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I have a django application where I have few manytomany fields and im trying to show these relation records in my listing, however it all comes blank

so this is my model:

class Genre(models.Model):
    genre_name = models.CharField(max_length=50)
    genre_slug = models.SlugField(max_length=300)
    genre_meta = models.TextField(max_length=300)
    genre_description = models.TextField(max_length=300)
    listing = models.BooleanField(default=True)

    def __unicode__(self):
        return self.genre_name

class Movie(models.Model):
    movie_name = models.CharField(max_length=50)
    movie_slug = models.SlugField(max_length=300)
    movie_description = models.TextField(null=True, max_length=300)
    movie_category = models.ManyToManyField(Category, related_name='category')
    movie_genre = models.ManyToManyField(Genre, blank=True, related_name='genre')
    listing = models.BooleanField(default=True)

    def __unicode__(self):
        return self.movie_name

this is my view

def AllMovies (request):
    movies= Movie.objects.all().order_by('movie_name')
    context = {'movies': movies}
    return render_to_response('all.html', context, context_instance=
RequestContext(request))                 

and this is my template

 {% for movie in movies %}
<a href="/movies/{{ movie.movie_slug }}/">{{ movie }}</a>
{% for genre in movies.genre.all %}{{ genre_name }}{% endfor %}

{% endfor %}

so there are three concerns here:

1- All I get is blank in my template

2- What would be the best option to show items which have been ticked as listed and hide the rest in template

3- This is a data bank so im sure we will need to use load more button in my template, but if i want to show 30 of items instead of all

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1 Answer 1

up vote 2 down vote accepted

Try this:

{% for movie in movies %}
    <a href="/movies/{{ movie.movie_slug }}/">{{ movie }}</a>
    {% for genre in movie.movie_genre.all %}{{ genre_name }}{% endfor %}
{% endfor %}

You were trying to iterate over movies.genre.all, which is wrong because:

  • movies is a queryset, you should use movie instead, as it is a Model instance
  • genre is not a field in the Movie model, you should use movie_genre, which is a ManyToManyField you are looking for

I believe you didn't understand the related_name attribute. It doesn't modify the behavior of the field (in this case: movie_genre). Instead, it changes the name of an attribute in a related model (in this case: Genre). For example, you can use it to get all related movies:

>>> genre = Genre.objects.get(name='Drama')
>>> genre.genre.all()
[<Movie>, <Movie>, ...]

As you can see, your choice of a related_name wasn't so good. Something like movies would be more appropriate.

Please, read the documentation once again, as you probably didn't understand Django's logic around relations (foreign keys, many-to-many, etc.).

Besides, here are a few style-related tips:

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1  
I was in the middle of typing an answer but @piotrekw has explained it well. Regarding @user3482036 second question, you can use the if template tag to conditionally show listed movies/genres. Regarding the third question, you can paginate your results –  Timmy O'Mahony Apr 24 '14 at 13:37
    
Thank you both for great advises, im a noob when it comes to django but getting there :) - in regards to your answer, it still doesnt show anything. –  user3482036 Apr 24 '14 at 13:40
    
Ok this is working now and this is how i have resolved it {% for movie in movies %} <a href="/movies/{{ movie.movie_slug }}/">{{ movie }}</a> {% for genre in movie.movie_genre.all %}{{ genre_name }}{% endfor %} {% endfor %} Thank you all –  user3482036 Apr 24 '14 at 13:42
    
Indeed. However filtering the queryset by listing=True would be more efficient. This way or another, using generic ListView class (which is class-based view) would make the code even simpler, as it provides pagination by default. –  piotrekw Apr 24 '14 at 13:44

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