Django Rest Framework url 调度器
我正在尝试与 SWAPI API 进行交互。
我想要一个获取所有电影的视图(films/)和一个获取一个(film/id)的视图。
当我点击http://127.0.0.1:8000/api/films/?id=4它进入get_films功能。
我正在使用 Django==1.11 和 Django Rest Framework==3.9.0 。
我的 urs.py:
urlpatterns = [
url(r'films/',views.get_films,name="get-films"),
url(r'films/(?P<id>[0-9])/',views.get_film,name="get-film"),
]
我的意见.py:
MAX_RETRIES = 5
API_URL= "https://swapi.co/api/"
@api_view(['GET', 'POST'])
def get_films(request):
request_url = API_URL + "films"
print(request_url)
if request.method == "GET":
attempt_num = 0 # keep track of how many times we've retried
while attempt_num < MAX_RETRIES:
r = requests.get(request_url, timeout=10)
if r.status_code == 200:
data = r.json()
return Response(data, status=status.HTTP_200_OK)
else:
attempt_num += 1
# You can probably use a logger to log the error here
time.sleep(5) # Wait for 5 seconds before re-trying
return Response({"error": "Request failed"}, status=r.status_code)
else:
return Response({"error": "Method not allowed"}, status=status.HTTP_400_BAD_REQUEST)
@api_view(['GET', 'POST'])
def get_film(self, request):
print('entered')
request_url = API_URL + "films/" + request.query_params.get('id')
if request.method == "GET":
attempt_num = 0 # keep track of how many times we've retried
while attempt_num < MAX_RETRIES:
r = requests.get(request_url, timeout=10)
if r.status_code == 200:
data = r.json()
return Response(data, status=status.HTTP_200_OK)
else:
attempt_num += 1
# You can probably use a logger to log the error here
time.sleep(5) # Wait for 5 seconds before re-trying
return Response({"error": "Request failed"}, status=r.status_code)
else:
return Response({"error": "Method not allowed"}, status=status.HTTP_400_BAD_REQUEST)
MMMHUHU2回答
-
慕仙森
urlpatterns事情的顺序。尝试更改网址的顺序。它可能与第一个匹配并且没有到达第二个。
随时随地看视频慕课网APP
相关分类
Python