假设我有以下XML文件:
<?xml version="1.0" encoding="utf-8"?>
<venues>
<group type="Nearby">
<venue>
<id>222307</id>
<name>Union Chapel</name>
<primarycategory>
<id>78967</id>
<fullpathname>Arts & Entertainment:Music Venue</fullpathname>
<nodename>Music Venue</nodename>
<iconurl>http://foursquare.com/img/categories/arts_entertainment/musicvenue.png</iconurl>
</primarycategory>
<address>Compton Ave</address>
<city>Islington</city>
<state>Greater London</state>
<zip>N1 2XD</zip>
<verified>false</verified>
<geolat>51.5439732</geolat>
<geolong>-0.1020908</geolong>
<stats>
<herenow>0</herenow>
</stats>
<phone>02073594019</phone>
<distance>33</distance>
</venue>
.............
我的代码如下:
XPathFactory factory = XPathFactory.newInstance();
XPath xpath = factory.newXPath();
XPathExpression expr = xpath.compile("//venue/*");
Object result = expr.evaluate(document, XPathConstants.NODESET);
NodeList nodes = (NodeList) result;
//System.out.println(nodes.getLength());
Venue ven = new Venue();
for (int i = 0; i < nodes.getLength(); i++) {
String nodeName = nodes.item(i).getNodeName();
String nodeValue = nodes.item(i).getNodeValue();
if (nodeName.equals("id")){
ven = new Venue();
if (nodeValue != null)
ven.id = Integer.parseInt(nodeValue);
System.out.println(ven.id);
}
if (nodeName.equals("name")){
ven.name = nodeValue;
System.out.println(ven.name);
}
if (nodeName.equals("address")){
ven.address = nodeValue;
System.out.println(ven.address);
}
如何在一个for循环中实现所有这些以提高效率?否则,对于我想要提取的xml中的每个属性,我需要为它们中的每一个创建一个for循环
如果您将其用作xpath:
//venue/*
您将获得场地的所有子节点.然后,您可以对此进行迭代,并在节点名称上执行大的if else,并根据需要进行分配.
像这样:
XPathFactory factory = XPathFactory.newInstance();
XPath xpath = factory.newXPath();
XPathExpression expr = xpath.compile("//venue/*");
Object result = expr.evaluate(document, XPathConstants.NODESET);
NodeList nodes = (NodeList) result;
for (int i = 0; i < nodes.getLength(); i++) {
Node node = nodes.item( i );
String nodeName = node.getNodeName();
String nodeValue = node.getChildNodes().item( 0 ).getNodeValue();
if( nodeName.equals( "name" ) ) {
name = nodeValue;
}
else if( nodeName.equals( "address" ) ) {
address = nodeValue;
} // ... the rest goes here
}
如果您不想迭代所有子元素,可以执行以下操作:
XPathExpression expr = xpath.compile( "//venue" );
Object result = expr.evaluate( document, XPathConstants.NODESET );
NodeList nodes = (NodeList)result;
for( int i = 0; i < nodes.getLength(); i++ ) {
Node node = nodes.item( i );
NodeList venueChildNodes = node.getChildNodes();
String id = venueChildNodes.item( 1 ).getChildNodes().item( 0 ).getNodeValue();
System.out.println( "id: " + id );
String name = venueChildNodes.item( 3 ).getChildNodes().item( 0 ).getNodeValue();
System.out.println( "name: " + name );
String address = venueChildNodes.item( 7 ).getChildNodes().item( 0 ).getNodeValue();
System.out.println( "address: " + address );
}
在哪里获得所有场地节点然后映射它的孩子.但是,这种方法需要一个相当一致的xml结构.虽然,这样的事情对我来说似乎最安全:
XPathExpression expr = xpath.compile( "//venue" );
Object result = expr.evaluate( document, XPathConstants.NODESET );
NodeList nodes = (NodeList)result;
for( int i = 0; i < nodes.getLength(); i++ ) {
Node node = nodes.item( i );
NodeList venueChildNodes = node.getChildNodes();
String address = null;
String name = null;
for( int j = 0; j < venueChildNodes.getLength(); j++ ) {
Node item = venueChildNodes.item( j );
String nodeName = item.getNodeName();
if ( nodeName.equals( "address" ) ) {
address = item.getChildNodes().item( 0 ).getNodeValue();
}
if ( nodeName.equals( "name" ) ) {
name = item.getChildNodes().item( 0 ).getNodeValue();
}
}
System.out.println( "address: " + address );
System.out.println( "name: " + name );
}
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