Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

PROBLEM

I have a function that takes in a nested array where the structure and nesting of the array is unknown at run-time. All that is known is some of the target fieldnames and desired values of some of the leafs.

QUESTIONS

1) I am hoping to modify this unknown structure and still have the code be readable and easily understood by fellow programmers. What (if any) solution will allow me to do things like this in PHP?

// Pseudo-code for things I would like to be able to do
// this is kinda like the same thing as XPATH, but for native PHP array

// find *every* fname with value of "Brad" and change it to "Brian"
$mydata->find_all('*:fname')->where_value_eq('Brad')->set_equal_to('Brian');

// find *the first* fave_color and set it to "Green"
$mydata->find('*:fave_color')->get(0)->set_equal_to('Green');

2) If there is nothing out there that will let me do this, is there something, anything, that at least comes close to the spirit of what I am hoping to accomplish here?

SAMPLE ARRAY

$mydata = array(
   'people' => array(
      array('fname'=>'Alice'),
      array('fname'=>'Brad'),
      array('fname'=>'Chris'),
    ),
   'animals' => array(
      array('fname'=>'Dino'),
      array('fname'=>'Lassie'),
      array('fname'=>'Brad'),
    ),
    'settings' => array(
      'user_prefs'=>array(
        'localhost'=>array(
          'fave_color'=>'blue',
        ),
      ),
    ),
    'places' => array(
      array('state'=>'New york',
            'cities'=>array(
              'name'=>'Albany',
              'name'=>'Buffalo',
              'name'=>'Corning',
            ),
            'state'=>'California',
            'cities'=>array(
              'name'=>'Anaheim',
              'name'=>'Bakersfield',
              'name'=>'Carlsbad',
            ),            
      ),
    ),
);
share|improve this question
    
Hi! Isn't this question answered yet? –  Long Ears Mar 3 '11 at 4:20

2 Answers 2

There's certainly no native solution for this and the syntax is rather strange. If you want the code to "be readable and easily understood by fellow programmers" please stick to methods that we're used to working with ;)

foreach ($mydata as $type => &$data) {
    foreach ($data as &$member) {
        if (isset($member['fname']) && $member['fname'] == 'Brad') {
            $member['fname'] = 'Brian';
        }
    }
}

It's admittedly more verbose, but there's much less chance of confusion.

share|improve this answer
    
The syntax is strange because its pseudo-code, its main purpose is to get my question understood. As far as the example you've given, this does not work on recursive structures with unknown composition; or can this be clarified to show how it does? –  dreftymac Feb 24 '11 at 21:56
    
@dreftymac You're right, I was too hasty, it's pretty trivial to make recursive/stacked though. –  Long Ears Feb 24 '11 at 22:58

Although I maintain that you should stick with explicit manipulation as in my previous answer, boredom and intrigue got the better of me ;)

It probably has holes (and clearly lacks docs) but if you insist on this route, it should get you started:

class Finder {
    protected $data;

    public function __construct(&$data) {
        if (!is_array($data)) {
            throw new InvalidArgumentException;
        }

        $this->data = &$data;
    }

    public function all() {
        return $this->find();
    }

    public function find($expression = null) {
        if (!isset($expression)) {
            return new Results($this->data);
        }

        $results = array();
        $this->_find(explode(':', $expression), $this->data, $results);
        return new Results($results);
    }

    protected function _find($parts, &$data, &$results) {
        if (!$parts) {
            return;
        }

        $currentParts = $parts;
        $search = array_shift($currentParts);
        if ($wildcard = $search == '*') {
            $search = array_shift($currentParts);
        }

        foreach ($data as $key => &$value) {
            if ($key === $search) {
                if ($currentParts) {
                    $this->_find($currentParts, $value, $results);
                } else {
                    $results[] = &$value;
                }
            } else if ($wildcard && is_array($value)) {
                $this->_find($parts, $value, $results);
            }
        }
    }
}

class Results {
    protected $data;

    public function __construct(&$data) {
        $this->data = $data;
    }

    public function get($index, $limit = 1) {
        $this->data = array_slice($this->data, $index, $limit);
        return $this;
    }

    public function set_equal_to($value) {
        foreach ($this->data as &$datum) {
            $datum = $value;
        }
    }

    public function __call($method, $args) {
        if (!preg_match('/^where_?(key|value)_?(eq|contains)$/i', $method, $m)) {
            throw new BadFunctionCallException;
        }

        if (!isset($args[0])) {
            throw new InvalidArgumentException;
        }

        $operand = $args[0];
        $isKey = strtolower($m[1]) == 'key';
        $method = array('Results', '_compare' . (strtolower($m[2]) == 'eq' ? 'EqualTo' : 'Contains'));

        $ret = array();
        foreach ($this->data as $key => &$datum) {
            if (call_user_func($method, $isKey ? $key : $datum, $operand)) {
                $ret[] = &$datum;
            }
        }

        $this->data = $ret;
        return $this;
    }

    protected function _compareEqualTo($value, $test) {
        return $value == $test;
    }

    protected function _compareContains($value, $test) {
        return strpos($value, $test) !== false;
    }
}

$finder = new Finder($mydata);
$finder->find('*:fname')->where_value_eq('Brad')->set_equal_to('Brian');
$finder->find('*:fave_color')->get(0)->set_equal_to('Green');
$finder->find('places:*:cities:*:name')->where_value_contains('ba')->set_equal_to('Stackoton');

print_r($mydata);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.