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Assign a list variable to a new variable results in two variables with the SAME list. Why.
Why this code results in appending a value to list a? So print(a) function outputs [2,4,6,8,5], while 5 was appended to list b? a =[2,4,6,8] b = a b.append(5) print(a)
5 Antworten
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I explain it in detail here (meant for reading - run it for seeing the examples):
https://code.sololearn.com/c89ejW97QsTN/?ref=app
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PholaX, yeah, that then becomes a practical problem:
How can you write that function that it's the least likely to do damage?
Handing over the object itself (the reference to it) gives the function quite a bit of power.
So often it can be better to not hand over the... let's say list, but just have the function return the values *for* the list.
Or, if a list has to be worked on, let the function work on a copy of the list.
Do you have an example in mind? Might be interesting to consider the options.
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Thank you, that was really helpful.
So in Python, names of variables are just references to data in memory and by simple assignment we only get a new reference with another name. Therefore to create a new... hmm... "container" in memory we must explicitly say we want a new "object" using the constructor (or by assigning a new unique value).
Right?
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PholaX, exactly.
At least with mutable objects like lists and such we always need to know if we are refering to a similar object or that very object.
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That's pretty hard, for example, when you have to pass a list as an argument to a function... But I also can see how it can be useful.
Thank you again.