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i'm tring to make a function with declared arguments types to check quickly if they are in the right format but when is a string return allways that error Catchable fatal error: Argument 2 passed to myfunction() must be an instance of string, string given, called in path_to_file on line 69 and defined in path_to_file on line 49

function myfunction( array $ARRAY, string $STRING, int $INTEGER ) { 
    return "Args format correct"; 
}
myfunction(array("1",'2','3','4'), "test" , 1234);

where is the mistake?

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You can't hint of for scalar values. –  alexn Jan 22 '12 at 16:58

4 Answers 4

up vote 9 down vote accepted

According to the PHP5 documentation:

Type Hints can only be of the object and array (since PHP 5.1) type. Traditional type hinting with int and string isn't supported.

Since string and int are not classes, you can't "type-hint" them in your function.

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You can do something like this which has always worked for me

for string

function setData($Name=""){ }

this forces the name to be a string, it doesn't check if its a string

for numeric values

function setData($age=0){ }

this forces the age to be a number, if a string is passed, the value will be 0

for array values , there are two variation

function setData(array $data){ } 

if an array is not passed, it would throw an error

function setData($data=array()){ } 

This would pass an empty array of no value is given for $data

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string, int and other built-in types are not classes, in argument you specify class, of the argument. The only supported built-in type to be put there is array.

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You cannot define type as string and int. PHP "does not know" what they are.

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3  
It does know the types, it just doesn’t care. –  Gumbo Jan 22 '12 at 17:09
    
@Gumbo ... and that's why I put the double quotes... –  Aurelio De Rosa Jan 22 '12 at 17:19

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