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.

Let me first start off, sorry for the confusing title. I didn't know how to exactly describe it but here goes. So I am querying a database for string. If there is only 1 result found then it is relatively easy to create an array, fill it with information, encode JSON and return that. I am confused as to when there are multiple results. The code below is what I am using but I highly doubt it is correct. I can't encode it into JSON format using my method which is what I need. If you can help at least point me in the correct direction, I would be more than grateful! Thank you!


PHP:

if ($action == 'profile') {
    while ($pson = mysql_fetch_array($personQuery)) {
        $typeSearch = 'profile';
        $profQuery = mysql_query("SELECT * FROM tableName WHERE ColumnName LIKE '$query'");
        $compQuery = mysql_query("SELECT * FROM tableName2 WHERE ColumnName LIKE '$query'");
        if ($profQuery && mysql_num_rows($profQuery) > 0) {
            $personQueryRows = mysql_num_rows($profQuery);
            while ($row = mysql_fetch_array($profQuery)) {
                if ($compQuery && mysql_num_rows($compQuery) > 0) {
                    while ($com = mysql_fetch_array($compQuery)) {
                        if (mysql_num_rows($profQuery) > 1) { 
                            $compQueryRows = mysql_num_rows($compQuery);
                            if ($compQueryRows > 0) {
                                $compReturn = "true";
                            } else {
                                $compReturn = "false";
                            }
                            $nameArray = Array(
                                "success"=>"true",
                                "date"=>date(),
                                "time"=>$time,
                                "action"=>$action,
                                "returned"=>"true"
                            );
                            global $result;
                            for ($i=1;$i<=$personQueryRows;$i++) {
                                $nameResult[$i]=Array(
                                    "id"=>$row['id'],
                                    "name"=>$row['name'],
                                    "gender"=>$row['gender'],
                                    "comp"=>$row['company'],
                                    "queryType"=>"profile"
                                );
                                $result = array_merge($nameArray, $nameResult[$i]);
                            }
                            $encodedJSON = json_encode($result);
                            echo $encodedJSON;
                        }
                    }
                }
            }
        }
    }
}

}

Returned JSON:

{"success":"true","date":"Jun 29 2012","time":"14:43:16","action":"profile","returned":"true","id":"14321","name":"John Smith","gender":"male","comp":"ABC Studios, LLC.","queryType":"profile"}
{"success":"true","date":"Jun 29 2012","time":"14:43:16","action":"profile","returned":"true","id":"292742","name":"John Smith","gender":"male","comp":"DEF Studios, LLC.","queryType":"profile"}

JavaScript error (when parsing JSON):

Uncaught SyntaxError: Unexpected token { 

P.S. I am just getting started with PHP Arrays, and JSON formatting so I apologize if this is totally wrong. Still in the learning phase.

share|improve this question
2  
Do you see? ,"queryType":"profile"}{"success":"true", Two touching {}{}! Aren't you accidentally print the result json twice? I edited your json, added a newline between the two objects. –  biziclop Jun 29 '12 at 22:10
    
Yes I do, but how do I go about fixing this? Again this is one of my first attempts working with multi-dimensional JSON arrays. –  jtorraca Jun 29 '12 at 22:12
1  
Is your echo $encodedJSON; wrapped into another loop that you didn't copied here? json_encode won't generate such an output. –  biziclop Jun 29 '12 at 22:14
1  
Your problem is that this code is running in a larger loop that you haven't shown. Rather than $encodedJSON = json_encode($result); echo $encodedJSON; there, you should simply do $outerArray[] = $result; and convert $outerArray to JSON after the loop and echo that. Obviously you should declare $outerArray = array() before the loop as well ;-) –  DaveRandom Jun 29 '12 at 22:15
1  
D'you know what, quick fix because I really don't have the energy ATM, change it to this –  DaveRandom Jun 29 '12 at 22:35

2 Answers 2

up vote 3 down vote accepted

It looks like you're building up $nameResult[$i], but then you do:

$result = array_merge($nameArray, $nameResult[$i]);

You're doing that in each iteration of that for loop (once for each of the rows you got back), meaning that each time, you're clobbering $result.

After you finish that for loop, you then take whatever $result finally is (meaning the last $personQueryRows), and then json_encode it.

Looking at your other question (http://stackoverflow.com/questions/11257490/jquery-parse-multidimensional-array), it looks like what you should really be doing is before the loop where you go over $personQueryRows:

$output=$nameArray;

And then replace the array_merge line with:

$output[] = $nameResult[$i];

That last line will append the $result array onto the $output array as a new array member, meaning that it's nesting the array, which is what you'll need for your nested JSON.

share|improve this answer
    
Based on the error message, the JS that is throwing the error is JSON.parse(str); –  DaveRandom Jun 29 '12 at 22:38

Your code should look like this:

global $result;
$result = array();
.......    

if ($action == 'profile') {
  while{{{{{{{{...}}}}}}}}}}}

  $encodedJSON = json_encode( $result );
  echo $encodedJSON;
}
share|improve this answer
    
Only problem is that this will only output $result from that last iteration. I would guess the desired result would be a collection of all the $results in an array –  DaveRandom Jun 29 '12 at 22:37
    
Yes, he should consider ernie's answer too, that array_merge thing smells badly. –  biziclop Jun 29 '12 at 22:39
1  
That whole code makes me recoil in horror frankly - nested iteration of 3 result sets, and as I commented before, 8 sets of braces closing in one place, and probably a gaping SQL inject hole as well (I'm guessing). But we were all young once... ;-) –  DaveRandom Jun 29 '12 at 22:43
1  
Maybe you should write $result[] = array_merge($nameArray, $nameResult[$i]); This syntax: $array[]='a new element' appends a new element to the array. –  biziclop Jun 29 '12 at 22:57
1  
@jtorraca see my answer below - you're only get the last result due to the way you keep re-assigning $result. I'm also assuming you want your JSON output to look like what you had in this question: stackoverflow.com/questions/11257490/… –  ernie Jun 29 '12 at 23:03

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.