bobicles2 Posted April 21, 2010 Share Posted April 21, 2010 I have a drop down menu shown below as you can see it has multiple fields which i want to add to the same entry into my database (as one complete date) this was my attempt $date = $_POST['Year'] . '-' . $_POST['Month'] . '-' . $_POST['Day']; $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$_POST['Event']','$_POST['Genre']','$date','$_POST['Price']','$_POST['Venue']','$_POST['Tickets']')"; Unfortunatly this doesnt work and gives me this error ; Parse error: syntax error, unexpected T_ENCAPSED_AND_WHITESPACE, expecting T_STRING or T_VARIABLE or T_NUM_STRING in /home/teamrend/public_html/insert.php on line 23 The Full code is posted below thanks in advance for any help!im really struggling to find a way past this here is my html form <form name="form2" method="post" action="insert.php"> <td><table width="100%" border="0" cellpadding="3" cellspacing="1" bgcolor="#DBDBDB"> <tr> <td colspan="3"><p align="center"><strong>Add Event </strong></p> <p> </p></td> </tr> <tr> <td width="59">Event</td> <td width="4">:</td> <td width="239"><input type="text" name="Event" /></td> </tr> <tr> <td>Genre</td> <td>:</td> <td><select name="genre" id="genre"> <option selected="selected" value="none">Genre</option> <option value="Rock">Rock</option> <option value="Pop">Pop</option> <option value="Indie">Indie</option> <option value="Electro">Electro</option> </select> </td> </tr> <tr> <td>Date</td> <td>:</td> <td> <select name="Year"> <option selected="selected">Year</option> <option value="2010">2010</option> <option value="2011">2011</option> <option value="2012">2012</option> <option value="2013">2013</option> <option value="2014">2014</option> <option value="2015">2015</option> <option value="2016">2016</option> <option value="2017">2017</option> <option value="2018">2018</option> <option value="2019">2019</option> <option value="2020">2020</option> <option value="2021">2021</option> <option value="2022">2022</option> <option value="2023">2023</option> <option value="2024">2024</option> <option value="2025">2025</option> <option value="2026">2026</option> <option value="2027">2027</option> <option value="2028">2028</option> <option value="2029">2029</option> <option value="2030">2030</option> </select> <select name="Month"> <option selected="selected">Month</option> <option value="01">01</option> <option value="02">02</option> <option value="03">03</option> <option value="04">04</option> <option value="05">05</option> <option value="06">06</option> <option value="07">07</option> <option value="08">08</option> <option value="09">09</option> <option value="10">10</option> <option value="11">11</option> <option value="12">12</option> </select> <select name="Day"> <option selected="selected">Day</option> <option value="01">01</option> <option value="02">02</option> <option value="03">03</option> <option value="04">04</option> <option value="05">05</option> <option value="06">06</option> <option value="07">07</option> <option value="08">08</option> <option value="09">09</option> <option value="10">10</option> <option value="11">11</option> <option value="12">12</option> <option value="13">13</option> <option value="14">14</option> <option value="15">15</option> <option value="16">16</option> <option value="17">17</option> <option value="18">18</option> <option value="19">19</option> <option value="20">20</option> <option value="21">21</option> <option value="22">22</option> <option value="23">23</option> <option value="24">24</option> <option value="25">25</option> <option value="26">26</option> <option value="27">27</option> <option value="28">28</option> <option value="29">29</option> <option value="30">30</option> <option value="31">31</option> </select> </td> </tr> <tr> <td>Price</td> <td>:</td> <td><input type="text" name="Price" /></td> </tr> <tr> <td>Tickets</td> <td>:</td> <td><input type="text" name="Tickets" /></td> </tr> <tr> <td> </td> <td> </td> <td><input type="submit" name="Submit" value="Submit" /></td> </tr> </table></td> </form> and this is insert.php <?php $date = $_POST['Year'] . '-' . $_POST['Month'] . '-' . $_POST['Day']; $con = mysql_connect("localhost","teamrend_rwowen","291Aug89"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("teamrend_rwowen", $con); $date = $_POST['Year'] . '-' . $_POST['Month'] . '-' . $_POST['Day']; $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$_POST['Event']','$_POST['Genre']','$date','$_POST['Price']','$_POST['Venue']','$_POST['Tickets']')"; if (!mysql_query($sql,$con)) { die('Error: ' . mysql_error()); } echo "Thank You, Your Event has now been added to our Records"; mysql_close($con) ?> Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/ Share on other sites More sharing options...
Psycho Posted April 21, 2010 Share Posted April 21, 2010 You are really asking for someone to corrupt your database. You must always validate/cleanse data from the user before using it in a query. Your error is a PHP error and has nothing to do with the query. However, what is interesting is that the error message states the problem is on line 23 and there are not 23 lines in the code you posted for the page. But, I assume the problem is you don't have a semi-colon at the end of the last line. Try this, which is more secure: <?php $date = (int) $_POST['Year'] . '-' . (int) $_POST['Month'] . '-' . (int) $_POST['Day']; $event = mysql_real_escape_string($_POST['Event']); $genre = mysql_real_escape_string($_POST['Genre']); $price = mysql_real_escape_string($_POST['Price']); $venue = mysql_real_escape_string($_POST['Venue']); $tickets = mysql_real_escape_string($_POST['Tickets']); $con = mysql_connect("localhost","teamrend_rwowen","291Aug89"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("teamrend_rwowen", $con); $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$event','$genre','$date','$price','$venue','$tickets')"; $result = mysql_query($sql, $con); if ($result) { echo "Error :" . mysql_error(); } else { echo "Thank You, Your Event has now been added to our Records"; } mysql_close($con); ?> Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1045819 Share on other sites More sharing options...
bobicles2 Posted April 21, 2010 Author Share Posted April 21, 2010 You are really asking for someone to corrupt your database. You must always validate/cleanse data from the user before using it in a query. Your error is a PHP error and has nothing to do with the query. However, what is interesting is that the error message states the problem is on line 23 and there are not 23 lines in the code you posted for the page. But, I assume the problem is you don't have a semi-colon at the end of the last line. Try this, which is more secure: <?php $date = (int) $_POST['Year'] . '-' . (int) $_POST['Month'] . '-' . (int) $_POST['Day']; $event = mysql_real_escape_string($_POST['Event']); $genre = mysql_real_escape_string($_POST['Genre']); $price = mysql_real_escape_string($_POST['Price']); $venue = mysql_real_escape_string($_POST['Venue']); $tickets = mysql_real_escape_string($_POST['Tickets']); $con = mysql_connect("localhost","teamrend_rwowen","291Aug89"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("teamrend_rwowen", $con); $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$event','$genre','$date','$price','$venue','$tickets')"; $result = mysql_query($sql, $con); if ($result) { echo "Error :" . mysql_error(); } else { echo "Thank You, Your Event has now been added to our Records"; } mysql_close($con); ?> Fantastic, ive been wondering how to use the real_escape_string properly for ages unfortunatly tho when i fill out the form and hit submit i get this error Warning: mysql_real_escape_string() [function.mysql-real-escape-string]: Access denied for user 'teamrend'@'localhost' (using password: NO) in /home/teamrend/public_html/insert.php on line 4 Warning: mysql_real_escape_string() [function.mysql-real-escape-string]: A link to the server could not be established in /home/teamrend/public_html/insert.php on line 4 i get both of these errors for lines 4-8 which are where $event-$genre are defined Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1045921 Share on other sites More sharing options...
Psycho Posted April 21, 2010 Share Posted April 21, 2010 Sorry, put the db connection info before you use that. <?php $con = mysql_connect("localhost","teamrend_rwowen","291Aug89"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("teamrend_rwowen", $con); $date = (int) $_POST['Year'] . '-' . (int) $_POST['Month'] . '-' . (int) $_POST['Day']; $event = mysql_real_escape_string($_POST['Event']); $genre = mysql_real_escape_string($_POST['Genre']); $price = mysql_real_escape_string($_POST['Price']); $venue = mysql_real_escape_string($_POST['Venue']); $tickets = mysql_real_escape_string($_POST['Tickets']); $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$event','$genre','$date','$price','$venue','$tickets')"; $result = mysql_query($sql, $con); if ($result) { echo "Error :" . mysql_error(); } else { echo "Thank You, Your Event has now been added to our Records"; } mysql_close($con); ?> Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1045957 Share on other sites More sharing options...
bobicles2 Posted April 21, 2010 Author Share Posted April 21, 2010 Sorry, put the db connection info before you use that. <?php $con = mysql_connect("localhost","teamrend_rwowen","291Aug89"); if (!$con) { die('Could not connect: ' . mysql_error()); } mysql_select_db("teamrend_rwowen", $con); $date = (int) $_POST['Year'] . '-' . (int) $_POST['Month'] . '-' . (int) $_POST['Day']; $event = mysql_real_escape_string($_POST['Event']); $genre = mysql_real_escape_string($_POST['Genre']); $price = mysql_real_escape_string($_POST['Price']); $venue = mysql_real_escape_string($_POST['Venue']); $tickets = mysql_real_escape_string($_POST['Tickets']); $sql="INSERT INTO Events (Event, Genre, Date, Price, Venue, Tickets) VALUES ('$event','$genre','$date','$price','$venue','$tickets')"; $result = mysql_query($sql, $con); if ($result) { echo "Error :" . mysql_error(); } else { echo "Thank You, Your Event has now been added to our Records"; } mysql_close($con); ?> I honestly could kiss you, the genre still doesnt insert but the date works fine (i think theres a problem in my form which is why genre isnt inserting will take a look now, thank you thank you thank you thank you you sir are a legend @@@@@@@@@@@@@@@@@ Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1045974 Share on other sites More sharing options...
bobicles2 Posted April 21, 2010 Author Share Posted April 21, 2010 Gone over it and it all works however, sometimes when i click submit it comes up error: then i hit back and hit submit again and it works? why the loss in data anyone know? Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1045982 Share on other sites More sharing options...
Psycho Posted April 21, 2010 Share Posted April 21, 2010 I honestly could kiss you, Unless you are a girl, no thanks. A "thank you" will suffice. sometimes when i click submit it comes up error: then i hit back and hit submit again and it works? why the loss in data anyone know? What is the error? Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1046085 Share on other sites More sharing options...
bobicles2 Posted April 21, 2010 Author Share Posted April 21, 2010 I honestly could kiss you, Unless you are a girl, no thanks. A "thank you" will suffice. sometimes when i click submit it comes up error: then i hit back and hit submit again and it works? why the loss in data anyone know? What is the error? if ($result) { echo "Error :" . mysql_error(); it echo's "Error :" so i presume its mysql_error but i dont know much about that Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1046099 Share on other sites More sharing options...
AdRock Posted April 21, 2010 Share Posted April 21, 2010 You need if(!$error) so if it doesn't do the query echo the error Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1046119 Share on other sites More sharing options...
ignace Posted April 21, 2010 Share Posted April 21, 2010 I honestly could kiss you, Unless you are a girl, no thanks. A "thank you" will suffice. And is 18+ we would want to keep this legal here Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1046121 Share on other sites More sharing options...
Psycho Posted April 21, 2010 Share Posted April 21, 2010 You need if(!$error) Good catch, but not quite. The query results are being assigned to $result, not $error. So it should be if(!$result) And is 18+ we would want to keep this legal here As far as I know there's no law against kissing minors. Quote Link to comment https://forums.phpfreaks.com/topic/199254-inserting-multiple-form-entries-into-one-table-column/#findComment-1046141 Share on other sites More sharing options...
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