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.

When using PHP's json_encode to encode an array as a JSON string, is there any way at all to prevent the function from quoting specific values in the returned string? The reason I ask is because I need javascript to interpret certain values in the object as actual variable names, for example the name of an existing javascript function.

My end goal is to use the outputted json as the configuration object for an ExtJS Menu component, so the fact that everything gets quoted prevents me from successfully setting such properties as "handler" (click event handler function) of the child items arrays.

share|improve this question

6 Answers 6

What we do is (and that's what Zend_Json::encode() does too), is to use a special marker class that encapsulates Javascript expressions in a special class. The encoding then walks recursively through our array-to-be-encoded, replaces all marker instances with some string. After using the built-in json_encode() we simply do a string replace to replace each special string with the __toString() value of the respective marker instance.

You can either use Zend_Json directly (if that's possible) or check how they do it and adapt the code to your needs.

share|improve this answer

Bill's function almost worked, it just needed the is_assoc() function added.

But while I was sorting this out, I cleaned it up a bit. This seems to work quite well for me:

<?php

/**
 * JSObject class.
 */

class JSObject {
    var $jsexp = 'JSEXP:';

    /**
     * is_assoc function.
     *
     * Determines whether or not the object is an associative array
     * 
     * @access public
     * @param mixed $arr
     * @return boolean
     */
    function is_assoc($arr) {
        return (is_array($arr) && count(array_filter(array_keys($arr),'is_string')) == count($arr));
    }

    /**
     * Encode object
     *
     * Encodes the object as a json string, parsing out items that were flagged as objects so that they are not wrapped in double quotes.
     *
     * @param     array   $properties
     * @return    string
     */
    function encode($properties = array()) {

        $is_assoc = $this->is_assoc($properties);

        $enc_left  = $is_assoc ? '{' : '[';
        $enc_right = $is_assoc ? '}' : ']';

        $outputArray = array();

        foreach ($properties as $prop => $value) {

            if ((is_array($value) && !empty($value)) || (is_string($value) && strlen(trim(str_replace($this->jsexp, '', $value))) > 0) || is_int($value) || is_float($value) || is_bool($value)) {

                $output = (is_string($prop)) ? $prop.': ' : '';

                if (is_array($value)) {
                    $output .= $this->encode($value);
                }
                else if (is_string($value)) {
                    $output .= (substr($value, 0, strlen($this->jsexp)) == $this->jsexp) ?  substr($value, strlen($this->jsexp))  : json_encode($value);
                }
                else {
                    $output .= json_encode($value);
                }


                $outputArray[] = $output;
            }
        }

        $fullOutput = implode(', ', $outputArray);

        return $enc_left . $fullOutput . $enc_right;
    }

    /**
     * JS expression
     *
     * Prefixes a string with the JS expression flag
     * Strings with this flag will not be quoted by encode() so they are evaluated as expressions
     *
     * @param   string  $str
     * @return  string
     */
    function js($str) {
        return $this->jsexp.$str;
    }
}
share|improve this answer

No, json_encode can't do that. You need to construct your JS expression by hand then:

$json = "{'special':" . json_encode($string) . " + js_var,"
      .  "'value': 123}";

(Try to still use json_encode for fixed value parts, like in above example.)

share|improve this answer
    
Yeah, thats what I was afraid of, because this is a multi-dimensional array with an unknown depth of sub-arrays which will make constructing this json string by hand a major pain :-( –  Bill Dami Mar 16 '11 at 20:05
    
Writing a small json encoder of your own is not that complicated though. Just have it chain to the PHP provided json_encode for ordinary values (strings and numbers), and have it invoke __toString for any objects (so you can throw in your own JS expressions). You probably don't need array support or even recursion. (But writing all by hand might be the simplest option.) –  mario Mar 16 '11 at 20:09

The json_encode function does not provide any functionality for controlling the quotes. The quotes are also necessary for JavaScript to properly form the object on the JavaScript side.

In order to use the returned value to construct an object on the JavaScript side, use the json_encoded string to set flags in your association.

For example:

json_encode( array( "click_handler"=> "FOO" ) );

JavaScript side in the AJAX:

if( json.click_handler == "FOO" ) {
  json.click_handler = Your_Handler;
}

After these steps you can pass your object off somewhere.

share|improve this answer
up vote 0 down vote accepted

This is what I ended up doing, which is pretty close to what Stefan suggested above I think:

class JSObject
{
    var $jsexp = 'JSEXP:';

    /**
     * Encode object
     * 
     * 
     * @param     array   $properties
     * @return    string 
     */
    function encode($properties=array())
    {
        $output    = '';
        $enc_left  = $this->is_assoc($properties) ? '{' : '[';
        $enc_right = ($enc_left == '{') ? '}' : ']';

        foreach($properties as $prop => $value)
        {
            //map 'true' and 'false' string values to their boolean equivalent
            if($value === 'true')  { $value = true; }
            if($value === 'false') { $value = false; }

            if((is_array($value) && !empty($value)) || (is_string($value) && strlen(trim(str_replace($this->jsexp, '', $value))) > 0) || is_int($value) || is_float($value) || is_bool($value))
            {
                $output .= (is_string($prop)) ? $prop.': ' : '';

                if(is_array($value))
                {
                    $output .= $this->encode($value);
                }
                else if(is_string($value))
                {
                    $output .= (substr($value, 0, strlen($this->jsexp)) == $this->jsexp) ?  substr($value, strlen($this->jsexp))  : '\''.$value.'\'';
                }
                else if(is_bool($value))
                {
                    $output .= ($value ? 'true' : 'false');
                }
                else
                {
                    $output .= $value;
                }

                $output .= ',';
            }
        }

        $output = rtrim($output, ',');
        return $enc_left.$output.$enc_right;
    }

    /**
     * JS expression
     * 
     * Prefixes a string with the JS expression flag
     * Strings with this flag will not be quoted by encode() so they are evaluated as expressions
     * 
     * @param   string  $str
     * @return  string
     */
    function js($str)
    {
        return $this->jsexp.$str;
    }
}
share|improve this answer

Following the lead of Stefan Gehrig I put this rough little class together. Example below. One must remember to use the serialize method if one has used the mark method, otherwise the markers will persist in the final json.

class json_extended {

    public static function mark_for_preservation($str) {
        return 'OINK' . $str . 'OINK'; // now the oinks will be next to the double quotes
    }

    public static function serialize($stuff) {
        $json = json_encode($stuff);
        $json = str_replace(array('"OINK', 'OINK"'), '', $json);
        return $json;
    }
}


$js_arguments['submitHandler'] = json_extended::mark_for_preservation('handle_submit');

<script>
$("form").validate(<?=json_extended::serialize($js_arguments)?>);
// produces: $("form").validate({"submitHandler":handle_submit});
function handle_submit() {alert( 'Yay, pigs!'); }
</script>
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.