小编典典

SimpleJson处理相同命名实体

json

我在应用程序引擎中使用Alchemy API,所以在使用simplejson库来解析响应。问题是响应中包含具有sme名称的条目

 {
    "status": "OK",
    "usage": "By accessing AlchemyAPI or using information generated by AlchemyAPI, you are agreeing to be bound by the AlchemyAPI Terms of Use: http://www.alchemyapi.com/company/terms.html",
    "url": "",
    "language": "english",
    "entities": [
        {
            "type": "Person",
            "relevance": "0.33",
            "count": "1",
            "text": "Michael Jordan",
            "disambiguated": {
                "name": "Michael Jordan",
                "subType": "Athlete",
                "subType": "AwardWinner",
                "subType": "BasketballPlayer",
                "subType": "HallOfFameInductee",
                "subType": "OlympicAthlete",
                "subType": "SportsLeagueAwardWinner",
                "subType": "FilmActor",
                "subType": "TVActor",
                "dbpedia": "http://dbpedia.org/resource/Michael_Jordan",
                "freebase": "http://rdf.freebase.com/ns/guid.9202a8c04000641f8000000000029161",
                "umbel": "http://umbel.org/umbel/ne/wikipedia/Michael_Jordan",
                "opencyc": "http://sw.opencyc.org/concept/Mx4rvViVq5wpEbGdrcN5Y29ycA",
                "yago": "http://mpii.de/yago/resource/Michael_Jordan"
            }
        }
    ]
}

因此,问题在于重复了“ subType”,因此加载返回的指令只是“ TVActor”,而不是列表。无论如何要解决这个问题?


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2020-07-27

共1个答案

小编典典

定义的RFC
4627
application/json表示:

An object is an unordered collection of zero or more name/value pairs

和:

The names within an object SHOULD be unique.

这意味着AlchemyAPI不应"subType"在同一个对象内返回多个名称,并声称它是JSON。

您可以尝试以XML格式(outputMode=xml)请求相同的内容,以避免结果出现歧义或将重复的键值转换为列表:

import simplejson as json
from collections import defaultdict

def multidict(ordered_pairs):
    """Convert duplicate keys values to lists."""
    # read all values into lists
    d = defaultdict(list)
    for k, v in ordered_pairs:
        d[k].append(v)

    # unpack lists that have only 1 item
    for k, v in d.items():
        if len(v) == 1:
            d[k] = v[0]
    return dict(d)

print json.JSONDecoder(object_pairs_hook=multidict).decode(text)

text = """{
  "type": "Person",
  "subType": "Athlete",
  "subType": "AwardWinner"
}"""

输出量

{u'subType': [u'Athlete', u'AwardWinner'], u'type': u'Person'}
2020-07-27