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Say that I have a list that looks something like the this :

MyList = [1,2,3,4,5,"z","x","c","v","b"]

Now the users inputs : "5z1b3". How would you replace each int/str with its location in the list. I'm thinking of using something like this:

for x in MyList.... if located in list, replace with letter/number with its location.

Not entirely sure how to do it though. Help would be much appreciated.

edit::::: It's something I'm working on and I must use both ints and strs in the list. Also I lied about the output I need. Thanks for mentioning it avarnert. commas between each letter/number in the output would make it work for me. Any ideas how to do it ?

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I don't understand your question. Could you please post the expected output for the given inputs? Also, what is the list in your pseudocode? – inspectorG4dget Sep 16 '13 at 21:36
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Note that the character "5" does not exist anywhere in your list. The fact that the number 5 does is irrelevant; "5" != 5 in Python. – abarnert Sep 16 '13 at 21:43
    
Input would be: 5z1b3, no brackets. I'm expecting the output to be: 45092 – dkentre Sep 16 '13 at 21:49
    
So if MyList had one more element in it, like adding "a" at the end, and the input were 5z1a3, you'd expect 450102? Or maybe 450A2 in hex or something? – abarnert Sep 16 '13 at 21:52
1  
I really doubt you need both ints and strings. It sounds like you'd want '5' instead of 5. – user2357112 Sep 16 '13 at 22:02

Use a list comprehension:

[MyList.index(c) for c in inputstring]

This'll have to scan through MyList for each entry; you could optimize that quite a bit by using a dictionary indexing from character to position; this has the added advantage we can ensure we only have strings as well:

index = {str(c): i for i, c in enumerate(MyList)}
[index[c] for c in inputstring]

If you then need a formatted string, turn the indices to strings and join the final output:

index = {str(c): str(i) for i, c in enumerate(MyList)}
','.join([index[c] for c in inputstring])
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I can see this breaking for multiple occurrences of some c – inspectorG4dget Sep 16 '13 at 21:37
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@inspectorG4dget: and what would the expected behaviour be in that case? – Martijn Pieters Sep 16 '13 at 21:38
    
No, since the dict will overwrite to the last occurrence. I would go with list/tuple values that hold all occurrence indices. Then again, I don't really know what OP is asking for - the question is quite underspecified – inspectorG4dget Sep 16 '13 at 21:39
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@inspectorG4dget: But the OP asked for the index in the list, not a list of all of them. His sample doesn't have any duplicates. If you give him [3] when his later code is expecting 3, it's going to break that later code. And even worse if you give him [3, 8]. – abarnert Sep 16 '13 at 21:42
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@inspectorG4dget: "Also I lied about the output I need… between each letter/number in the output would make it work for me." So it's ','.join(…). – abarnert Sep 16 '13 at 22:01

I would go about using the list.index() method. See below for example:

MyList = [MyList.index(chr) for chr in user_input]

EDIT: This however assumes that each character from the user input will be found in MyList, and also that each character in MyList will appear only once.

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You're right, it does! Editing answer now. – Atra Azami Sep 16 '13 at 21:42

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