Dav*_*idL 10 django pagination django-pagination
有没有办法让django分页的页面显示更好?我按照[doc] [1]来创建它,但希望有简单的方法来组织页码显示.
目前,它显示所有页面,比如说我有10页,然后是前
一页1 2 3 4 5 6 7 8 9 10
如果有100,那么它将显示所有100,这是非常疯狂的.
有什么方法可以简单地显示它吗?
例:
上一页1 2 3 ... 67 ... 98,99,100下一张(67是当前页)
prev 1 2 3 ... 65 66 67 68 69 ... 100 next
它不必看起来像上面的示例,但只是不希望它显示每个页面编号没有限制.
就像文档一样,我使用下面的代码创建了我的分页.
模板文件
{% if is_paginated %}
<div id="pagination">
<ul>
{% if page_obj.has_previous %}
<li> <a href="?page={{page_obj.previous_page_number}}">Previous</a> </li>
{% else %}
<li> Previous</li>
{% endif %}
{% for page_number in paginator.num_pages|template_range %}
{% ifequal page_number page_obj.number %}
<li class="currentpage">{{page_number}}</li>
{% else %}
<li> <a href="?page={{page_number}}">{{page_number}}</a> </li>
{% endifequal %}
{% endfor %}
{% if page_obj.has_next %}
<li> <a href="?page={{page_obj.next_page_number}}">Next</a></li>
{% else %}
<li> Next </li>
{% endif %}
</ul>
</div>
{% endif %}
Views.py
news = News.active.all().order_by("-created_at")
paginator = Paginator(news, 15)
is_paged = False
page = None
try:
paginator.validate_number(currpage)
except (EmptyPage, InvalidPage):
#return bad_or_missing(request, ("Invalid page number"))
currpage = paginator.num_pages
is_paged = paginator.num_pages > 1
page = paginator.page(currpage)
ctx = RequestContext(request, {
'all_news_list' : page.object_list,
'is_paginated' : is_paged,
'page_obj' : page,
'paginator' : paginator,
'featured_categories' : featured_categories,
})
response = render_to_response(template_name, context_instance=ctx)
return response
谢谢.