Tag Info

New answers tagged

0

Why not do a substr after the whole string is constructed.


0

Try this (without testing) <?php foreach ($quiz['questions'] as $key => $question){ echo "<h3>" . $question . "</h3>"; foreach($quiz['choices'][$key] as $choice){ echo "<label>"; if(isset($_POST[$key])) :?> echo "<input type="radio" name="$key" value="$choice" id="$choice" <?php echo ...


0

An alternative solution is to piggy-back on cookies with the Secure flag. You can easily check for the existence of the secure cookie to know if the user is visiting your page through HTTPS on a proper browser. However, keep in mind that this wouldn't work for clients that do not use cookies. Attackers can also trivially supply the cookie when using HTTP, ...


0

I had a similar situation where a php file on the server always echoed a space, then newline and then the actual echo. Like " \n[someVariable]". I got rid of it by making sure the php file had no empty lines at the beginning or end of the file. So no empty line before the Perhaps your problem is related.


0

Might be overkill but there is always SimpleXml as well: $arr = ...


0

$arr = ...


1

i wrote something simplier: <?php ...


0

According to Stuart, the bug has been fixed. You shouldn't randomly receive this error anymore for no reason.


4

Instead of doing two mysql_query function, why can't you just combine the two queries in one. See below: mysql_query(" UPDATE order1 SET total=(SELECT SUM(total) from order_details WHERE order_id='$order_id') WHERE order_id= '$order_id' ")or die(mysql_error());


0

You should use the function as follow: if(move_uploaded_file($_FILES["userfile"]["tmp_name"], "./appphotos/" . $newfilename)) { echo json_encode($uploadFile); // why do you want to encode it? } else { echo 'File failed to move'; } Always check the result of move_uploaded_file(). Also, the file is located at $_FILES["userfile"]["tmp_name"] before ...


0

May be you have an error in your PHP because your PHP statements need to be end with a semi colon , try using <td><input type="hidden" class='some_id' value="<?php echo $some1_name['some1_id']; ?>"><?php echo $some1_name['some1_id']; ?></td>


0

Can't you just check if the element has the key? Like this: if (isset($json['Cell']['@column']) { // do stuff with single-element } else { // it is a collection }


0

If you need to replicate files between servers you can achieve it using tools like rsync. But you wouldn't use rsync if you really 100 servers. In that case you MUST to use a CDN (Content Delivery Network). So you can publish assets just once and access them from all your servers. There are free, cheap and very power CDN servers.


0

First I recommend you to appart your logic from your template. This will help you to understand better your code. Now, php has a template syntax. I could translate your code like this: <?php $args=array( 'posts_per_page'=> 3, 'post_type' => 'post'); $myposts = get_posts( $args ); foreach ($myposts as $post): ?> <?php ...


0

not sure what the values for "product" and "Unit Type" are from the db change: $data[] = ''.$code.' - '.$quantity.''; to $data[] = array('code'=>$code,'quantity'=>$quantity) then $mail_content .= '<table id="mytable" cellspacing="0" style="">'; $mail_content .= '<tr >'; $mail_content .= '<td width="20%">product</td>'; ...


0

I would say, don't use them. A common misconception is that HTML imports work exactly like PHP's include(). In fact, all it does is load the content into a pointer which you can then push onto the page with the use of javascript. Obviously this won't work out well for people who have disabled js! This may or maybe not be a problem, depending on your support ...


0

Just to complement @Stefano´s response, i've made a big query, just to extract some other important details, like address and phone. Some of these details will only make sense on my database, but can help someone: SELECT c.entity_id,c.email, ( SELECT fn.value FROM customer_entity_varchar fn WHERE c.entity_id ...


1

Did you try your path with POST or just GET? It could be exist for GET requests (pasting the url on a browser) but probably not for POST or other HTTP verbs. You can use REST clients like Postman to be sure, which is also a Chrome extension.


-1

heres my code for logging if this helps but after adding code chmod the log files to 0777 or it wont work as adding the code doesn't make it work and will give php error hence why its not in the code btw you may have to create log files manually but easy enough <!-- Below Code Logs ONLY User's IP Address & Time Stamp & Browser Info To ...


0

Stupid me... The culprit was here: $data = json_decode($response); Should be: $data = json_decode($response,true); Now I get a proper PHP array.


1

rtrim($txt, " $foo"); trims the selected characters from the right of the string


0

Hi Ok so I was able to answer my own question because of what @bobdye had pointed out, okayyy I'll cut to the chase here is how it was solved dirname(FILE) . '/els-content/*' returns the current directory plus the string '/els-content/*' which my problem is the files from els-content does not show on my dropdown so I used echo to check what does that ...


0

Maybe you called the wrong parameter: $this->_validateQty($cartQty, $qty2); Replace with: $this->_validateQty($qty1, $qty2);


0

You may separate logic of a new topic creation, such as checks, maybe DB operations and so on, and creation of a new object of Topic class. Note, that creation of a Topic object is necessary means it should be persistent at once. Topic class may only be a struct for topic data.


1

Use LEFT JOIN and remove the WHERE clause: "SELECT slide.*, media.*, slide.id AS slideid FROM slide LEFT JOIN media ON slide.mediaid = media.id ORDER BY sort ASC"


0

Try to remove your WHERE CLAUSE "SELECT slide.*, media.*, slide.id AS slideid FROM slide JOIN media ON slide.mediaid = media.id ORDER BY sort ASC"


0

Use left join "SELECT slide.*, media.*, slide.id AS slideid FROM slide LEFT JOIN media ON slide.mediaid = media.id WHERE media.id = slide.mediaid ORDER BY sort ASC"


1

to make it easier you can alter your query by AuthorName for example : mysql_query("SELECT * FROM authors ORDER BY AuthorName ASC")


0

I found the answer thanks to the following stack overflow post - php regex or | operator I needed to change the regex to the following and I was finally able to return all the meal periods and contents there of within the correct array. '/<MealPeriod name="(.*?)">(.*?)<\/?MealPeriod>/i' hense the ? in <\/?Meal


0

I couldn't find anything wrong with your code. However you can try this below. It always works well for me. <?php if (get_header_image()) { ?> <img src="<?php header_image(); ?>" alt="<?php bloginfo('name'); ?>"> <?php } else { ?> <img src="<?php echo get_template_directory_uri(); ?>/images/header.jpg" ...


0

I think you are misunderstanding what fetchColumn does. It will simply return a single value. You have two options: Change $num_rows['user'] to just $num_rows (strange naming convention there by the way). Here I'm assuming that you are actually targeting the correct column. See note below about using * or Use $res->fetch(PDO::FETCH_ASSOC) instead ...


0

As you have you given the statistics that your website gets 200 visits per day and that your server is a spitting JSON that you have to extract and display it on the UI, It is a normal practice to have a set up like this one. You can rather ping the server data using AJAX in every 5 sec to get more precise data but it wont cause any performance issue at this ...


0

I figured this out. Bah. The Public Key I generated was the browser key not the server key. You can leave the IPs field blank and it will work with localhost.


0

In your query do: WHERE stories.genre LIKE '%string%'); instead of: WHERE stories.genre = 'string'); Because the equals will want to literally equal the field.


0

You form has no "action", so it will submit to the "current" url automatically. If the current url is the same page as your form handling PHP then that's okay. Your form has no closing tag, so, the rest may look strange on the page. as bobdye and Simon MᶜKenzie pointed out, you should have a field in the form that contains the $post_id value. try something ...


1

Have you tried HTTP_HOST? The following works for me: fastcgi_param HTTP_HOST phabricator.localhost;


0

To actually give you a useful answer, your database needs to be somewhere behind a firewall. Port 3306, the standard MySQL port, should not be accessible from the internet. The entire box should not be accessible from the internet. You would possibly open it up to your ip address, so you can connect to it to do work. But you probably want to keep this shut ...


0

$query = "SELECT * FROM stories"; if(isset($_REQUEST["search_text"]) && $_REQUEST["search_text"] != "") { $search = htmlspecialchars($_REQUEST["search_text"]); $pagination->param = "&search=$search"; $query .= " WHERE genre LIKE '%$search%'"; } // No need for else statement. $pagination->rowCount($query); ...


0

Ok, finally figured this out! It was because I was pushing a logging handler to Monolog to log errors to stderr: $this->logger->pushHandler(new StreamHandler('php://stderr', Monolog::ERROR));


-1

Try the following where $indexPath is formatted like a file path i.e. '<array_key1>/<array_key2>/<array_key3>/...'. function($indexPath, $arrayToAccess) { $explodedPath = explode('/', $indexPath); $value =& $arrayToAccess; foreach ($explodedPath as $key) { $value =& $value[$key]; } return $value; } ...


0

As N.B. mentioned, you forgot to specify multiple="multiple" in your select tag, i.e. <select name="zaner[]" multiple="multiple" required> <option value=""></option> <?php $z = array("Elektro", "Drum and Bass", "Hardcore", "House", "Techno", "Trance", "Dubstep", "Folk", "Pop", "Jazz and Blues", "Reggae", "RnB", "Rap", "Metal", ...


0

That's because you run the query 2 times. One time here: $result = $db->query($sql); Second time here: if (!mysqli_query($db,$sql)) You should replace if (!mysqli_query($db,$sql)) with if (!$result) or just remove $result = $db->query($sql); Prepared statement version: <?php $db = new mysqli("localhost","admin","pass","database"); ...


0

I hope this helps: <html> <head> <script> function loadPage(url, into) { into = document.getElementById(into); into.innerHTML = 'Loading...'; var xhr = new XMLHttpRequest(); xhr.open('GET', url, true); xhr.onload = ...


0

You can use MySQLi driver in php: using get or post parameters: <?php if( isset($_REQUEST['page']){ $page = $_REQUEST['page']; }else{ $page = 1; } //connect to db $db = new mysqli('host', 'user', 'pass', 'db'); if($db->connect_errno > 0){ die('Unable to connect to database [' . $db->connect_error . ']'); } $query = "SELECT * FROM ...


1

Try this: SELECT * FROM <tablename> ORDER BY num LIMIT 5; The SELECT * clause requests the appropriate data from all of the columns in the table. If you only wanted data from certain columns, such as id, name, and num, for example, you would list those columns, separated by commas, instead of the asterisk. The FROM clause specifies the name of the ...


0

It could be that your orders_products table does not have it's own primary key. You will get this error unless your table looks something like this CREATE TABLE orders_products ( id integer, order_id integer, product_id integer, ... I only just now had this same problem. Sorry such a simple answer did not get to you sooner.


0

So first of all you loop over wrong array. Array you looking for is under statuses index, so change your loop into: foreach($string['statuses'] as $tweets) { echo $tweets['name'] . '<br />'; } Look at your print_r() and check carefully how sub array are build. E.g. if you want to print name of each tweet author, you should modify yor echo in ...


0

This is the query..... but is pretty basic. Try document yourself about the basics of MySQL. SELECT * FROM table ORDER BY num ASC LIMIT 5


0

Your Javascript code contains a syntax error on this line: $('#unameCheck').html('<img src='img/giphy.gif'/>').slideDown(500); ^^^^^^^^^^^^^^^ You're trying to use single quotes inside a single-quoted string. This is interpreted as terminating the string; use double quotes instead for either the inner or the outer ...


0

Adding the following to the CSS style in the theme options solved it for me: #home_widget_1.col-300 { width: 100%; margin: 0; }



Top 50 recent answers are included