【发布时间】:2011-05-24 12:04:51
【问题描述】:
我正在使用数据库类来使用 sqlite 数据库
#import "DatabaseConnection.h"
@implementation DatabaseConnection
-(void)DBInitalize{
databaseName = @"sensorystimulation.sql";
NSArray *documentPaths = NSSearchPathForDirectoriesInDomains(NSDocumentDirectory, NSUserDomainMask, YES);
NSString *documentsDir = [documentPaths objectAtIndex:0];
databasePath = [documentsDir stringByAppendingPathComponent:databaseName];
[self checkAndCreateDatabase];
[self readFromDatabase];
}
-(NSMutableArray *)settingsData{
return settingsArray;
}
-(void)checkAndCreateDatabase{
BOOL success;
NSFileManager *fileManager = [NSFileManager defaultManager];
success = [fileManager fileExistsAtPath:databasePath];
if(success)
return;
NSString *databasePathFromApp = [[[NSBundle mainBundle] resourcePath] stringByAppendingPathComponent:databaseName];
[fileManager copyItemAtPath:databasePathFromApp toPath:databasePath error:nil];
}
-(void)readFromDatabase{
settingsArray = [[NSMutableArray alloc] init];
if(sqlite3_open([databasePath UTF8String], &database) == SQLITE_OK) {
const char *sqlStatementNew = "my sql query";
sqlite3_stmt *compiledStatementNew;
if(sqlite3_prepare_v2(database, sqlStatementNew, -1, &compiledStatementNew, NULL) == SQLITE_OK) {
while(sqlite3_step(compiledStatementNew) == SQLITE_ROW) {
NSString *key_name = [NSString stringWithUTF8String:(char *)sqlite3_column_text(compiledStatementNew, 0)];
NSString *key_value = [NSString stringWithUTF8String:(char *)sqlite3_column_text(compiledStatementNew, 1)];
NSMutableDictionary *tempDic = [[NSMutableDictionary alloc] initWithObjectsAndKeys:key_name,@"key_name",key_value,@"key_value",nil];
[settingsArray addObject:tempDic];
[tempDic release];
}
sqlite3_finalize(compiledStatementNew);
}
}
}
-(void)updateSettings:(NSMutableArray *)values{
for (int l=0; l<[values count]; l++) {
NSString *key_name = [[values objectAtIndex:l] objectForKey:@"key_name"];
NSString *key_value = [[values objectAtIndex:l] objectForKey:@"key_value"];
sqlite3_stmt *updateStmt;
NSString *ts=[NSString stringWithFormat:@"UPDATE table key_value='%@' where key_name='%@'",key_value,key_name];
const char *sql = [ts cStringUsingEncoding:1];
if(sqlite3_prepare_v2(database, sql, -1, &updateStmt, NULL) != SQLITE_OK){
NSLog(@"Error while creating update statement. '%s'", sqlite3_errmsg(database));
}
if(SQLITE_DONE != sqlite3_step(updateStmt)){
NSLog(@"%@",ts);
NSLog(@"Error while updating. '%s'", sqlite3_errmsg(database));
}
}
}
-(void)quitApp{
sqlite3_close(database);
}
@end
并像这样调用它的对象
初始化
databaseConnection = [[DatabaseConnection alloc] init];
[databaseConnection DBInitalize];
更新数据库
NSMutableArray *valueArray = [[NSMutableArray alloc] init];
[valueArray addObject:[[[NSMutableDictionary alloc] initWithObjectsAndKeys:@"abc",@"key_name",[NSString stringWithFormat:@"%d",abc],@"key_value",nil] autorelease]];
[valueArray addObject:[[[NSMutableDictionary alloc] initWithObjectsAndKeys:@"xyz",@"key_name",[NSString stringWithFormat:@"%d",xyz],@"key_value",nil] autorelease]];
[databaseConnection updateSettings:valueArray];
[valueArray release];
它工作正常。使用没问题
但是经过大约 100-200 次的大量更新后,会出现以下日志(错误)......并且每次发生此错误之后,我都无法更新数据库。在此之后我必须退出应用程序然后我再次工作正常
Error while updating. 'unable to open database file'
由于这个原因,我的其他功能在图像视图上的选项卡发生错误后也不起作用
关于这个的任何想法。请帮忙。
-阿米特巴坦
【问题讨论】:
-
是的,这是 db.. 的完整类代码。函数 -(void)updateSettings:(NSMutableArray *)values 有问题