form.ajaxSubmit获取上传的文件名
发布时间:2020-12-16 03:25:14 所属栏目:百科 来源:网络整理
导读:var form = $("form[name=fileForm]"); $("#uploadTip").html("正在上传..."); var options = { action: '/optimizationJob/uploadFile.action',type: 'post',data: {fileName:fileName },//传递文件名到服务器 success: function (data) { var success = da
var form = $("form[name=fileForm]");
$("#uploadTip").html("正在上传...");
var options = {
action: '/optimizationJob/uploadFile.action',type: 'post',data: {fileName:fileName },//传递文件名到服务器
success: function (data) {
var success = data.success;
var errMsg = data.errMsg;
if (success == "Y") {
console.log("上传成功,返回success=Y,errMsg:" + errMsg);
$("#uploadTip").html("上传成功");
// uploadFileToJSS(fileName);
} else {
console.log("上传失败,返回success=N,errMsg:" + errMsg);
$("#uploadTip").html("上传失败");
}
$("#submitBtn").attr("disabled",false);
},error: function (data) {
console.log("上传失败,返回error");
$("#uploadTip").html("上传失败");
$("#submitBtn").attr("disabled",false);
}
};
form.ajaxSubmit(options);
java中的Action写好fileName的set,get方法,就能使用了 (编辑:李大同) 【声明】本站内容均来自网络,其相关言论仅代表作者个人观点,不代表本站立场。若无意侵犯到您的权利,请及时与联系站长删除相关内容! |