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Here is a JSONArray I have:

 [{"items_id":"13","total":"1"}, {"items_id":"216","total":"0"},{"items_id":"16","total":"1"}]

Sometimes, each object has more than two properties (attributes?). But I am just showing the principle here. In Java, I only need to grab "total". I don't need "items_id".

I assume it shows up because here is my MySQL query in PHP:

$count_query_result=mysql_query("
SELECT items.items_id, 
COUNT(ratings.item_id) AS total
FROM `items`
LEFT JOIN ratings ON (ratings.item_id = items.items_id)
WHERE items.cat_id = '{$cat_id}'  AND items.spam < 5
GROUP BY items_id ORDER BY TRIM(LEADING 'The ' FROM items.item) ASC;");

Here is my JSON output (I have only displayed one of three queries above):

print(json_encode(array($output,$output2,$output3)));

I only want three properties encoded in JSON (one in each of the three output variables). I want the properties "total", "rate" ,and "item".

So my question is, can I get rid of the unneeded items_id property? Or do I even NEED to? (I know I need it in the SQL to make the query work -- but how can I remove it in the JSONArray?)

I am thinking if I have a list with hundreds or thousands of items, I can save half the space (and time?) by only outputing the JSON property I need -- is this thinking correct?

Edit: More code as requested:

while($row=mysql_fetch_assoc($count_query_result))
    $output[]=$row;
while($row=mysql_fetch_assoc($average_query_result))
    $output2[]=$row;
while($row=mysql_fetch_assoc($items_query_result))
    $output3[]=$row;

print(json_encode(array($output,$output2,$output3)));
mysql_close();
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3 Answers 3

Use the JSONObject to parse the String. Just put the string as an parameter in the constructor of the JSONObject.

jObject = new JSONObject(myString);

After you can retrieve all variables out of the JSONObject.

For the php side:

Use json_decode end json_encode to switch betweeen json and mixed variable. Once you have you mixed variable, delete the stuff you don't need and convert it back to json.

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I know that is how I get the single object I need in Java/Android - but I am asking about the "handoff" method in PHP. IS there a way to addres this before it even gets to the Java? –  KickingLettuce Jul 31 '12 at 15:59
1  
Why do you then mark your question by any tags but "php"? –  Roman Minenok Jul 31 '12 at 16:06
    
Ok, fair question. At the time, I thought it made sense. But after I asked it, it became clear that this was much more php oriented. I suppose I can remove it. –  KickingLettuce Jul 31 '12 at 16:33

http://php.net/unset

Unset the unneeded values, then output json

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Well this almost works unless I am doing wrong. I am doing this unset($row['items_id') when I loop through results. I did it only for first $output and it worked fine. Second $output2 said '[false]'. So it somehow adversely affects the other outputs? –  KickingLettuce Jul 31 '12 at 16:39
    
Hm, can you post more of your code how you get from SQL to $output, $output2 etc? –  Joe Simpson Jul 31 '12 at 17:07
    
Ok, I have done that. I also am figuring out more of what I am trying to do and added that explanation as well... –  KickingLettuce Jul 31 '12 at 17:16
    
Just remove the id from the SQL? So you're doing SELECT COUNT(....) instead :) –  Joe Simpson Jul 31 '12 at 19:31
    
Not sure that will work since items_id is required for the query to work. –  KickingLettuce Jul 31 '12 at 19:33

I don't think you need it in your SQL query. If you need data from a database just in the context of the query, you don't need to SELECT it. Try doing just the:

SELECT COUNT(*) FROM ...

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