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This code works, and outputs an array as intended, but throws the following error message:

PHP Notice: Trying to get property of non-object...

Here is my code:

$mysqli = new mysqli("localhost","user","pass","database");
$sql = "SELECT keyterm
    FROM keyterms";
$results = $mysqli->query($sql);
while($result = $results->fetch_object()->keyterm)
    $keyterms[] = $result;
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3 Answers 3

up vote 6 down vote accepted

fetch_object() will return null when there are no more results in your result set, so the last iteration of the while loop will attempt to access the keyterm property on a null value.

You should assign the result object to $result and then access the property in the loop body, e.g.:

while($result = $results->fetch_object())
    $keyterms[] = $result->keyterm;
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$keyterms = array();
if ($results  = $mysqli->query($sql))
  while($obj = $results->fetch_object())
    $keyterms[] = $obj->keyterm;
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You get that warning because you look up the property before checking if the cursor returns a valid object. In other words on the last iteration when the recordset has been exhausted, you will have an empty object with no keyterm property.

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