rnk*_*rnk 5 python django django-models django-forms
我正在使用模型来获取播放列表及其项目.它还包含登录脚本.我正在尝试将当前登录的用户设置为用户模型.你可以看到我之前发布的这个东西 如何避免这个下拉组合框?
class playlistmodel(models.Model):
user = models.ForeignKey(User)
title = models.CharField(max_length=200)
def __unicode__(self):
return self.title
class itemsmodel(models.Model):
playlist = models.ForeignKey(playlistmodel)
item = models.TextField()
def __unicode(self):
return self.item
class playlistform(ModelForm):
class Meta:
model = playlistmodel
exclude = {'user'}
class itemsform(ModelForm):
class Meta:
model = itemsmodel
exclude = {'playlist'}
Run Code Online (Sandbox Code Playgroud)
这是播放列表视图:
def playlistview(request):
if request.method == 'POST':
form = playlistform(request.POST)
if form.is_valid():
data = form.save(commit=False)
data.user = request.user
data.save()
return render_to_response('playlist.html', {'data': data})
else:
form = playlistform()
return render_to_response('playlist.html', {'form': form, 'user': request.user}, context_instance=RequestContext(request))
Run Code Online (Sandbox Code Playgroud)
Playlist.html文件:
https://gist.github.com/1576136
错误页面:
https://gist.github.com/1576186
但是我得到了ValueError:
Exception Type: ValueError Exception Value: Cannot assign "<django.utils.functional.SimpleLazyObject object at 0x7f0234028f50>": "playlistmodel.user" must be a "User" instance
Traceback: Local vars --- data.user = request.user
Run Code Online (Sandbox Code Playgroud)
这是我的settings.py https://gist.github.com/1575856
谢谢.
很难说,但我会在你的播放列表视图中尝试这个:
form = playlistform(request, request.POST, instance=playlistmodel)
Run Code Online (Sandbox Code Playgroud)
也许您可以省略最后一个参数(instance=playlistmodel),因为只有在更改现有对象时才需要它
希望这可以帮助...
| 归档时间: |
|
| 查看次数: |
841 次 |
| 最近记录: |