Title :
Design issues for a shingled write disk system
Author :
Amer, Ahmed ; Long, Darrell D E ; Miller, Ethan L. ; Pâris, Jehan-François ; Schwarz, S. J Thomas
Author_Institution :
Santa Clara Univ., Santa Clara, CA, USA
Abstract :
If the data density of magnetic disks is to continue its current 30-50% annual growth, new recording techniques are required. Among the actively considered options, shingled writing is currently the most attractive one because it is the easiest to implement at the device level. Shingled write recording trades the inconvenience of the inability to update in-place for a much higher data density by a using a different write technique that overlaps the currently written track with the previous track. Random reads are still possible on such devices, but writes must be done largely sequentially. In this paper, we discuss possible changes to disk-based data structures that the adoption of shingled writing will require. We first explore disk structures that are optimized for large sequential writes with little or no sequential writing, even of metadata structures, while providing acceptable read performance. We also examine the usefulness of non-volatile RAM and the benefits of object-based interfaces in the context of shingled disks. Finally, through the analysis of recent device traces, we demonstrate the surprising stability of written device blocks, with general purpose workloads showing that more than 93% of device blocks remain unchanged over a day, and that for more specialized workloads less than 0.5% of a shingled-write disk´s capacity would be needed to hold randomly updated blocks.
Keywords :
data structures; magnetic disc storage; magnetic recording; meta data; random-access storage; write-once storage; disk based data structures; magnetic disks; metadata structures; nonvolatile RAM; object based interfaces; recording techniques; shingled write disk system; stability; Data structures; Disk drives; Disk recording; Magnetic fields; Magnetic heads; Magnetic recording; Nonvolatile memory; Random access memory; Stability analysis; Writing;
Conference_Titel :
Mass Storage Systems and Technologies (MSST), 2010 IEEE 26th Symposium on
Conference_Location :
Incline Village, NV
Print_ISBN :
978-1-4244-7152-2
Electronic_ISBN :
978-1-4244-7153-9
DOI :
10.1109/MSST.2010.5496991