如何使用 SQLITE3 LIKE 语句
https://stackoverflow.com/questions/2643741
-
27-09-2019 - |
italiano
english
français
española
中国
日本の
العربية
Deutsch
한국어
Português
Russian题
我在项目中运行动态 LIKE 语句时遇到问题:此查询的工作方式就像一个超级按钮,返回名称中带有“t”的所有项目:
const char *sql = "select * from bbc_ipad_v1_node where name LIKE '%%t%%'";
当我尝试动态执行此操作时,我不会收到错误,而只是得到一个空结果。该值似乎为空。我尝试绑定一个输出正确值的字符串值“s”
NSLog(@"bbc_ : search menu items from db based on: %@",s);
const char *sql = "select * from bbc_ipad_v1_node where name LIKE '%%?%%'";
sqlite3_stmt *statement;
if (sqlite3_prepare_v2(database, sql, -1, &statement, NULL) == SQLITE_OK) {
sqlite3_bind_text(statement, 1, [s UTF8String],-1,SQLITE_TRANSIENT);
我应该如何绑定这个值而不是使用:
const char *sql = "select * from bbc_ipad_v1_node where name LIKE '%%?%%'";
解决方案
刚刚找到了一个很好的解释 http://www.innerexception.com/2008/10/using-like-statement-in-sqlite-3-from.html
我更改了以下几行:
const char *sql = "select * from bbc_ipad_v1_node where name LIKE ?001";
和
NSString *searchInput = [NSString stringWithFormat:@"%@%%", s];
sqlite3_bind_text(statement, 1, [searchInput UTF8String],-1,SQLITE_TRANSIENT);
其他提示
您可以实际上只是说
const char *sql = "select * from bbc_ipad_v1_node where name LIKE '%t%'";
(注意单%s)
不隶属于 StackOverflow
