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I have met this Notice while programming php with CodeIgniter code like this.Its used for showing line and filename while logging. I tried this

    //get debug messages such as functionname, linenum,etc.
    if ($level == 'debug') {
        $debug_info = debug_backtrace(!DEBUG_BACKTRACE_PROVIDE_OBJECT
                                && DEBUG_BACKTRACE_IGNORE_ARGS);
        $debug_info = $debug_info[1];
        $debug_message = '('.
            isset($debug_info['file'])?$debug_info['file']:''.
            isset($debug_info['class'])?$debug_info['class']:''.
            isset($debug_info['type'])?$debug_info['type']:''.
            isset($debug_info['function'])?$debug_info['function']:''.
            isset($debug_info['line'])?$debug_info['line']:''.
            ')';
        $message = $debug_message.$message;
    }

and use array_key_exist() to make the judge ,but it still cause NOTICE like this

A PHP Error was encountered

Severity: Notice

Message: Undefined index: file

Filename: core/Common.php

Line Number: 364

Many thanks for answering the question

here is the dumped data

array(4) {
  ["function"]=>
  string(5) "index"
  ["class"]=>
  string(7) "Welcome"
  ["type"]=>
  string(2) "->"
  ["args"]=>
  array(0) {
  }
}
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I assume isset($debug_info['file'])?$debug_info['file']:''. is line 364? Could you try to var_dump $debug_info and add this to your question. –  DKSan Apr 15 '14 at 7:26
    
Try $debug_info['file']?$debug_info['file']:''. I assume the file key will always be set even if there is no value? –  John Smith Apr 15 '14 at 7:28
    
This function was called many times the whole dumped data is too long;I added the most recent dump message –  Kevin wang Apr 15 '14 at 7:29
    
Can you add an exceptionhandling to the code to only dump $debug_info when the error orrurs? PHP.net: Try and Catch –  DKSan Apr 15 '14 at 7:32
    
@deceze Many thanks....I made such a low level mistake.I thought PHP operators work like C –  Kevin wang Apr 15 '14 at 7:33

1 Answer 1

'(' . isset(...) will always evaluate to true, hence $debug_info['file'] will always be evaluated whether it's set or not. The problem is the way you're chaining the conditions and operations. You need to delimit and group them explicitly, otherwise it doesn't do what you think it does.

'(' . (isset(..) ? 'foo' : 'bar') . ( .. ? .. : .. ) . ...
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