本文整理匯總了PHP中Parse\ParseQuery::doesNotmatchKeyInQuery方法的典型用法代碼示例。如果您正苦於以下問題:PHP ParseQuery::doesNotmatchKeyInQuery方法的具體用法?PHP ParseQuery::doesNotmatchKeyInQuery怎麽用?PHP ParseQuery::doesNotmatchKeyInQuery使用的例子?那麽, 這裏精選的方法代碼示例或許可以為您提供幫助。您也可以進一步了解該方法所在類Parse\ParseQuery的用法示例。
在下文中一共展示了ParseQuery::doesNotmatchKeyInQuery方法的1個代碼示例,這些例子默認根據受歡迎程度排序。您可以為喜歡或者感覺有用的代碼點讚,您的評價將有助於係統推薦出更棒的PHP代碼示例。
示例1: testDoesNotMatchKeyInQuery
public function testDoesNotMatchKeyInQuery()
{
$this->provideTestObjectsForKeyInQuery();
$subQuery = new ParseQuery("Restaurant");
$subQuery->greaterThanOrEqualTo("ratings", 3);
$query = new ParseQuery("Person");
$query->doesNotmatchKeyInQuery("hometown", "location", $subQuery);
$results = $query->find();
$this->assertEquals(1, count($results), 'Did not return correct number of objects.');
$this->assertEquals("Billy", $results[0]->get("name"), 'Did not return the correct object.');
}