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I have a JSON column (called json_col) in a MySQL table:

{'a':9, 'b':8, 'c':7}

I want to select the column "json_col" with each of its keys and values and return it as an array() so I can process it in PHP.

How do I do that?

I tried JSON_EXTRACT() but that requires me to specify the json element and it only returns the corresponding value.

Here is "my effort":

  $query_string = '
    SELECT JSON_EXTRACT( json_col, "$.a" )
    FROM settings
    WHERE id = "4"
    LIMIT 1
  ';
  $result = mysqli_query( $GLOBALS['db_link'], $query_string ) or die( mysqli_error( $GLOBALS['db_link'] ) );
  $row = mysqli_fetch_row( $result );
  mysqli_free_result( $result );

When I echo $row[0] I get the value of "a" which is 9!

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    Show us your efforts and where you exactly have problems. Are you having issues selecting the json column? Or are you having problems converting the json string to an array after you successfully loaded the value from the database? – Definitely not Rafal Dec 17 '20 at 15:17
  • Sure thing @Rafal! Updated my OQ! – H. Ferrence Dec 17 '20 at 15:20
  • Executing the sql SELECT json_col FROM settings WHERE id = "4" LIMIT 1 would give you '{'a':9, 'b':8, 'c':7}', correct? – Definitely not Rafal Dec 17 '20 at 15:22
  • Exactly @Rafal. Did that in an earlier development step. So maybe I need to then use PHP to breakdown the JSON data into an array()...correct? I was thinking and hoping that maybe the array could be produced by MySQL – H. Ferrence Dec 17 '20 at 15:23
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Simply Change your query to select the json:

$query_string = '
    SELECT json_col
    FROM settings
    WHERE id = "4"
    LIMIT 1
';

Execute your query as you did before

$result = mysqli_query( $GLOBALS['db_link'], $query_string ) or die( mysqli_error( $GLOBALS['db_link'] ) );
$row = mysqli_fetch_row( $result );

And then convert it to an array with json_decode

$myArray = json_decode($row['json_col'], true);

You can check its values like this:

echo "<pre>";
print_r($myArray);
echo "</pre>";
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