必要なのは ajax 呼び出しか、以下のように XMLHttpRequest と言うことです。
<script type="text/javascript">
function doAjax () {
var request,
selection = table.getChart().getSelection()[0],
topping = data.getValue(selection.row, 0),
answer=confirm("Delete "+topping+"?");
if (answer && (request = getXmlHttpRequest())) {
// post request, add getTime to prevent cache
request.open('POST', "item?_method=delete&id="+topping+'&time='+new Date().getTime());
request.send(null);
request.onreadystatechange = function() {
if(request.readyState === 4) {
// success
if(request.status === 200) {
// do what you want with the content responded by servlet
var content = request.responseText;
} else if(request.status === 400 || request.status === 500) {
// error handling as needed
document.location.href = 'index.jsp';
}
}
};
}
}
// get XMLHttpRequest object
function getXmlHttpRequest () {
if (window.XMLHttpRequest
&& (window.location.protocol !== 'file:'
|| !window.ActiveXObject))
return new XMLHttpRequest();
try {
return new ActiveXObject('Microsoft.XMLHTTP');
} catch(e) {
throw new Error('XMLHttpRequest not supported');
}
}
</script>
jqueryでも簡単にできますが、
<script src="//ajax.googleapis.com/ajax/libs/jquery/1.8.3/jquery.min.js" />
<script type="text/javascript">
function doAjax () {
...
$.ajax({
url: "item?_method=delete&id="+topping+'&time='+new Date().getTime()),
type: "post",
// callback handler that will be called on success
success: function(response, textStatus, jqXHR){
// log a message to the console
console.log("It worked!");
// do what you want with the content responded by servlet
}
});
}
</script>
参照: jQuery.ajax()