eam*_*234 4 python xml beautifulsoup openstreetmap
我已经得到了我检索使用快餐店一些OSM数据XAPI,和这里是一些示例结果:
<osm version="0.6" generator="Osmosis SNAPSHOT-r26564">
<node id="486275964" version="4" timestamp="2010-05-03T08:21:42Z" uid="12055" user="aude" changeset="4592597" lat="38.8959533" lon="-77.0212458">
<tag k="name" v="Potato Valley Cafe"/>
<tag k="amenity" v="fast_food"/>
</node>
<node id="486275966" version="4" timestamp="2010-08-06T16:44:13Z" uid="207745" user="NE2" changeset="5418228" lat="38.8959399" lon="-77.0196338">
<tag k="cuisine" v="burger"/>
<tag k="name" v="McDonald's"/>
<tag k="amenity" v="fast_food"/>
</node>
<node id="612190923" version="1" timestamp="2010-01-12T14:01:27Z" uid="111209" user="cov" changeset="3603297" lat="38.893683" lon="-77.0292732">
<tag k="level" v="-1"/>
<tag k="cuisine" v="sandwich"/>
<tag k="name" v="Quizno's"/>
<tag k="amenity" v="fast_food"/>
</node>
</osm>
<!--corrected indentation-->
我正在尝试在 python 中使用 BeautifulSoup 从中提取经纬度、名称和美食。我可以使用此代码获得经纬度没有问题:
soup = BeautifulSoup(results)
takeaways = soup.findAll('node')
for eachtakeaway in takeaways:
longitude = str(eachtakeaway['lon'])
lattitude = str(eachtakeaway['lat'])
但我无法得到名字:
name = str(eachtakeaway['name'])
这引发了错误:
TypeError: 'NoneType' object is not callable
你能告诉我该怎么做吗?谢谢。
问题是,方括号用于检索标签的属性,即lat和lon。然而,名称是另一个标签的属性。尝试这样的事情:
soup = BeautifulSoup(results)
takeaways = soup.findAll('node')
for eachtakeaway in takeaways:
another_tag = eachtakeaway('tag')
for tag_attrs in another_tag:
if str(tag_attrs['k']) == 'cuisine':
print str(tag_attrs['v'])
这将返回菜系值。相同的概念适用于检索name.
*未经测试
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