Understanding and Managing Transaction Logs--Transaction Log Physical Architecture

本文介绍SQL Server中事务日志的管理方式,包括如何将日志映射到一个或多个物理文件,以及虚拟日志文件的概念。此外还探讨了日志文件增长机制和循环使用的特点。

Updated: 14 April 2006

The transaction log in a database maps over one or more physical files. Conceptually, the log file is a string of log records. Physically, the sequence of log records is stored efficiently in the set of physical files that implement the transaction log.

The SQL Server Database Engine divides each physical log file internally into a number of virtual log files. Virtual log files have no fixed size, and there is no fixed number of virtual log files for a physical log file. The Database Engine chooses the size of the virtual log files dynamically while it is creating or extending log files. The Database Engine tries to maintain a small number of virtual files. The size of the virtual files after a log file has been extended is the sum of the size of the existing log and the size of the new file increment. The size or number of virtual log files cannot be configured or set by administrators.

The only time virtual log files affect system performance is if the log files are defined by small size and growth_increment values. If these log files grow to a large size because of many small increments, they will have lots of virtual log files. This can slow down database startup and also log backup and restore operations. We recommend that you assign log files a size value close to the final size required, and also have a relatively large growth_increment value

The transaction log is a wrap-around file. For example, consider a database with one physical log file divided into four virtual log files. When the database is created, the logical log file begins at the start of the physical log file. New log records are added at the end of the logical log and expand toward the end of the physical log. Log truncation frees any virtual logs whose records all appear in front of the minimum recovery log sequence number (MinLSN). The MinLSN is the log sequence number of the oldest log record that is required for a successful database-wide rollback. The transaction log in the example database would look similar to the one in the following illustration.

Log file divided into four virtual log files

When the end of the logical log reaches the end of the physical log file, the new log records wrap around to the start of the physical log file.

Log records wrap around to start of log file

This cycle repeats endlessly, as long as the end of the logical log never reaches the beginning of the logical log. If the old log records are truncated frequently enough to always leave sufficient room for all the new log records created through the next checkpoint, the log never fills. However, if the end of the logical log does reach the start of the logical log, one of two things occurs:

  • If the FILEGROWTH setting is enabled for the log and space is available on the disk, the file is extended by the amount specified in growth_increment and the new log records are added to the extension. For more information about the FILEGROWTH setting, see ALTER DATABASE (Transact-SQL).
  • If the FILEGROWTH setting is not enabled, or the disk that is holding the log file has less free space than the amount specified in growth_increment, an 9002 error is generated.

If the log contains multiple physical log files, the logical log will move through all the physical log files before it wraps back to the start of the first physical log file.


From  http://technet.microsoft.com/en-us/library/ms179355(SQL.90).aspx

【事件触发一致性】研究多智能体网络如何通过分布式事件驱动控制实现有限时间内的共识(Matlab代码实现)内容概要:本文围绕多智能体网络中的事件触发一致性问题,研究如何通过分布式事件驱动控制实现有限时间内的共识,并提供了相应的Matlab代码实现方案。文中探讨了事件触发机制在降低通信负担、提升系统效率方面的优势,重点分析了多智能体系统在有限时间收敛的一致性控制策略,涉及系统模型构建、触发条件设计、稳定性与收敛性分析等核心技术环节。此外,文档还展示了该技术在航空航天、电力系统、机器人协同、无人机编队等多个前沿领域的潜在应用,体现了其跨学科的研究价值和工程实用性。; 适合人群:具备一定控制理论基础和Matlab编程能力的研究生、科研人员及从事自动化、智能系统、多智能体协同控制等相关领域的工程技术人员。; 使用场景及目标:①用于理解和实现多智能体系统在有限时间内达成一致的分布式控制方法;②为事件触发控制、分布式优化、协同控制等课题提供算法设计与仿真验证的技术参考;③支撑科研项目开发、学术论文复现及工程原型系统搭建; 阅读建议:建议结合文中提供的Matlab代码进行实践操作,重点关注事件触发条件的设计逻辑与系统收敛性证明之间的关系,同时可延伸至其他应用场景进行二次开发与性能优化。
【四旋翼无人机】具备螺旋桨倾斜机构的全驱动四旋翼无人机:建模与控制研究(Matlab代码、Simulink仿真实现)内容概要:本文围绕具备螺旋桨倾斜机构的全驱动四旋翼无人机展开,重点研究其动力学建模与控制系统设计。通过Matlab代码与Simulink仿真实现,详细阐述了该类无人机的运动学与动力学模型构建过程,分析了螺旋桨倾斜机构如何提升无人机的全向机动能力与姿态控制性能,并设计相应的控制策略以实现稳定飞行与精确轨迹跟踪。文中涵盖了从系统建模、控制器设计到仿真验证的完整流程,突出了全驱动结构相较于传统四旋翼在欠驱动问题上的优势。; 适合人群:具备一定控制理论基础和Matlab/Simulink使用经验的自动化、航空航天及相关专业的研究生、科研人员或无人机开发工程师。; 使用场景及目标:①学习全驱动四旋翼无人机的动力学建模方法;②掌握基于Matlab/Simulink的无人机控制系统设计与仿真技术;③深入理解螺旋桨倾斜机构对飞行性能的影响及其控制实现;④为相关课题研究或工程开发提供可复现的技术参考与代码支持。; 阅读建议:建议读者结合提供的Matlab代码与Simulink模型,逐步跟进文档中的建模与控制设计步骤,动手实践仿真过程,以加深对全驱动无人机控制原理的理解,并可根据实际需求对模型与控制器进行修改与优化。
评论
添加红包

请填写红包祝福语或标题

红包个数最小为10个

红包金额最低5元

当前余额3.43前往充值 >
需支付:10.00
成就一亿技术人!
领取后你会自动成为博主和红包主的粉丝 规则
hope_wisdom
发出的红包
实付
使用余额支付
点击重新获取
扫码支付
钱包余额 0

抵扣说明:

1.余额是钱包充值的虚拟货币,按照1:1的比例进行支付金额的抵扣。
2.余额无法直接购买下载,可以购买VIP、付费专栏及课程。

余额充值