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.

I've spent a couple of hours looking through several the similar answers before posting my problem.

I'm retrieving data from a table in my database, and I want to encode it into a JSON. However, the output of json_encode() is only valid when the table has one single row. If there is more than one row, the test at http://jsonlint.com/ returns an error.

This is my query:

$result = mysql_query($query);

    $rows = array();

    //retrieve and print every record
    while($r = mysql_fetch_assoc($result)){
        $rows['data'] = $r;

        //echo result as json
        echo json_encode($rows);
    }

That gets me the following JSON:

{
"data": 
    {
        "entry_id":"2",
        "entry_type":"Information Relevant to the Subject",
        "entry":"This is my second entry."
    }
}


{
"data":{
        "entry_id":"1",
        "entry_type":"My Opinion About What Happened",
        "entry":"This is my first entry."
    }
 }

When I run the test at http://jsonlint.com/, it returns this error:

    Parse error on line 29:
    ..."No comment"    }}{    "data": {    
    ---------------------^
    Expecting 'EOF', '}', ',', ']'

However, if I only use this first half of the JSON...

{
"data": 
    {
        "entry_id":"2",
        "entry_type":"Information Relevant to the Subject",
        "entry":"This is my second entry."
    }
}

... or if I only test the second half...

{
    "data":{
        "entry_id":"1",
        "entry_type":"My Opinion About What Happened",
        "entry":"This is my first entry."
    }
 }

... the same test will return "Valid JSON".

What I want is to be able to output in one single [valid] JSON every row in the table.

Any suggestion will be very much appreciated.

share|improve this question

4 Answers 4

up vote 9 down vote accepted

The problem is you're spitting out separate JSON for each row, as opposed to doing it all at once.

$result = mysql_query($query);

$rows = array();

//retrieve and print every record
while($r = mysql_fetch_assoc($result)){
    // $rows[] = $r; has the same effect, without the superfluous data attribute
    $rows[] = array('data' => $r);
}

// now all the rows have been fetched, it can be encoded
echo json_encode($rows);

The minor change I've made is to store each row of the database as a new value in the $rows array. This means that when it's done, your $rows array contains all of the rows from your query, and thus you can get the correct result once it's finished.

The problem with your solution is that you're echoing valid JSON for one row of the database, but json_encode() doesn't know about all the other rows, so you're getting a succession of individual JSON objects, as opposed to a single one containing an array.

share|improve this answer
    
Thank you so much! All the solution works, and yours provides the most comprehensive explanation. Not only this is correct, but I completely overlooked the other examples do place the json_encode function outside of the while loop. I apologize for not noticing, and thank you for your time. –  asraelarcangel Feb 19 '12 at 20:22

You need to change your PHP code into something like this:

$result = mysql_query($query);

$rows = array();

//retrieve every record and put it into an array that we can later turn into JSON
while($r = mysql_fetch_assoc($result)){
    $rows[]['data'] = $r;
}
//echo result as json
echo json_encode($rows);
share|improve this answer
    
+1 from me too :-) –  The Alpha Feb 19 '12 at 19:04
    
Thank you, this works too. –  asraelarcangel Feb 19 '12 at 20:25

I think you should do

$rows = array();
while($r = mysql_fetch_assoc($result)){
    $rows[]['data'] = $r;
}
echo json_encode($rows);

echo should be placed outside of the loop.

share|improve this answer
1  
yes, but this will overwrite $rows['data'] every time the script goes through the while loop, so it won't work :) –  Daan Feb 19 '12 at 18:55
1  
Thanks, I didn't notice it just copy and pasted his code but fixed now. –  The Alpha Feb 19 '12 at 19:01
    
Thank you for your solution. I tested it and works fine. –  asraelarcangel Feb 19 '12 at 20:26
    
You are welcome :-) –  The Alpha Feb 19 '12 at 20:39

I was trying the same in my PHP, so I came whit this...

$find = mysql_query("SELECT Id,nombre, appaterno, apmaterno, semestre, seccion, carrera FROM Alumno");

    //check that records exist
    if(mysql_num_rows($find)>0) {
        $response= array();
        $response["success"] = 1;

        while($line = mysql_fetch_assoc($find)){}
             $response[] = $line; //This worked for me
        }

        echo json_encode($response);

    } else {
        //Return error
        $response["success"] = 0;
        $response["error"] = 1;
        $response["error_msg"] = "Alumno could not be found";
        echo json_encode($response);
    }

And, in my Android Class...

if (Integer.parseInt(json.getString("success")) == 1) {

                    Iterator<String> iter = json.keys();
                    while (iter.hasNext()) {
                        String key = iter.next();
                        try {
                            Object value = json.get(key);
                            if (!value.equals(1)) {

                                JSONObject jsonArray = (JSONObject) value;

                                int id = jsonArray.getInt("Id");
                                if (!db.ExisteAlumo(id)) {
                                    Log.e("DB EXISTE:","INN");
                                    Alumno a = new Alumno();

                                    int carrera=0;
                                    a.setId_alumno(id);
                                    a.setNombre(jsonArray.getString("nombre"));
                                    a.setAp_paterno(jsonArray.getString("appaterno"));
                                    a.setAp_materno(jsonArray.getString("apmaterno"));
                                    a.setSemestre(Integer.valueOf(jsonArray.getString("semestre")));
                                    a.setSeccion(jsonArray.getString("seccion"));
                                    if(jsonArray.getString("carrera").equals("C"))
                                        carrera=1;
                                    if(jsonArray.getString("carrera").equals("E"))
                                        carrera=2;
                                    if(jsonArray.getString("carrera").equals("M"))
                                        carrera=3;
                                    if(jsonArray.getString("carrera").equals("S"))
                                        carrera=4;
                                    a.setCarrera(carrera);

                                    db.addAlumno(a);

                                }

                            }
                        } catch (JSONException e) {
                            // Something went wrong!
                        }

                }
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.