我有一个带有ajax函数的JSON数据, 我使用这样的每个函数遍历这些数据:
$.each(data, function (index, trip) {
// trip contains data
console.log(trip);
content += '<article class="tripPreview">';
content += '<span class="tripTitle">'+trip.title+ '</span>';
content += '<div class="tripOverlay">'+trip.description+ '</div>';
content += '<img src="public/uploads/tripphoto/'+ trip.id +'/'+trip.tripphotos.filename+'">';
content += '</article>';
});
如何联系tripphotos > filename > thumb > url?
{"created_at":"2012-12-06T13:02:03Z","description":"test","id":11,"province":"Friesland","range_high":null,"range_low":null,"start_city":"Leeuwarden","title":"test","updated_at":"2012-12-06T13:02:06Z","user_id":1,"views":1,"categories":[{"ar_association_key_name":"4","created_at":"2012-12-04T13:12:43Z","id":2,"name":"Urban","updated_at":"2012-12-04T13:12:43Z"}],"tripphotos":[{"created_at":"2012-12-06T13:02:05Z","filename":{"url":"/uploads/tripphoto/filename/2/1280x1024-colour-wood-flip.jpg","thumb":{"url":"/uploads/tripphoto/filename/2/thumb_1280x1024-colour-wood-flip.jpg"}},"id":2,"trip_id":11,"updated_at":"2012-12-06T13:02:05Z"}]}
答案 0 :(得分:1)
从您的JSON看,tripphotos似乎是一个数组,因此您需要另一个each:
$.each(data, function (index, trip) {
...
$.each(trip.tripphotos,function(index2,tripphoto){
console.log(tripphoto.filename.thumb.url);
});
});
除非你知道只有一个(或者,你只是在第一个之后):
$.each(data, function (index, trip) {
...
console.log(trip.tripphotos[0].filename.thumb.url);
});