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I'm writing an app that appends lines to a the same file from multiple threads.

I have a problem in which some lines are appended without a new line.

Any solution for this?

class PathThread(threading.Thread):
    def __init__(self, queue):
        threading.Thread.__init__(self)
        self.queue = queue

    def printfiles(self, p):
        for path, dirs, files in os.walk(p):
            for f in files:
                print(f, file=output)

    def run(self):
        while True:
            path = self.queue.get()
            self.printfiles(path)
            self.queue.task_done()


pathqueue = Queue.Queue()
paths = getThisFromSomeWhere()

output = codecs.open('file', 'a')

# spawn threads
for i in range(0, 5):
    t = PathThread(pathqueue)
    t.setDaemon(True)
    t.start()

# add paths to queue
for path in paths:
    pathqueue.put(path)

# wait for queue to get empty
pathqueue.join()
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3  
Post some code, that would help. –  Ihor Kaharlichenko Aug 16 '12 at 9:10
2  
append a new line. –  Kuf Aug 16 '12 at 9:11
    
Sounds like impossibru. –  plaes Aug 16 '12 at 9:11
    
When writing, check if the last character in the file is a newline. If it isn't, append one. Of course, that would require opening with r+ instead of a, which may not be what you want. –  Moritz Aug 16 '12 at 9:14

2 Answers 2

up vote 9 down vote accepted

The solution is to write to the file in one thread only.

import Queue  # or queue in Python 3
import threading

class PrintThread(threading.Thread):
    def __init__(self, queue):
        threading.Thread.__init__(self)
        self.queue = queue

    def printfiles(self, p):
        for path, dirs, files in os.walk(p):
            for f in files:
                print(f, file=output)

    def run(self):
        while True:
            result = self.queue.get()
            self.printfiles(result)
            self.queue.task_done()

class ProcessThread(threading.Thread):
    def __init__(self, in_queue, out_queue):
        threading.Thread.__init__(self)
        self.in_queue = in_queue
        self.out_queue = out_queue

    def run(self):
        while True:
            path = self.in_queue.get()
            result = self.process(path)
            self.out_queue.put(result)
            self.in_queue.task_done()

    def process(self, path):
        # Do the processing job here

pathqueue = Queue.Queue()
resultqueue = Queue.Queue()
paths = getThisFromSomeWhere()

output = codecs.open('file', 'a')

# spawn threads to process
for i in range(0, 5):
    t = ProcessThread(pathqueue, resultqueue)
    t.setDaemon(True)
    t.start()

# spawn threads to print
t = PrintThread(resultqueue)
t.setDaemon(True)
t.start()

# add paths to queue
for path in paths:
    pathqueue.put(path)

# wait for queue to get empty
pathqueue.join()
resultqueue.join()
share|improve this answer
    
in ProcessThread, the line - result = self.process(path) ? you dont hive process() method there.. –  user1251654 Aug 16 '12 at 12:26
    
You're suppose to define the process method to do what you want. I just modify to code to clarify this. –  Dikei Aug 16 '12 at 12:34
    
right, my bad. thanks. this one helps a lot. –  user1251654 Aug 16 '12 at 13:03

And maybe some more newlines where they shouldn't be ? you should have in mind the fact that a shared resource should not be accessed by more than one thread at a time or otherwise unpredictable consequences might happen. ( it's called using 'atomic operations' while using threads ) Take a look at this page for a little intuition.
Thread-Synchronization

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