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I'd like to change this:

if ($week_day == "1")
{
$day1_hours = $value;
}
if ($week_day == "2")
{
$day2_hours = $value;
}
if ($week_day == "3")
{
$day3_hours = $value;
}
if ($week_day == "4")
{
$day4_hours = $value;
}
if ($week_day == "5")
{
$day5_hours = $value;
}
if ($week_day == "6")
{
$day6_hours = $value;
}
if ($week_day == "7")
{
$day7_hours = $value;
}
}

Into something more readable, like a for loop, or whatever other suggestions you all may have.

I tried to do:

for ($c=1; $c<8, $c++)
{
if ($week_day == $c)
{
$day".$c."_hours = $value;
}
}

But I know that is nowhere near correct, and I have no idea how to insert another variable within a variable.

Any help is appreciated!

share|improve this question
1  
Wouldn't it be easier to set an array key? $day[$week_day] = $value –  andrewsi Jul 3 '13 at 0:50
    
Perhaps! Elaborate on that? –  RobDubya Jul 3 '13 at 0:51
    
Use array instead. –  sectus Jul 3 '13 at 0:51
    
@RobDubya .... That's pretty much it, actually :D –  andrewsi Jul 3 '13 at 0:51
    
Check manual for more info php.net/manual/en/language.types.array.php. Please try your own code. Posting invalid syntax doesn't show an attempt at solving the problem... –  elclanrs Jul 3 '13 at 0:52

4 Answers 4

up vote 1 down vote accepted

Try this syntax.

${'day'.$c.'_hours'} = $value;
share|improve this answer
    
No joy, loads a blank page. –  RobDubya Jul 3 '13 at 0:57
    
@RobDubya, you must read somthing about php debuging. 3v4l.org/XLQjk –  sectus Jul 3 '13 at 1:00
    
I must have fudged some syntax, it seems to work! –  RobDubya Jul 3 '13 at 1:07

Try this

$hours[$week_day] = $value
share|improve this answer

Something like this

$week_day = 3;
$value = "hi";

${"day" . $week_day . "_hours"} = $value;  

echo $day3_hours;
share|improve this answer

My interpretation.

$week = 7;
$day = array();

for($i=1; $i<=7; $i++){
   $day[$i]['hours'] = $value;
}

You can declare the numbers of weeks you want and to pull the data you can do something like this:

echo $day[1]['hours']
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