我希望有一个非常简单的网格,我想使用 jqGrid 和扭曲的 Web 服务器返回所有的 json。我有许多 jqGrid 代码示例,但想看看是否有 python / twisted 中的后端示例?
问问题
1400 次
1 回答
1
首先在某处定义您的网格(例如,grids.py)。只需要一个模型或查询集和一个 url。
class ExampleGrid(JqGrid):
model = SomeFancyModel # could also be a queryset
fields = ['id', 'name', 'desc'] # optional
url = reverse('grid_handler')
caption = 'My First Grid' # optional
colmodel_overrides = {
'id': { 'editable': False, 'width':10 },
}
创建视图来处理请求
def grid_handler(request):
# handles pagination, sorting and searching
grid = ExampleGrid()
return HttpResponse(grid.get_json(request), mimetype="application/json")
def grid_config(request):
# build a config suitable to pass to jqgrid constructor
grid = ExampleGrid()
return HttpResponse(grid.get_config(), mimetype="application/json")
为这些视图定义 URL
from myapp.views import grid_handler, grid_config
...
url(r'^examplegrid/$', grid_handler, name='grid_handler'),
url(r'^examplegrid/cfg/$', grid_config, name='grid_config'),
直接从这里得到这个使用 django 的例子。您将需要构建基于数据返回 json 的函数。
也许是这样的:
def get_rows():
db.things.category.represent = lambda v: v.name
fields = ['id','name','category','price','owner']
rows = []
page = int(request.vars.page)
pagesize = int(request.vars.rows)
limitby = (page * pagesize - pagesize,page * pagesize)
orderby = db.things[request.vars.sidx]
if request.vars.sord == 'desc': orderby = ~orderby
for r in db(db.things.id>0).select(limitby=limitby,orderby=orderby):
vals = []
for f in fields:
rep = db.things[f].represent
if rep:
vals.append(rep(r[f]))
else:
vals.append(r[f])
rows.append(dict(id=r.id,cell=vals))
total = db(db.things.id>0).count()
pages = int(total/pagesize)
#if total % pagesize == 0: pages -= 1
data = dict(total=pages,page=page,rows=rows)
return data
这是从这里
于 2012-02-08T19:50:19.310 回答