无法正确格式化 API json 输出
[英]Can't format API json output correctly
问题描述
输入:
import requests
import json
apikey2 = '1234'
headers = {'API-Key':apikey2,'Content-Type':'application/json'}
data = {"url":urlz2, "visibility": "private"}
r2 = requests.post('https://urlscan.io/api/v1/scan/',headers=headers, data=json.dumps(data))
print(r2)
print(r2.json())
输出:
<Response [200]>
{'message': 'Submission successful', 'uuid': 'xxxxxxxx', 'result': 'https://urlscan.io/result/xxxxxxxxxx/', 'api': 'https://urlscan.io/api/v1/result/xxxxxxxxxxx/', 'visibility': 'private', 'options': {'useragent': 'Mozilla/5.0 (Macintosh; Intel Mac OS X 10_14_5) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/xxxxxxxx Safari/xxxxxx'}, 'url': 'https://xxxxxxx.io/'}
无法获取我想要的信息并将其打印在每一行上,例如:
message: Submission successful
uuid: xxxxxxxx
result: https://urlscan.io/result/xxxxxxxxxx/
visibility: private
我尝试了一些...
for match in r2.json().get('message', []):
print(f'uuid: {message.get("uuid", {}).get("uuid", "Unknown uuid")}')
但是得到一个错误并且它是一个字符串
1 个解决方案
解决方案1
1 已采纳 2020-10-12 16:44:51
respons.json()方法返回一个字典。 您可以遍历此字典的键和值并打印。
import requests
import json
apikey2 = '1234'
headers = {'API-Key':apikey2,'Content-Type':'application/json'}
data = {"url":urlz2, "visibility": "private"}
r2 = requests.post('https://urlscan.io/api/v1/scan/',headers=headers, data=json.dumps(data))
print(r2)
dictionary = r2.json()
for key, value in dictionary.items():
print(f"{key} = {value}")
如果要打印特定键的值并在找不到该键时显示消息,可以使用下面的代码。 此代码迭代感兴趣的键,如果此键不在响应字典中,您可以打印一条消息。 否则,您打印键和值。
keys = ["message", "uuid", "result", "visibility"]
response_dict = r2.json()
for key in keys:
value = response_dict.get(key, None)
if value is None:
print(f"{key} = Unknown {key}")
else:
print(f"{key} = {value}")
如何格式化API JSON输出?
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