Information recording medium, recording apparatus, reproduction apparatus, recording method, and reproduction method
Abstract
An information recording medium is provided, which comprises a plurality of recording layers and a first disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The first disc information area is provided in a first recording layer which is one of the plurality of recording layers.

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Projected expiry passed 20 January 2023, 3.7 years ago.
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8 claims: 2 independent, 6 dependent
- 1An information recording medium comprising:a plurality of recording layers, each of the plurality of recording layers includes: a first area including a disc information area having disc information stored thereon and a second area including a data area;a first track pitch in the first area that is different from a second track pitch in the second area;anda transition area of track pitches provided between a first track in the first area and a second track in the second area,wherein each first area of the plurality of recording layers is provided at an about the same radial position,each second area of the plurality of recording layers is provided at an about the same radial position.
- 5An optical information recording medium (100) comprising:a layer (104), anda disc information (111) area having an area for storing disc related information,wherein the disc information area (111) is provided in the recording layer (104),the disc information area is a reproduction-ony area, characterized in that a dummy data (1100) is recorded in a remaining area of the disc information area, and that the length of the area for storing the dummy data (1100) is an integer multiple of the length of the area for storing the disc information.
Independent claims2
148 paragraphs in 6 sections, as filed
TECHNICAL FIELD
The present invention relates to an information recording medium comprising at least two recording layers, a method and apparatus for recording information onto this medium, and a method and apparatus for reproducing information from this medium.
BACKGROUND ART
In recent years, various information recording media capable of recording/reproducing a large volume of information have been developed. Among them are optical discs. One of large-capacity optical discs is a double-sided optical disc comprising two optical discs attached together, on each of which information can be recorded/reproduced. However, there is a demand for a high-capacity, but single-sided and random access disc which is unnecessary to be turned upside down, for some applications, such as computers, games, and the like, in which random accesses are frequently required.
To meet such a demand (high-capacity, random access, and single-sided), it is conceivable that a single optical disc comprises at least two recording layers (such an optical disc may be referred to be a multi-layer optical disc), where information can be recorded/reproduced on a single side thereof. <figref idref="f0010">Figure <b>7</b></figref> shows a configuration of an optical disc <b>700</b> comprising two recording layers on one side thereof.
The optical disc <b>700</b> comprises a first recording layer <b>704,</b> a first substrate <b>705,</b> an adhesive resin <b>703,</b> a second substrate <b>701,</b> and a second recording layer <b>702.</b> Each substrate is provided with a clamp hole <b>706.</b> The second recording layer <b>702</b> comprises a disc information area <b>707</b> andadataarea <b>710.</b> The first recording layer <b>704</b> comprises a disc information area <b>711</b> and a data area <b>714.</b>
The first substrate <b>705</b> and the second substrate <b>701</b> are made of polycarbonate resin or the like and are used to protect the first recording layer <b>704</b> and the second recording layer <b>702,</b> respectively. The disc information area <b>707</b> is a reproduction-only area in which information, such as the power of laser light to irradiate the second recording layer <b>702</b> and the like. The disc information area <b>711</b> is also a reproduction-only area in which information, such as the power of laser light to irradiate the first recording layer <b>704</b>, and the like.
In the optical disc <b>700,</b> for example, reproduction is first performed on the first recording layer <b>704,</b> immediately followed by reproduction on the second recording layer <b>702.</b> In this case, reproduction operations are performed in the following order: information indicating the power of laser light for irradiating the first recording layer <b>704</b> is reproduced from the disc information area <b>711;</b> reproduction is performed on the data area <b>714</b>; information indicating the power of laser light for irradiating the second recording layer <b>702</b> is reproduced from the disc information area <b>707;</b> and reproduction is performed on the data area <b>710</b>. Alternatively, reproduction operations are performed on the disc information area <b>711,</b> the disc information area <b>707,</b> the data area <b>714</b>, and the data area <b>710</b> in this order. Thus, in the optical disc <b>700,</b> information has to be reproduced from two disc information areas. Therefore, it takes a long time to reproduce information of the parameters and formats of the optical disc <b>700,</b> such as the power of laser light and the like.
DISCLOSURE OF THE INVENTION
According to an aspect of the present invention, an information recording medium comprises a plurality of recording layers, and a first disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The first disc information area is provided in a first recording layer which is one of the plurality of recording layers.
In one embodiment of this invention, an address is assigned to the first recording layer. The parameters include first irradiation power information indicating a value of a power of laser light which is used to irradiate the first recording layer, and second irradiation power information indicating a value of power of laser light which is used to irradiate another recording layer of the plurality of recording layers. An address assigned to an area in the first disc information area in which the first irradiation power information is stored is smaller than an address assigned to an area in the first disc information area in which the second irradiation power information is stored.
In one embodiment of this invention, the information recording medium further comprises a second disc information area for storing the same information as that of the first disc information area. The second disc information area is provided in a second recording layer which is another one of the plurality of recording layers.
In one embodiment of this invention, the first recording layer is one of the plurality of recording layers which is previously determined as a reference layer.
In one embodiment of this invention, the plurality of recording layers are recording layers capable of recording information. The information recording medium further comprises a plurality of adjustment areas for adjusting recording power of laser light. Each of the plurality of recording layers comprises a corresponding one of the plurality of adjustment areas.
In one embodiment of this invention, the second recording layer which is one of the plurality of recording layers comprises a buffer area. The buffer area is contiguous to one of the plurality of adjustment areas included in the second recording layer.
In one embodiment of this invention, each of the plurality of adjustment areas is provided at a different radial position on the information recording medium.
In one embodiment of this invention, the information recording medium is a write-once-read-many information recording medium.
In one embodiment of this invention, an address is assigned to the first recording layer. The parameter includes a first parameter relating to access to the first recording layer and a second parameter relating to another one of the plurality of recording layers. An address assigned to an area in the first disc information area in which the first parameter is stored is smaller than an address assigned to an area in the first disc information area in which the second parameter is stored.
In one embodiment of this invention, an address is assigned to the first recording layer. The format includes a first format relating to the first recording layer and a second format relating to another one of the plurality of recording layers. An address assigned to an area in the first disc information area in which the first format is stored is smaller than an address assigned to an area in the first disc information area in which the second format is stored.
In one embodiment of this invention, the information recording medium further comprises a data area for recording user data provided in the plurality of recording layers. The plurality of recording layers are provided with a groove. A second recording layer which is one of the plurality of recording layers, comprises an area at the same radial position as that of the first disc information area and an area in which a portion of the data area is provided. A type of a shape of the groove provided in the area at the same radial position of the first disc information area is the same as a type of a shape of the groove provided in the area in which the portion of the data area is provided.
In one embodiment of this invention, a groove is provided in at least a portion of the plurality of recording layers. A second recording layer which is one of the plurality of recording layers does not have a groove in an area which is a portion of the second recording layer at the same radial position as that of the first disc information area.
In one embodiment of this invention, the plurality of recording layers are provided with a groove. A type of a shape of the groove in a second recording layer which is one of the plurality of recording layers is constant.
In one embodiment of this invention, the first recording layer is provided with a groove. A type of a shape of the groove in the first disc information area is different from a type of a shape of the groove in an area which is a portion of the first recording layer and is contiguous to the first disc information area.
In one embodiment of this invention, the first recording layer is provided with a groove. The groove in the first disc information area is continuous to the groove in an area which is a portion of the first recording layer and is contiguous to the first disc information area.
In one embodiment of this invention, the parameter and the format include a first parameter and a first format relating to the first recording layer. The parameter and the format include a second parameter and a second format relating to a second recording layer which is another one of the plurality of recording layers. The length of an area of the first disc information area storing the first parameter and the first format is the same as the length of an area of the first disc information area storing the second parameter and the second format.
In one embodiment of this invention, the parameter includes a first parameter relating to access to the first recording layer. The format includes a first format relating to the first recording layer. A set of the first parameter and the first format are continuously repeated and stored in the first disc information area.
In one embodiment of this invention, the parameter includes a second parameter relating to access to a second recording layer which is another one of the plurality of recording layers. The format includes a second format relating to the second recording layer. A set of the second parameter and the second format are continuously repeated and stored in the first disc information area.
In one embodiment of this invention, the disc information area stores a plurality of sets of the parameter and the format.
In one embodiment of this invention, the information recording medium further comprises a dummy area. The plurality of sets includes a first set and a second set. The dummy area is provided between a first area provided with the first set, the first area being a portion of the first disc information area, and a second area provided with the second set, the second area being another portion of the first disc information area.
In one embodiment of this invention, the length of the dummy area is an integral multiple of the length of an area storing a set of the parameter and the format.
In one embodiment of this invention, an address is assigned to the first recording layer. The parameter includes a first parameter relating to access to the first recording layer and a second parameter relating to another one of the plurality of recording layers. The first parameter and the second parameter are stored in an area having the same address assigned thereto in the first disc information area.
In one embodiment of this invention, an address is assigned to the first recording layer. The format includes a first format relating to access to the first recording layer and a second format relating to another one of the plurality of recording layers. The first format and the second format are stored in an area having the same address assigned thereto in the first disc information area.
According to another aspect of the present invention, a recording apparatus for recording information into an information recording medium is provided. The information recording medium comprises a plurality of recording layers, and a disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The disc information area is provided in a first recording layer which is one of the plurality of recording layers. The recording apparatus comprises an optical head capable of optically writing the information into the information recording medium, and a control section for controlling recording using the optical head. The recording comprises the steps of reproducing the parameter and the format stored in the disc information area, and recording the information into the information recording medium based on the reproduced parameter and format.
According to another aspect of the present invention, a reproduction apparatus for reproducing information from an information recording medium is provided. The information recording medium comprises a plurality of recording layers, and a disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The disc information area is provided in a first recording layer which is one of the plurality of recording layers. The reproduction apparatus comprises an optical head capable of optically reading the information from the information recording medium, and a control section for controlling reproduction using the optical head. The reproduction comprises the steps of reproducing the parameter and the format stored in the disc information area, and reproducing the information from the information recording medium based on the reproduced parameter and format.
According to another aspect of the present invention, a recording method for recording information into an information recording medium is provided. The information recording medium comprises a plurality of recording layers; and a disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The disc information area is provided in a first recording layer which is one of the plurality of recording layers. The recording method comprises the steps of reproducing the parameter and the format stored in the disc information area, and recording the information into the information recording medium based on the reproduced parameter and format.
According to another aspect of the present invention, a reproduction method for reproducing information from an information recording medium is provided. The information recording medium comprises a plurality of recording layers, and a disc information area for storing parameters relating to access to the plurality of recording layers and formats relating to the plurality of recording layer. The disc information area is provided in a first recording layer which is one of the plurality of recording layers. The reproduction method comprises the steps of reproducing the parameter and the format stored in the disc information area, and reproducing the information from the information recording medium based on the reproduced parameter and format.
Thus, the invention described herein makes possible the advantages of providing an information recording medium comprising at least two recording layers, a method and apparatus for recording information onto this medium, and a method and apparatus for reproducing information from this medium, in which the time required to reproduce information from the disc information area is reduced.
These and other advantages of the present invention will become apparent to those skilled in the art upon reading and understanding the following detailed description with reference to the accompanying figures.
BRIEF DESCRIPTION OF THE DRAWINGS
<ul id="ul0001" list-style="none"><li><figref idref="f0001">Figure 1</figref> is a diagram showing an optical disc according to an embodiment of the present invention.</li><li><figref idref="f0001">Figure <b>2A</b></figref> is a diagram showing a track provided in a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0002">Figure <b>2B</b></figref> is a diagram showing a track provided in a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0002">Figure <b>2C</b></figref> is a diagram showing a track provided in a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0002">Figure <b>2D</b></figref> is a diagram showing a track provided in a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0003">Figure <b>3</b></figref> is a diagram showing a recording/reproduction apparatus according to an embodiment of the present invention.</li><li><figref idref="f0004">Figure <b>4A</b></figref> is a diagram showing a track according to an embodiment of the present invention.</li><li><figref idref="f0004">Figure <b>4B</b></figref> is a diagram showing a track according to an embodiment of the present invention.</li><li><figref idref="f0005">Figure <b>4C</b></figref> is a diagram showing a recording/reproduction apparatus according to an embodiment of the present invention.</li><li><figref idref="f0005">Figure <b>4D</b></figref> is a diagram showing assignment of an address number to a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0006">Figure <b>5A</b></figref> is a diagram showing a track according to an embodiment of the present invention.</li><li><figref idref="f0006">Figure <b>5B</b></figref> is a diagram showing a track according to an embodiment of the present invention.</li><li><figref idref="f0006">Figure <b>5C</b></figref> is a diagram showing a recording/reproduction direction according to an embodiment of the present invention.</li><li><figref idref="f0007">Figure <b>5D</b></figref> is a diagram showing assignment of an address number to a recording layer according to an embodiment of the present invention.</li><li><figref idref="f0008">Figure <b>6A</b></figref> is a layout of information in a disc information area.</li><li><figref idref="f0009">Figure <b>6B</b></figref> is a layout of information in a disc information area.</li><li><figref idref="f0010">Figure <b>7</b></figref> is a diagram showing an optical disc.</li><li><figref idref="f0011">Figure <b>8A</b></figref> is a diagram showing an optical disc according to an embodiment of the present invention.</li><li><figref idref="f0012">Figure <b>8B</b></figref> is a diagram showing an optical disc according to an embodiment of the present invention.</li><li><figref idref="f0013">Figure <b>9</b></figref> is a diagram showing an optical disc according to an embodiment of the present invention.</li><li><figref idref="f0014">Figure <b>10</b></figref> is a diagram showing an optical disc according to an embodiment of the present invention.</li></ul>
BEST MODE FOR CARRYING OUT THE INVENTION
Hereinafter, the present invention will be described by way of illustrative examples with reference to the accompanying drawings.
<figref idref="f0001">Figure <b>1</b></figref> shows a rewritable optical disc <b>100</b> comprising two recording layers according to an embodiment of the present invention.
The optical disc <b>100</b> comprises a first recording layer <b>104,</b> a first substrate <b>105,</b> an adhesive resin <b>103</b>, a second substrate <b>101,</b> and a second recording layer <b>102.</b> Each of these substrates and recording layers is provided with a clamp hole <b>106</b>. The optical disc <b>100</b> has a data area <b>115</b> for recording user data. The data area <b>115</b> is provided on both the first recording layer <b>104</b> and the second recording layer <b>102.</b> The data area <b>115</b> comprises a data area <b>110</b> provided on the second recording layer <b>102</b> and a data area <b>114</b> provided on the first recording layer <b>104.</b>
The second recording layer <b>102</b> comprises a disc information area <b>107,</b> a defect list area <b>108</b>, a spare area <b>109</b>, and the data area <b>110.</b> The first recording layer <b>104</b> comprises a disc information area <b>111</b>, a defect list area <b>112,</b> a spare area <b>113</b>, and the data area <b>114</b>. The first recording layer <b>104</b> and the second recording layer <b>102</b> are provided on one side of the optical disc <b>100</b>.
The disc information area <b>107,</b> the defect list area <b>108</b>, the spare area <b>109,</b> the data area <b>110,</b> the disc information area <b>111</b>, a defect list area <b>112,</b> the spare area <b>113,</b> and the data area <b>114</b> are each provided with a plurality of spiral or concentric tracks. Each track comprises a plurality of sectors.
Here, the defect list area <b>108</b>, the spare area <b>109</b>, the data area <b>110,</b> the defect list area <b>112</b>, the spare area <b>113</b>, and the data area <b>114</b> are recordable areas, in which the track is meandering at predetermined cycles. Referring to <figref idref="f0002">Figure <b>2B</b></figref>, address information or the like can be recorded in a track by overlaying a high frequency component onto a track. Alternatively, referring to <figref idref="f0002">Figure <b>2C</b></figref>, address information or the like can be recorded in a track by replacing a segment corresponding to an integral multiple of a predetermined cycle with a segment having a different frequency. Alternatively, referring to <figref idref="f0002">Figure <b>2D</b></figref><b>,</b> the segment corresponding to an integral multiple of a predetermined cycle may be replaced with a segment having a partially modulated pattern or a combination of frequencies. By forming the type of the shape of the track as shown in <figref idref="f0002">Figure <b>2C</b> and Figure <b>2D</b></figref><b>,</b> the continuity of the phase of a predetermined cyclic portion can be obtained, thereby making it easy to perform clock extraction.
The first substrate <b>105</b> and the second substrate <b>101</b> are made of a polycarbonate resin or the like and are used to protect the first recording layer <b>104</b> and the second recording layer <b>102</b>, respectively. The disc information area <b>107</b> is a reproduction-only area in which parameters for accessing the first recording layer <b>104</b> and the second recording layer <b>102</b> and the formats of the first recording layer <b>104</b> and the second recording layer <b>102.</b> The disc information area <b>111</b> is also a reproduction-only area in which the parameters for accessing the first recording layer <b>104</b> and the second recording layer <b>102</b> and the formats of the first recording layer <b>104</b> and the second recording layer <b>102</b>. The disc information area <b>111</b> records the same information as that in the disc information area <b>107.</b> The optical disc <b>100</b> may have both the disc information area <b>107</b> and the disc information area <b>111</b>, or either the disc information area <b>107</b> or the disc information area <b>111</b>. The parameters stored in the disc information area <b>107</b> are second irradiation power information indicating the irradiation power of laser light appropriate for the second recording layer <b>102</b> when information is recorded/reproduced on the second recording layer <b>102</b> and first irradiation power information indicating the irradiation power of laser light appropriate for the first recording layer <b>104</b> when information is recorded/reproduced on the first recording layer <b>104.</b> The parameters stored in the disc information area <b>111</b> are second irradiation power information indicating the irradiation power of laser light appropriate for the second recording layer <b>102</b> when information is recorded/reproduced on the second recording layer <b>102</b> and first irradiation power information indicating the irradiation power of laser light appropriate for the first recording layer <b>104</b> when information is recorded/reproduced on the first recording layer <b>104.</b> Information is recorded on the medium by modulating a track radially for each cycle or every double cycle. An example of the track modulation is shown in <figref idref="f0001">Figure <b>2A</b></figref>.
In this embodiment, different types of track shapes are used between reproduction-only areas (e.g., the disc information area <b>107,</b> the disc information area <b>111</b>, and the like) and recordable areas (e.g., the defect list area <b>108</b>, the spare area <b>109</b>, the data area <b>110</b>, the defect list area <b>112</b>, the spare area <b>113</b>, the data area <b>114</b>, and the like). Thereby, an optical disc recording/reproduction apparatus can determine whether or not an area on which reproduction is currently performed is a disc information area, before reproducing an address recorded in a track.
For multi-layer discs, the irradiation power of laser light, which is used to reproduce information from the farthest layer from the disc surface through which the information is read, may be greater than the irradiation power of laser light, which is used for single-layer discs. Therefore, the irradiation power of laser light for single-layer discs may be insufficient to reproduce an address from the optical disc <b>100,</b> however, may be sufficient to recognize a disc information area based on the waveform of a tracking signal derived from the shape of a track groove.
<figref idref="f0003">Figure <b>3</b></figref> shows a recording/reproduction apparatus <b>300</b> according to an embodiment of the present invention. The recording/reproduction apparatus <b>300</b> comprises a spindle motor <b>302,</b> an optical head <b>303,</b> a laser light control circuit <b>304,</b> a servo circuit <b>305,</b> a reproduction binarization circuit <b>306,</b> a digital signal processing circuit <b>307,</b> a recording compensation circuit <b>308,</b> and a CPU <b>309.</b>
The optical disc <b>100</b> (<figref idref="f0001">Figure 1</figref>) is loaded into the recording/reproduction apparatus <b>300.</b> The recording/reproduction apparatus <b>300</b> transmits and receives information to and from a host PC <b>310.</b>
The CPU <b>309,</b> which functions as a control section, controls all operations within the recording/reproduction apparatus <b>300</b> in accordance with a built-in control program. As described below, the optical head <b>303</b> optically writes information the optical disc <b>100</b> on the one side thereof. Further, the optical head <b>303</b> can optically read information from the optical disc <b>100.</b> The CPU <b>309</b> controls recording and reproduction operations using the optical head <b>303.</b> The recording operation comprises the steps of reproducing parameters and formats stored in a disc information area, and recording user data onto the optical disc <b>100</b> based on the reproduced parameters and formats. The reproduction operation comprises the steps of reproducing parameters and formats stored in a disc information area, and reproducing user data recorded in the optical disc <b>100</b> based on the reproduced parameters and formats. Hereinafter, an operation of the recording/reproduction apparatus <b>300</b> will be described in detail.
The optical disc <b>100</b> has the structure as described above with reference to <figref idref="f0001">Figure <b>1</b></figref><b>.</b> The spindle motor <b>302</b> is a motor for rotating the optical disc <b>100.</b> The optical head <b>303</b> irradiates the optical disc <b>100</b> with laser light as well as converts laser light <b>311</b> reflected from the optical disc <b>100</b> into an electric signal to output a reproduction signal. The laser light control circuit <b>304</b> controls the power of laser light output from the optical head <b>303.</b> These controls are carried out in accordance with instructions from the CPU <b>309.</b> The servo circuit <b>305</b> controls the position of the optical head <b>303,</b> focusing, tracking, and the rotation of the spindle motor <b>302.</b> The reproduction binarization circuit <b>306</b> subjects the reproduction signal (data information is an addition signal, and information relating to a disc information area or an address is a subtraction signal) obtained by the optical head <b>303</b> to amplification and binarization to produce a binarization. A built-in PLL (not shown) is used to produce clocks synchronized with the binarization signal.
The digital signal processing circuit <b>307</b> subjects the binarization signal to a predetermined demodulation process or error correction process. When recording data, the recorded data is subjected to an error correction code addition process and a predetermined demodulation process to produce the modulated data. The recording compensation circuit <b>308</b> converts the modulated data into optically modulated data comprising a pulse sequence, and also delicately adjusts the pulse width or the like of the optically modulated data based on the reproduction signal of a disc information area or data previously stored in the CPU <b>309</b> so as to produce a recording pulse signal suitable for pit formation. The CPU <b>309</b> controls all operations within the recording/reproduction apparatus <b>300.</b> The host PC <b>310</b> comprises a computer (not shown), an application (not shown), an operating system (not shown), and the like, and requests the recording/reproduction apparatus <b>300</b> to perform recording or reproduction of information.
When the optical disc <b>100</b> is loaded into the recording/reproduction apparatus <b>300,</b> information is reproduced from the disc information area <b>111</b> using the optical head <b>303</b> having a predetermined irradiation power in accordance with signals from the laser light control circuit <b>304</b> and the servo circuit <b>305.</b> In this case, the reproduced information is irradiation power information which is used to record information (user data) into the first recording layer and the second recording layer, or the like. When requested by the host PC <b>310,</b> the CPU <b>309</b> sets a recording power for recording information intro the first recording layer <b>104</b> to the laser light control circuit <b>304,</b> and controls the optical head <b>303</b> to record information into the data area <b>114</b>. Next, the CPU <b>309</b> sets a recording power for recording information into the second recording layer <b>102</b> to the laser light control circuit <b>304,</b> and controls the optical head <b>303</b> to record information into the data area <b>110</b>.
The disc information area <b>111</b> of the optical disc <b>100</b> contains the parameters and formats (irradiation power information for recording, or the like) of both the first recording layer <b>104</b> and the second recording layer <b>102</b>, whereby information is reproduced from the disc information area only once. Therefore, the time required to access to a disc information area can be reduced as compared to when information is reproduced from the disc information area <b>107</b> to record data into the second recording layer <b>102</b> while information is reproduced from the disc information area <b>111</b> to record data into the first recording layer <b>104</b>.
In this embodiment, parameter and formats are recorded in both the disc information area <b>107</b> and the disc information area <b>111</b>, thereby making it possible to obtain irradiation power information or the like from either layer. Therefore, even when information is reproduced from a layer different from a predetermined recording layer due to the irregular thickness of the adhesive resin <b>103</b> or disturbances in the focusing control of the servo circuit <b>305</b>, information required for recording can be reproduced and obtained from that layer.
In this embodiment, irradiation power information and the like are recorded in both the disc information area <b>107</b> and the disc information area <b>111</b>. Therefore, the time required before recording data can be reduced, for example, by reproducing information from the disc information area <b>111</b> when recording data into the data area <b>114</b> first or reproducing information from the disc information area <b>107</b> when recording data into the data area <b>110</b> first.
In this embodiment, the optical disc <b>100</b> has two layers, i.e., the first recording layer <b>104</b> and the second recording layer <b>102.</b> Alternatively, the optical disc <b>100</b> may have three or more recordable recording layers. In this embodiment, the recording formats of information recorded in the disc information area <b>107</b> and the disc information area <b>111</b> are such that the meandering pattern of a track is radially modulated for each fundamental cycle and every double cycle. Alternatively, as shown in <figref idref="f0002">Figure <b>2B</b></figref><b>,</b> information may be recorded in a track meandering at predetermined cycles by overlaying a high frequency component onto the track. Alternatively, as shown in <figref idref="f0002">Figures <b>2C</b> and <b>2D</b></figref><b>,</b> information can be recorded in a track meandering at predetermined cycles by replacing a segment of the track with a segment having a different frequency or pattern. Particularly, by using the same type of the shape of the track groove, it is possible to produce a substrate more easily.
In this embodiment, the disc information area <b>107</b> and the disc information area <b>111</b> each have a plurality of spiral or concentric tracks. Information may be recorded in the disc information area <b>107</b> and the disc information area <b>111</b> in the form of pits and lands. Information may be recorded in a disc information area by the same method as that for recording data into a data area before factory shipment or the like.
The disc information area <b>107</b> and the disc information area <b>111</b> may have a track pitch (or a pit pitch in a radial direction) different from those of the defect list area <b>108</b>, the spare area <b>109,</b> the data area <b>110,</b> the defect list area <b>112</b>, the spare area <b>113</b>, and the data area <b>114</b> (or a pit pitch in a radial direction). By expanding the track pitch in a disc information area, the influence of contiguous tracks can be reduced.
By expanding the track pitch or the pit pitch in a disc information area to be greater than the track pitch or the pit pitch of a recordable area, such as a data area or the like, it is possible to reproduce information from a disc information area even when using an optical disc apparatus having an optical head with a long laser wavelength, for example. In this case, a minimum of information can be returned to the user. In other words, by expanding the compatibility of a disc information area between different types of optical disc apparatuses, even when information cannot be recorded due to the apparatus specification, the reason that recording cannot be performed can be clarified.
When the spot of laser light is vertically shifted from one layer to another layer, it is difficult to locate the spot at the same radial position due to misalignment of substrates attached together, misalignment of the clamp holes of the substrates, or the like. For example, when it is attempted to move from the 1000<sup>th</sup> track from the inside circumference of the first recording layer <b>104</b> to the 1000<sup>th</sup> track from the inside circumference of the second recording layer <b>102,</b> an error of about ±50 tracks occurs. Therefore, when the spot of laser light is shifted from layer to layer in the vicinity of a boundary between a reproduction-only track and a recordable track, if the track on the destination layer is discontinuous, a reproduction or recording operation becomes unstable and cannot be quickly performed.
Therefore, even when the track pitch of the disc information area <b>107</b> and the disc information area <b>111</b> is different from the track pitch of the defect list area <b>108</b>, the spare area <b>109,</b> the data area <b>110,</b> the defect list area <b>112</b>, the spare area <b>113</b>, and the data area <b>114</b>, it is desirable that the track groove of the disc information area <b>107</b> is continuously linked to the track groove of an area contiguous to the disc information area <b>107</b> (e.g. , the area is the defect list area <b>108</b> in the example of <figref idref="f0001">Figure <b>1</b></figref><b>;</b> and the area may be the spare area <b>109</b> or the data area <b>110</b>). Similarly, it is desirable that the track groove of the disc information area <b>111</b> is continuously linked to the track groove of an area contiguous to the disc information area <b>111</b> (e.g., the area is the defect list area <b>112</b> in the example of <figref idref="f0001">Figure <b>1</b></figref>; and the area may be the spare area <b>113</b> or the data area <b>114</b>). It is desirable that transition of the track pitch is completed within about <b>100</b> tracks in view of data capacity. However, it is desirable that pitches are varied as moderately as possible. In view of servo, the difference between the track pitch of a disc information area and the track pitch of a defect list area, a spare area, or a data area is desirably about 10% and about 15% at maximum in order to perform reproduction quickly when the spot of laser light is shifted to a track on any layer.
In this embodiment, as shown in <figref idref="f0001">Figure <b>2A</b></figref><b>,</b> disc information is recorded in a disc information area by modulating a track radially for each fundamental cycle and every double cycle. As shown in <figref idref="f0002">Figure <b>2B</b>, Figure <b>2C</b>, and Figure <b>2D</b></figref><b>,</b> address information or the like is recorded in a defect list area, a spare area, and a data area by partially frequency-modulating a track meandering at predetermined cycles, or overlaying a high frequency component on the track. In the whole or a part of the transition area of track pitches, tracks may be formed in a modulation manner which is not used in any of a disc information area, a defect list area, a spare area, and a data area, or may not be modulated, or may not be meandering.
Thus, by changing the modulation method or the type of shape between the transition area of track pitches and its contiguous areas before and after the transition area, the recording/reproduction apparatus <b>300</b> can recognize the transition area quickly.
As described above, discontinuity is removed from a boundary between areas having different track pitches. Therefore, it is possible to quickly start processing in a destination area in an optical disc having a discontinuous portion as compared to when the spot of laser light is moved from a start position to the destination area which is largely radially distant from the discontinuous portion (starting position).
In this embodiment, a disc information area is provided in the most inside circumference of a disc. Alternatively, a disc information area may be provided in the most outside circumference of a disc, or both the inside and outside circumferences of a disc.
In this embodiment, the disc information area <b>107</b> and the disc information area <b>111</b> each contain irradiation power information and the like for both the first recording layer and the second recording layer. If a layer(s) on which reproduction is performed is specified, not all layers may contain irradiation power information and the like for all layers in their disc information areas.
A recording layer of the optical disc <b>100,</b> which is located at substantially the same distance from the disc surface of the optical disc <b>100</b>, through which information is read, as the distance from the disc surface of an optical disc comprising a single recording layer, through which information is read, is used as a reference layer. At least the reference layer may contain a disc information area. Therefore, disc information for any layer of the optical disc <b>100</b> can be obtained using a recording/reproduction apparatus for perform recording and reproduction on an optical disc comprising a single recording layer, thereby making it possible to simplify the structure of the recording/reproduction apparatus. A recording layer as a reference layer (e.g., the first recording layer <b>104</b>) is previously determined from a plurality of recording layers.
Note that a degradation in a reproduction signal due to tilt is increased with an increase in distance from the disc surface. Therefore, it is desirable that the reference layer is located at substantially the same distance from the disc surface as the distance of the layer of a single-layer disc from the disc surface and the reference layer is the farthest layer from the disc surface. In this case, when the type of the shape of an area, which is a portion of a recording layer other than the reference layer and is located at the same radial position as that of a disc information area of the reference layer, is the same as the type of the shape of a data area in which user data is recorded, transmittances can be the same irrespective of the radial position. Therefore, no particular detection means for reproducing information from a disc information area of a reference layer is required, whereby the configuration of a recording/reproduction apparatus can be simplified and it is easier to produce a recording layer.
Particularly, in a multi-layer disc comprising a plurality of recording layers, the type of the shape of grooves in a recording layer(s) other than a reference layer is the same as the type of the shape of grooves in a data area (only one type of the shape of grooves is used), thereby simplifying production of a substrate.
When a reference layer contains a disc information area, it is possible to reduce the scatter of light in a recordinglayer(s) other than the reference layer by providing an area, which is a portion of a recording layer other than the reference layer and is located at the same radial position as that of a disc information area of the reference layer, with no groove (i.e., flat structure). Therefore, the quality of a reproduction signal from the reference layer can be improved.
By providing a disc information area only in a reference layer, it is easy to determine whether or not a currently reproduced recording layer is the reference layer by reproducing an area around a radial position at which a disc information area of an optical disc is provided.
A disc information area may store parameters relating to a plurality of recording layers, such as recommended irradiation power information for reproduction, recommended irradiation power information for recording, maximum irradiation power information, a pulse width in recording, a ratio between a plurality of irradiation powers combined in recording, a margin constant used in determining an irradiation power optimal for recording, and the like.
A disc information area may contain formats relating to a plurality of recording layers, such as the name of a disc, the size of a disc, version information, the disc type of any layer (i.e., an identifier indicating whether a layer is a recordable/reproducible layer or a reproduction-only layer), the number of all recordable layers, the number of all reproduction-only layers, and the number of all layers. The disc information area further contains formats relating to a plurality of recording layers, such as an identifier indicating whether or not information in any layer can be copied, clock information, an identifier for indicating whether or not BCA (Burst Cutting Area) for providing specific information after production of a disc is provided, a transfer rate, recording/reproduction directions, a physical address start number, a physical address end number, a logical address start number, a logical address end number, a shortest mark length, a recording rate, and the like.
By setting parameters required for recording and reproduction in each recording layer, the degree of freedom in designing discs can be improved. For example, when a plurality of recording layers are used to achieve high-density recording, variations in reflection in at least layers through which light is transmitted have to be taken into consideration. Therefore, a higher level of precision design is required than when recording is performed on only one recording layer. In this case, for example, if the first recording layer <b>104</b> and the second recording layer <b>102</b> have to be reproduced with the same irradiation power, it is inferred that the optical disc <b>100</b> has difficulty in designing recording layers. For example, therecordingperformanceofthe secondrecording layer <b>102</b> has to be secured under a high transmittance situation. To avoid this, irradiation power for reproduction is not limited, and instead, irradiation power information is recorded in a disc information area. Therefore, irradiation power can be increased when reproduction is performed in the first recording layer <b>104.</b> The degree of freedom in designing a recording film of the second recording layer <b>102</b> can be increased.
By recording parameters required for recording and reproduction to be performed on any layer together into a disc information area of at least one recording layer, it is possible to quickly grasp a control method optimal to the whole disc.
BCA is used to further classify discs having the same contents in their disc information areas. Classification is recorded in the form of a bar code after production of discs. BCA is provided in at least one layer, and desirably in a reference layer. In this case, by providing a layer containing no BCA with a groove shape different from that of the reference layer, it is easy to recognize the reference layer by performing reproduction within a radial range of the reference layer in which BCA is provided. Particularly, in a recording layer other than the reference layer, a radial range in which BCA is provided is provided with a flat structure having no groove, thereby making it possible to reduce the scatter of light in other layers. Moreover, the quality of a reproduction signal from BCA can be improved and production of a substrate is facilitated.
Recording of information into BCA requires irradiation with laser having a power much higher than a power required when performing recording on a recordable area. Therefore, it is likely that the characteristics of the recording film of a recordable area, such as a defect list area, a spare area, a data area, or the like, is damaged. Therefore, it is desirable that recordable areas contain no BCA as well as no variation in recording positions. If a recordable area is contiguous to an area in which BCA is provided, it is desirable to provide a buffer area in which no intended use is defined between these areas. In this case, the net volume of the recordable area is reduced.
According to the above-described viewpoint, it is typically desirable to provide an area, in which BCA is provided, at an end in a radial direction. It is not preferable to provide BCA at the outside circumference, since information in BCA is required when actuating as well as from the viewpoint of capacity. As shown in <figref idref="f0011">Figure <b>8A</b></figref><b>,</b> it is desirable to provide BCA in a more inside circumference than a disc information area. As described above, a disc is irradiated with a high power of laser when recording information into BCA, it is likely to damage data already recorded in a reproduction-only area. Therefore, as shown in <figref idref="f0012">Figure <b>8B</b></figref><b>,</b> a buffer portion, in which dummy data, such as, for example, "0", is provided, may be provided at an inside circumference of a disc information area (a disc information area <b>801A</b>), and in fact, data is recorded at an outside circumference thereof (a disc information area <b>801B).</b>
In this embodiment, disc information is recorded in a disc information area by radially modulating tracks for each fundamental cycle and every double cycle. Alternatively, a modulation method different from that for a disc information area may be used in an area in which BCA is provided. Conversely, tracks maybe straight grooves with no modulation or may be meandering at predetermined cycles. Further, a track pitch may be different between an area provided with BCA and a disc information area. In this case, since it is likely that a track groove is damaged due to recording of information into BCA, the area containing BCA desirably has a larger track pitch.
As described above, it is possible for a recording/reproduction apparatus to quickly distinguish an area provided with BCA from a disc information area by changing a track modulation method and the type of the shape of a track.
In general, when the spot of laser light is vertically shifted from one layer to another layer, it is difficult to locate the spot at the same radial position due to misalignment of substrates attached together, misalignment of the clamp holes of the substrates, or the like. For example, when it is attempted to move from the 1000<sup>th</sup> track from the inside circumference of the first recording layer <b>104</b> to the 1000<sup>th</sup> track from the inside circumference of the second recording layer <b>102,</b> an error of about ±50 tracks occurs. Therefore, when the spot of laser light is shifted from layer to layer in the vicinity of a boundary between a reproduction-only track and a recordable track, if the track on the destination layer is discontinuous, a reproduction operation becomes unstable and cannot be quickly performed. Therefore, even when an area in which BCA is provided and a disc information area have different track pitches, it is desirable that these areas are continuously linked together. Moreover, it is desirable that track pitches are moderately changed.
It is desirable that irradiation power information for reproduction precedes irradiation power information for recording. In this case, when a request from a host PC is reproduction, data can be quickly reproduced if the irradiation power information for recording is not reproduced.
Parameters and formats recorded in a disc information area required for performing recording and reproduction on anylayermaybe recorded in tracks in the defect list area <b>108</b>, the spare area <b>109,</b> the data area <b>110,</b> the defect list area <b>112</b>, the spare area <b>113</b>, and the data area <b>114</b>. Since such information is recorded in any track, for example, when a request for reproduction is received from the host PC <b>310,</b> information minimally required for reproduction, such as irradiation power or the like, is reproduced from the disc information area which does not have a risk of deleting user data with irradiation power for reproduction. Next, the remaining information, such as, for example, irradiation power information for recording which is expected to be used when a request for recording is next received, or the like, is reproduced from tracks in a data area for a rotation waiting time, thereby making it possible to quickly reproduce data.
Parameters and formats may be recorded by the same method as used for recording of address information into each area or by a method different from a method for recording address information.
Parameters and formats recorded in a disc information area may be recorded in not all of the defect list area <b>108,</b> the spare area <b>109</b>, the data area <b>110,</b> the defect list area <b>112,</b> the spare area <b>113</b>, the data area <b>114</b>, and the like. For example, when parameters and formats are not recorded in the data area <b>114</b>, a recording/reproduction apparatus can recognize the data area <b>114</b> as a data area even if the data area <b>114</b> has the same track shape as that of other areas since no parameter or format is present therein.
Parameters and formats for all layers may not be recorded in tracks of the defect list area <b>108,</b> the spare area <b>109</b>, the data area <b>110,</b> the defect list area <b>112</b>, the spare area <b>113</b>, and the data area <b>114</b>. Each layer may contain only its own parameters and formats. Each layer may further contain minimally required information for other layers in addition to its own parameters and formats. Since information for other layers is not recorded, a more number of copies of address information can be recorded, for example. A disc substrate can be easily produced by incorporating information for other layers to be combined into the most inside portion.
Next, address numbers will be described with reference to <figref idref="f0004 f0005">Figures <b>4A</b> to <b>4D</b></figref> and <figref idref="f0006 f0007">Figure <b>5A</b> to <b>5D</b></figref>. <figref idref="f0004 f0005">Figures <b>4A</b> to <b>4D</b></figref> show an example of tracks, recording/reproduction directions, and address numbers. <figref idref="f0004">Figure <b>4A</b></figref> shows a pattern of spiral grooves in the first recording layer <b>104.</b><figref idref="f0004">Figure <b>4B</b></figref> shows a pattern of spiral grooves in the second recording layer <b>102.</b><figref idref="f0005">Figure <b>4C</b></figref> shows the recording/reproduction directions of the optical disc <b>100.</b><figref idref="f0005">Figure <b>4D</b></figref> shows assignment of address numbers. When the optical disc <b>100</b> is rotated, the optical head <b>303</b> is moved from the inside circumference to the outside circumference along a track <b>401</b> or <b>402</b>. When data is sequentially recorded, for example, recording is performed from the most inside circumference to the most outside circumference of the data area <b>114,</b> and then from the most inside circumference to the most outside circumference of the data area <b>110.</b> Physical address numbers <b>403</b> and logical address numbers <b>404</b> in each recording layer are incremented in the recording/reproduction directions. The physical address number <b>403</b> may not be started from 0 and may not be continuous at a boundary between the first and second layers.
For example, layer numbers may be contained in the physical address number <b>403</b>, and may be located at an upper portion of the physical address number <b>403.</b> The logical address numbers <b>404</b>, which are continuously incremented from 0, are assigned to all data areas on a disc. In the data area <b>114</b> of the first layer, the logical address number <b>404</b> is 0 at the most inside circumference and is incremented one by one toward the outside circumference. In the data area <b>110</b> of the second layer, the logical address number <b>404</b> is incremented one by one from the most inside circumference toward the outside circumference, starting from the greatest number of the first layer plus 1. Reference numerals <b>405</b> and <b>406</b> indicate lead-out areas (not shown in <figref idref="f0001">Figure <b>1</b></figref><b>),</b> which are provided in order to allow the optical head <b>303</b> to follow a track even when the optical head <b>303</b> overrun a data area.
As shown in <figref idref="f0004 f0005">Figures <b>4A</b> to <b>4D</b></figref><b>,</b> it is easier to produce substrates having the same spiral direction than substrates having different spiral directions.
<figref idref="f0006 f0007">Figures <b>5A</b> to <b>5D</b></figref> show an example of tracks, recording/reproduction directions, and address numbers. <figref idref="f0006">Figure <b>5A</b></figref> shows a pattern of spiral grooves in the first recording layer <b>104</b>. <figref idref="f0006">Figure <b>5B</b></figref> shows a pattern of spiral grooves in the second recording layer <b>102</b>. <figref idref="f0006">Figure <b>5C</b></figref> shows the recording/reproduction directions of the optical disc <b>100.</b><figref idref="f0007">Figure <b>5D</b></figref> shows assignment of address numbers. When the optical disc <b>100</b> is rotated, the optical head <b>303</b> is moved from the inside circumference to the outside circumference on the first recording layer <b>104</b> along an inside track <b>502</b> and from the outside circumference to the inside circumference on the second recording layer <b>102</b> along a track <b>501.</b> When data is sequentially recorded, for example, recording is performed from the most inside circumference to the most outside circumference of the data area <b>114</b>, and then from the most outside circumference to the most inside circumference of the data area <b>110</b>. Physical address numbers <b>503</b> and logical address numbers <b>504</b> in each recording layer are incremented in the recording/reproduction directions. Note that the second layer spiral has a direction opposite to that of the first layer spiral. Therefore, the relationship between address number and radius is reversed. In the data area <b>114</b> of the first layer, the logical address number <b>504</b> is 0 at the most inside circumference and is incremented one by one toward the outside circumference. In the data area <b>110</b> of the second layer, the logical address number <b>504</b> is incremented one by one from the most outside circumference toward the inside circumference, starting from the greatest number of the first layer plus <b>1.</b> Reference numerals <b>505</b> and <b>506</b> indicate lead-out areas (not shown in <figref idref="f0001">Figure <b>1</b></figref><b>),</b> which are provided in order to allow the optical head <b>303</b> to follow a track even when the optical head <b>303</b> overruns a data area.
In the case where as shown in <figref idref="f0006 f0007">Figures <b>5A</b> to <b>5D</b></figref>, recording is performed from the most inside circumference to the most outside circumference of the data area <b>114,</b> and then from the most outside circumference to the most inside circumference of the data area <b>110</b>, particularly, if all recording layer-specific parameter and format information is recorded together in a single disc information area, it is not necessary that the optical head <b>303</b> goes back from the most outside circumference to the disc information area at the most inside circumference.
Similarly, also in the case where only reproduction is performed, when reproduction is performed from the most inside circumference to the most outside circumference of the data area <b>114,</b> and then, from the most outside circumference to the most inside circumference of the data area <b>110</b>, particularly, if all recording layer-specific parameter and format information is recorded together in a single disc information area, it is not necessary that the optical head <b>303</b> goes back from the most outside circumference to the disc information area at the most inside circumference.
<figref idref="f0008">Figure <b>6A</b></figref> shows a layout of recording layer-specific parameters and formats in the disc information areas <b>107</b> and <b>111</b>. In <figref idref="f0008">Figure <b>6A</b></figref>, #1 indicates at least one of a parameter and a format relating to a first recording layer <b>104,</b> and #2 indicates at least one of a parameter and a format relating to a second recording layer <b>102</b>. <figref idref="f0008">Figure <b>6A</b></figref> shows layouts of disc information areas <b>601</b> to <b>603</b> and <b>609</b> in a two-layer disc. The disc information areas <b>601</b> to <b>603</b> and 609 correspond to the disc information areas <b>107</b> and <b>111.</b> An information layout of a disc information area <b>604</b> is of a single-layer disc. Note that the layout rule of the disc information area <b>601</b> to <b>603</b> and <b>609</b> in a two-layer disc can be applied to a multi-layer disc.
In the disc information areas <b>601</b> to <b>603</b> and <b>609,</b> a plurality of sets of recording layer-specific parameter and format information are recorded. Thus, by recording a plurality sets, even if reproduction cannot be performed on one area due to a scratch or dust, desired information can be reproduced and obtained from another area.
The length of an area in which parameters and formats are recorded is desirably the same irrespective of a layer to which the parameters and formats relate. In this case, the starting position of information can be specified, thereby making it possible to reduce a waiting time or making it unnecessary to search for a starting position for each recording layer for each set. Therefore, the structure of a recording/reproduction apparatus can be simplified. For example, in a disc information area, the length of an area in which parameters and formats relating to the first recording layer <b>104</b> are stored is the same as the length of an area in which parameters and formats relating to the second recording layer <b>102</b> are stored.
In the disc information area <b>601,</b> a set of parameter and format information for all recording layers is repeated <b>4</b> times. For example, data "0" is recorded in a remaining area <b>605</b> in the disc information area <b>601.</b> In this case, when recording and reproduction are performed from the inside circumference to the outside circumference, by recording parameters and formats for a recording layer to be first reproduced (e.g., the first recording layer <b>104</b> as are ference layer) at the most inside circumference, it is possible to quickly obtain parameters and formats for a layer to be first reproduced, and it is possible to quickly correct irradiation power when the irradiation power is inappropriate for the layer to be first reproduced. An address assigned to an area storing parameters and formats relating to the first recording layer <b>104</b> in a disc information area is smaller than an address assigned to an area storing parameters and formats relating to the second recording layer <b>102</b> in the disc information area. In this case, an address assigned to an area storing irradiation power information relating to the first recording layer <b>104</b> in a disc information area is smaller than an address assigned to an area storing irradiation power information relating to the second recording layer <b>102</b> in the disc information area. With this feature, for example, it is possible to minimize damage to data due to an excessively high level of irradiation power.
Similarly, when reproduction is performed from the outside circumference to the inside circumference, by recording information for a recording layer to be first reproduced at the most outside circumference, it is possible to quickly correct irradiation power when irradiation power is inappropriate for a layer to be first reproduced. Moreover, it is possible to reproduce information from all recording layers quickly as compared to <b>602</b> described below.
When the information amount of parameters and formats relating to the first recording layer <b>104</b> and the second recording layer <b>102</b> is small, the parameters and formats relating to the first recording layer <b>104</b> and the parameters and formats relating to the second recording layer <b>102</b> may be stored in an area having the same address assigned thereto in the disc information area <b>107.</b> It is now assumed that addresses are assigned in the first recording layer <b>104</b> along a circumference direction from the inside circumference to the outside circumference of the optical disc <b>100</b>. In this case, an area in which the parameters and formats relating to the first recording layer <b>104</b> in the area having the same address assigned thereto in the disc information area <b>107,</b> is provided in a more inside circumference than an area in which the parameters and formats relating to the second recording layer <b>102</b> in the area having the same address assigned thereto in the disc information area <b>107.</b> Alternatively, it is now assumed that addresses are assigned in the first recording layer <b>104</b> along a circumference direction from the outside circumference to the inside circumference of the optical disc <b>100.</b> In this case, an area in which the parameters and formats relating to the first recording layer <b>104</b> in the area having the same address assigned thereto in the disc information area <b>107</b>, is provided in a more outside circumference than an area in which the parameters and formats relating to the second recording layer <b>102</b> in the area having the same address assigned thereto in the disc information area <b>107.</b>
Note that in the disc information area <b>107</b> included in the second recording layer <b>102</b>, an address assigned to an area in which the parameters and formats relating to the second recording layer <b>102</b> are stored may be smaller than an address assigned to an area in which the parameters and formats relating to the first recording layer <b>104</b> are stored. Therefore, even when reproduction is performed on the second recording layer <b>102</b> earlier than on the first recording layer <b>104</b>, the parameters and formats relating to the second recording layer <b>102</b> can be quickly obtained. As a result, even when the irradiation power of laser light irradiating the second recording layer <b>102</b> is inappropriate, the irradiation power can be quickly corrected.
Information indicating the amount of net data in the disc information area <b>601</b> excluding the area <b>605</b> (e.g., represented by in units of byte) maybe recorded in the vicinity of the most inside circumference of the disc information area <b>601.</b> Therefore, a recording/reproduction apparatus does not reproduce unnecessary data and can perform a subsequent process quickly. The amount of net data may vary depending on a recording layer. Alternatively, the amount of net data may be recorded in the vicinity of the most inside circumference of a disc information area of each recording layer.
In the disc information area <b>601,</b> a set of information for all recording layers is repeated 4 times. The present invention is not so limited. Information indicating the number of repetition may be recorded in the vicinity of the most inside circumference of the disc information area <b>601.</b> Thereby, a recording/reproduction apparatus does not reproduce unnecessary data and can perform a subsequent process quickly.
In the disc information area <b>602,</b> a set of parameter and format information for each recording layer is repeated 4 times. For example, data "0" is recorded in a remaining area <b>606</b> in the disc information area <b>601.</b> In this case, by recording information for a recording layer to be first reproduced at the most inside circumference, it is possible to quickly correct irradiation power when irradiation power is inappropriate for a layer to be first reproduced. In this case, an address assigned to an area storing parameters and formats relating to the first recording layer <b>104</b> in a disc information area is smaller than an address assigned to an area storing parameters and formats relating to the second recording layer <b>102</b> in the disc information area. Since the layout of information in the disc information area <b>604</b> which is of a single-layer disc is the same as the layout of information at the inside circumference of the disc information area <b>602,</b> it is possible to produce the optical disc <b>100</b> whose reproduction algorithm has the same form as that added to a single-layer optical disc. Therefore, it is possible to simplify a recording/reproduction apparatus.
Information indicating the amount of net data in the disc information area <b>602</b> excluding the area <b>606</b> (e.g., represented by in units of byte) maybe recorded in the vicinity of the most inside circumference of the disc information area <b>602.</b> Therefore, a recording/reproduction apparatus does not reproduce unnecessary data and can perform a subsequent process quickly. The amount of net data may vary depending on a recording layer. Alternatively, the amount of net data may be recorded in the vicinity of the most inside circumference of a disc information area of each recording layer.
In the disc information area <b>602</b>, a set of information for each recording layer is repeated 4 times. The present invention is not so limited. Information indicating the number of repetition may be recorded in the vicinity of the most inside circumference of the disc information area <b>602.</b> Thereby, a recording/reproduction apparatus does not reproduce unnecessary data and can perform a subsequent process quickly. The number of repetition may vary depending on a recording layer. The number of repetition of a set of information for each recording layer may be recorded in the vicinity of the most inside circumference of the disc information area <b>602.</b>
In the disc information area <b>603,</b> parameter and format information for recording and reproduction are divided into each element. Each specific element is collected for all recording layers. Such a collection is recorded as a set of information. Regarding a method for repetition, as in the disc information area <b>601,</b> a set of information in which a complete set of elements are arranged is repeated a plurality of times, or alternatively, as in the disc information area <b>602</b>, an element is recorded a plurality of times and then another element is recorded a plurality of times.
Data "0" is recorded in a remaining area <b>607</b> in the disc information area <b>603.</b> By recording information for a recording layer to be first reproduced at the most inside circumference, it is possible to quickly correct irradiation power when irradiation power is inappropriate for a layer to be first reproduced.
Information indicating the amount of net data in the disc information area <b>603</b> excluding the area <b>607</b> (e.g., represented by in units of byte) may be recorded in the vicinity of the most inside circumference of the disc information area <b>603.</b> Therefore, a recording/reproduction apparatus does not reproduce unnecessary data and can perform a subsequent process quickly.
By recording predetermined data in a remaining portion of the disc information areas <b>601</b> to <b>604</b> in which parameter and format information are recorded, when an optical head 203 is moved to a disc information area by a servo circuit 205, the disc information area can be quickly recognized by reproducing the predetermined data.
In the disc information area <b>601</b> to <b>603</b>, information for each recording layer is recorded in a direction in which address numbers are incremented as shown in <figref idref="f0005">Figure <b>4D</b></figref> and <figref idref="f0007"><b>5D</b></figref><b>.</b> For example, as shown in <figref idref="f0007">Figure <b>5D</b></figref>, when spiral directions are opposite to each other, physical arrangement of information is reversed between the first recording layer and the second recording layer. For example, recording is performed on the first recording layer from the most inside circumference portion of a disc information area, while recording is performed on the second recording layer from the most outside circumference portion of a disc information area. The present invention is not so limited. Alternatively, recording is performed on both the first and second recording layer from the most inside circumference portion of a disc.
In the disc information areas <b>601</b> to <b>603,</b> parameter and format information or disc information which are common to recording layers may be recorded before recording information specific for each layer. Parameters and formats are recorded in accordance with such a method in a disc information area <b>609.</b> By using a single set of common items, a disc information area can be relatively reduced as the number of layers is increased. By recording the common items a plurality of times similar to information #1 and #2 as in <figref idref="f0008">Figure <b>6A</b></figref>, even if predetermined information is not reproduced from an area due to a scratch or dust, the information can be reproduced and obtained from another area.
The length of an area for recording common items of recording layers is desirably a multiple of the length of an area for recording information of each recording layer. Therefore, even if the number of layers or the amount of common items is changed, it is easy for a recording/reproduction apparatus to predict the starting position of information, thereby making it possible to reduce a waiting time and to simplify the structure of a recording/reproduction apparatus.
Next, <figref idref="f0009">Figure <b>6B</b></figref> shows a modified example of the disc information area <b>601</b>, i.e., disc information areas <b>1101</b>, <b>1102</b>, <b>1103</b> and <b>1104</b>. The disc information areas <b>1101</b>, <b>1102</b>, <b>1103</b> and <b>1104</b> contain a plurality of dummy areas <b>1100.</b>
In the disc information area <b>1101</b>, a set of parameter and format information for all recording layers is repeatedly recorded, and a dummy area is provided between each area in which a set of information is recorded. Therefore, by detecting the dummy area, it can be recognized that information #1 is recorded in an area immediately after the dummy area or information #2 is recorded immediately before the dummy area. Therefore, it is no longer necessary to provide an identifier indicating information #1 or #2 therein, whereby the structure of a recording/reproduction apparatus can be simplified and a processing time can be reduced.
In the dummy area, the same contents as recorded in a remaining area <b>1105</b> in a disc information area (e.g., data "0") may be recorded, or alternatively, different contents may be recorded. By recording different contents, it can be clearly recognized that information #1 is recorded in an area immediately after the dummy area or information #2 is recorded immediately before the dummy area. Even if the same contents are recorded, the dummy can be clearly distinguished from the area <b>1105</b> by changing the recording length, resulting in the same effect.
By recording information common to information #1 and #2 in a dummy area as show in the disc information area <b>609</b> (<figref idref="f0008">Figure <b>6A</b></figref>), it can be recognized that information #1 is recorded in an area immediately after the dummy area or information #2 is recorded immediately before the dummy area, and it is easy to obtain common information.
As shown in the disc information area <b>1102</b>, a dummy area <b>1100</b> may be contiguous to an area <b>1106</b>, whereby it can be recognized that information #2 is recorded in at least an area immediately before the dummy data <b>1100</b>. Note that only the last dummy area in the disc information area <b>1102</b> may contain recording contents different from those of the other dummy areas. In this case, the end of the recording repetition can be clarified.
The length of a dummy area may be an integral multiple of the length of an area in which a set of information #1 and information #2 are recorded, as shown in a disc information area <b>1103</b>. Therefore, even if the number of layers is different, it is easy to predict the starting position of information in each recording layer, thereby making it possible to reduce a waiting time and to simplify the structure of a reproduction apparatus.
As shown in a disc information area <b>1104</b>, a dummy area <b>1100</b> may be recorded before an area in which information #1 and information #2 are first recorded. Therefore, it can be recognized that information #1 is recorded in at least an area immediately after the dummy data. Note that only the first dummy area in the disc information area <b>1104</b> may have the contents different from the contents of the other dummy areas. Therefore, the start of repetition of recording can be clarified.
The setting of the first dummy area is not limited to the above-described method, if a disc information area can be distinguished from an area immediately before the disc information area. For example, an area immediately before a disc information area may be recognized based on the difference in a track shape or a modulation method for overlaying information on the track shape.
Note that the dummy data shown in <figref idref="f0009">Figure <b>6B</b></figref> can be used in the disc information area <b>602</b>, resulting in substantially the same effect as when applied to the disc information area <b>601.</b>
As described above, by recording recording layer-specific parameter and format information required for performing recording and reproduction on each recording layer in a single disc information area, a time required to record and reproduce data from a plurality of layers can be reduced as compared to when information is reproduced from a plurality of disc information areas provided in a plurality of layers.
In this embodiment, the disc information area is mainly described. In addition, regarding a defect list area and a spare area, the same effect is obtained by recording information for each recording layer in a single layer.
In this embodiment, recording layer-specific parameter and format information required for performing recording and reproduction on each recording layer is recorded in a single disc information area. Alternatively, all of such information may not be recorded in a single disc information area and may be divided and recorded in a plurality of disc information areas. Alternatively, a predetermined essential information item(s) for each recording layer may be recorded in a single disc information area, while other items may be recorded in a disc information area of each layer.
Note that parameters and formats recorded in a disc information area may be recorded in tracks in the defect list area <b>108</b>, the spare area <b>109,</b> the data area <b>110</b>, the defect list area <b>112</b>, the spare area <b>113,</b> data area <b>114</b> in accordance with the layouts shown in <figref idref="f0008">Figures <b>6A</b></figref> and <figref idref="f0009"><b>6B</b></figref>.
Next, a rewritable optical disc <b>900</b> according to another embodiment of the present invention will be described with reference to <figref idref="f0013">Figure <b>9</b></figref><b>.</b>
The optical disc <b>900</b> of <figref idref="f0013">Figure <b>9</b></figref> comprises a first substrate <b>905,</b> a first recording layer <b>904,</b> an adhesive resin <b>903,</b> a second recording layer <b>902,</b> and a second substrate <b>901.</b> Each substrate and each recording layer are provided with a clamp hole <b>906.</b> The optical disc <b>900</b> comprises a data area <b>920</b> for recording user data. The data area <b>920</b> is provided in both the first recording layer <b>904</b> and the second recording layer <b>902.</b> A data area <b>912</b> which is a portion of the data area <b>920</b> is provided in the second recording layer <b>902,</b> while a data area <b>918</b> which is the other portion of the data area <b>920</b> is provided in the first recording layer <b>904</b>.
The second recording layer <b>902</b> comprises a disc information area <b>907,</b> a first defect list area <b>908,</b> a test recording area <b>909,</b> a second defect list area <b>910,</b> a spare area <b>911,</b> and a data area <b>912.</b>
The first recording layer <b>904</b> comprises a disc information area <b>913,</b> a first defect list area <b>914,</b> a test recording area <b>915,</b> a second defect list area <b>916,</b> a spare area <b>917,</b> and a data area <b>918.</b>
The first recording layer <b>904</b> and the second recording layer <b>902</b> are provided on a single side of the optical disc <b>900.</b>
It is desirable that the same data is recorded in the first defect list area and the second defect list area in each recording layer. The same data may be recorded in a defect list area in all recording layers. Thereby, when the spot of laser light is moved between recording layers in recording or reproduction, a time required for reproduction of a defect list area in a destination layer can be saved.
The test recording area <b>909</b> functions as an adjustment area for performing test recording for adjusting the recording power of laser light for recording information in the data area <b>912.</b> Similarly, the test recording area <b>915</b> functions as an adjustment area for performing test recording for adjusting the recording power of laser light for recording information in the data area <b>918.</b> As in this embodiment, by providing a test recording area in each recording layer, it is possible to determine recording conditions suitable for each recording layer.
When the spot of laser light is vertically shifted from one layer to another layer, it is difficult to locate the spot at the same radial position due to misalignment of substrates attached together, misalignment of the clamp holes of the substrates, or the like. For example, when it is attempted to move from the 1000<sup>th</sup> track from the inside circumference of the first recording layer <b>904</b> to the 1000<sup>th</sup> track from the inside circumference of the second recording layer <b>902</b>, an error of about ±50 tracks occurs.
In a test recording area, recording conditions are determined by performing test recording under unstable servo recording conditions. In this case, there is the risk of tracking being displaced during recording or the risk of laser light coming into focus instantaneously on an unintended layer. To avoid these risks, a buffer area in which no intended use is defined is desirably provided contiguously before and after the test recording area of each recording layer. It is also preferable that a plurality of defect list areas are provided before and after the test recording area as shown in <figref idref="f0013">Figure <b>9</b></figref><b>.</b> By providing defect list areas before and after the test recording area of each recording layer, the risk of damaging all data in a defect list area can be reduced even if tracking is displaced during recording data. Further, when focus is displaced during recording of information to a certain recording layer, the risk of damaging all data in a defect list area of another recording layer can be reduced.
In this embodiment, a defect list area is provided only in the inside circumference portion of each recording layer. From the same viewpoint, a defect list area may be provided in the outside circumference portion. By providing the outside circumference portion, it is possible to prevent damage to data in a defect list area due to test recording.
Note that parameter and format information specific for each recording layer may be recorded together in a single disc information area. Alternatively, each recording layer may separately contain parameter and format information.
A test recording area in each recording layer may be located at a different radial position as shown in <figref idref="f0014">Figure <b>10.</b> Figure <b>10</b></figref> shows an optical disc <b>1000</b>, which is a modification of the optical disc <b>900,</b> comprising a first substrate <b>1005</b>, a first recording layer <b>1004</b>, an adhesive layer <b>1003</b>, a second recording layer <b>1002</b>, and a second substrate <b>1001</b>.
The second substrate <b>1001</b>, the second recording layer <b>1002</b>, the adhesive layer <b>1003</b>, the first recording layer <b>1004</b>, and the first substrate <b>1005</b> correspond to the second substrate <b>901,</b> the second recording layer <b>902,</b> the adhesive layer <b>903,</b> the first recording layer <b>904,</b> and the first substrate <b>905,</b> respectively. The second recording layer <b>1002</b> and the first recording layer <b>1004</b> have the same components as those of the second recording layer <b>902</b> and the first recording layer <b>904,</b> respectively, except that the location of a test recording area is different. The second recording layer <b>1002</b> comprises a test recording area <b>1008.</b> The first recording layer <b>1004</b> comprises a test recording area <b>1007.</b>
Reference numeral <b>1009</b> indicates incident light. Reference numeral <b>1010</b> indicates light reflected from the second recording layer <b>1002.</b> Reference numeral <b>1011</b> indicates light transmitted through the second recording layer <b>1002</b>. Reference numeral <b>1012</b> indicates light reflected from the first recording layer <b>1004</b>. Reference numeral <b>1013</b> indicates light transmitted through the second recording layer <b>1002</b>. These reference numerals indicate paths of laser light. When reproduction is performed on the second recording layer <b>1002</b>, the reflected light <b>1010</b> is a main reproduction light while the transmitted light <b>1013</b> is unnecessary stray light. When reproduction is performed on the first recording layer <b>1004</b>, the transmitted light <b>1013</b> is a main reproduction light while the reflected light <b>1010</b> is unnecessary stray light.
It is now assumed that a test recording area for determining the irradiation power of laser light for recording data in the recording layer <b>1004</b> is provided at the position of the area <b>1006</b>. In this case, if the test recording area <b>1008</b> is degraded or damaged (e.g., due to repetition of recording), the transmittance coefficient or reflectance coefficient of the second recording layer <b>1002</b> is changed, resulting in changes in the transmitted light <b>1011</b>, the reflected light <b>1010</b> and the transmitted light <b>1013.</b> Therefore, as is different from when the test recording area <b>1008</b> is normal, the value of the irradiation power obtained using the test recording area <b>1006</b> departs from the correct irradiation power.
As shown in <figref idref="f0014">Figure <b>10</b></figref>, by providing the test recording area <b>1007</b> and the test recording area <b>1008</b> at different radial positions of the optical disc <b>1000,</b> it is possible to correctly determine the value of the irradiation power of laser light suitable for the first recording layer <b>1004</b> even when the test recording area <b>1008</b> is degraded or damaged.
As described above, arrangement of the test recording areas of each recording layer at a different radial position is very effective when the optical disc <b>1000</b> is a write-once-read-many optical disc capable of recording only once, particularly an optical disc having a irreversible recording film whose optical characteristics are changed by recording. The present invention is applied to such an optical disc capable of recording only once.
In this embodiment, a test recording area in each recording layer is provided at a different radial position. Alternatively, in addition to the test recording area, for example, an area for managing a list of all data recorded in an optical disc or the like, which is repeatedly recorded a predetermined number of times which is greater than the number of repetitions of recording in an area in which normal user data is recorded, maybe positioned at a different radial position in each recording layer. By providing such areas at different positions, it is possible to prevent degradation of the area in one layer from affecting the area in another layer, whereby recording and reproduction can be performed on the area in the other layer.
In this embodiment, the test recording area <b>1007</b> is provided at the outside circumference side with respect to the radial direction. Alternatively, the test recording area <b>1008</b> may be provided at the outside circumference side with respect to the radial direction. For example, in the case of the recording/reproduction directions as shown in <figref idref="f0006">Figure <b>5C</b></figref>, the test recording area <b>1007</b> may be used from the inside circumference side, while the test recording area <b>1008</b> may be used from the outside circumference side. In this case, when the test recording area <b>1008</b> is used, the probability that the most outside circumference side of the test recording area <b>1007</b> is not used is higher than when it is used. Therefore, an influence of degradation of the test recording area <b>1007</b> on the test recording <b>1008</b> can be further reduced. The effect is very large for an optical disc capable of recording only once.
In this embodiment, a test recording area is provided only on the inside circumference side. Alternatively, it may be provided on the outside circumference side.
The present invention is not limited to an optical disc having a recordable recording layer. If an optical disc having a plurality of reproduction-only recording layers has a disc information area, the same effect is obtained according to the present invention.
In this embodiment, recording is performed on two layers, i.e., the first recording layer and the second recording layer. When the present invention can be applied to a single-layer disc, the same effect can be obtained.
In this embodiment, a rewritable optical disc is mainly described. The present invention can be applied to a recordable optical disc in which recording can be performed once or several times and the same effect can be obtained.
INDUSTRIAL APPLICABILITY
According to the optical disc of the present invention, parameters and formats specific for each recording layer required for performing recording and reproduction on the recording layer is recorded together in a single disc information area. With this feature, parameters and formats for each recording layer can be reproduced from a single disc information area, thereby making it possible to reduce a time required for recording and reproduction of data for a plurality of recording layers.
Various other modifications will be apparent to and can be readily made by those skilled in the art without departing from the scope and spirit of this invention. Accordingly, it is not intended that the scope of the claims appended hereto be limited to the description as set forth herein, but rather that the claims be broadly construed.
Contents6
14 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14
Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| EP0718831A2 | Cites | European Patent Office (EPO) | Search report |
| EP0813189A1 | Cites | European Patent Office (EPO) | Search report |
| EP0981130A2 | Cites | European Patent Office (EPO) | Search report |
| EP1006515A1 | Cites | European Patent Office (EPO) | Search report |
| US5210734A | Cites | United States of America | Search report |
| US5388105A | Cites | United States of America | Search report |
| US5850382A | Cites | United States of America | Search report |
23 priority claims, no other members on record
Priority claims23
| Document | Office | Kind | Date |
|---|---|---|---|
| 2002013493 | Japan | A | |
| 2002013493 | Japan | A | |
| 2002013493 | Japan | – | |
| 2002056479 | Japan | A | |
| 2002056479 | Japan | A | |
| 2002056479 | Japan | – | |
| 2002320444 | Japan | A | |
| 2002320444 | Japan | A | |
| 2002320444 | Japan | – | |
| 03701813 | European Patent Office (EPO) | A | |
| 03701813 | European Patent Office (EPO) | A | |
| 08153207 | European Patent Office (EPO) | A | |
| 08153207 | European Patent Office (EPO) | A | |
| 03701813 | – | – | – |
| 08153207 | – | – | – |
| 2002013493 | – | – | – |
| 2002056479 | – | – | – |
| 2002320444 | – | – | – |
| EP20030701813 | – | – | – |
| EP20080153207 | – | – | – |
| JP20020013493 | – | – | – |
| JP20020056479 | – | – | – |
| JP20020320444 | – | – | – |
8 legal events, as the office reported them to INPADOC
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| Application deemed to be withdrawnWithdrawn18D | 18D | |
| Information on the status of an ep patent application or granted ep patentGrantedSTAA | STAA | |
| Designated contracting statesAK | AK | |
| Search report despatchedPUAL | PUAL | |
| Divisional application: reference to earlier applicationAC | AC | |
| Divisional application: reference to earlier applicationAC | AC | |
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| Public reference made under article 153(3) epc to a published international application that has entered the european phasePUAI | PUAI |
Numbers
- Publication
- 2244255
- Publication, DOCDB
- 2244255
- Publication, EPODOC
- EP2244255
- Application
- 10165630
- Application, DOCDB
- 10165630
- Application, EPODOC
- EP20100165630
Titles3
- German
- Informationsaufzeichnungsmedium, Aufzeichnungsvorrichtung, Wiedergabevorrichtung, Aufzeichnungsverfahren und Wiedergabeverfahren
- English
- Information recording medium, recording apparatus, reproduction apparatus, recording method, and reproduction method
- French
- Support d'enregistrement d'informations, appareil d'enregistrement, appareil de reproduction, procédé d'enregistrement et procédé de reproduction
Classification
- CPC, 13
- G11B7/00736
- G11B7/007
- G11B7/1267
- G11B7/24038
- G11B7/24079
- G11B7/24082
- G11B20/1217
- G11B2007/0013
- G11B2020/122
- G11B2020/1227
- G11B2020/1275
- G11B2220/235
- G11B7/004
- IPC, 8
- G11B7 00
- G11B7 007
- G11B5 09
- G11B7 004
- G11B7 005
- G11B7 125
- G11B7 24038
- G11B20 12
Designated states6
- Contracting states, 6
- Germany
- Spain
- France
- United Kingdom
- Hungary
- Netherlands (Kingdom of the)