我有一个表包含:
id seller_id amount created_at
1 10 100 2017-06-01 00:00:00
2 15 250 2017-06-01 00:00:00
....
154 10 10000 2017-12-24 00:00:00
255 15 25000 2017-12-24 00:00:00
我想获取每个Seller_id的所有最新行。我可以得到这样的最新一行:
$sales = Snapshot::where('seller_id', '=', 15)
->orderBy('created_at', 'DESC')
->first();
我如何只获得每个卖家的最新行?
要获取每个seller_id的最新记录,您可以使用以下查询
select s.*
from snapshot s
left join snapshot s1 on s.seller_id = s1.seller_id
and s.created_at < s1.created_at
where s1.seller_id is null
使用查询生成器,您可以将其重写为
DB::table('snapshot as s')
->select('s.*')
->leftJoin('snapshot as s1', function ($join) {
$join->on('s.seller_id', '=', 's1.seller_id')
->whereRaw(DB::raw('s.created_at < s1.created_at'));
})
->whereNull('s1.seller_id')
->get();
这有效:
DB::table('snapshot as s')
->select('s.*')
->leftJoin('snapshot as s1', function ($join) {
$join->on('s.seller_id', '=', 's1.seller_id');
$join->on('s.created_at', '<', 's1.created_at');
})
->whereNull('s1.seller_id')
->get();