URL地址切分(urlparse得到想要的)
2018-09-03 本文已影响0人
戒灵
例如想得到'/dp/B0013EIXX8‘
from urllib.parseimport urlparse
url ="https://www.amazon.com/dp/B0013EIXX8"
url_parsed = urlparse(url)
1.print(url_parsed)
2.print(url_parsed.path+'?'+url_parsed.query)
输出结果:
1的输出:ParseResult(scheme='https', netloc='www.amazon.com', path='/dp/B0013EIXX8', params='', query='', fragment='')
2的输出:/dp/B0013EIXX8?
