1

Hello I have JSON rows like This:

//THis is one of My Rows
     [{"id":"26","answer":[{"option":"3","text":"HIGH"}],"type":"a"},
        {"id":"30","answer":[{"option":"3","text":"LOW"}],"type":"b"},
        {"id":"31","answer":[{"option":"3","text":"LOW"}],"type":"c"},
        {"id":"32","answer":[{"option":"3","text":"HIGH"}],"type":"d"},
        {"id":"33","answer":[{"option":"3","text":"HIGH"}],"type":"e"},
        {"id":"34","answer":[{"option":"3","text":"HIGH"}],"type":"f"},
        {"id":"40","answer":["Number 3"],"type":"g"}]

How Can I echo id answer type,
and db Name: array Table Name: user_survey_start JSON row Name: survey_answers, This is my code:

    <?php
    $con=mysqli_connect("localhost","root","","array");
    // Check connection
    if (mysqli_connect_errno())
      {
      echo "Failed to connect to MySQL: " . mysqli_connect_error();
      }

  //  $sql="SELECT  survey_answers->"$.id" AS `twitter` FROM user_survey_start";  
    $sql="SELECT  survey_answers FROM user_survey_start";


    if ($result=mysqli_query($con,$sql))
      {
      // Fetch one and one row
      while ($row=mysqli_fetch_row($result))
        {
        printf ("%s \n",$row[0]);
        }
      // Free result set
      mysqli_free_result($result);
    }

    mysqli_close($con);
    ?> 
4
  • And what is the issue? Also for last line in jsonNumber 3 will become string
    – B. Desai
    Feb 11 '17 at 7:19
  • I Like to Connect to my Table Column, And echo json rows Automaticaly, But Don't Know how can i do that, Yes yes I like to fix That String too. Thank you Feb 11 '17 at 7:22
  • are you storing json in column name ` survey_answers` .
    – gaurav
    Feb 13 '17 at 10:40
  • yes yes my column Name is survey_answers, i need make my json object to 3 part, in three column, can i? Feb 15 '17 at 6:24
1

you can use json_decode() function to convert your json to php array(). After then you can iterate all data as your requirement.

0

First I Need To Select My Primary Key

$sql="SELECT `survey_answers`,us_id FROM `user_survey_start`";

Then Put Value To ID

$id[] = $data['id'];

After That

$sql1="update user_survey_start set id2='$ids' where us_id=".$row[1];//run update sql
echo $sql1."<br>";

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