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The sync command is generally executed prior to a shutdown or halt, to flush all disk buffers and to write the super block. This ensures that data integrity is preserved when the system is rebooted or where the run level is modified. It is simply executed without options, as shown here:
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The tunefs command allows you to tune a file system s performance to specific requirements. The key settings that can be modified are optimization for speed of
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execution or amount of disk space required. Generally, unless a system is critically low on disk space, it is best to optimize for speed. The following options are supported: a n Specifies that n blocks be written before a pause in rotation e n Specifies n as the maximum number of contiguous disk blocks per file d n Sets the rotational delay to n milliseconds m n Specifies that n percent of the physical file system should be reserved as free o key Optimizes the file system for a key that is either time or space
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In this chapter, you have examined how to install, configure, and optimize file systems using UFS. In addition, when physical memory is lacking, virtual RAM can be configured to allow more applications to be executed at the expense of consuming disk space.
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File System and Volume Management
nce disks have been installed and formatted, a number of further operations must be performed to allow them to be used. For a start, the superuser must manually mount the disks and create an entry created in /etc/vfstab for each new partition. Alternatively, disks may need to be unmounted for maintenance using the fsck program. However, if file system journaling is enabled in /etc/vfstab, then the need for fsck is reduced. Finally, setting up volume management is critical to the enterprise, since the logical sizes of disks can be extended, and/or redundancy can be implemented. All of these topics are examined in this chapter.
Key Concepts
The following concepts are required knowledge for managing disks, file systems, and volumes.
Mounting Local File Systems
Solaris (UNIX File System, or UFS) file systems are mapped in a one-to-one relationship to physical slices, which makes it easy for you to associate file systems with partitions, even if the physical and logical device references are complex. For example, the slice /dev/dsk/c0t3d0s5 may be mounted on the mount point /export/home. Mount points are simply empty directories that have been created using the mkdir command. One of the nice features of the UFS is that it has a one-to-many mapping to potential mount points: this means that a file system can be mounted, and its files and directories can be manipulated, unmounted, and then remounted on a different mount point. All of the data that was modified when the file system was mounted using a different mount point are retained. For example, if you mount /dev/dsk/c0t3d0s5 on /export/home, create a directory called pwatters (that is, /export/home/pwatters), unmount
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Part IV:
Managing Devices
the file system, and then remount it on /usr/local, the content of the folder pwatters will still be available, albeit with a new absolute path (/usr/local/pwatters).
Unmounting Local File Systems
In normal operations, a file system is mounted at boot time if its mount point and options are specified in the virtual file systems table (/etc/vfstab). The file system is unmounted before the system is shut down. However, at times, you may find it necessary to unmount a file system manually. For example, if you need to check the file system s integrity by using the fsck command, you must unmount the target file system. Alternatively, if you are going to modify the mount point of a file system, you need to unmount the file system from its current mount point and remount it on the new mount point. You cannot mount a file system on two different mount points.
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