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've a problem in below code that when i try to update this fields, due to like, school, schoolyr field my query doesn't work & the else section executes, but when i remove this 3 from the query it works fine.please help me, thx in advance and the php & html code is below :-

php :-

if(isset($_POST['nametb']) && isset($_POST['usernametb']) && isset($_POST['emailtb']) && isset($_POST['confirmtb']) && isset($_POST['abouttb']) && isset($_POST['interesttb']) && isset($_POST['dreamtb']) && isset($_POST['liketb']) && isset($_POST['schooltb']) && isset($_POST['schoolyrtb']) && isset($_POST['occupationtb']) && isset($_POST['occupationyrtb']) && isset($_POST['passwordstb']))
            {

                $nametb = $_POST['nametb'];
                $usernametb = $_POST['usernametb'];
                $emailtb = $_POST['emailtb'];
                $confirmtb = $_POST['confirmtb'];
                $abouttb = $_POST['abouttb'];
                $interesttb = $_POST['interesttb'];
                $dreamtb = $_POST['dreamtb'];
                $liketb = $_POST['liketb'];
                $schooltb = $_POST['schooltb'];
                $schoolyrtb = $_POST['schoolyrtb'];
                $occupationtb = $_POST['occupationtb'];
                $occupationyrtb = $_POST['occupationyrtb'];
                $passwordtb = $_POST['passwordstb'];
                $passwordstb = md5($passwordtb);            

                if(!empty($nametb) && !empty($usernametb)){

                    if(!empty($passwordtb)){

                        $password_get = "SELECT id from user_login WHERE password='$passwordstb'";

                        if($password_get_run = @mysql_query($password_get)){

                            if(mysql_num_rows($password_get_run) > 0){          

                                if(($emailtb != '' && $confirmtb != '-') || ($emailtb != '-' && $confirmtb != '-')){

                                    if($emailtb == $confirmtb){

                                        if(preg_match("/^[A-Z0-9._%-]+@[A-Z0-9][A-Z0-9.-]{0,61}[A-Z0-9]\.[A-Z]{2,6}$/i", $emailtb)){

                                            $query = "UPDATE user_info SET `name`='$nametb', `username`='$usernametb', `email`='$emailtb', `about`='$abouttb', `interest`='$interesttb', `dream`='$dreamtb', `like`='$liketb', `school`='$schooltb', `schoolyr`='$schoolyrtb', `occupation`='$occupationtb', `occupationyr`='$occupationyrtb' WHERE id='$user_id'";

                                            if($query_run = @mysql_query($query)){

                                                echo 'info successfully updated';
                                            }
                                            else{

                                                echo 'Failiure in updating info';
                                            }

html :-

<form action="<?php if(isset($current_file)){ echo $current_file; } ?>" method="POST">

<fieldset id="fieldset1">

<legend style="font-family: Ubuntu; font-size:20px;">Info</legend>

<label id="name" title="Name" for="textbox1">Name :</label>

<label id="username" title="UserName" for="textbox2">UserName :</label>

<label id="email" title="Email" for="textbox3">Email :</label>

<label id="confirm" title="Confirm Email" for="textbox4">Confirm :</label>

<br />

<input type="text" id="textbox1" name="nametb" value="<?php if(isset($namedb)){ echo $namedb; } ?>" />

<input type="text" id="textbox2" name="usernametb" value="<?php if(isset($usernamedb)){ echo $usernamedb; } ?>" />

<input type="text" id="textbox3" name="emailtb" value="<?php if(isset($emaildb)){ echo $emaildb; } ?>" />

<input type="text" id="textbox4" name="confirmtb" value="<?php if(isset($confirmdb)){ echo $confirmdb; } ?>" />

<br /><br />

<div id="hrln"><hr /></div>

<label id="about" title="About you" for="textarea1">About :</label>

<label id="interest" title="You are interested in?" for="textarea2">Interested in :</label>

<br />

<textarea id="textarea1" name="abouttb"><?php if(isset($aboutdb)){ echo $aboutdb; } ?></textarea>

<textarea id="textarea2" name="interesttb"><?php if(isset($interestdb)){ echo $interestdb; } ?></textarea>

<br /><br /><br /><br /><br /><hr />

<label id="dream" title="Your Dream?" for="textarea3">Dream :</label>

<label id="like" title="What do you like?" for="textarea4">You like :</label>

<br />

<textarea id="textarea3" name="dreamtb"><?php if(isset($dreamdb)){ echo $dreamdb; } ?></textarea>

<textarea id="textarea4" name="liketb"><?php if(isset($likedb)){ echo $likedb; } ?></textarea>

<br /><br /><br /><br /><br /><hr />

<label id="education" title="Your school" for="textbox5">School | University :</label>

<label id="educationyr" title="Year" for="textbox6">Year :</label>

<br />

<input type="text" name="schooltb" id="textbox5" value="<?php if(isset($schooldb)){ echo $schooldb; } ?>" />

<input type="text" name="schoolyrtb" id="textbox6" value="<?php if(isset($schoolyrdb)){ echo $schoolyrdb; } ?>" />

<br /><br /><hr />

<label id="occupation" title="Occupation" for="textbox7">Occupation :</label>

<label id="occupationyr" title="Year" for="textbox6">Year :</label>

<br />

<input type="text" id="textbox7" name="occupationtb" value="<?php if(isset($occupationdb)){ echo $occupationdb; } ?>" />

<input type="text" id="textbox8" name="occupationyrtb" value="<?php if(isset($occupationyrdb)){ echo $occupationyrdb; } ?>" />

<br /><br /><hr />

<label id="passwords" title="For Security Purpose" for="textbox9">Password :</label>

<input type="password" id="textbox9" name="passwordstb" />

<input type="submit" value="Save Info Modification" name="save" id="button1" />

<input type="submit" value="Cancel Info Modification" name="cancel" id="button2" />

</fieldset>

</form>
share|improve this question
    
not able to update table successfully... –  Krishna Sarswat Dec 3 '11 at 13:18
    
Use a prepared statement. Don't put raw values straight in your database like that. –  Nathan Hoad Dec 3 '11 at 13:19
1  
Why don't you remove the '@' from your query function so you can see any errors? –  Tom Walters Dec 3 '11 at 13:19
    
you're not getting any error ? if you get any error please post it here,maybe you have SQL syntax error –  Qchmqs Dec 3 '11 at 13:19
    
@mysql_query - very bad, if you remove @ you see the mistake. –  legiero Dec 3 '11 at 13:19

2 Answers 2

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near 'like='hey there', school='-', schoolyr='-', occupation='Chitchat CEO', occupatio' at line 1

Then your second SQL error is that you used a reserved SQL keyword as column name. You need to quote such with backticks:

 SELECT ...   `like` = '$var'

Again, note the backticks.

If you don't know which column names might be special names, then it's safest to quote them all. (Not a generic advise, but for newcomers.)

share|improve this answer
    
it still shows this error, i've tried in phmyadmin:- #1064 - You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ''name'='Krishna Sarswat', 'username'='krushed18', 'email'='krushed18@gmail.com',' at line 1 –  Krishna Sarswat Dec 3 '11 at 13:41
    
Please note that I said backticks, not single quotes. stackoverflow.com/questions/261455/… -or- google.com/search?q=backticks -or- dev.mysql.com/doc/refman/5.0/en/identifiers.html –  mario Dec 3 '11 at 13:44
    
    
after adding backticks it's showing this error :- #1064 - You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near '"UPDATE user_info SET name=jbjkkj', username='usernametb', email='emailt' at line 1 –  Krishna Sarswat Dec 3 '11 at 13:53
    
Update your question with current code and raw and complete error message. Don't comment spam. –  mario Dec 3 '11 at 13:58

You are missing a comma between '$schoolyrtb' and occupation: , schoolyr='$schoolyrtb' occupation='$occupationtb'.

But you can also find these sorts of errors by using

    else{
       echo 'Failiure in updating info, error: ' . mysql_error();
    }
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.