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PHP如何接受ajax的post 表单并分行保存TXT呢

程序员文章站 2022-06-08 15:32:12
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JS代码如下
function SubmitApply() {    var form = Global.GetElement("#submitForm");    var UserName = Global.GetElement(form, 'input[name="Name"]').value;    var Mobile = Global.GetElement(form, 'input[name="Tel"]').value;    var Position = Global.GetElement(form, 'input[name="Position"]').value;    var Company = Global.GetElement(form, 'input[name="Company"]').value;    var ActId = Global.GetElement(form, 'input[name="Actid"]').value;    if (Global.IsNullOrWhitesapce(UserName)) {        Global.Tip.TipError("姓名必须填写");        return;    }    if (Global.IsNullOrWhitesapce(Mobile)) {        Global.Tip.TipError("手机必须填写");        return;    }    if (/^1[3|4|5|8][0-9]\d{4,8}$/.test(Mobile) == false) {        Global.Tip.TipError("手机格式不正确");        return;    }    var ajaxRequest = new HttpAjaxRequest();    ajaxRequest.ajax({        dataType: 'json',        url: '',        data: { name: UserName, mobile: Mobile, companyname: Company, position: Position, actid: ActId },        successed: OnSubmitAppplySuccesse,        error: function () {            Global.Tip.TipError('提交失败!');            GlobalPlayer.DisableNext();        }    });}/** * 名称:申请提交成功 */function OnSubmitAppplySuccesse(data) {    if (data.Code == 0) {        Global.Tip.TipMessage('提交成功!');        var form = Global.GetElement("#submitForm");        GlobalPlayer.EnableNext();        GlobalPlayer.PlayNext();        form.reset();    } else {        Global.Tip.TipError('提交失败!' + data.Message);        GlobalPlayer.DisableNext();    }}


哪个好人帮我写个完整的PHP接受源码吧 本人PHP小白(已哭晕)


回复讨论(解决方案)

在贴吧看到你了。。


ajaxRequest.ajax({
dataType: 'json',
url: ' ./save_to_txt.php',
data: { name: UserName, mobile: Mobile, companyname: Company, position: Position, actid: ActId },
successed: OnSubmitAppplySuccesse,
error: function () {
Global.Tip.TipError('提交失败!');
GlobalPlayer.DisableNext();
}
});


save_to_txt.php:

$name = $_POST['name'];$mobile = $_POST['mobile'];$companyname = $_POST['companyname'];$actid = $_POST['actid'];$position = $_POST['position']; $str =$name. "\n".$mobile."\n".$companyname."\n".$actid."\n".$position;$h = fopen('./t.txt','w');fwrite($h,$str);fclose($h);

在贴吧看到你了。。


ajaxRequest.ajax({
dataType: 'json',
url: ' ./save_to_txt.php',
data: { name: UserName, mobile: Mobile, companyname: Company, position: Position, actid: ActId },
successed: OnSubmitAppplySuccesse,
error: function () {
Global.Tip.TipError('提交失败!');
GlobalPlayer.DisableNext();
}
});


save_to_txt.php:

$name = $_POST['name'];$mobile = $_POST['mobile'];$companyname = $_POST['companyname'];$actid = $_POST['actid'];$position = $_POST['position']; $str =$name. "\n".$mobile."\n".$companyname."\n".$actid."\n".$position;$h = fopen('./t.txt','w');fwrite($h,$str);fclose($h);


大神啊 接收端不错 就是这个JS 发不出去数据 一直提交的是空数据是怎么回事呀

你没有指定工作方式,默认应该的 GET
用 $_POST 当然收不到数据