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In PHP, I have the if statement:

FIX_RECIPE_ID && FIX_RECIPE_ID != $favouriteRecipeId

It does what it says on the tin, though, is there a more logical way of writing this statement?

Thanks all in advance!

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This statement will generate a warning if FIX_RECIPE_ID is not defined. This is not JavaScript :) – Jan Hančič Jan 23 '12 at 20:22
2  
FIX_RECIPE_ID a constant? If so you should probably be checking defined('FIX_RECIPE_ID'). – Brad Christie Jan 23 '12 at 20:23
    
@Jan, no-one has said it is JS, its PHP! – Jonathon Oates Jan 23 '12 at 20:25
    
@Brad, thanks, do you know of there is a more logical way or is this the most logical? – Jonathon Oates Jan 23 '12 at 20:26
    
@JonathonDavidOates I think the logic here is completely logical. – shiplu.mokadd.im Jan 23 '12 at 20:27
up vote 2 down vote accepted

If FIX_RECIPE_ID is a constant, use this syntax.

defined(FIX_RECIPE_ID) && (FIX_RECIPE_ID != $favouriteRecipeId)

If not, make it a variable first, then use

isset($FIX_RECIPE_ID) && ($FIX_RECIPE_ID != $favouriteRecipeId)
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Sorry to submit as an answer, but I don't have commenting privileges yet I guess.

Shiplu's answer is not completely correct. The line:

defined(FIX_RECIPE_ID) && (FIX_RECIPE_ID != $favouriteRecipeId)

Will appear to work, but will throw a notice along the lines of Use of undefined constant FIX_RECIPE_ID - assumed 'FIX_RECIPE_ID' if it's not defined, and will have very unexpected behaviour (typically returning false) if it is.

The defined function takes the name of the constant as a string. PHP will assume you mean the string 'FIX_RECIPE_ID' if it's not defined and work as expected (although, as mentioned, throwing a notice). If it is defined, you'll be checking whether a constant exists named after the value of FIX_RECIPE_ID.

Meaning when it's not defined, your check is effectively:

defined('FIX_RECIPE_ID') && (FIX_RECIPE_ID != $favouriteRecipeId)

Which is correct and will return false. When it is defined, however, (let's pretend it's 10), the check will become:

defined(10) && (FIX_RECIPE_ID != $favouriteRecipeId)

And defined will return false. This entire conditional will always return false.

The correct way to use defined in this context would be:

defined('FIX_RECIPE_ID') && (FIX_RECIPE_ID != $favouriteRecipeId)
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