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2

It looks like what you're experiencing is JSON itself. There is an existing, excellent answer here that will explain that. The summary is that an array with string keys in PHP is an object in JSON, since arrays can only have numeric indexes. I hope this answers your question directly enough, and I think it will change how you think of the relationship ...


1

Try this instead: $new_string = preg_replace('/\[[^\]]*(\*)[^\]]*\]/', '', $string);


-4

Try print_r(json_encode(array('companies' => $companies)); instead of echo


0

If you were to take a look at the download method of the Request factory you will find that you are missing a parameter. public function download($file, $name = null, array $headers = array(), $disposition = 'attachment');


0

From what I can see I am assuming you are starting a session before you get to the redirecting code. Maybe in one of your included files? Whatever the case you will want to call all header() functions before calling session_start(). From my experience, not doing so caused unpredictable results depending on the version of PHP I was running and the server. ...


0

Before solving your problem, you shouldnt insert raw input into your database. What you should do is: error_reporting(E_ALL); $string = mysqli_escape_string($conn, "… hello … world!"); mysqli_query($conn, $query); error_reporting will show you raw errors on screen and escaping the string will: a) Avoid SQL injections. b) Insert the record even if it ...


0

Process Manager FTP (File Transfer Protocol) program to quickly upload and download files Port, is usually Port 21


0

You can do this by checking to see which checkbox is checked and then use switch cases on them , I just knocked up a basic demo of what i mean you'll be able to make your own working code after seeing how this works, the only thing was that the value in your select options of sort is a PHP keyword so i changed it to sortthem. <?php ...


0

You can do something like this in controller 1: redirect('/Controller2/function2/value'); In your controller 2 something like this: public function function2($value){ // send value to the model } Also you can do it with sessions but the choice is yours


0

You need to get rid of the true in Inflater(true). Use just Inflater(). The true makes it expect raw deflate data. Without the true, it is expecting zlib-wrapped deflate data. PHP's gzcompress() produces zlib-wrapped deflate data.


-1

What are trying to here exactly by $u = new Usuario(); require_once('Usuario.php') has no class by name of Usuario ?? Also It would be better off without class. Everything is wrong here... Why are you trying .. You have array $arrayUsuarios ..and you are doing $arrayUsuarios[$i]->getIdUsuario() ??? Please polish basics ... :) regards


0

Change your content type to ("Content-Type: audio/x-mp3");


0

this didnt work for what I was trying to do but I did figure it out. I needed to use strpos() in a if statement to get the items I was looking for.


0

MDN's docs states: formaction HTML5The URI of a program that processes the information submitted by the button. If specified, it overrides the action attribute of the button's form owner. Note that it overrides the action of the button's form owner, so you need to place the button inside a form in order for the formaction attribute to work.


0

It doesn't work that way. For forms to work, you have to have a <form> tag around it. <form action="" method="post"> <button type="submit" name="submit" class="button">Rate</button> </form>


0

If I were you I would consider accepting a wider set of characters. (You just need to remember to escape the characters properly.) To strip out certain characters just isn't user friendly, and using UTF-8 just seems limited. If you really want to strip out UTF-8 characters, you can use $string = preg_replace('/[^(\x20-\x7F)]*/','', $string); as ...


0

You should first Learn about basics of php.Quick Google search will find 100 script that have good explanation. Regards


0

You have a finite number of menu items. declare an array with all your menu items $current['index.php'] = ""; . . . $current['contact.php'] = ""; $temp = $current; foreach($temp AS $key => $value) { if (strpos($_SERVER['REQUEST_URI'], $key) !== false) $current[$key] = 'class="current"'; } Now go to the html <li <?php echo ...


0

You're passing a parameter when your query doesn't specify one. A valid one would look something like: $stmt = $mysqli->prepare("SELECT DISTINCT primaer FROM oevelser WHERE primary=?"); $stmt->bind_param("s", $primary); $stmt->execute();


0

What happens if you want to specify another class to a link or somebody uses a CapiTalS within the title?? function get_current($title) { $uri = strtolower($_SERVER['REQUEST_URI']); if (strpos($uri, $title) !== false) return 'current'; //-- Don't echo in a function, return something } And in your HTML <li> <a href="index.php" ...


-1

Try this : function callUrl($request) { global $conn_c; if (!function_exists('curl_init')){ return 111; } $url = $request; $ch = curl_init(); // set URL and other appropriate options curl_setopt($ch, CURLOPT_URL, $url); curl_setopt($ch, CURLOPT_HEADER, 0); curl_setopt($ch, ...


0

For starter like myself...I found not only MVC confusing but rather complicated to even install.. I have made tut simple enough to understand and how to install laravel on windows with xampp or wamp.. hope it will find helpful... I also just started with laravel..its really cool :) ...


0

You can try with: "laravel/framework": "5.0.x-dev#cd37f40bba5dced6b1c30d313df2e46c5c33a62c", instead of: "laravel/framework": "~5.0#cd37f40bba5dced6b1c30d313df2e46c5c33a62c", and install it using: composer install --prefer-source My exact composer.json file was: { "name": "laravel/laravel", "description": "The Laravel Framework.", ...


0

The code you've written here is not correctly negotiating a WebSocket connection. You will need* to use a WebSocket library to do that; see "Is native PHP support for Web Sockets available?" for a list of PHP WebSocket libraries. *: While it's technically possible to write a client yourself based on the specification, it's rather complex, making it ...


0

Unless you are specifically filtering out for different/specific SKU number then you can just do a join between the tables for matching SKU. Something like below. SELECT fbai.id, fbai.sku, fbas.sumQS, fbai.sumQF FROM ( SELECT id, sku, SUM(qtyFulfillable) as sumQF FROM FBAInventory WHERE ...


0

The issue was resolved with the following code: (This is for those who have the same question) import java.security.*; // ... public static boolean verifySignature(String data, PublicKey key, byte[] signature) throws Exception { Signature signer = Signature.getInstance("SHA1withRSA"); signer.initVerify(key); signer.update(data.getBytes()); ...


0

I'm going to answer my question by quoting Sammitch's comment You wrote some code that relies on abusing some ill-defined typing and conversion shenanigans in PHP, we've all done it at some point. PHP devs have fixed that and broken your code. The solution is to fix your code and learn a lesson about abusing PHP's loose typing system. The fix was to ...


1

Your group by is messed...any other SQL engine will error out on your query (as it should), but MySQL loves ignoring it and doing the wrong thing instead...best solution is to uninstall MySQL and use a better database. Failing that, cmorrissey's comment is actually correct for an answer had your group by been correct: Change your group by to: ...


0

You have to put class on element itself, like: <li><a href="index.php" title="Home" <?=get_current('home')?> >Home</a></li>


0

You could seed the random number generator with a value based on the date. If you don't mind that being based on UTC days you could use: $time = time(); $days_since_epoch = floor($time / 86400); srand($days_since_epoch); $random_id = rand(); NB: the rand function isn't particularly random, but in this case that shouldn't be an issue.


1

"static" exists in the scope of the class. Non-static exists in the scope of the object (instance of the class). If you just remove "static" from the existing class, all references to it such as self::referenceId will be broken. You would need to replace all of them with $this->referenceId. You do understand that 'self' refers to the class and 'this' ...


0

Try this: HTML: <tr> <td> <input type="checkbox" name="selectedposts[]" class="check" value"1"/> </td> <td>TTILE </td> <td>DATE </td> <td>ACTIVITY</td> </tr> <tr> <td> <input type="checkbox" name="selectedposts[]" class="check" value"2"/> ...


-1

Use the random function and use the day as seed.


0

using <img src="" width="some number" height="some number"> to force a blank table cell in HTML causes a similar problem with Apache and MySQL.


0

The code you have given is right. whats the problem actually you are facing? if you need ask me i will give your complete program. You may missed form tag check it. Actually your code is working.


0

I think the left join and subquery in select clause are fine for solution. For example SELECT fbai.id, fbai.sku, ( SELECT SUM(fbas.quantityShipped) as sumQS FROM FBAShipment fbas WHERE fbas.sku = fbai.sku AND fbas.shipmentDate BETWEEN '2014-08-15 22:19:50' AND '2014-09-15 01:10:57' ) sumQS, ...


0

When you generate controller with Gii, you can find an example on admin page. CGridView is populated with search method's return value, which is CActiveDataProvider Data provider is wrapper around array of models, it has additional features like pagination. In admin action you can see that model is filled with GET parameters, later that model calls ...


0

Presumably your more complete code looks like this: $email = 'some markup' . $_POST['nh_home'] . '<br />'; $email .= 'some markup' . $_POST['nh_lot'] . '<br />'; $email .= 'some markup' . $_POST['nh_townhouse'] . '<br />'; // etc... You can simply introduce conditional checks in between those: $email = ''; if ($_POST['nh_home']) { ...


0

One another way: <head> <style> <?php include 'style.css'; ?> </style> </head> style.css div{ color:<?php echo $rectangle->color; ?>; } But in this case, style will not work if we link from <link> tag because of php code on it. So we may also rename style.css as style.pcss or something to avoid confusion ...


0

You actualy can use array variables in SQL, You can do this DECLARE @TableVariableName TABLE( IDs VARCHAR(100), numbers Int ); Insert into @TableVariableName -----Do the select you want it to store it into the new table for example: Select IDs,numbers from tbl1 Then you can use this table in another querry as follow: Select tbl2.column1, ...


0

You could use if(empty($_POST['nh_home'])) echo $_POST['nh_home'] . '<br>' It's just a basic conditional.


0

Android does not have swap paging memory like a PC. You can only use the physical memory that the device has. With this information the limit becomes the memory occupied by the JSON, your class, your database. You'll have to download N rows process N rows in a loop. But the plus side is you could restart such an operation and include a cool progress bar ...


0

You have to use the branch alias instead. You should use 5.0-dev#cd37f40bba5dced6b1c30d313df2e46c5c33a62c as version: "name": "laravel/laravel", "description": "The Laravel Framework.", "keywords": ["framework", "laravel"], "license": "MIT", "type": "project", "require": { "laravel/framework": "5.0-dev#cd37f40bba5dced6b1c30d313df2e46c5c33a62c", ...


0

Just check, if the value is not empty: if ($_POST['nh_home']) echo 'Home: '.$_POST['nh_home'].'<br />'; if ($_POST['nh_lot']) echo 'Lot: '.$_POST['nh_lot'].'<br />'; if ($_POST['nh_townhouse']) echo 'Townhouse: '.$_POST['nh_townhouse'].'<br />'; if ($_POST['nh_condo']) echo 'Condo: ...


0

Oh dear, looks like your server got hacked. The code will decode and execute itself when run, it's obfuscated to obscure its function. It's self-decoding. You can see the eval() in there. If you change it to a print() then it will display the code that it's trying to execute. This is nested several deeps, so each time you will need to change an eval() ...


0

//1 create a data base connection $con = mysqli_connect(DB_SERVER, DB_USER, DB_PASSWORD); if (!$con) { die('mysqli connection failed: ' . mysql_error() ); } //2 connect with a data base $db_select = mysqli_select_db($con , DB_NAME); if (!$db_select) { die('data base selection failed: ' . mysql_error() ); } //3 create query $result = ...


1

There are some problems in your script: $connect_error is undefined. (related by @Fred-ii-) You are using sessions $_SESSION['id'], there is no indication of session_start(); being used. It is required inside all files using sessions. (related by @Fred-ii-) You did not add the resource to a global variable, the methods you created will never get access to ...


0

I've found it quiet difficult to install Laravel 5.0 at first especially from what was available online. It's best to install from scrach http://shems.co/blog/installing-laravel-5-0-release/


0

You run this script today, so $day=30;? So, if you try to get the 30th day of February, it returns you the 2nd day of March - or March 1st in leap years. Obviously because February doesn't have enough days... $day = 30; $year = 2014; echo date("r", strToTime("$day-02-$year")); Output: Sun, 02 Mar 2014 00:00:00 +0100 It's not a bug, it's a feature.


0

For the amount of code that you provided, this is all I can do to help you: https://wordpress.org/plugins/search.php?q=quiz



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