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django通过ajax发起请求返回JSON格式数据的方法
- WBOYOriginal
- 2016-06-10 15:10:481348browse
本文实例讲述了django通过ajax发起请求返回JSON格式数据的方法。分享给大家供大家参考。具体实现方法如下:
这是后台处理的:
def checkemail(request):
user = None
if request.POST.has_key('email'):
useremail = request.POST['email']
result = {}
user = User.objects.filter(useremail__iexact = useremail)
if user:
result = "1"
result = simplejson.dumps(result)
else:
result = "0"
result = simplejson.dumps(result)
return HttpResponse(result, mimetype='application/javascript')
这是AJAX部分:
if(valid_email($('#reg-for-email').val())){
var email = $('#reg-for-email').val();
//这里把用户输入的EMAIL地址提交到后台数据库中去验证是否已存在。
$.ajax({
type:"POST" ,
url:"/reg/checkemail",
data:"email=" + email ,
cache: false,
success: function(result){
if (result==1)
{
$("#reg-for-email-msg").removeClass("g-hide");
$('#reg-for-email-msg').removeClass("msg-isok").addClass("msg-error").html("该邮箱已存在!");
eok = true;
}
else
{
$("#reg-for-email-msg").addClass("g-hide");
eok = false;
}
}
})
}
URL的配置是:
复制代码 代码如下:
url(r'^reg/checkemail/', 'reg.views.checkemail', name='ce'),
希望本文所述对大家的Python程序设计有所帮助。
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