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登錄在Django 1.5

2013-02-22 79 views
5

我用MYUSER模型在Django 1.5與電子郵件登錄: 型號:登錄在Django 1.5

class MyUser(AbstractBaseUser): 
    email = models.EmailField(
     verbose_name='email address', 
     max_length=255, 
     unique=True, 
     db_index=True, 
    ) 
    last_name=models.CharField(max_length=30) 
    first_name=models.CharField(max_length=30) 
    second_name=models.CharField(max_length=30, blank=True) 
    post=models.CharField(max_length=30, blank=True) 

    objects = MyUserManager() 

    USERNAME_FIELD = 'email' 
    REQUIRED_FIELDS = ['last_name','first_name','second_name','post', ....] 

    def get_full_name(self): 
     return self.email 

    def get_short_name(self): 
     return self.email 

    def __unicode__(self): 
     return self.email 

    def has_perm(self, perm, obj=None): 
     return True 

    def has_module_perms(self, app_label): 
     return True 

    @property 
    def is_staff(self): 
     return self.is_admin

我試過方法與django.contrib.auth.views導入登錄:

網址:

(r'^login/$', login, {'template_name': 'enter.html'}),

查看:無。

它適用於經典用戶模型的超級用戶,而不適用於MyUser。

然後我嘗試:

觀點:

def login_view(request): 
    username = request.POST['email'] 
    password = request.POST['password'] 
    user = authenticate(username=username, password=password) 
    if user is not None and user.is_active: 
     login(request, user) 
     return HttpResponseRedirect("/n1.html")# Redirect to a success page. 
    else: 
     return HttpResponseRedirect("/account/invalid/")# Return a 'disabled account' error message

模板:

{% if form.errors %} 
<p>Something is wrong</p> 
{% endif %} 

<form action="" method="post"> 
    {% csrf_token %} 
    <label for="email">Login:</label> 
    <input type="text" name="email" value="" id="email"/> 
    <label for="password">Password:</label> 
    <input type="password" name="password" value="" id="username"> 

    <input type="submit" value="login" /> 
    <input type="hidden" name="next" value="{{next|escape}}" /> 

</form>

網址:

(r'^login/$', login_view, {'template_name': 'enter.html'}),

但我得到的錯誤login_view() got an unexpected keyword argument 'template_name' 我在做什麼錯了?

來源

2013-02-22 Wolter

+0

爲什麼你在'urls.py'中傳遞一個模板名稱,你在哪裏使用它? – arulmr 2013-02-22 07:19:57

回答

5

login_view() got an unexpected keyword argument 'template_name'意味着您的視圖功能應該有template_name參數:

def login_view(request, template_name): 
    'your code'

如果你不需要它,不通過它在urls.py:

(r'^login/$', login_view),

UPD。

您的login_view將處理您的POST方法。你可以用這種方法重新編寫它來渲染格式GET

def login_view(request): 
    if request.method == 'POST': 
     username = request.POST['email'] 
     password = request.POST['password'] 
     user = authenticate(username=username, password=password) 
     if user is not None and user.is_active: 
      login(request, user) 
      return HttpResponseRedirect("/n1.html") 
     return HttpResponseRedirect("/account/invalid/") 
    form = LoginForm() 
    return render(request, 'enter.html', {'login_form': LoginForm})

來源

2013-02-22 07:20:05 San4ez

+0

但我怎樣才能得到我的enter.html模板? – Wolter 2013-02-22 07:24:08

+0

@Wolter請參閱此處定義的'login_view'函數。如果你在'urls.py'中傳遞'template_name',你可以在你的函數中獲取它的定義。 – arulmr 2013-02-22 07:26:33

+0

我不明白爲什麼從django.contrib.auth.views導入登錄(r'^ login/$',login,{'template_name':'enter.html'}),但是從視圖導入login_view( r'^ login/$',login_view,{'template_name':'enter.html'}),不工作? – Wolter 2013-02-22 07:32:21

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