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I've looked at other questions/answers but I'm not fully understanding it. Furthermore, I haven't found one asking my exact question.

I have 7 arrays storing the start and end times for a business. My PHP program checks for the current day and matches it with the start end time for that day. So right now I have 7 if statements similar to this:

if (date(l) == 'Sunday') {
   $start = $SundayAccountingHours['start'];
   $end = $SundayAccountingHours['end'];
 }

What I want to do is clean up the code. So maybe I could have something like

$start = ${$today}.AccountingHours['start'];
$end = ${$today}.AccountingHours['end'];

How can I make this work? Using the above example I'm getting this: Parse error: syntax error, unexpected '[' in C:\xampp\htdocs\Dev.php on line 22 where line 22 is $start is defined. I can't take out the stuff in the brackets because THAT'S the information I need to really get to.

If you can't tell, I'm still novice at PHP so any help will be appreciated.

Thanks!

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1  
the . in php is not an property operator but instead a concatenation operator. –  Orangepill May 22 '13 at 2:43

3 Answers 3

up vote 5 down vote accepted
if (date(l) == 'Sunday') {
   $start = $SundayAccountingHours['start'];
   $end = $SundayAccountingHours['end'];
 }

First, put quotes around that 'l'. It's looking for a constant named l, and failing to find that it's treating it like a string. This is very bad practice (and should issue a warning).

Secondly, use a multi-dimensional array. You don't need to try and use the day-of-the-week as part of your variable name. e.g.,

$start = $AccountingHours[$today]['start'];

You might discover variable-variables down the road which allow you do something like what you're trying, but I strongly advise you to steer clear of them. I don't think there's a single practical application for them and they only serve to cause confusion and error (cough).

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If you MUST use variable variable names (You should really go for multi-dimensional arrays though), try something like this.

$start = ${$today.'AccountingHours'}['start'];
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This is a case of solving the apparent problem, not the actual problem. –  siride May 22 '13 at 2:43
    
Completely agreed. Which is why I wrote the first line. :) –  Achrome May 22 '13 at 2:44
    
I will try to wrap my head around multi-dimensional arrays then. When I echo $start using your code, nothing is showing up. It's like the variable is empty... –  Kenny Johnson May 22 '13 at 3:00
    
Try var_dump($SundayAccountingHours) to see if the variable is being generated at all. This is actually one of the main problems with using variable variables. The code becomes very difficult to debug. –  Achrome May 22 '13 at 3:07
1  
I do agree that multi-dimensional arrays would be the correct answer to this problem. However, I am marking this as the accepted answer because it actually answered the question I asked. I WILL not be using this method in the final version of my program though. –  Kenny Johnson May 22 '13 at 3:13

Array elements can be referenced by variables like so:

$myArray[$myVar]

Arrays can also contain other arrays, like so:

$myArray = array();
$myArray['a'] = array();
$myArray['a']['b'] = 'foo';
print $myArray['a']['b'];  // prints 'foo'

So combine the two concepts and you can create a multi-dimensional array referenced by variables:

$accountingHours = array();
$accountingHours['Sunday'] = array('start' => ..., 'end' => ...);
// ...
$start = $accountingHours[$today]['start'];
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