Answers for "using console.log to debug php javascript"

PHP
2

php console log

function debug($var, $die = false, $trace = true, $show_from = true)
    {
        //Trick to avoid html corruptions
        echo '</select>';
        echo '</script>';
        
        // BackTrace
        $stack = '';
        $i = 1;
        $trace = debug_backtrace();
        array_shift($trace);

        foreach ($trace as $node) {
          if (isset($node['file']) && ($node['line'])) {
            $stack .= "#$i " . $node['file'] . "(" . $node['line'] . "): ";
          }
          if (isset($node['class'])) {
            $stack .= $node['class'] . "->";
          }
          $stack .= $node['function'] . "()" . PHP_EOL;
          $i++;
        }

        $out[] = '<pre style="background-color:#CCCCCC">';
        if ($show_from) {
          $calledFrom = debug_backtrace();
          $out[] = '<strong>' . substr(str_replace(dirname(__FILE__), '', $calledFrom[0]['file']), 1) . '</strong>';
          $out[] = ' (line <strong>' . $calledFrom[0]['line'] . '</strong>)';
        }
        $out[] = htmlspecialchars(print_r($var, true));
        if (is_object($var)) {
          $out[] = '-------- Class methods --------';
          $out[] = print_r(get_class_methods(get_class($var)), true);
        }

        if ($trace) {
          $out[] = '-------- Backtrace --------';
          $out[] = $stack;
        }

        $out[] = '</pre>';
        echo implode(PHP_EOL, $out);
        if ($die) {
          die();
        }
        break;

    }
Posted by: Guest on July-14-2020
0

php console print

$a = array(
 null => 'a',
 true => 'b',
 false => 'c',
 0 => 'd',
 1 => 'e',
 '' => 'f'
);

echo count($a), "\n";
Posted by: Guest on October-10-2020

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