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I want to build a circular file buffer, in python, to hold file names (strings). The buffer should have the following properties.

  • The size of the buffer is the sum of the sizes of the files whose names are stored in the buffer. The buffer will have a maximum permitted size.
  • When a new file is added, if the buffer size is less than the maximum permitted size, that file name string is added. Else, the oldest modified file is pushed out and the new one is added. If the newly added file is older than all the files already present in the buffer, nothing takes place.

Is it possible to extend deque for such a purpose?

Or should I write it from scratch? Is there any design ideas that I can use for this purpose?

thanks

suresh

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1  
A deque does have a maxlen property, which automatically discards objects from the other end of the queue. –  Darthfett Apr 16 '12 at 2:04
    
Are you planning on modifying these files during the lifespan of this list (i.e. the 'oldest modified file' could become the 'newest modified file')? Also, when you add a file that is 'older than all the files already present in the buffer', does it decrease the number of files in the queue or simply ignore the file? –  Darthfett Apr 16 '12 at 2:11
1  
Do you mean the max size should depend on the length of the filenames? The number of filenames? The size of the files the filenames refer to? –  agf Apr 16 '12 at 2:38
    
@Darthfett I am planning to modify these files during the lifespan. Yea, the oldest can become the newest. When a file which is older than all the files already, I dont want any action to take place. Hope I clarified it. –  suresh Apr 16 '12 at 6:41
    
@agf the length of the filename has no role here. The size is the size of the files, the filenames referring to. –  suresh Apr 16 '12 at 6:42

2 Answers 2

up vote 4 down vote accepted

OK, I believe that Raymond Hettinger's interpretation of your question is correct, and your comment has clarified that you're not concerned with the length of the queue, but rather with the sum of all the filesizes. That makes a lot more sense, and I'm glad I finally understand what you mean. With that in mind, here's a simple implementation based on heapq that I believe satisfies all your stated requirements. Use it by putting (timestamp, filename, filesize) tuples on the queue, and note that when you get an item from the queue, it will be the oldest file (i.e. the file with the smallest timestamp.)

import heapq

class FilenameQueue(object):
    def __init__(self, times_sizes_names, maxsize):
        self.maxsize = maxsize
        self.size = sum(s for t, s, n in times_sizes_names)
        self.files = list(times_sizes_names)
        heapq.heapify(self.files)
        while self.size > self.maxsize:
            self.get()
    def __len__(self):
        return len(self.files)
    def put(self, time_size_name):
        self.size += time_size_name[1]
        if self.size < self.maxsize:
            heapq.heappush(self.files, time_size_name)
        else:
            time_size_name = heapq.heappushpop(self.files, time_size_name)
            self.size -= time_size_name[1]
    def get(self):
        time_size_name = heapq.heappop(self.files)
        self.size -= time_size_name[1]
        return time_size_name

I added a __len__ method so that you can test the queue before getting from it. Here's a usage example:

>>> f = FilenameQueue(((22, 33, 'f1'), (44, 55, 'f2'), (33, 22, 'f3')), 150)
>>> while f:
...     f.get()
... 
(22, 33, 'f1')
(33, 22, 'f3')
(44, 55, 'f2')
>>> f = FilenameQueue(((22, 33, 'f1'), (44, 55, 'f2'), (33, 22, 'f3')), 150)
>>> f.put((55, 66, 'f4'))
>>> while f:
...     f.get()
... 
(33, 22, 'f3')
(44, 55, 'f2')
(55, 66, 'f4')

See my edit history for a completely different solution involving Queue.PriorityQueue that is suboptimal. I forgot that maxsize enforces the limit by blocking, not by discarding elements. That's not so useful!

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Except he wants it to have a maxlen in terms of the the sum of their lengths, not number of filenames, so you'd have to implement it manually. And you'll end up with O(n) removals because the deque won't be sorted by priority. You definitely need some kind of queue for this. –  agf Apr 16 '12 at 2:30
    
@agf, I'm assuming he was mistaken to want the maxlen to be the sum of the filenames' lengths. I can't imagine what the point of that would be. And your second point is the reason I mentioned PriorityQueues. –  senderle Apr 16 '12 at 2:32
    
Nice edit. You're right, that really doesn't make sense. My new guess -- he meant the size of the files referred to by the filenames. –  agf Apr 16 '12 at 2:36
    
@agf, thanks. And I'm starting to realize that I misread "oldest" in the original question -- he didn't mean "first in," did he? Your comment makes more sense to me now... –  senderle Apr 16 '12 at 3:05
    
Unless someone needs locks for a multi-threaded program, heapq is better than Queue.PriorityQueue. –  Raymond Hettinger Apr 16 '12 at 3:08

If I'm reading your question correctly, you want a sequence of filenames for files up to a given maximum size. If new files get added that exceed the maximum, you want to forget the oldest.

This simple deque based class should take care of it nicely:

from collections import deque

class FileDeque(object):
    'FIFO queue of files upto a given total size'

    def __init__(self, maxsize):
        self.maxsize = maxsize
        self.d = deque()
        self.sizes = dict()
        self.currsize = 0

    def append(self, filename, filesize):
        'Add a new file to the FileDeque'
        self.d.append(filename)
        self.sizes[filename] = filesize
        self.currsize += filesize
        while self.currsize > self.maxsize and self.d:
            oldfilename = self.d.popleft()
            oldfilesize = self.sizes.pop(oldfilename)
            self.currsize -= oldfilesize

    def __iter__(self):
        'List files oldest to newest'
        return iter(self.d)

A sample session looks like this:

>>> f = FileDeque(maxsize=10000)
>>> f.append('raptors.txt', 2500)
>>> f.append('rexes.txt', 4200)
>>> list(f)
['raptors.txt', 'rexes.txt']
>>> f.append('stegos.txt', 5000)
>>> list(f)
['rexes.txt', 'stegos.txt']
>>> f.append('brontos.txt', 500)
>>> list(f)
['rexes.txt', 'stegos.txt', 'brontos.txt']
>>> f.append('dactyls.txt', 4000)
>>> list(f)
['stegos.txt', 'brontos.txt', 'dactyls.txt']
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Except I don't think he wants FIFO, he wants min priority on last modified time. –  agf Apr 16 '12 at 3:06

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