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I have implemented this algorithm:

def get_hot_pages(self, radius = 2):
    if self.page == None or self.max_pages == None: return []
    hot_pages = []
    for page in xrange(self.page - radius, self.page + radius + 1):
        if page < 0 or page >= self.max_pages : continue
        hot_pages.append(page)
    return hot_pages

But something tells me this can be implemented better. Is there a more pythonic way to do this?

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3 Answers 3

up vote 6 down vote accepted

The usual "trick" is to use max() and min() in order to set the minimum and maximum page numbers:

def get_hot_pages(self, radius = 2):
    if self.page is None or self.max_pages is None: return []
    return range(max(self.page-radius, 0), min(self.page+radius+1, self.max_pages))

The main advantages of this approach are:

  • People who know this standard procedure understand immediately what the code does (only one line to read). There is no need to read a whole loop block (which contains a filter test) in order to understand that some pages can be out of bound.
  • This is efficient: there is no test inside a loop that runs at every iteration and filters out incorrect page numbers. It is generally good to keep an eye on efficiency (even if it does not matter here, it may matter in other situations): it often happens that a solution be at the same time simple, legible and quite efficient (i.e., looking for efficiency can actually make the code more legible, because it forces one to isolate the essence of the problem at hand).
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+1, this is a better way of doing it. However, you might want to make it return a generator, rather than a list, and split out the max() and min() calls into local variables to make the function more readable. –  Lattyware Jan 8 '13 at 12:27
    
An example of what I mean. - I can't decide whether in 2.x, it would be better to return [] or iter([]). The first is the simplest, the latter consistency with the generator. –  Lattyware Jan 8 '13 at 12:33

Before anything else, a really simple improvement is to not produce a list, but make it a generator instead, which makes the function lazy (and nicer to read):

def get_hot_pages(self, radius=2):
    if self.page is None or self.max_pages is None: 
        return
    for page in xrange(self.page - radius, self.page + radius + 1):
        if 0 <= page < self.max_pages: 
            yield page

We can also reverse the logic in the loop, to remove the continue, and use Pythons better syntax for multiple comparisons on a single value, to reduce the size of the check. This all makes it more readable and efficient.

Also note the change of x == None to x is None, which is generally considered a little more readable (this works as all instances of None are the same, so checking by identity is fine). Instead of the or, we could also do None in {self.page, self.max_pages} - although for only two items, I would say the or is clearer.

I also made a few changes in whitespace to conform to PEP-8.

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Good remarks, but there is really no need to "correct" the range with a test: the range can be set correctly directly (for instance as in my answer). Performing a test in the loop is inefficient (the test is run for every page, and the loop runs even for incorrect pages), and maybe less legible (the for clause looks like page is really allowed to take the values from the specified range, until one parses the rest of the code). The philosophy I am putting forward here is: "do things right directly instead of correcting problems later". –  EOL Jan 8 '13 at 11:40
1  
@EOL You make a great point - I didn't think of doing it that way as I was thinking about modifying the original, you are right it's a better answer, +1 to yours. –  Lattyware Jan 8 '13 at 12:26
    
I'm not sure if it was your downvote, but to whomever downvoted, while I accept it's not the optimal answer, it's definitely not wrong, and a downvote doesn't seem reasonable. –  Lattyware Jan 8 '13 at 12:46

You can turn this:

hot_pages = []
for page in xrange(self.page - radius, self.page + radius + 1):
    if page < 0 or page >= self.max_pages : continue
    hot_pages.append(page)

to that:

hot_pages = filter( lambda k: k >= 0 and k < self.max_pages, xrange( self.page - radius, self.page + radius + 1 ) )

not a big deal though and a bit more difficult to read (at least in my opinion).

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As with Lattyware's solution, there is no need for a test inside the loop, and it is inefficient to test each and every page (both those that can be included, and those that can't). –  EOL Jan 8 '13 at 11:41
    
@EOL The question was not about efficiency but pythonic way. Or at least that's how I understood it. –  freakish Jan 8 '13 at 11:43
    
@freakish: Its hard for me to understand, how converting the loop to a filter and lambda makes it more Pythonic. –  Abhijit Jan 8 '13 at 11:46
    
@Abhijit 1 line instead of 4? As I said: not a big deal. –  freakish Jan 8 '13 at 11:46
    
1 line instead of 4? I thought in Python readability Counts rather than complex 1 liner counts –  Abhijit Jan 8 '13 at 11:48

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