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我的問題是,它給我的mysqli說明這是一個警告:如何刪除警告下面的mysqli
Warning: mysqli_stmt::bind_param() [mysqli-stmt.bind-param]: Number of variables doesn't match number of parameters in prepared statement in ...on line 89
我怎樣才能擺脫警告?
$questionquery = "
SELECT q.QuestionId, q.QuestionContent, o.OptionType, q.NoofAnswers, GROUP_CONCAT(an.Answer ORDER BY an.Answer SEPARATOR ' ') AS Answer, r.ReplyType,
q.QuestionMarks
FROM Answer an
INNER JOIN Question q ON q.AnswerId = an.AnswerId
JOIN Reply r ON q.ReplyId = r.ReplyId
JOIN Option_Table o ON q.OptionId = o.OptionId
WHERE ";
$i=0;
foreach ($terms as $each) {
$i++;
if ($i == 1){
$questionquery .= "q.QuestionContent LIKE ? ";
} else {
$questionquery .= "OR q.QuestionContent LIKE ? ";
}
}
$questionquery .= "GROUP BY q.QuestionId, q.SessionId ORDER BY "; $i = 0; foreach ($terms as $each) {
$i++;
if ($i != 1)
$questionquery .= "+";
$questionquery .= "IF(q.QuestionContent LIKE ? ,1,0)";
}
$questionquery .= " DESC ";
$stmt=$mysqli->prepare($questionquery);
$stmt->bind_param('s', $each = '%' . $each . '%');
$stmt->execute();
$stmt->bind_result($dbQuestionId,$dbQuestionContent,$dbOptionType,$dbNoofAnswers,$dbAnswer,$dbReplyType,$dbQuestionMarks);
$questionnum = $stmt->num_rows();
輸出的SQL:
SELECT q.QuestionId, q.QuestionContent, o.OptionType, q.NoofAnswers, GROUP_CONCAT(an.Answer ORDER BY an.Answer SEPARATOR ' ') AS Answer, r.ReplyType, q.QuestionMarks
FROM Answer an INNER JOIN Question q ON q.AnswerId = an.AnswerId JOIN Reply r ON q.ReplyId = r.ReplyId JOIN Option_Table o ON q.OptionId = o.OptionId
WHERE q.QuestionContent LIKE ?
GROUP BY q.QuestionId, q.SessionId
ORDER BY IF(q.QuestionContent LIKE ? ,1,0) DESC
[嚴重的是,嘗試全文檢索](http://stackoverflow.com/questions/11106155/fatal-error-is-causing -no-results-to-appear-mysqli#comment14547138_11106155)這正是全文搜索的目的。 – Gumbo
如果有人可以請求幫助,我仍然需要幫助 – user1394925