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  2. Standard RAID levels - Wikipedia

    en.wikipedia.org/wiki/Standard_RAID_levels

    RAID 0 (also known as a stripe set or striped volume) splits ("stripes") data evenly across two or more disks, without parity information, redundancy, or fault tolerance. Since RAID 0 provides no fault tolerance or redundancy, the failure of one drive will cause the entire array to fail, due to data being striped across all disks.

  3. Nested RAID levels - Wikipedia

    en.wikipedia.org/wiki/Nested_RAID_levels

    RAID 50 improves upon the performance of RAID 5 particularly during writes, and provides better fault tolerance than a single RAID level does. This level is recommended for applications that require high fault tolerance, capacity and random access performance.

  4. Fault tolerance - Wikipedia

    en.wikipedia.org/wiki/Fault_tolerance

    All implementations of RAID, redundant array of independent disks, except RAID 0, are examples of a fault-tolerant storage device that uses data redundancy. A lockstep fault-tolerant machine uses replicated elements operating in parallel. At any time, all the replications of each element should be in the same state.

  5. RAID - Wikipedia

    en.wikipedia.org/wiki/RAID

    This makes RAID 0 a poor choice for scenarios requiring data reliability or fault tolerance. RAID 1 consists of data mirroring, without parity or striping. Data is written identically to two or more drives, thereby producing a "mirrored set" of drives.

  6. Disk array controller - Wikipedia

    en.wikipedia.org/wiki/Disk_array_controller

    Those RAID systems made their way to the consumer market, for users wanting the fault-tolerance of RAID without investing in expensive SCSI drives. Fast consumer drives make it possible to build RAID systems at lower cost than with SCSI, but most ATA RAID controllers lack a dedicated buffer or high-performance XOR hardware for parity calculation.

  7. Parity drive - Wikipedia

    en.wikipedia.org/wiki/Parity_Drive

    A parity drive is a hard drive used in a RAID array to provide fault tolerance. For example, RAID 3 uses a parity drive to create a system that is both fault tolerant and, because of data striping, fast. [1] Basically, a single data bit is added to the end of a data block to ensure the number of bits in the message is either odd or even. [2]

  8. Hot spare - Wikipedia

    en.wikipedia.org/wiki/Hot_spare

    The hot spare disk reduces the mean time to recovery (MTTR) for the RAID redundancy group, thus reducing the probability of a second disk failure and the resultant data loss that would occur in any singly redundant RAID (e.g., RAID-1, RAID-5, RAID-10). Typically, a hot spare is available to replace a number of different disks and systems ...

  9. RAID levels - Wikipedia

    en.wikipedia.org/wiki/RAID_level

    RAID stands for redundant array of independent disks (or, formerly, redundant array of inexpensive disks). RAID levels may refer to: Standard RAID levels, all the RAID configurations defined in the Common RAID Disk Drive Format standard, which is maintained by the Storage Networking Industry Association

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