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Please bare with me, I'm new to Django/Python, so there could very well be a simple solution to my issue...

I'm creating a multimedia application on my Django site that allows users to upload photos, videos and audio - the files get encoded on a 3rd party service (mp4, ogg, webm and flv for videos), and then saved to the user's bucket on Amazon S3. I'm specifically looking for an elegant solution to display the user's videos in HTML5 format. Here's how my model looks:

class Video(models.Model):
    file = models.FileField(upload_to = user_video_folder)
    owner = models.ForeignKey(User)
    video_title = models.CharField(max_length=100)
    video_caption = models.CharField(max_length=150, blank=True)
    date_added = models.DateTimeField(auto_now_add=True)
    date_updated = models.DateTimeField(auto_now=True)
    def __unicode__(self):
    return self.video_title

Then the view:

def ViewAllVideos(request):
    videos = Video.objects.filter(owner = request.user)
    template = 'site/media-videos.html'
    return render_to_response(template, {'videos': videos}, context_instance=RequestContext(request))

In the template, I need to print the path for the multiple file formats that are generated during encoding, and was hoping to not have to add a column for each format in my model, so I was wondering if there was a way to return the file path WITH the file name, but without the extension, so it would like like so in the template:

<video width="900" height="506" preload="" controls="" autoplay="">
    <source src="{{ STATIC_URL }}{{ video.file }}.mp4" type="video/mp4;">
    <source src="{{ STATIC_URL }}{{ video.file }}.ogg" type="video/ogg;">
    <source src="{{ STATIC_URL }}{{ video.file }}.webm" type="video/webm;">
    <object width="900" height="506" type="application/x-shockwave-flash" data="/foo/bar/flowplayer/flowplayer-3.2.5.swf">
        <param name="movie" value="/foo/bar/flowplayer/flowplayer-3.2.5.swf"><param name="allowfullscreen" value="true">
        <param value="config={"clip": {"url": "{{ STATIC_URL }}{{ video.file }}.flv", "autoPlay":false, "autoBuffering":true}}" name="flashvars">
    </object>
</video>

Any help is appreciated! Cheers!


Here's my new view:

def ViewAllVideos(request):
    videos = Video.objects.filter(owner = request.user)
    filenames = [os.path.splitext(os.path.basename(video.file))[0]
        for video in videos]
    context = {
        'videos': videos,
        'filenames': filenames,}
    template = 'site/media-videos.html'
    return render_to_response(template, context, context_instance=RequestContext(request))
share|improve this question

2 Answers 2

up vote 1 down vote accepted

You could add something like the below to your model, then use {{video.file_minus_extension}}

def file_minus_extension(self): 
    basename, extension = os.path.splitext(self.file.url) 
    return basename

EDIT: as per comment, just return filename

def filename_minus_extension(self): 
    basename, extension = os.path.splitext(os.path.basename(self.file.name)) 
    return basename
share|improve this answer
    
This is great, thanks! The only issue I have with this is that it returns the full path to the image, but I need to specify a separate static URL.. Is it possible to ONLY return the file name? So for example: static.myurl.com/username/videos/foo.mp4 would return: foo –  Jeffrey Stilwell Jan 11 '12 at 19:01

I think that what you're looking for is something like:

os.path.splitext('file.ext')[0]  # Will return just 'file'

Note: This is supposed to be executed in your view and the returned value passed to your template.

For example, in your view you could do something like:

filenames = [os.path.splitext(os.path.basename(video.file))[0]
             for video in vides]
...
context = {'videos': videos,
           'filenames': filenames,
          }
return render_to_response(template, context, ...)

I think you're just using video.file in your template, so maybe you can even don't pass it to the template since it won't be needed.

share|improve this answer
    
Hey, thanks for the comment! Like I mentioned, I'm new to Django, so forgive me if I don't understand correctly... So you say this should be in my view, so based on my original view, how would this look? Thanks again! –  Jeffrey Stilwell Jan 11 '12 at 19:04
    
I've edited my answer to provide an example. By the way, I've seen your comment about getting just the filename. That can be done using os.path.basename. –  jcollado Jan 11 '12 at 20:24
    
Thanks! So here's my new view: def ViewAllVideos(request): videos = Video.objects.filter(owner = request.user) filenames = [os.path.splitext(os.path.basename(video.file))[0] for video in videos] context = { 'videos': videos, 'filenames': filenames,} template = 'site/media-videos.html' return render_to_response(template, context, context_instance=RequestContext(request)) ...however I get the following error when hitting the page: AttributeError at /site/media/videos/ 'FieldFile' object has no attribute 'rfind' Any thoughts? –  Jeffrey Stilwell Jan 11 '12 at 21:48
    
Yikes - didn't realize it wouldn't carry over line breaks... I'll add my new view above... –  Jeffrey Stilwell Jan 11 '12 at 21:49
    
It seems it should be video.file.name since video.file is not really the path, but an object to access to the file. –  jcollado Jan 11 '12 at 22:59

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