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This is Siva,I here to discuss with dynamic Creation of Mysql table With the field name Of The HTML.

Here You Can See the Example HTML Code....

    <div id='container'>
            <h1 id="form-name" style="background-color: rgb(255, 255, 255); box-shadow: none; border: none; margin: 8px 15px;">New Form</h1>
            <form action="saveData.php" method="post" id="preview_form" novalidate="novalidate">
        <div class="row" style="display: block;">
    <label class="field" for="how_to_use_it?">How To Use It?</label><span class="radioButton" data="" id="how_to_use_it?">
    <label class="option" for="how_to_use_it?_option_1">
    <input class="radio" type="radio" name="how_to_use_it?" id="dialog_box_how_to_use_it?_option_1" value="Option 1" data="{&quot;validate&quot;:{&quot;required&quot;:false,&quot;messages&quot;:{}}}">Option 1</label><label class="option" for="how_to_use_it?_option_2">
    <input class="radio" type="radio" name="how_to_use_it?" id="how_to_use_it?_option_2" value="Option 2">Option 2</label>
<label class="option" for="how_to_use_it?_option_3"><input class="radio" type="radio" name="how_to_use_it?" id="how_to_use_it?_option_3" value="Option 3">Option 3</label></span></div>
<input type="submit" class="button blue" value="Submit" id="submit-form"><input type='hidden' id='tname' name='tname' value='surveyForm_6' />
</form>
</div> <!--container-->

Here Is what i need as a output Table :

id(pk) how_to_use_it?
1      Option1

Here how_to_use_it? this will be the name of the field,what ever it is maybe a textbox,radio,checkbox etc,and the name of the element also what ever it is like it may or maynot have special charectors.....

This is What i have Tried:

<?php 
require_once"../session.php";
$selFname =$dbHandle->execQuery("SELECT file_name,max(survey_form_id) as id FROM master_survey_forms WHERE survey_form_id=(SELECT max(survey_form_id) FROM master_survey_forms)");
$fetFname =$dbHandle->fetchObjectQuery($selFname);
$last_saved_on =date("Y-m-d H:i:s");
if($fetFname->file_name != '')
{
    $tmpName =explode("_",$fetFname->file_name);
    $tname =$tmpName[0].'_'.($fetFname->id);
}
else
{
    $tname ='surveyForm_1';
}
if (isset($_POST)) {
    $values="'$fetFname->id' ,'$userId','$last_saved_on',";

    foreach ($_POST as $key => $val) {
        $sqlin .= " ".strtolower($key)." VARCHAR(255) , ";
        if($key != 'tname')
        {
            $fldNamein .=strtolower($key).',';
        }
        $tmpVals="";
        if(is_array($val)){

            if(!empty($val) && $key != 'tname') {
                foreach($val as $vls) {
                    if($key != 'tname')
                    {
                        $tmpVals .=$vls.',';
                    }
                }
                $tmpVals =substr($tmpVals,0,strlen($tmpVals)-1);
            }
            else
            {
                 $tmpVals ="";
            }
        }
        else
        {
            if($key != 'tname')
            {
                $tmpVals =$val;
            }
        }
        if($key != 'tname')
        {
            $values .=" '$tmpVals'".' ,';
        }
        $tsname =$_POST['tname'];
    }
    if($tsname != '')
    {
        $tname =$tsname;
    }
    else
    {
        $tname =$tname;
    }
    echo $sqlin.'sdf';
    $fldName='INSERT INTO '.$tname.'(survey_form_id ,submitted_by,submitted_on, '.$fldNamein;
    $sql = 'CREATE TABLE IF NOT EXISTS ';
    $sql .= $tname.'('.$tname.'_id INT NOT NULL AUTO_INCREMENT, PRIMARY KEY('.$tname.'_id), survey_form_id  varchar(255) ,submitted_by  varchar(15) ,submitted_on  timestamp , '.$sqlin;
    $sql = preg_replace('/, $/', '', $sql);
    $sql .= ')';
    echo $sql;
    if($tsname == '')
    {
        $dbHandle->execQuery($sql);
    }
    else
    {
        $insVal =substr($fldName,0,strlen($fldName)-1).') VALUES ('.substr($values,0,strlen($values)-1).' )';
        $dbHandle->execQuery($insVal);
    }
    //header("Location:index.php");
}
?>
share|improve this question

closed as not a real question by John Conde, KatieK, Mark, Lars Kotthoff, Maerlyn Jan 9 '13 at 18:59

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

2  
What have you tried? See the FAQ, please. –  John Conde Jan 9 '13 at 12:46
    
.. and what is your error? –  Rudi Visser Jan 9 '13 at 12:49
    
can you post the result of your "echo $sql;" line, and tell us if it works in phpmyadmin? –  x4rf41 Jan 9 '13 at 12:50
    
i got the output as a table but without having the name of the field in the radio is not in the table[how_to_use_it?] 'how_to_use_it?'->this field is not there.. –  Siva G Jan 9 '13 at 12:51
    
this is mySql Result:'CREATE TABLE IF NOT EXISTS surveyForm_6(surveyForm_6_id INT NOT NULL AUTO_INCREMENT, PRIMARY KEY(surveyForm_6_id), survey_form_id varchar(255) ,submitted_by varchar(15) ,submitted_on timestamp )' –  Siva G Jan 9 '13 at 12:52

1 Answer 1

up vote 3 down vote accepted

The way you'd do this is to generate a CREATE TABLE query, based off iterating over the keys in the $_POST.

Note that if you're doing this, you'll need to escape the column names (since you have spaces, special characters etc).

The MySQL escape character is `.

EDIT: Based on your code, I'm guessing this is your issue as described above:

$sqlin .= " ".strtolower($key)." VARCHAR(255) , ";
// ..
$fldNamein .=strtolower($key).',';

Simply escape your field names:

$sqlin .= " `".strtolower($key)."` VARCHAR(255) , ";
// ..
$fldNamein .= '`' . strtolower($key) . '`,';

(If that doesn't work, please provide the value of $sql and any results of MySQL_error())

share|improve this answer
    
yes it is escaping the special convectors... –  Siva G Jan 9 '13 at 12:53
    
sorry dude..it is not working....... –  Siva G Jan 9 '13 at 12:56
    
@SivaG I can see that from your output of $sql in comment, what is the value of $sqlin? Also what is the intention of preg_replace('/, $/', '', $sql); –  Rudi Visser Jan 9 '13 at 12:58
    
i got it dude...if i am removing preg_replace() it is working........thanks.......... –  Siva G Jan 9 '13 at 13:02

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