6

I am facing problem in returned image url, which is not proper.

My return image url is "http://127.0.0.1:8000/showimage/6/E%3A/workspace/tutorial_2/media/Capture1.PNG" But i need

"http://127.0.0.1:8000/media/Capture1.PNG"

enter image description here

When i click on image_url then image open in new browser tab But currently its shown error: enter image description here view.py

from showimage.models import ShowImage
from showimage.serializers import ShowImageSerializer
from rest_framework import generics

# Create your views here.

    class ShowImageList(generics.ListCreateAPIView):
        queryset = ShowImage.objects.all()
        serializer_class = ShowImageSerializer
        
    class ShowImageDetail(generics.RetrieveUpdateDestroyAPIView):
        queryset = ShowImage.objects.all()
        serializer_class = ShowImageSerializer

model.py

from __future__ import unicode_literals

from django.db import models
from django.conf import settings


# Create your models here.

class ShowImage(models.Model):
    image_name = models.CharField(max_length=255)
    image_url = models.ImageField(upload_to=settings.MEDIA)

serializer.py

from rest_framework import serializers
from showimage.models import ShowImage

class ShowImageSerializer (serializers.ModelSerializer):
    class Meta:
        model = ShowImage
        fields = ('id', 'image_name', 'image_url')

settings.py

MEDIA=os.path.join(BASE_DIR, "media")

urls.py

from django.conf.urls import url, include
from django.contrib import admin

urlpatterns = [
    url(r'^admin/', admin.site.urls),
    url(r'^showimage/', include('showimage.urls')),
]

I am new in python and also in django-rest-framework. Please also tell me how we extend models or serialize class

2
  • 1
    What do you mean by "extend models". What do you want to achieve? Commented Feb 18, 2016 at 8:33
  • All you're image urls look very strange and wrong... the one in your error image (which you should include as text btw) is trying to link to an E drive which is useless to everyone involved in that request. and then your others shouldn't care what port or domain its hosted on.
    – Sayse
    Commented Feb 18, 2016 at 8:38

3 Answers 3

9

You might want to try this in your settings:

MEDIA_URL = '/media/'
MEDIA_ROOT=os.path.join(BASE_DIR, "media")

urlpatterns = [
    url(r'^admin/', admin.site.urls),
    url(r'^showimage/', include('showimage.urls')),
]

urlpatterns += static(settings.MEDIA_URL, document_root=settings.MEDIA_ROOT)

And in your models:

class ShowImage(models.Model):
    image_name = models.CharField(max_length=255)
    image_url = models.ImageField(upload_to="") # or upload_to="images", which would result in your images being at "http://127.0.0.1:8000/media/images/Capture1.PNG"
0
7

Finally, i solve this road block with the help of @Remi Thanks @Remi But some other change i do so that i elaborate solution and fix this issue.

settings.py

STATIC_URL = '/static/'
MEDIA_URL = '/media/'
MEDIA_ROOT=os.path.join(BASE_DIR, "media")

urls.py

from django.conf.urls import url, include
from django.contrib import admin
from django.conf import settings
from django.conf.urls.static import static

urlpatterns = [
    url(r'^admin/', admin.site.urls),
    url(r'^showimage/', include('showimage.urls')),
]

urlpatterns += static(settings.MEDIA_URL, document_root=settings.MEDIA_ROOT)
1

Your code seems correct except one thing you have passed settings.MEDIA in uploads image. you don't need to pass settings.MEDIA in uploads.

try this

image_url = models.ImageField(upload_to='Dir_name')

Dir_name will create when you'll run script.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.