我正在尝试从指定的URL返回JSON数据但是当弹出警报时它只显示[object Object](我意识到对象对象实际上并不是错误)。 我想吐出警告中的职位名称和其他字段。我该怎么做?
以下是我正在查看的JSON示例(完整文件大约有30个帖子)
[
{
"m_id": 473644,
"m_positionName": "Application Monitoring Software Engineer",
"m_positionLocations": [
{}
],
"m_active": true,
"m_description": "Job Responsibilities:\r\n\r\n-Create world class application monitoring tools and dashboards for our health care applications\r\n\r\n-Develop business rules to pro actively identify and re-mediate system-level issues before they occur.\r\n\r\n-Create business intelligence reports for internal and external use as a supplement to software products.\r\n\r\n\r\n\r\nJob Requirements:\r\n\r\n-BS or MS Degree in computer science or any engineering discipline.\r\n-4+ years of experience with Java (or other object-oriented programming language).\r\n-Experience in SQL, Struts, Hibernate, Spring, Eclipse, JSP, JavaScript.\r\n-Highly motivated and self-driven personality.\r\n-Excellent interpersonal and leadership skills.\r\n-A vision for the future and a desire to make a difference.\r\n-Experience with Maven, Tomcat, PostgreSql, Jasper Reports,",
"m_postedDate": "Jun 29, 2012 9:17:19 AM",
"m_closingDate": "Jun 29, 2013 12:00:00 AM"
}
]
这是我正在使用的脚本。
$.ajax({
type: "GET",
url: '/wp-content/themes/twentyeleven/js/jobopenings.json',
async: false,
beforeSend: function(x) {
if(x && x.overrideMimeType) {
x.overrideMimeType("application/j-son;charset=UTF-8");
}
},
dataType: "json",
success: function(data){
alert(data);
}
});
非常感谢任何帮助。
答案 0 :(得分:18)
您总是可以将对象转换为字符串并提醒它。
alert(JSON.stringify(data));
答案 1 :(得分:7)
试试这个:
success: function(data)
{
var _len = data.length;
, post, i;
for (i = 0; i < _len; i++) {
//debugger
post = data[i];
alert("m_positionName is "+ post. m_positionName);
}
}