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<?php
include_once('db.php');
$location = $_POST['location'];
$doctor = $_POST['doctor'];
$patient_id = $_POST['patient_id'];

if(($location != "") && ($doctor != "")) {
  $sql = "select Name,Age,Gest_age,Weight from rop_form where Location = '".$location."' and Doctor = '".$doctor."' and Patient_id = '".$patient_id."'";
  $result = mysql_query($sql);
  $myresult  = "";
  while($row = mysql_fetch_array($result)) {
    $myresult1['Patient_id'] = 'R'.$patient_id; 
    $myresult1['Name'] = $row['Name']; 
    $myresult1['Age'] = $row['Age']; 
    $myresult1['Weight'] = $row['Weight']; 
    $myresult1['Gest_age'] = $row['Gest_age']; 
  }
  $myresult = json_encode($myresult1); 
}
else {
  $myresult .= "";
}
echo $myresult;
?>

This is my PHP code.

This is the jQuery code.

$("#patient_id").change(function() {
  $.post("/diabetes/patient_detail_change.php",{ location:$("#location").val(),doctor:$("#doctor").val(),patient_id:$("#patient_id").val()} ,function(json_data) {
    alert(json_data);
    //var my_json = //{"Patient_id":"R00020","Name":"admin","Age":"12","Weight":"67","Gest_age":"2"//};
    $.each(json_data, function(key,value) {
      alert(key + ': ' + value);
      if(key == 'Name'){ $("#name").val(value); }
      if(key == 'Age'){ $("#age").val(value); }
      if(key == 'Weight'){ $("#ropweight").val(value); }
      if(key == 'Gest_age'){ $("#gest_age").val(value); }
    });
  });
});

alert(json_data); this line prints properly like

{"Patient_id":"R00006","Name":"admin","Age":"12","Weight":"67","Gest_age":"2"} which is the fomat required for jquery

But the .each loop statement which is present like: alert(key + ': ' + value); does not print like Patient_id : R00006 and all .but it prints like 0:{ 1:P 2:a 3:t 4:i ..what might be the problem?

share|improve this question
    
Don't forget to accept the answer that works best for you. –  Matt Ellen Feb 23 '10 at 17:55

4 Answers 4

up vote 2 down vote accepted

In addition to Matt Ellen's answer, the $.each() method is for looping over JavaScript arrays and array-like objects (that have a length property). PHP's associative arrays (keyword->value) are converted into a native JavaScript object instead. You could use a for...in loop instead:

for (var key in json_data) { 
   alert(key + ': ' + json_data[key]); 
   if(key == 'Name'){ $("#name").val(json_data[key]);} 
   if(key == 'Age'){ $("#age").val(json_data[key]);} 
   if(key == 'Weight'){ $("#ropweight").val(json_data[key]);} 
   if(key == 'Gest_age'){ $("#gest_age").val(json_data[key]);} 
}

But you probably don't need the loop. You can just use:

$.post (
  "/diabetes/patient_detail_change.php",
  { 
    location:$("#location").val(),
    doctor:$("#doctor").val(),
    patient_id:$("#patient_id").val()
  }, 
  function (json_data){
    if ("Name" in json_data) { $("#name").val(json_data.Name);}
    if ("Age" in json_data) { $("#age").val(json_data.Age);}
    if ("Weight" in json_data) { $("#ropweight").val(json_data.Weight);}
    if ("Gest_age" in json_data) { $("#gest_age").val(json_data.Gest_age);}
  }, 
  "json"
);
share|improve this answer
    
Good point. It's best to get rid of unnecessary loops. –  Matt Ellen Feb 23 '10 at 17:55
    
$("#patient_id").change(function(){ $.post ( "/diabetes/patient_detail_change.php", { location:$("#location").val(), doctor:$("#doctor").val(), patient_id:$("#patient_id").val() }, function (json_data){ alert(json_data); alert(json_data.Name); if (json_data.Name) { $("#name").val(json_data.Name);} if (json_data.Age) { $("#age").val(json_data.Age);} if (json_data.Weight) { $("#ropweight").val(json_data.Weight);} if (json_data.Gest_age) { $("#gest_age").val(json_data.Gest_age);} }, "Json" ); }); –  Hacker Feb 24 '10 at 5:06
    
I did this its still prints the alert(json_data); properly like {"Patient_id":"R00006","Name":"admin","Age":"12","Weight":"67","Gest_age":"2"} but alert(json_data.Name); prints as undefined :( –  Hacker Feb 24 '10 at 5:07
    
Hi pradeep. There is a very minor typo in Andy's code you need to change "Json" to "json". –  Matt Ellen Feb 25 '10 at 8:52
    
@Matt Ellen: fixed, thanks. –  Andy E Feb 25 '10 at 9:05

In your post statment you need to specify that you are returning JSON.

$.post("/diabetes/patient_detail_change.php",{location:$("#location").val(),doctor:$("#doctor").val(),patient_id:$("#patient_id").val()} ,function(json_data){

alert(json_data);

$.each(json_data, function(key,value){
alert(key + ': ' + value);
if(key == 'Name'){ $("#name").val(value);}
if(key == 'Age'){ $("#age").val(value);}
if(key == 'Weight'){ $("#ropweight").val(value);}
if(key == 'Gest_age'){ $("#gest_age").val(value);}

});
}, "json");

Like so.

At the moment your returned data is being treated as a string, so the each statement is outputting each character.

See the definition here jQuery post definition

share|improve this answer
    
+1, beat me to it by about three seconds :( –  karim79 Feb 23 '10 at 11:59
    
My eagerness might have left bugs... –  Matt Ellen Feb 23 '10 at 12:01

You should use $.post ("/diabetes/patient_detail_change.php",{ location:$("#location").val(),doctor:$("#doctor").val(),patient_id:$("#patient_id").val()}, function (json_data){ //blah blah },"Json" );

please check the last argument "Json"

share|improve this answer
    
I did that and added json at the end .but then also its printing in same way as earlier :( –  Hacker Feb 23 '10 at 12:08
1  
Open firebug goto Net -> xhr tab and check that json data is coming in proper format –  Tinku Feb 23 '10 at 12:25

Use $.getJSON instead of $.post.
This will return an object (parsed JSON), rather than a string

share|improve this answer
    
That uses the GET method, but pradeep is POSTing the data. –  Matt Ellen Feb 23 '10 at 17:53

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