本文介绍了仅在 mongodb 聚合中返回具有最新子文档的文档的处理方法,对大家解决问题具有一定的参考价值,需要的朋友们下面随着小编来一起学习吧!
问题描述
我有这些 Mongoose Schemas:
I've got these Mongoose Schemas:
var Thread = new Schema({ title: String, messages: [Message] }); var Message = new Schema({ date_added: Date, author: String, text: String });如何返回所有线程及其最新的消息子文档(限制 1)?
How do you return all Threads with their latest Message subdocument (limit 1) ?
目前,我正在服务器端过滤 Thread.find() 结果,但我想使用 aggregate() 在 MongoDb 中移动此操作性能很重要.
Currently, I'm filtering the Thread.find() results on the server side but I'd like to move this operation in MongoDb using aggregate() for performance matters.
推荐答案您可以使用 $unwind、$sort 和 $group使用类似的东西来做到这一点:
You can use $unwind, $sort, and $group to do this using something like:
Thread.aggregate([ // Duplicate the docs, one per messages element. {$unwind: '$messages'}, // Sort the pipeline to bring the most recent message to the front {$sort: {'messages.date_added': -1}}, // Group by _id+title, taking the first (most recent) message per group {$group: { _id: { _id: '$_id', title: '$title' }, message: {$first: '$messages'} }}, // Reshape the document back into the original style {$project: {_id: '$_id._id', title: '$_id.title', message: 1}} ]);更多推荐
仅在 mongodb 聚合中返回具有最新子文档的文档
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