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I'm often met with an analog of the following problem, and have had trouble writing clean code to solve it. Usually, I have something involving a temporary variable and a for loop, but is there a more elegant way?

Suppose I have a list of booleans or values which evaluate to booleans:

[True, False, True, False, False, True]

How would I map this to a list of values, with the index of the previous True, inclusive?

[0, 0, 2, 2, 2, 5]

[EDIT] Have tried something along the lines of:

def example(lst):
    rst, tmp = [], None
    for i in range(len(lst)):
        if lst[i]:
            tmp = i
        rst.append(tmp)   
    return rst

Assuming the first element of the list is always True.

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I'm not sure I understand your question. When you say map what do you mean? And what do you mean by the index of the previous True inclusive? –  Mike Jan 3 '13 at 4:05
1  
Could you show what you have tried (e.g the looping method) –  enginefree Jan 3 '13 at 4:06
    
It returns a list of values, which represent the index of the previous "True" in the original list. In the example, there is one True in the beginning, and then a False. The value of these two elements in the returned list are 0 (0th index in the original list was True). –  zhuyxn Jan 3 '13 at 4:07
    
And -when the looping method was not what you wanted - why it was not what you wanted? –  Nemelis Jan 3 '13 at 4:08
2  
What happens when the first element is False? –  MAK Jan 3 '13 at 4:09
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3 Answers

While it still uses a for loop and a temporary variable, it's still relatively clean, I think. If you want, you could replace the yield and append to a list and return that.

def get_indexes(booleans):
    previous = 0
    for index, b in enumerate(booleans):
        if b:
            previous = index
        yield previous

>>> b = [True, False, True, False, False, True]
>>> list(get_indexes(b))
[0, 0, 2, 2, 2, 5]

This is even shorter (although potentially less readable):

def get_indexes(booleans):
    previous = 0
    for index, b in enumerate(booleans):
        previous = index if b else previous
        yield previous
share|improve this answer
    
If this is what the OP wants I give you a +1, but currently I can't say if it is what he/she wants without he/she giving more info. (btw I'm not the one who gave a -1 to this post)/*edit*/Looking at the edit of the OP's post it is what the OP wants. –  Nemelis Jan 3 '13 at 4:12
1  
for the second formula you dont need b == True, the if statements checks if the condition is true, and b automatically is read as True –  Volatility Jan 3 '13 at 4:22
    
@Michael0x2a: I think your 2nd answer is a nice example of the Python ternary operation. But you can leave out the True –  Nemelis Jan 3 '13 at 4:22
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Try this:

index = 0
bools = [True, False, True, False, False, True]
result = []
for i in range(len(bools)):
    index = i if bools[i] else index
    result.append(index)

Not tested, but should work.

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3  
Just ran it. The result was [0, 0, 2, 0, 0, 5] –  Mike Jan 3 '13 at 4:12
    
Oops, looks like i forgot to update index when needed... working on it –  Volatility Jan 3 '13 at 4:13
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[i if b else i-lst[i::-1].index(True) for i,b in enumerate(lst)]
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