Data storage device with write caching for maximizing disk access during laser diode steady state
US-12223983-B1 · Feb 11, 2025 · US
US2016118078A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2016118078-A1 |
| Application number | US-201514925906-A |
| Country | US |
| Kind code | A1 |
| Filing date | Oct 28, 2015 |
| Priority date | Oct 28, 2014 |
| Publication date | Apr 28, 2016 |
| Grant date | — |
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For storing digital data at a surface of a data carrier, it is proposed to use a block-wise transform pair between a spatial domain and a frequency domain to convert between information elements and recording elements at the surface of the data carrier. This enables that isolated strong data carrier defects affecting a single recording element in a block are converted to smaller amplitude errors on all information elements of a block. For non-continuous-valued information elements, these errors can be removed by quantization.
Opening claim text (preview).
1 . A method for storing digital information elements at a surface of a data carrier, the method comprising: arranging the information elements into blocks of information elements; transforming the blocks of information elements with an IDCT-like transform into continuous-valued recording elements; storing the continuous-valued recording elements at the surface of the data carrier. 2 . The method according to claim 1 , wherein transforming comprises scaling at least some of the information elements with a scaling factor whose value depends on the position of the information element within the block of information elements. 3 . The method according to claim 1 , used for storing payload elements, and additionally comprising: ECC coding, into blocks of information elements, the payload elements with an ECC code whose rate depends on a position of the information element within the block of information elements. 4 . The method according to claim 1 , where in the step of arranging, no information elements are arranged into a specific position within the block, so that the number of information elements arranged into a block is less than the number of positions of the block. 5 . A method for reading back digital recovered information elements from at a surface of a data carrier, the method comprising: reading, from at the surface of the data carrier, blocks of recovered continuous-valued recording elements; inverse transforming the blocks of recovered continuous-valued recording elements with a DCT-like transform into blocks of original domain elements; quantizing the blocks of original domain elements into the recovered information elements. 6 . The method according to claim 5 , wherein inverse transforming comprises scaling at least some of the original domain elements with a scaling factor whose value depends on a position of the original domain element within the block of original domain elements. 7 . The method according to claim 5 , additionally comprising ECC decoding, into recovered payload elements, the original domain elements according to an ECC code whose rate depends on a position of the original domain element within the block of original domain elements. 8 . A method according to claim 5 , where quantizing comprises recovering recovered information elements from all but specific ones of the positions within the block of original domain elements, so that from the block of original domain elements, a number of information elements is recovered that is less than the number of positions of the block. 9 . A storing apparatus for storing digital information elements at a surface of a data carrier, comprising a block formatter, a transformer, and a writer, wherein the block formatter is equipped and configured to receive information elements and to format them into blocks of information elements, the transformer is equipped and configured to receive blocks of information elements and to transform them into blocks of continuous-valued recording elements, and the writer is equipped and configured to receive blocks of continuous-valued recording elements, and to write them onto the data carrier at its surface. 10 . The apparatus according to claim 9 , where the transformer is equipped and configured to scale at least some of the information elements with a scaling factor whose value depends on the position of the information element within the block of information elements. 11 . The apparatus according to claim 9 , used for storing payload elements, and additionally comprising an ECC coder equipped and configured to ECC code, into blocks of information elements, the payload elements with an ECC code whose rate depends on a position of the information element within the block of information elements. 12 . The apparatus according to claim 9 , wherein the block formatter is equipped and configured to arrange information elements onto all but specific ones of the positions within the blocks of information elements, so that the number of information elements arranged into a block is less than the number of positions of the block. 13 . A reading back apparatus for reading back digital recovered information elements from at a surface of a data carrier comprising a reader, an inverse transformer, and a block unformatter, wherein the reader is equipped and configured to read out from at a surface of the data carrier recovered continuous-valued recording elements, the inverse transformer is equipped and configured to receive blocks of recovered continuous-valued recording elements and to inverse transform them into blocks of original domain elements, and the block unformatter is equipped and configured to receive blocks of original domain elements, and to quantize and unblock them into recovered information elements. 14 . The apparatus according to claim 13 , wherein the inverse transformer is equipped and configured to scale at least some of the original domain elements with a scaling factor whose value depends on a position of the original domain element within the block of original domain elements. 15 . The apparatus according to claim 13 , used for reading back payload elements, and additionally comprising an ECC decoder equipped and configured to ECC decode into recovered payload elements, the original domain elements according to an ECC code whose rate depends on a position of the original domain element within the block of original domain elements. 16 . The apparatus according to claim 13 , wherein the block unformatter is equipped and configured to recover recovered information elements from all but specific ones of the positions within a block of original domain elements, so that from the block of original domain elements, a number of information elements is recovered that is less than the number of positions of the block.
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