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13

Are Single Function Accessors A Bad Habit? They are not a good idea. The reasons are simple: They have multiple responsibilities (setting and getting data). Good functions have a single responsibility and do it well. They mask intent. You can't look at the method call and understand what's going to happen. What do you think the body() method does? Well, ...


11

You can specify how many loop you want to break that way : break 2; So in your case : while(true) { foreach($return AS $row) { if($row['timer'] > 15){ break 2; } } sleep(2); }


7

They are equivalent. Some programmers prefer this "Yoda style" in order to avoid the risk of accidentally writing: if ($variable = true) { // ... } , which is equivalent to $variable = true; // ... , when they meant to write if ($variable === true) { // ... } (whereas if (true = $variable) would generate an obvious error rather than a ...


7

You're overwriting the resultset $result from your SELECT query with a new $result value from the UPDATE query inside your loop while($row = mysqli_fetch_array($result)) { $result2 = mysqli_query($conn,"UPDATE Players SET Score='$score' WHERE ID='$id'"); }


5

This is a limitation of the parser engine. When used in const you're inherently limited by the tokenization of the code, being that a token starting with numbers is treated as a number by definition, as required by many mathematical expressions. This is why you see the unexpected T_LNUMBER error in that usage. Since define is a language construct taking a ...


5

The string contains the " symbol at the start and end, so check if the string is equal to '"empty"' instead.


5

One of the problems with your code is, desc is a MySQL reserved word http://dev.mysql.com/doc/refman/5.5/en/reserved-words.html wrap it in backticks `desc` varchar(80), or choose another word for it. Using reserved words are discouraged to be used, as much as possible. Edit: The other is: The error stems from you not using the proper syntax in ...


5

Your PHP has obvious syntax errors. You can't write a SQL in your PHP directly. You have to execute the query with functions like mysqli_query(). Also, if error occurs, your syntax still allows the script continues to run. For the syntax of mysqli_query(), read this.


5

Your form elements are called name="email" and name="password" but your POSTs are: $myemail=$_POST['myemail']; $mypassword=$_POST['mypassword']; change them to: $myemail=$_POST['email']; $mypassword=$_POST['password']; Sidenote/password related: If you are saving passwords in plain text which is not recommended, I suggest you use CRYPT_BLOWFISH ...


5

PHP is old on your server. From the manual: (PHP 5 >= 5.5.0)


5

Connection string should be $connStr = "mysql:host=$dbhost;dbname=$dbname";


5

You're presently assigning if ($wachtwoord = "hello") with a single equal sign = Use two like this: == then do if ($wachtwoord == "hello") in order to compare. Assignment operator => = Comparison operator => ==


4

You have a curly quote mixed in: define('DB_HOST', 'localhost’); ^ right there change to define('DB_HOST', 'localhost'); Plus, if you have made a copy/paste for any other defined lines (unshown), you will need to change those also.


4

Because and binds stronger than or. It is called operator precedence. Use parentheses WHERE 1=1 AND q.catid = 13 AND (q.title LIKE "%3%" OR q.introtext LIKE "%3%") Without parentheses your query currently resolves to WHERE (1=1 AND q.catid = 13 AND q.title LIKE "%3%") OR q.introtext LIKE "%3%"


4

You have a typo $check_exits in $check_exits = mysqli_query... which should read as $check_exists = mysqli_query... then instead of if(mysqli_num_rows($check_exists) >= 1) (if it doesn't work; a suggestion) Try if(mysqli_num_rows($check_exists) >0) instead. Plus, instead of return; use exit;


4

You cannot get that result unless you change the names of the variables, because the second couple of controls will always trump the first one as long as they share names. The simplest solution would be to append [] to all the names, which would make the corresponding values inside $_POST be arrays. Then you could do something like: $stuff = ...


4

$sqlVarNames = explode(', ', $sqlVar); foreach ($sqlVarNames as $columnVar) { $finalColumnVars .= '<td>'.$row[$columnVar].'</td>'; }


4

Why not echo the final output as number_format()? echo "Total: ".number_format($convert, 0 , '.' , ',' ); OR rather: $total_A = 0; foreach ($nodes as $node) { $sub_no = (int) preg_replace("/[^0-9]/", '', trim(explode("\n", trim($node->nodeValue))[2])) . '<br/>'; $total_A += $sub_no; echo $sub_no; } echo "Total: ...


4

Try using ."\n" or .PHP_EOL instead of .'\n' It is typically preferred to use PHP_EOL because it works equally on unix and windows filesystems. But if your writing code for a specific server, it's not required, but still recommended because it is considered a good coding practice. In this case you would use PHP_EOL like so: <?php $myfile = ...


4

use implode() echo implode(',', $datay1);


4

You can use implode to insert a divisor, like: $arrayString = implode(",", $myArray); But if a string containing a , is in $myArray this could cause unexpected results while converting back to an array, because you would suddenly have one more array item. (To convert it back you can use explode) You can also use json_encode to encode the array to JSON. ...


4

As you are enclosing the whole query within double quotes, there is no need of appending the sql string because within double quotes all PHP variables will get replaced with the corresponding values. Also you missed one backticks in fieldname client_name. $client_search = mysql_query("SELECT * FROM `clients` WHERE `client_name LIKE '%".$_POST['key']."%' OR ...


4

Use preg_replace preg_replace("/-{2,}/", "-", $string);


4

You'll have to keep in mind, that in order to run PHP code, you must have a PHP interpreter installed on your server. Second step is that your file actually has a .php extension, otherwise the server will handle it as a simple html file (if its got an .html extension or variant). Otherwise, your code should look as follows: <div id = "info"> ...


4

PHP type-hints only work for classes or arrays: function foo(array $bar, stdClass $object) {//fine } But you can't type-hint primitives/scalar or resource types: function bar(int $num, string $str) {} This would invoke the autoloader, which in term will attempt to find class definitions for the int and string classes, which obviously don't exist. The ...


4

If you want to use preg_replace...., however @billyonecan's str_split is probably a better way. preg_replace('/(..)/','$1 ', $string);


4

Relative time formats make this easy: echo (new DateTime('first day of this month'))->format('Y-m-d'); or echo date('Y-m-d', strtotime('first day of this month'));


3

As per the official documentation, the output is the return value of the function <?php $output = shell_exec('ls -lart'); echo "<pre>$output</pre>"; ?> http://php.net/manual/en/function.shell-exec.php RichardBernards' comment is correct. If you wish to have the output as an array, you can use the exec($command, &$output) function ...


3

There probably is a better way to do it, but you could use str_replace $newstr = str_replace('<div id="option_one_div"', $str2.'<div id="option_one_div"', $str1); This would remove the part start of the option_one_div, and replace it with $str2 with the thing you removed attached, so it will appear again. But I believe there must be a smarter / ...


3

First, make sure mod_rewrite is enabled. Then, also make sure you can use htaccess (Apache config -> AllowOverride All). Put this code in your htaccess (assuming it is in root folder, like your index.php file) RewriteEngine On RewriteRule ^viewall$ /index.php?route=product/category&path=0 [L]



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