我有这个 rdf 文件:
<!DOCTYPE rdf:RDF [
<!ENTITY db "http://dbpedia.org/ontology/" >
<!ENTITY owl "http://www.w3.org/2002/07/owl#" >
<!ENTITY xsd "http://www.w3.org/2001/XMLSchema#" >
<!ENTITY rdfs "http://www.w3.org/2000/01/rdf-schema#" >
<!ENTITY rdf "http://www.w3.org/1999/02/22-rdf-syntax-ns#" >]>
<rdf:RDF xmlns="http://dbpedia.org/ontology/"
xml:base="http://dbpedia.org/ontology/"
xmlns:db="http://dbpedia.org/ontology/"
xmlns:rdfs="http://www.w3.org/2000/01/rdf-schema#"
xmlns:owl="http://www.w3.org/2002/07/owl#"
xmlns:xsd="http://www.w3.org/2001/XMLSchema#"
xmlns:rdf="http://www.w3.org/1999/02/22-rdf-syntax-ns#">
<owl:ObjectProperty rdf:about="&db;actingHeadteacher">
<rdfs:label xml:lang="el">?????????? ????????</rdfs:label>
<rdfs:label xml:lang="en">acting headteacher</rdfs:label>
</owl:ObjectProperty>
</rdf:RDF>
并希望通过 lang 值过滤 Literal 对象。例如:
from rdflib import Graph
from rdflib.namespace import RDFS
filetype = util.guess_format(rdf_file)
g = Graph()
g.parse(rdf_file, format = filetype)
for s,p,o in g.triples((None, RDFS.label, None)):
print(repr(o)) # rdflib.term.Literal('acting headteacher', lang='en')
# rdflib.term.Literal('?????????? ????????', lang='el')
我只想查询 o where lang='en'
当您查看rdflib的手册时,您会发现它rdflib.term.Literal有一个被调用的属性language和一个方法。但是,调用该方法似乎对我不起作用。
像这样的事情可以做到:
# from rdflib import URIRef
subject = URIRef('&db;actingHeadteacher')
# just getting your literals directly here:
generator = graph.objects(subject, RDFS.label)
for lit in generator:
print lit.language
labels 或preferredLabels only如果您只对标签/首选标签(SKOS 或 RDFS)感兴趣,请查看手册中的第 47 页:
subject = URIRef('&db;actingHeadteacher')
graph.preferredLabel(subject=subject, label='en') # or label='el'
这将返回一个(labelProp, label)对列表,其中labelProp是skos:prefLabel或rdfs:label。
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