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visits member for 2 years, 7 months
seen Aug 29 at 14:56

PHP, HTML, CSS, JavaScript, Smarty. How to code!


Feb
22
awarded  Constituent
Feb
15
comment Updating database with MYSQLi
your update query in send_post.php is not right, update query should be like=> UPDATE tabelName SET field1=[value-1],field2=[value-2],field3=[value-3] WHERE 1
Feb
15
comment Editing value is not working Properly in php
can't even find word 'Commerce' in both of your provided code! this error is related to query, and there no 'Commerce' word at all.
Feb
14
comment How to execute ajax requests in a loop, and before some code
no this beforeSend for sure execute code before successCallback will execute,
Feb
14
comment How to execute ajax requests in a loop, and before some code
i don't exactly know what you are trying to do before and after, with your ajax call, your question was how to put some code before successCallback, and through beforeSend: function() {...} you can achieve it.
Feb
14
comment How to execute ajax requests in a loop, and before some code
try use beforeSend: function() { ...code... } just after url: serviceUrl,
Feb
14
comment PHP how to insert select box value into database
your question not clear, but what ever i got from it is, you want a user select any option from drop down list and on submit form that selected value should insert into your desired table?
Feb
14
comment Failed to call “SignUp.php” page functions defined in Action in PHP form?
you are not calling function registerFucntion() at all, just remove this function and its scope, and place your code <?php if ($_SERVER['REQUEST_METHOD'] == 'POST') { ......... } ?>
Feb
13
awarded  Caucus
Jan
18
awarded  Yearling
Dec
9
comment Center align a div with a fixed top
try remove position:absolute; from #walkthrough, here's the fiddle jsfiddle.net/S5bKq/331
Nov
28
comment Update data into MySQL using PHP
"first button is for uploading and second button is for storing information into database - Abrahim Neil" i dont know your exact requirement but you can use one button for both task, you dont need a separate button for storing data into database. but if you are still looking for update solution for that you must have fileid so you update same record, try this "UPDATE table_name SET col1=value-1, col2=value-2 WHERE FilesID = fileid"
Nov
9
comment “Notice: Undefined variable” but variable is declared in a function
either you use a return type for userid or include your function file like include('./includes/yourfuntion.php'); where you want $userid value.
Nov
9
answered How to get the value of html <input type=“hidden” id=“hide”> in PHP?
Nov
9
comment Error populating dropdown menu from database
while using echo, you have to concatenate php variable, try this echo "<option value=".$type.">".$type."</option>";
Oct
26
comment Submit and Show Data using jQuery - issue
Give your form an id="msgSubmit" and in your jquery replace var message = $( "#pc_message" ).val(), if (message == '') { alert( "Message is missing!!" ); return; } with var datastring = $("#msgSubmit").serialize(); and then alert this datastring. and let me know you are getting msg or not? because most of this happens with me if i use $ multiple time nothing happens.
Oct
26
comment Submit and Show Data using jQuery - issue
in your jQuery part, did you get value into message variable and if its empty did it show alert message?
Oct
26
comment resubmit after refresh php page - why
could you please explain a bit, we cant help you like this!
Oct
25
comment show path of image on update form php
ok what you have to do, in your form <input type="hidden" name=imgEdit" value="<?php echo photopath ?>"/> then of course on edit.php before if file upload check $image = $_POST['imgEdit']; if user upload the file $image variable automatically update his value otherwise you have the hidden last image name for the same record.
Oct
25
comment show path of image on update form php
@rogerthat, please let me know if i am off the track, your query is, if user on edit or update page, user can see a already uploaded image name along with chose file button, plus if user dont chose a new image, this image name remain the same in database?