Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to make a duplicate list of lists and change one element to another within the nested lists of the duplicate list but am having some trouble. How I made the duplicate list:

order = [['yhjK', 'F'], 'gap', ['bcsA', 'F'], ['bcsB', 'F'], ['bcsZ', 'F'], 'gap', ['yhjK', 'R']]
#order_1 = list(order) #this makes the duplicate list as well
order_1 = []
for x in order:
    order_1.append(x)

How I changed the elements:

for item in order_1:
    for n,i in enumerate(item):
            if i=='R':
                    item[n]='F'
            if i=='F':
                    item[n]='R'

I want to replace all the 'F' with 'R' and vice versa. This accomplishes that but the original list 'order' is changed as well. I only want the second list to be changed and can't figure out what is the problem with my code.

What I get:

order = [['yhjK', 'R'], 'gap', ['bcsA', 'R'], ['bcsB', 'R'], ['bcsZ', 'R'], 'gap', ['yhjK', 'F']]
order_1 = [['yhjK', 'R'], 'gap', ['bcsA', 'R'], ['bcsB', 'R'], ['bcsZ', 'R'], 'gap', ['yhjK', 'F']]

What I want:

order = [['yhjK', 'F'], 'gap', ['bcsA', 'F'], ['bcsB', 'F'], ['bcsZ', 'F'], 'gap', ['yhjK', 'R']]
order_1 = [['yhjK', 'R'], 'gap', ['bcsA', 'R'], ['bcsB', 'R'], ['bcsZ', 'R'], 'gap', ['yhjK', 'F']]

Thanks everyone!

share|improve this question

5 Answers 5

up vote 1 down vote accepted

What you're doing here is a shallow copy of the list, so when you change the copy, the original changes as well. What you need is deepcopy

import copy
order = [['yhjK', 'F'], 'gap', ['bcsA', 'F'], ['bcsB', 'F'], ['bcsZ', 'F'], 
'gap', ['yhjK', 'R']]
order_1 = copy.deepcopy(order)

# Now changing order_1 will not change order
order_1[1] = ['TEST LIST']
print order[1] # Prints 'gap'
print order_1[1] # Prints '['TEST LIST']
share|improve this answer
    
Thank you! This is perfect. –  Binnie Jul 3 '12 at 17:19
L = [['F' if x == 'R' else 'R' if x == 'F' else x for x in row] for row in order]
share|improve this answer
    
+1000; don't make a copy and then change it, just make the thing you want to make. –  Karl Knechtel Jul 3 '12 at 17:19
    
@KarlKnechtel, yes, but a little hard for a beginner to understand. –  Dhara Jul 3 '12 at 17:21
    
The only issue is that the 'gap' elements become ['g','a','p'] in the output. I don't know how to fix that... @KarlKnechtel I didn't think of the problem that way. But yes, that probably makes things simpler. Dhara, I am very much a beginner and was/am a bit confused with this. –  Binnie Jul 3 '12 at 18:41
    
@Elisabeth: to fix 'gap' you could [[...] if isinstance(row, list) else row for row in order] though it stratches the limits of list comprehension. btw, nested list comprehension is described in the tutorial that every beginner should read. –  J.F. Sebastian Jul 3 '12 at 18:58
import copy
order_1 = copy.deepcopy(order)

Python by default only copies references to mutable values, so changing them in one place results in them being changed everywhere. Creating a deep copy means the two instances are completely independent.

share|improve this answer
    
Exactly what I needed. Thanks. –  Binnie Jul 3 '12 at 17:19
order_1 = []
for item in order:
    temp = []
    for i in item:
        if i=="F":
            temp.append("R")
        elif i=="R"
            temp.append("F")
        else:
            temp.append(i)
    order_1.append(temp)
share|improve this answer

It seems that, as with many other languages, arrays are no more than constants (not even actual pointers although that might be different in python). Rather, The address of the first element of the array is constant. This means that if you would directly copy the array, you would only copy the address of the first element.

From your question, I understand that you want a deep copy. That means that, you also need to copy the contents of you nested arrays. You can use copy.deepcopy(x) to make a deepcopy of the array.

Check out the copy module for more in-depth information.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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