not use a list comprehension solely to create side effects. You can, but it is considered bad practice, and you should stick with the for loop.

Anyway, since you are working with a dictionary, you may be looking for a dict comprehension:

mydictionary = {'foo': ['unknown', 'Mammal is great'],
                'bar': ['something', 'dont touch me']}

mydictionary = {k: [a, b.replace('Mammal', '', 1)] for k, [a, b] in mydictionary.iteritems() if b.startswith('Mammal')}

Also note that using if you use dict comprehension, you create a new dictionary instead of replacing the values in your old one.


...
Value[1] = Value[1].strip('Mammal')
...

This code effectively removes Mammal from the beginning of the second item in the Value list.

No, it does not. It replaces all occurrences of M, a, m and l from the beginning and the end of that item. Better use the replace method to replace the first occurrence of Mammal with an empty string.


alist = [key for Key, Value in mydictionary.iteritems()]

You have a typo here. It should read:

alist = [key for key, value in mydictionary.iteritems()]

or just

alist = mydictionary.keys()
share|improve this answer
    
@PierreGM Nice to have a typo in the word typo :-) –  sloth Oct 22 '12 at 12:06
    
"since if your string does not contain Mammal, nothing would happen." This isn't true -- .strip() removes the given characters, not the given string. –  DSM Oct 22 '12 at 12:08
    
This updates my original dictionary without creating a new one and it also works; especially if you don't want to keep your old dictionary (why would you?...case by case i guess). THanks so much! –  StudentOfScience Oct 22 '12 at 12:10
    
@DSM Stupid me; thanks for pointing out. –  sloth Oct 22 '12 at 12:14
    
@Mr.Steak very 'meta' indeed –  Pierre GM Oct 22 '12 at 12:21

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