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I have a dictionary as follows:

{'A':0,'C':0,'G':0,'T':0}

I want to create an array with many dictionaries in it, as follows:

[{'A':0,'C':0,'G':0,'T':0},{'A':0,'C':0,'G':0,'T':0},{'A':0,'C':0,'G':0,'T':0},...]

This is my code:

weightMatrix = []
for k in range(motifWidth):
    weightMatrix[k] = {'A':0,'C':0,'G':0,'T':0}

But of course it isn't working. Can someone give me a hint? Thanks.

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2  
+1 because I found this question using generic search terms, yet for precisely the same purpose – bedeabc Feb 16 '14 at 22:25

Dictionary:

dict = {'a':'a','b':'b','c':'c'}

array of dictionary

arr = (dict,dict,dict)
arr
({'a': 'a', 'c': 'c', 'b': 'b'}, {'a': 'a', 'c': 'c', 'b': 'b'}, {'a': 'a', 'c': 'c', 'b': 'b'})
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3  
First, you should never use dict as a variable name, and second, you're creating a tuple (not a list) that contains the same dictionary three times, so every change you make to one of them affects all the others. – Tim Pietzcker Dec 8 '14 at 10:26

This is how I did it and it works:

dictlist = [dict() for x in range(n)]

It gives you a list of n empty dictionaries.

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1  
that wasn't what he asked... and it was already answered 2 years ago – yprez Nov 25 '12 at 11:21
1  
sorry, but then maybe he should use a different title question... – user1850980 Dec 6 '12 at 10:31
weightMatrix = [{'A':0,'C':0,'G':0,'T':0} for k in range(motifWidth)]
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2  
+1 because list comprehension is the way to go (more readable, elegant and concise than a loop of .append calls), even though the k in motifWidth in the original answer was an obvious, horrible bug (I've edited the Answer to fix that!-). – Alex Martelli Mar 7 '10 at 20:21
    
Awesome, that works. Thanks! – Adrian Randall Mar 7 '10 at 21:37

I assume that motifWidth contains an integer.

In Python, lists do not change size unless you tell them to. Hence, Python throws an exception when you try to change an element that isn't there. I believe you want:

weightMatrix = []
for k in range(motifWidth):
    weightMatrix.append({'A':0,'C':0,'G':0,'T':0})

For what it's worth, when asking questions in the future, it would help if you included the stack trace showing the error that you're getting rather than just saying "it isn't working". That would help us directly figure out the cause of the problem, rather than trying to puzzle it out from your code.

Hope that helps!

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+1 I'd add the hint "Beware of matrix = [{'A':0}, ...] * motifWidth as this creates a list of items referencing the same object. – Johannes Charra Mar 7 '10 at 20:18

Use

weightMatrix = []
for k in range(motifWidth):
    weightMatrix.append({'A':0,'C':0,'G':0,'T':0})
share|improve this answer

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