-1
$SourceID = $this->source_information->SourceID;

// the following fails 

if($results = $this->mysqli->query("SELECT .... R.Name = '$release_name' AND S.SourceID = $this->source_information->SourceID  AND S.ReleaseID = R.ReleaseID"))

// this will works  
if($results = $this->mysqli->query("SELECT .... R.Name = '$release_name' AND S.SourceID =  $SourceID  AND S.ReleaseID = R.ReleaseID"))

I have a ton of code with $this->source_information->SourceID sort if thing in it and I really don't what to rewrite it, tell me I can make this work some how.

edits follow:

exit(var_dump($this->source_information->SourceID));

returns(string(2) "18")

Thank you for bringing up prepared statements. I will use prepared statements from now on.

  • Please post the result of exit(var_dump($this->source_information->SourceID)); – Wesley Murch Mar 27 '14 at 19:08
  • When using mysqli you should be using parameterized queries and bind_param to add user data to your query. DO NOT use string interpolation to accomplish this because you will probably create severe SQL injection bugs. – tadman Mar 27 '14 at 19:08
  • exit(var_dump($this->source_information->SourceID)); returns string(2) "18" – user1564382 Mar 27 '14 at 19:13
  • ever thought of using prepared statements? – Your Common Sense Mar 27 '14 at 19:31
  • if you were using prepared statements instead of interpolating variables directly into query, there would be no such error at all – Your Common Sense Mar 27 '14 at 19:58
1

Simple variable interpolation syntax, i.e. "$this->foo", will only resolve a maximum of one nested object. "$this->foo->bar" is interpreted as $this->foo plus the string "->bar". Which is why it's complaining about the source_information object. If you want to embed deeper nested objects, use the complex variable interpolation syntax:

"... S.SourceID = {$this->source_information->SourceID}  AND ..."
  • Works like a charm. Thanks man! – user1564382 Mar 27 '14 at 19:27

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