US20040160799A1 - Write-once optical disc, and method and apparatus for allocating spare area on write-once optical disc - Google Patents

Write-once optical disc, and method and apparatus for allocating spare area on write-once optical disc Download PDF

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Publication number
US20040160799A1
US20040160799A1 US10/670,462 US67046203A US2004160799A1 US 20040160799 A1 US20040160799 A1 US 20040160799A1 US 67046203 A US67046203 A US 67046203A US 2004160799 A1 US2004160799 A1 US 2004160799A1
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area
size
recording medium
spare area
spare
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Abandoned
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US10/670,462
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English (en)
Inventor
Yong Park
Sung Kim
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LG Electronics Inc
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LG Electronics Inc
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Assigned to LG ELECTRONICS INC. reassignment LG ELECTRONICS INC. ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: KIM, SUNG DAE, PARK, YONG CHEOL
Publication of US20040160799A1 publication Critical patent/US20040160799A1/en
Priority to US12/242,699 priority Critical patent/US7764581B2/en
Abandoned legal-status Critical Current

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    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/007Arrangement of the information on the record carrier, e.g. form of tracks, actual track shape, e.g. wobbled, or cross-section, e.g. v-shaped; Sequential information structures, e.g. sectoring or header formats within a track
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B20/00Signal processing not specific to the method of recording or reproducing; Circuits therefor
    • G11B20/10Digital recording or reproducing
    • G11B20/18Error detection or correction; Testing, e.g. of drop-outs
    • G11B20/1883Methods for assignment of alternate areas for defective areas
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B20/00Signal processing not specific to the method of recording or reproducing; Circuits therefor
    • G11B20/10Digital recording or reproducing
    • G11B20/18Error detection or correction; Testing, e.g. of drop-outs
    • G11B2020/1873Temporary defect structures for write-once discs, e.g. TDDS, TDMA or TDFL
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B2220/00Record carriers by type
    • G11B2220/20Disc-shaped record carriers

Definitions

  • the present invention relates to a write-once optical disc, and more particularly, to an apparatus and method for allocating a spare area on a write-once optical disc such as a write-once blu-ray disc.
  • BD-RE Blu-ray Disc Rewritable
  • FIG. 1 is a block diagram of a general optical disc device for writing/reproducing data to/from an optical disc such as a BD-RE.
  • the optical disc device includes an optical pickup 11 for recording/reproducing a signal to/from a BD-RE 10 , a video disc recorder (VDR) system 12 for processing a signal from the optical pickup 11 as a reproduced signal, or demodulating and processing an external data stream into a writable signal suitable for writing onto the BD-RE 10 , and an encoder 13 for encoding an external analog signal and providing the encoded signal to the VDR system 12 .
  • VDR video disc recorder
  • FIG. 2 shows a structure of a general BD-RE.
  • an LIA (lead-in area), a data area and an LOA (lead-out area) are allocated on the BD-RE.
  • An ISA inner spare area
  • an OSA (outer spare area) are allocated separately to a front and a rear end of the data area.
  • a user data area having an LSN (Logical Sector Number) is allocated between the ISA and the OSA of the data area.
  • LSN Logical Sector Number
  • the VDR system 12 writes input data from an external source in a cluster unit corresponding ECC block having a predetermined recording capacity after encoding and converting the input data into a recording signal.
  • the VDR system 12 also detects a defective area within the data area when recording the data.
  • the VDR system 12 When a defective area is detected, the VDR system 12 performs a replacement writing operation to write the cluster data from the defective area onto the ISA instead. After the data writing is finished, location information of the defective area and management information for reproducing the cluster data written on the spare area (replacement area) are written as a defect list onto the LIA.
  • FIGS. 3A and 3B illustrate a general structure of a BD-RE single layer and a BD-RE dual layer, respectively.
  • a BD-RE may have a single recording layer (FIG. 3A) or two recording layers (FIG. 3B).
  • the recording capacity of the data area of the BD-RE single layer is 355603 clusters.
  • the size of the inner and outer spare areas corresponds to 5.5% of the size of the user data area of the BD-RE single layer.
  • the recording capacity of the inner spare area (ISA 0 ) of a first layer (Layer 0 ) is 2048 clusters.
  • the total recording capacity of the spare areas of the first and second layers is calculated to be 5.1% of the total recording capacity of the user data areas of the first and second layers.
  • a Blu-ray Disc Write-Once is another type of high density optical disc that is being developed where a high quality of data can be recorded and reproduced to and from the disc.
  • data can be written only once on the BD-WO and is not rewritable on the BD-WO. But the BD-WO can be read repeatedly. As a result, the BD-WO is useful where the rewritability of data on a recording medium is not desired.
  • the present invention is directed to an apparatus and method for allocating a spare area of a write-once optical disc that substantially obviate one or more problems due to limitations and disadvantages of a related art.
  • An object of the present invention is to provide a write-once optical disc and a method and apparatus for optimally allocating the spare area on the write-once optical disc in consideration of the characteristics of the optical disc.
  • a method for allocating a spare area on a recording medium of write-once type includes allocating a data area on the recording medium; and allocating a user data area and at least one spare area within the data area on the recording medium, the at least one spare area having a variable size, wherein a maximum recording capacity of the at least one spare area on the recording medium is less than a maximum recording capacity of at least one variable spare area on a rewritable type optical disc.
  • a method for allocating a spare area on a recording medium of write-once type, the recording medium including at least one recording layer includes allocating a data area on the at least one recording layer of the recording medium; and allocating a user data area and at least one spare area within the data area on the recording medium, the at least one spare area having at least one replacement area, the at least one replacement area having a variable size and constituting a part of the at least one spare area or the entire at least one spare area, wherein a maximum ratio of a size of the at least one replacement area to a size of the user data area is less than about 5%.
  • an apparatus for allocating a spare area on a recording medium of write-once type includes a combination of elements for allocating a data area on the recording medium and for allocating a user data area and at least one spare area within the data area on the recording medium, the at least one spare area having a variable size, wherein a maximum recording capacity of the at least one spare area on the recording medium is less than a maximum recording capacity of at least one variable spare area on a rewritable type optical disc.
  • an apparatus for allocating a spare area on a recording medium of write-once type includes a combination of elements for allocating a data area on the at least one recording layer of the recording medium and for allocating a user data area and at least one spare area within the data area on the recording medium, the at least one spare area having at least one replacement area, the at least one replacement area having a variable size and constituting a part of the at least one spare area or the entire at least one spare area, wherein a maximum ratio of a size of the at least one replacement area to a size of the user data area is less than about 5%.
  • a recording medium of write-once type includes a data area allocated on the recording medium, the data area including a user data area and at least one spare area, the at least one spare area having a variable size, wherein a maximum recording capacity of the at least one spare area on the recording medium is less than a maximum recording capacity of at least one variable spare area on a rewritable type optical disc.
  • a recording medium of write-once type includes at least one recording layer; and a data area allocated on the at least one recording layer, the data area including a user data area and at least one spare area, the at least one spare area having at least one replacement area, the at least one replacement area having a variable size and constituting a part of the at least one spare area or the entire at least one spare area, wherein a maximum ratio of a size of the at least one replacement area to a size of the user data area is less than about 5%.
  • FIG. 1 illustrates a general optical disc device schematically
  • FIG. 2 illustrates a structure of a general BD-RE
  • FIGS. 3A and 3B illustrate a structure of a BD-RE single layer and a general BD-RE dual layer, respectively;
  • FIG. 4 illustrates a structure of a BD-WO single layer and a method of allocating a spare area on the BD-WO single layer according to a first preferred embodiment of the present invention
  • FIG. 5 illustrates a structure of a BD-WO dual layer and a method of allocating a spare area on the BD-WO dual layer according to the first preferred embodiment of the present invention
  • FIG. 6 illustrates a structure of a BD-WO single layer and a method of allocating a spare area on the BD-WO single layer according to a second preferred embodiment of the present invention
  • FIG. 7 illustrates a structure of a BD-WO dual layer and a method of allocating a spare area on the BD-WO dual layer according to the second preferred embodiment of the present invention.
  • FIG. 8 is a block diagram of an optical disc recording/reproducing device according to an embodiment of the present invention.
  • the embodiments of the method of allocating a spare area on a write-once type optical disc such as BD-WO are explained in details according to the present invention in reference with drawings.
  • the present method can be applied in the process of manufacturing a write-once BD-WO single layer and a write-once BD-WO dual layer.
  • the maximum size of the spare area can be allocated which is smaller than the maximum size of the spare areas allocated to a BD-RE.
  • the recording capacity of the spare area(s)/replacement area(s) of a BD-WO is kept at less than about 5% of the recording capacity of the user data area.
  • the recording size of an area means the size of the area.
  • FIG. 4 illustrates a structure of a BD-WO single layer and a method of allocating a spare area thereon according to a first embodiment of the present invention.
  • the BD-WO single layer includes a single recording layer allocated with an LIA, a data area and an LOA.
  • the data area includes a user data area having a logical sector number (LSN), and an inner spare area and/or an outer spare area for writing data of defective areas (i.e., as a replacement area).
  • the recording capacity of the data area of the BD-WO single layer is allocated to have 355603 clusters.
  • the recording capacity of the user data area is obtained by subtracting the recording capacity of the spare areas (ISA and OSA) from the recording capacity of the data area.
  • the recording capacity of the inner and outer spare areas allocated to the BD-WO single layer is adjusted to be about 3% of the recording capacity of the user data area by varying the maximum recording capacity of the outer spare area, the spare areas of the BD-WO are prevented from being wasted and are efficiently allocated.
  • FIG. 5 illustrates a structure of a BD-WO dual layer and a method of allocating a spare area thereon according to the first embodiment of the present invention.
  • the BD-WO dual layer includes a first recording layer (Layer 0 ) and a second recording layer (Layer 1 ).
  • the first recording layer (Layer 0 ) includes a LIA, a data area 32 a , and an outer zone area (Outer Zone 0 ).
  • the data area 32 a includes an inner spare area (ISA 0 ), a user data area 33 a , and an outer spare area (OSA 0 ).
  • the second recording layer (Layer 1 ) includes a LOA, a data area 32 b , and an outer zone area (Outer Zone 1 ).
  • the data area 32 b of the second layer includes an inner spare area (ISA 1 ), a user data area 33 b , and an outer spare area (OSA 1 ).
  • a data writing operation occurs generally in the direction shown with the dotted arrow A.
  • the inner spare area (ISA 0 ) on the first layer has a predermined fixed size, e.g., 2048 clusters.
  • the total recording capacity of the first and second inner and outer spare areas allocated to the BD-WO dual layer becomes about 3% of the total recording capacity of the user data areas by adjusting the maximum recording capacity of the first and second outer spare areas (OSA 0 , OSA 1 ) and the maximum recording capacity of the second inner spare area (ISA 1 ). Therefore, the spare areas are prevented from being wasted and are efficiently allocated in accordance with the data recording characteristics of the BD-WO.
  • the entire spare areas are used as replacement areas for storing data of defective areas according to a linear replacement scheme. For instance, if a cluster area of a user data area is found to be defective, then the data stored in that defective cluster area is also written onto a spare area functioning as a replacement area for the defective cluster area.
  • FIG. 6 shows a structure a BD-WO single layer and a method for assigning a spare area on the BD-WO single layer according to a second embodiment of the present invention.
  • the BD-WO single layer shown in FIG. 6 includes a lead-in area, a data area, and a lead-out area.
  • the data area has a fixed size, e.g., 355603 clusters.
  • the lead-in area includes first and second defect management areas DMA 1 and DMA 2 , and a temporary defect management area TDMA.
  • TDMA is an area to temporarily record and manage defect management information of the BD-WO until the BD-WO is finalized. For instance, if during a writing operation of the user data area, if data in a defective cluster area of the user data area is written onto a part (replacement area) of a spare area according to a linear replacement scheme, then information (e.g., location information, size, etc.) of the defective cluster area and the corresponding replacement area within the spare area is temporarily stored in the TDMA as TDMA information.
  • information e.g., location information, size, etc.
  • the TDMA information stored in the TDMA is transferred to one or each of the DMAs allocated on the BD-WO.
  • the TDMA provided in the lead-in area has a fixed size, for example, 2048 clusters.
  • the data area includes an inner spare area ISA, a user data area 34 , and an outer spare area OSA.
  • the entire inner spare area ISA is used as an area for linear replacement (i.e., as a replacement area).
  • an area for temporary defect management is not allocated to the inner spare area ISA.
  • the ISA has a fixed size (e.g., 2048 clusters) and the OSA has a variable size.
  • the outer spare area OSA includes an interim defect management area (IDMA) and a replacement area 40 for linear replacement.
  • IDMA interim defect management area
  • the IDMA is allocated adjacent to the replacement area 40 .
  • the size of the IDMA is allocated variably depending on the size of the outer spare area OSA. Since the outer spare area OSA has a variable size, the IDMA also has a variable size.
  • the IDMA is distinguished from the TDMA having a fixed size in the lead-in area in that it has a variable size and may differ from the TDMA depending on a usage manner in recorded timing.
  • the TDMA and the IDMA can store the same contents despite the difference between the terms. This will be described later.
  • the IDMA having a variable size is allocated within the outer spare area OSA depending on whether or not the outer spare area OSA is allocated. For instance, if the outer spare area OSA is allocated, then the IDMA is allocated therein as discussed herein. But if the outer spare area OSA is not allocated, then the IDMA may not be allocated and only the TDMA having a fixed size may be allocated as discussed herein. In another variation, the outer spare area OSA may be allocated without the allocation of the IDMA therein. However, if the outer spare area OSA is allocated, it is preferable to allocate the IDMA therein.
  • the size of the IDMA positioned at the outer track of the disc depends on the variable size of the outer spare area OSA.
  • the size of the outer spare area OSA is N ⁇ 256 clusters (0 ⁇ N ⁇ 64).
  • the size of the IDMA may be varied depending on the size of the outer spare area OSA considering that when the replacement area for linear replacement is allocated in the OSA, the size of the replacement area, the size of the DMA, and the size of the spare area(s) depend on one another.
  • the size of the disk inner track area (especially the size of the TDMA positioned in the lead-in area) has a fixed value.
  • FIG. 7 illustrates a structure of a BD-WO dual layer and a method of allocating a spare area on the BD-WO dual layer according to the second embodiment of the present invention.
  • the BD-WO dual layer includes a first layer (Layer 0 ) and a second layer (Layer 1 ).
  • the first layer (Layer 0 ) includes a lead-in area, a data area 35 a and an outer zone area Outer Zone 0 .
  • the second layer (Layer 1 ) includes a lead-out area, a data area 35 b and an outer zone area Outer Zone 1 .
  • a TDMA of the present invention is provided as first and second TDMAs 37 a and 37 b , and a plurality of DMAs are provided. A plurality of DMAs are also provided in each of the Outer Zones 0 and 1 .
  • Each TDMA provided in the lead-in area and the lead-out area has a fixed size, for example, 2048 clusters.
  • the first data area 35 a of the first layer (Layer 0 ) includes an inner spare area ISA 0 , a user data area 36 a , and an outer spare area OSA 0 .
  • the inner spare area ISA 0 has a fixed size (e.g., 2048 clusters) and the outer spare area OSA 0 has a variable size.
  • the entire ISA 0 is used as a replacement area for linear replacement.
  • the OSA 0 includes a replacement area 38 d for linear replacement and a first IDMA 38 a for storing therein IDMA information for defect management. That is, an area for temporary defect management is not allocated to the inner spare area ISA 0 of the first layer (Layer 0 ).
  • the second data area 35 b of the second layer includes an inner spare area ISA 1 , a user data area 36 b , and an outer spare area OSA 1 .
  • Each of the inner and outer spare areas ISA 1 and OSA 1 has a variable size.
  • Each of the inner and outer spare areas ISA 1 and OSA 1 includes a replacement area 38 f or 38 g for linear replacement and an IDMA 38 b or 38 c for storing therein IDMA information for defect management.
  • the IDMAs 38 a - 38 c are each allocated to a portion adjacent to the corresponding replacement area for linear replacement.
  • the size of the IDMAs is allocated depending on the size of the spare areas ISA 1 , OSA 0 and OSA 1 where the spare areas ISA 1 , OSA 0 and OSA 1 have a variable size.
  • the IDMAs 38 a - 38 c are allocated within the spare areas depending on whether or not the corresponding spare areas area allocated. For instance, if a spare area is allocated to the BD-WO, then the corresponding IDMA may be allocated therein. But if a spare area is not allocated, then the corresponding IDMA may not be allocated therein and only the TDMA(s) having a fixed size may be allocated.
  • the BD-WO has been allocated with the ISA 0 and not with the ISA 1 , the OSA 0 and/or the OSA 1 , then only the first TDMA 37 a may be allocated and the second TDMA 37 b and the IDMAs 38 a - 38 c may not be allocated to the BD-WO.
  • the ISA 0 and ISA 1 (and not the OSA 0 and OSA 1 ) are allocated to the BD-WO, then the TDMAs 37 a and 37 b and the IDMA 38 b (not the IDMAs 38 a and 38 c ) may be allocated.
  • the IDMA may not be allocated within the corresponding spare area even if the corresponding spare area is allocated to the BD-WO. For instance, even if the ISA 0 , OSA 0 and OSA 1 are allocated to the BD-WO, the corresponding IDMAs 38 a and 38 c may not be allocated therein. It should be noted that one or more of the ISA 0 , the OSA 0 (with or without the IDMA 38 a ), the OSA 1 (with or without the IDMA 38 c ), and the ISA 1 (with or without the IDMA 38 b ) may be allocated to the BD-WO with one or more of the TDMAs.
  • the size of the IDMAs may depend on the size of the spare areas ISA 1 , OSA 0 and OSA 1 .
  • the size of each of the outer spare areas OSA 0 and OSA 1 is allocated to be N ⁇ 256 clusters (0 ⁇ N ⁇ 32), and the size of the inner spare area ISA 1 is allocated to be L ⁇ 256 clusters (0 ⁇ L ⁇ 64).
  • a method wherein the size of the IDMA having a variable size is allocated to be a quarter of the size of the corresponding outer/inner spare area can be used.
  • the size of the IDMAs 38 a and 38 c in total is 4096 clusters.
  • the size of the IDMA 38 b is allocated to be 4096 clusters.
  • the total maximum size of the data areas ( 35 a and 35 b ) of the BD-WO dual layer is 711206 clusters
  • the total maximum size of the spare areas (ISA 0 , ISA 1 , OSA 0 and OSA 1 ) of the BD-WO dual layer is 34816 clusters
  • the total maximum size of the IDMAs ( 38 a - 38 c ) is 8192 clusters
  • the total maximum size of the replacement areas (ISA 0 , 38 d , 38 f and 38 g ) within the spare areas is 26624 clusters
  • the total size of the user data areas ( 36 a and 36 b ) is 676390 clusters.
  • the total capacity (size) of the replacement areas (ISA 0 , 38 d , 38 f and 38 g ) in the spare areas of the BD-WO dual layer corresponds to about 4% of the total recording capacity of the user data areas of the BD-WO dual layer.
  • the size of the IDMAs may vary depending on the size of the spare areas ISA 1 , OSA 0 and OSA 1 considering that when a replacement area for linear replacement is allocated in the corresponding spare area, the size of the replacement area, the size of the IDMA(s) and the size of the spare area depend on one another.
  • the size of the inner track area (especially the TDMA positioned at each of the lead-in area and the lead-out area) has a fixed value.
  • the arrows depicted in each of the areas shown in FIGS. 6 and 7 are examples of a data recording direction.
  • the data written or to be written to the defective area is written to a replacement area of a spare area according to the linear replacement.
  • Information pertaining to the defective area and the replacement area and any other information is written onto the TDMA(s) and IDMA(s) allocated on specific areas of the disc. The same defect management information may be written to each of the TDMA(s) and IDMA(s).
  • the IDMA(s) of the same or different layer may be used, or if an IDMA of a layer is full, then the IDMA(s) of the same or different layer or the TDMA(s) of the same or different layer may be used.
  • the entire ISA in the BD-WO single layer, the entire ISA may be used as the area for linear replacement, whereas a portion of the OSA may be used as the IDMA and the remaining portion (or another portion) of the OSA may be used as the area for linear replacement.
  • the entire ISA 0 may be used as the area for linear replacement, whereas portions of the ISA 1 , OSA 0 and OSA 1 may be used as the IDMA(s) and the remaining portions (or other portions) of the ISA 1 , OSA 0 and OSA 1 may be used as the area for linear replacement.
  • FIG. 8 is an example of a block diagram of an optical disc recording/reproducing device 20 according to an embodiment of the present invention.
  • the optical disc recording/reproducing device 20 includes an optical pickup 22 for writing/reading data to/from an optical recording medium 21 , a servo unit 23 for controlling the pickup 22 to maintain a distance between an objective lens of the pickup 22 and the recording medium 21 and for tracking relevant tracks on the recording medium 21 , a data processor 24 for processing and supplying input data to the pickup 22 for writing, and for processing data read from the recording medium 21 , an interface 25 for exchanging data and/or commands with any external host 30 , a memory or storage 27 for storing information and data therein including defect management data (e.g., TDMA information, IDMA information, DMA information, etc.) associated with the recording medium 21 , and a microprocessor or controller 26 for controlling the operations and elements of the recording/reproducing device 20 .
  • Data to be written/read to/from the recording medium 21 may also be stored in the memory 27 . All the components of
  • the methods of allocating spare areas, IDMA(s) and TDMA(s) on the BD-WO can be implemented by the recording/reproducing device 20 of FIG. 8 or any other suitable device/system.
  • the microcomputer 26 can control allocating the size of the spare area(s), the IDMA(s), TDMA(s), etc. according to the above discussed embodiments. It can control varying the size of the spare area(s) as replacement writing operations are performed. It can control the process of writing replacement data to replacement areas of the spare areas in a replacement writing operation, and the process of writing defect management information to the IDMA(s), TDMA(s), and DMA(s).
  • the process of allocating the spare area(s), IDMA(s), TDMA(s), etc. may occur as needed while the disc is being manufactured, or during or prior to data writing and/or replacement writing operations using the recording/reproducing device 20 or some other suitable device/system.

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  • Signal Processing (AREA)
  • Optical Recording Or Reproduction (AREA)
  • Signal Processing For Digital Recording And Reproducing (AREA)
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US7663997B2 (en) 2003-05-09 2010-02-16 Lg Electronics, Inc. Write once optical disc, and method and apparatus for recovering disc management information from the write once optical disc
US7668054B2 (en) 2002-12-11 2010-02-23 Lg Electronics Inc. Method of managing overwrite and method of recording management information on an optical disc write once
US7672204B2 (en) 2003-01-27 2010-03-02 Lg Electronics Inc. Optical disc, method and apparatus for managing a defective area on an optical disc
US7672208B2 (en) 2003-08-05 2010-03-02 Lg Electronics Inc. Write-once optical disc, and method and apparatus for recording/playback management information on/from optical disc
US7684293B2 (en) 2003-05-09 2010-03-23 Lg Electronics Inc. Write once optical disc, and method and apparatus for recovering disc management information from the write once optical disc
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BR0318122A (pt) 2006-02-07
JP4541161B2 (ja) 2010-09-08
RU2005125958A (ru) 2006-06-27
AU2003265114A1 (en) 2004-09-06
CA2515164C (en) 2011-11-29
TWI296113B (en) 2008-04-21
US7764581B2 (en) 2010-07-27
TW200416689A (en) 2004-09-01
WO2004072963A1 (en) 2004-08-26
CN101252016B (zh) 2016-01-20
CN100383860C (zh) 2008-04-23
EP2110817A1 (en) 2009-10-21
CN1751339A (zh) 2006-03-22
KR20050095899A (ko) 2005-10-04
EP1595251B1 (en) 2009-09-16
ATE443321T1 (de) 2009-10-15
KR100964690B1 (ko) 2010-06-21
AU2003265114B2 (en) 2009-08-06
JP2006514388A (ja) 2006-04-27
EP1595251A1 (en) 2005-11-16
HUE030832T2 (en) 2017-06-28
DE60329334D1 (de) 2009-10-29
RU2334290C2 (ru) 2008-09-20
EP2110817B1 (en) 2016-07-13
US20090028015A1 (en) 2009-01-29
CA2515164A1 (en) 2004-08-26
CN101252016A (zh) 2008-08-27

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