Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i have made a deep search and tried a lot to send value automatically to other php page. i dont know is it possible or not. But if someone knows then please kindly tell me. Here is the code what i am trying:

t.html // for browsing

<html>
<head>
 <style>
 #boox{
    overflow:auto;
    width:600px;
    height:400px;
    }
 </style>

<script>
alert("helo");
</script>
<script>

    function pict(str)
    {    alert("hel");
         if (str=="")
            {
            document.getElementById("txtHint").innerHTML="";
            return;
            } 
        xmlhttp = new XMLHttpRequest();
        var picInput = document.getElementById('userfile').value;
        var uploadpic = document.getElementById('upload').value;
        document.getElementById('usf').innerHTML = picInput;
        document.getElementById('upic').innerHTML = uploadpic;  
        xmlhttp.onreadystatechange = function () {

        if (xmlhttp.readyState == 4 && xmlhttp.status == 200) {
      //   var resp = xmlhttp.responseText;
      document.getElementById("txtHint").innerHTML=xmlhttp.responseText;
      //   alert(resp);
      } alert("a");
        xmlhttp.open( "POST", "show.php.php?q"="+str, true); //POST Because you use $_POST in php
xmlhttp.send();// not happening
   }

    }    
    </script> 
    </head>
    <body>
    <form method="post" enctype="multipart/form-data" action="take.php">
<table width="350" border="0" cellpadding="1" cellspacing="1" class="box">
<tr>
<td width="246">
<input type="hidden" name="MAX_FILE_SIZE" value="2000000">
<input name="userfile" type="file" id="userfile">
</td>
<input name="upload" type="submit" onChange ="pict(this.value)" class="box" id="upload" value=" Upload ">
</tr>
</table>
</form>
<div  id="txtHint">here div </div>
    </body>
     </html> 

take.php // this is the page that i am trying to send without submit to other php

<?php
    if(isset($_POST['upload']) && $_FILES['userfile']['size'] > 0)
        {
        $fileName = $_FILES['userfile']['name'];
        $tmpName  = $_FILES['userfile']['tmp_name'];
        $fileSize = $_FILES['userfile']['size'];
        $fileType = $_FILES['userfile']['type'];
        $fp      = fopen($tmpName, 'r');
        $content = fread($fp, filesize($tmpName));
        $content = addslashes($content);
        fclose($fp);
        if(!get_magic_quotes_gpc())
        {
            $fileName = addslashes($fileName);
        }
         $con=mysql_connect("localhost","root",'');
         mysql_select_db("project",$con) or die("error db");

        $query = "INSERT INTO upload (name, size, type, content ) ".
        "VALUES ('$fileName', '$fileSize', '$fileType', '$content')";
        mysql_query($query) or die('Error, query failed');
        mysql_close($con);
        echo "<br>File $fileName uploaded<br>";
// i am trying to send parameter that is "fileName" through header to show.php
header("location:show.php");
        }
      ?>

show.php

<HTML>

<head>
<script>
#showpic
{
overflow:auto;
width:600px;
height:400px;
border:#000000 2px solid;

}
</script>
<script>

     function changeThis(){

     xmlhttp = new XMLHttpRequest();
     var formInput = document.getElementById('theInput').value; 
     var title = document.getElementById('title').value; 
     /* formInput will be undefined */
     document.getElementById('newText').innerHTML = formInput;
     document.getElementById('ntitle').innerHTML = title;
     /* also undefined */
//    var xmlHttp = null;

    xmlhttp.onreadystatechange = function () {
      if (xmlhttp.readyState == 4 && xmlhttp.status == 200) {
         var resp = xmlhttp.responseText;
         document.getElementById("txtHint").innerHTML=resp;
         alert(resp);
      }
   }
//alert("yes");
   xmlhttp.open( "POST", "file2.php?q=+" , true); //POST Because you use $_POST in php
xmlhttp.send('theInput='+ encodeURIComponent(formInput) + 
         '&newText='+ encodeURIComponent(formInput) +
         '&ntitle='+ encodeURIComponent(title));
    } 
     </script>

</head>
<div id="showpic">
<?php
//header("location:event.php");

echo"heloo00";
 $con=mysql_connect("localhost","root",'');
 mysql_select_db("project",$con) or die("error db");

$sql="select * from upload";
$query=mysql_query($sql);
while($row=mysql_fetch_array($query))
{
$image=$row ['name'];
echo '<img src="data:image/png;base64,' . base64_encode( $row['content'] ) . '" />';
}
?>
</div>

<body>
<p> <span name id='ntitle'></span> </p> 
     <p>You wrote: <span id='newText'></span> </p>
     <body>
    <form method="GET" action="<?php echo $_SERVER['PHP_SELF']; ?>" >  
    Title :<textarea name="des"   rows="1" cols="25" required></textarea>
                  <br>
    Write :<textarea name="cht"   rows="25" cols="25" required  >write</textarea>     
     <input type=submit name="submit"  onclick='changeThis() value ='Post event'/>
    </form>
    <?PHP

if(isset($_GET['submit']))
{
$u=$_GET['des'];
$k=$_GET['cht'];

$q="insert into event (title,detail) value('$u','$k')";
 $con=mysql_connect("localhost","root","") or die ("connection Error");;
mysql_select_db("project",$con) or die ("db Error");
$r=mysql_query($q) or die ("qury Error");;

}


?>

</body>
</html>
share|improve this question
    
You wanna send a value or upload a image? –  Patrick Maciel Jan 22 '14 at 20:16
    
actually this is showing all images that is being uploaded but i want to get that image and only one image when i newly upload. thats why i am using this technique. is there any other? –  user3187733 Jan 22 '14 at 20:27

1 Answer 1

To share data between php documents without explicitly passing that data, you can store it in a $_SESSION variable. This makes data available between php scripts when they are access by a user during the same session. Sessions are way to much to explain here, but you can read up on them in the PHP Manual section on session handling. When you have more specific questions, post them here and we can help you with them.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.