Silberschatz and Galvin  1999 10.1 Operating System Concepts Module 10: File-System Interface File Concept Access :Methods Directory Structure Protection.

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Presentation transcript:

Silberschatz and Galvin  Operating System Concepts Module 10: File-System Interface File Concept Access :Methods Directory Structure Protection Consistency Semantics

Silberschatz and Galvin  Operating System Concepts File Concept Contiguous logical address space Types: –Data  numeric  character  binary –Program

Silberschatz and Galvin  Operating System Concepts File Structure None - sequence of words, bytes Simple record structure –Lines –Fixed length –Variable length Complex Structures –Formatted document –Relocatable load file Can simulate last two with first method by inserting appropriate control characters. Who decides: –Operating system –Program

Silberschatz and Galvin  Operating System Concepts File Attributes Name – only information kept in human-readable form. Type – needed for systems that support different types. Location – pointer to file location on device. Size – current file size. Protection – controls who can do reading, writing, executing. Time, date, and user identification – data for protection, security, and usage monitoring. Information about files are kept in the directory structure, which is maintained on the disk.

Silberschatz and Galvin  Operating System Concepts File Operations create write read reposition within file – file seek delete truncate open(F i ) – search the directory structure on disk for entry F i, and move the content of entry to memory. close (F i ) – move the content of entry F i in memory to directory structure on disk.

Silberschatz and Galvin  Operating System Concepts File Types – name, extension

Silberschatz and Galvin  Operating System Concepts Access Methods Sequential Access read next write next reset no read after last write (rewrite) Direct Access read n write n position to n read next write next rewrite n n = relative block number

Silberschatz and Galvin  Operating System Concepts Directory Structure A collection of nodes containing information about all files. F 1 F 2 F 3 F 4 F n Directory Files Both the directory structure and the files reside on disk. Backups of these two structures are kept on tapes.

Silberschatz and Galvin  Operating System Concepts Information in a Device Directory Name Type Address Current length Maximum length Date last accessed (for archival) Date last updated (for dump) Owner ID (who pays) Protection information (discuss later)

Silberschatz and Galvin  Operating System Concepts Operations Performed on Directory Search for a file Create a file Delete a file List a directory Rename a file Traverse the file system

Silberschatz and Galvin  Operating System Concepts Organize the Directory (Logically) to Obtain Efficiency – locating a file quickly. Naming – convenient to users. –Two users can have same name for different files. –The same file can have several different names. Grouping – logical grouping of files by properties, (e.g., all Pascal programs, all games, …)

Silberschatz and Galvin  Operating System Concepts Single-Level Directory A single directory for all users. Naming problem Grouping problem

Silberschatz and Galvin  Operating System Concepts Two-Level Directory Separate directory for each user. Path name Can have the saem file name for different user Efficient searching No grouping capability

Silberschatz and Galvin  Operating System Concepts Tree-Structured Directories

Silberschatz and Galvin  Operating System Concepts Tree-Structured Directories (Cont.) Efficient searching Grouping Capability Current directory (working directory) –cd /spell/mail/prog –type list

Silberschatz and Galvin  Operating System Concepts Tree-Structured Directories (Cont.) Absolute or relative path name Creating a new file is done in current directory. Delete a file rm Creating a new subdirectory is done in current directory. mkdir Example: if in current directory /spell/mail mkdir count mail progcopyprtexpcount Deleting “mail”  deleting the entire subtree rooted by “mail”.

Silberschatz and Galvin  Operating System Concepts Acyclic-Graph Directories Have shared subdirectories and files.

Silberschatz and Galvin  Operating System Concepts Acyclic-Graph Directories (Cont.) Two different names (aliasing) If dict deletes list  dangling pointer. Solutions: –Backpointers, so we can delete all pointers. Variable size records a problem. –Backpointers using a daisy chain organization. –Entry-hold-count solution.

Silberschatz and Galvin  Operating System Concepts General Graph Directory

Silberschatz and Galvin  Operating System Concepts General Graph Directory (Cont.) How do we guarantee no cycles? –Allow only links to file not subdirectories. –Garbage collection. –Every time a new link is added use a cycle detection algorithm to determine whether it is OK.

Silberschatz and Galvin  Operating System Concepts Protection File owner/creator should be able to control: –what can be done –by whom Types of access –Read –Write –Execute –Append –Delete –List

Silberschatz and Galvin  Operating System Concepts Access Lists and Groups Mode of access: read, write, execute Three classes of users RWX a) owner access 7  RWX b) groups access 6  RWX c) public access1  Ask manager to create a group (unique name), say G, and add some users to the group. For a particular file (say game) or subdirectory, define an appropriate access. ownergrouppublic chmod761game Attach a group to a file chgrp G game