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.

This question already has an answer here:

<?php
date_default_timezone_set('America/Los_Angeles');
$time = date('Gi', time());
$day = date('l', time());
?>

<script type="text/javascript">
$(function() {
  $(".show_hide").click( function()
       {
        var locTime = <?php echo json_encode($time) ?>;
        var locDate = <?php echo json_encode($day) ?>;

$.getJSON( "url_to_json", function(data) {
    for (var i = 0; i < data.location[locDate].length; i++) { 
    console.log("sucess1");
    xr_mon= data.location.locDate[i];
    console.log("sucess2");
     if (locTime >= xr_mon.kai && locTime < xr_mon.guan ){
        console.log("cafe is open!");
        $('.xr').show(); 
        break;
        }


    else {
        console.log("cafe is closed");
        $('.xr').hide();
    }
    }
});
       }
  );
});

JSON

{ "location": 
{
    "Monday": [
    {"kai": 700, "guan": 1400},
    {"kai": 1700, "guan": 2100}
    ],

    "Tuesday": [
    {"kai": 700, "guan": 1400},
    {"kai": 1700, "guan": 2100}
    ],

    "Wednesday": [
    {"kai": 700, "guan": 1400},
    {"kai": 1700, "guan": 2100},
    {"kai": 2200, "guan": 2400},
    {"kai": 0, "guan": 200}
    ],

    "Thursday": [
    {"kai": 700, "guan": 1400},
    {"kai": 1700, "guan": 2100},
    {"kai": 2200, "guan": 2400},
    {"kai": 0, "guan": 200}
    ],

    "Friday": [
    {"kai": 700, "guan": 1400},
    {"kai": 1700, "guan": 2100},
    {"kai": 2200, "guan": 2400},
    {"kai": 0, "guan": 200}
    ],

    "Saturday": [
    {"kai": 1000, "guan": 1500},
    {"kai": 1700, "guan": 2100},
    {"kai": 2200, "guan": 2400},
    {"kai": 0, "guan": 200}
    ],

    "Sunday": [
    {"kai": 1000, "guan": 1500},
    {"kai": 1700, "guan": 2100},
    {"kai": 2200, "guan": 2400},
    {"kai": 0, "guan": 200}
    ]
}
}

where kai = opening hour and guan = closing hour

with locDate is pulled via php server side date, and i would like to replace the date generated with my JSON call string that has part where week day is.

from this

  for (var i = 0; i < data.location.'locDate'.length; i++)

to this

  for (var i = 0; i < data.location.Thursday.length; i++)

How do I do it in a correct way. There have been suggestion to use [locDate], but it would not replace the variable from php date data.

share|improve this question

marked as duplicate by Felix Kling, Brad Christie, Samuel Liew, Jeremy J Starcher, georgebrock Jun 28 '13 at 6:29

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
For the record, this is not JSON. These are native JavaScript objects. JSON is the serialization of JavaScript objects--That's why there's an N for Notation. –  Brad Christie Jun 27 '13 at 23:01
    
I'm trying to call an external JSON by using data.location.'locDate'.length but give me the current date via php server side. –  user2510532 Jun 27 '13 at 23:09
    
A "JSON Call" would be the actual query using an AJAX (or alike) method. However, once you have it (and parsed) it's now a JavaScript object. –  Brad Christie Jun 27 '13 at 23:11
    
I updated the original post, hope this clears up what I'm trying to do. –  user2510532 Jun 27 '13 at 23:16
    
@user: I think you're missing what I'm after. When you see "{x:1,y:2,z:3}", that's "JSON". However, when you're now referencing foo.x, foo.y and foo.z you're now using Javascript objects (the JSON servered its purpose--it sent the information and was deserialized back to JavaScript objects). That's all I was getting at. –  Brad Christie Jun 27 '13 at 23:20
show 3 more comments

1 Answer

up vote 2 down vote accepted

Use bracket notation.

for (var i = 0; i < data.location[locDate].length; i++)

Another example:

thing = [1, 2, 3, 4, 5]
//The following lines do the same thing:
thing.pop()
thing['pop']()
share|improve this answer
add comment

Not the answer you're looking for? Browse other questions tagged or ask your own question.