1. Field of the Invention
The present invention relates to optical information recording/reproduction methods and apparatuses for recording/reproducing multilevel information, in which recording or reproduction is performed using three or more value levels of information pits or marks. In particular, the present invention relates to a method of detecting phase error information for generating a reproduction clock used in reproducing recorded information.
2. Description of the Related Art
Recent years have seen the expansion of the optical memory industry. Various types of optical memories have been developed, including read-only CDs and DVDs, a write once memory which uses a metal film or a dye-based recording material, and further, a rewritable memory using an optical magnetic material or a phase change material. Implementations of these memories have also been expanded from public-oriented applications to external memory applications for computers.
Research and development has been promoted with a view to increasing recording density. As a technique for minimizing the size of a light spot used for information recording/reproduction, a violet wavelength (405 nm) of a light source has been employed more than a red wavelength (650 nm). In addition, an attempt has been made to increase the numerical aperture (NA) of an objective lens from 0.6 or 0.65 to 0.85. On the other hand, a technique of multilevel recording/reproduction has been proposed for achieving more efficient recording/reproduction using an identical size of light spots.
For example, Japanese Patent Laid-Open No. 5-128530 describes, as a multilevel recording/reproduction technique, a method for recording multilevel information on an information track of an optical information recording medium, using a combination of the length of an information pit in the track direction and the amount of shift of the information pit in the track direction with respect to a reproduction light spot. Japanese Patent Laid-Open No. 5-128530 also describes a reproduction method for reproducing the above multilevel recorded information pit using correlation between a detection signal which has been learned and a detection signal which is obtained from the light spot.
In addition, in “ISOM 2003, Write-once Disks for Multi-level Optical Recording, Draft Collection, Fr-Po-04”, published by ISOM which is an international symposium in the field of optical disc research, an experiment report is presented. In this report, eight-level recording/reproduction is performed, using an optical system with a violet light source of 405 nm wavelength and an NA of 0.65, on an optical disc with a track pitch of 0.46 μm provided with a virtual region for recording one information pit (hereinafter referred to as a cell) whose width in the track direction is set to be 0.26 μm.
Setting of the eight-level information pits is performed, for example, by dividing the length of a cell in the track direction shown in
The information pits set as described above are randomly recorded, and an amount of light reflected from each information pit is received by a photodetector. Then, a timing of a reproduction signal for sampling from the information pits is set to a point when the center of a light spot is irradiated on the center of a cell with respect to the track direction. This results in a distribution of amplitudes of the reproduction signal which correspond to the individual levels, as shown in
In this case, a clock used for sampling information is configured to be generated through a phase-locked loop circuit (a PLL circuit) after phase error information is detected by reproduction of a predetermined pattern inserted in recording information at predetermined intervals.
Referring to
Referring back to
The values of the reproduction signal level corresponding to the individual information pit levels have a range since a target information pit is affected by information pits written in the preceding and succeeding cells (inter-symbol interference). When an amplitude distribution of the reproduction signal at a certain level is overlapped with that of the reproduction signal at an adjacent level, a fixed threshold value cannot be used for discriminative detection of signal levels.
In the example of the ISOM 2003 report, a technique of discriminative detection of signal levels is discussed with a view to solving this problem. In this technique, a reproduction signal is read from a mark string in which the level of a target information pit and the levels of the preceding and succeeding information pits are given in advance, and then, the read signal is stored (learning). Then, an actual reproduction signal from the information pits is compared with the stored read signal (correlating). The recording density which can be applied in this technique is 16 Gbit/inch2.
However, for implementation of the multilevel information recording/reproduction described above, it is necessary to insert a mark string which is sufficiently large to detect phase information in the generation of a reproduction clock for detecting reproduction signal levels. Such a large mark string is necessary for phase information detection using a predetermined interval and a predetermined length for obtaining a phase error signal with high precision and, for example, through binarization processing using a fixed slice level.
This insertion of a mark string for phase error detection has a disadvantage in that it is performed at the expense of an increase in linear density and it reduces the information efficiency of a recording format.
The present invention has been made in view of the above circumstance. Accordingly, there is a need for a multilevel information reproduction method for detecting phase error information from a recording information reproduction signal so as to generate a reproduction clock, without inserting a recording pattern specifically serving for phase error detection. Specifically, an optical information reproduction method can be provided in which virtual cells are provided at regular intervals on an optical information medium and in which multilevel information is reproduced from the optical information medium having a recording/reproduction area for, using a light spot, recording multilevel information by changing widths in the track direction or sizes of information pits in the virtual cells, and reproducing multilevel information by detecting from the information pits multiple levels of a reproduction signal. This optical information reproduction method includes the steps of detecting, in at least two adjacent virtual cells in the recording/reproduction area, at least two cell center signal levels and a cell boundary signal level between the cell center signal levels and acquiring phase error information of the reproduction signal on the basis of a difference between the detected cell boundary signal level and an ideal cell boundary signal level obtained in advance and of a gradient of reproduction signal levels corresponding to the detected cell center signal levels.
Further, an optical information recording/reproduction apparatus can be provided to include an information recording circuit for, using a light spot, recording multilevel information on virtual cells provided at regular intervals on an optical information medium having a recording/reproduction area by changing widths in a track direction or sizes of information pits and an information reproduction circuit for reproducing multilevel information by detecting multiple levels of a reproduction signal from the information pits recorded on the optical information medium. The information reproduction circuit detects, in at least two adjacent virtual cells, at least two cell center signal levels and a cell boundary signal level between the cell center signal levels, and acquires phase error information of the reproduction signal based on a difference between the detected cell boundary signal level and an ideal cell boundary signal level corresponding to the detected cell center signal levels and on a gradient of reproduction signal levels in the vicinity of the ideal cell boundary signal level.
Further features of the present invention will become apparent from the following description of exemplary embodiments with reference to the attached drawings.
In the following, the preferred exemplary embodiments of the present invention will be described in detail with reference to the accompanying drawings.
An optical information recording/reproduction apparatus 1 has a control circuit 2, a spindle motor 3, an optical disc 4, an optical head 5, an optical head control circuit 6, an information recording circuit 7, an information reproduction circuit 8, a spindle motor controller 9, and an interface controller 10.
The control circuit 2 controls sending/receiving of information to and from an information processing device such as an external computer and controls recording or reproduction of information on the optical disc 4 using the information recording circuit 7 and the information reproduction circuit 8. The control circuit 2 also controls other operation units. The information recording circuit 7 performs recording of multilevel information, and the information reproduction circuit 8 performs reproduction of multilevel information, which will be hereinafter described.
The spindle motor 3 is controlled by the spindle motor controller 9 and drives rotation of the optical disc 4. The optical disc 4 is an optical information recording medium which is inserted into or ejected from the optical information recording/reproduction apparatus 1 by means of a mechanism not shown in the figure.
The optical head 5 serves to optically record information on and reproduce information from the optical disc 4. In the optical head 5, for example, when a light source with a wavelength of 405 nm and an objective lens with an NA of 0.85 are provided, a light spot of 0.405 μm is obtained. The size of the track pitch of the optical disc 4 is 0.32 μm in this example. The optical head control circuit 6 serves to control a position of a light spot using the optical head 5 and performs automatic tracking control, seek operation control, and automatic focusing control.
The generation of phase error information in information reproduction according to an exemplary embodiment of the present invention is carried out by the information reproduction circuit 8.
Now, a method and an apparatus for multilevel information recording will be described.
In this figure, the region sandwiched by two thick solid lines represents a cell in which an information pit or mark is written. In this exemplary embodiment, since the size of a light spot is approximately 0.405 μm, and the track pitch of the optical disc 4 is 0.32 μm, when the width of the cell is set to 0.2 μm, an a real density of 30 Gbit/inch2 can be achieved. The description will be continued on the basis of this cell width of 0.2 μn.
In this case, the width of the smallest information pit (level 1) is 25 nm, and the sizes of the other information pits are as follows: 50 nm (level 2), 75 nm (level 3), 100 nm (level 4), 125 nm (level 5), 150 nm (level 6), 175 nm (level 7). The level 0 is indicative of no information pit for recording.
In the multilevel recording in this exemplary embodiment, eight-level recording is employed. Thus, three bits can be recorded in one cell. As shown in
In addition, for the erasable recording material, a magneto-optic recording material can be employed as well as a phase change material. In this case, in the optical information recording/reproduction apparatus 1, information pits having multiple reproduction levels are formed by changing the shapes of the information pits, using not only a light spot but also by a cooperative operation of the light spot and a magnetic field applied from a magnetic head (not shown).
Further, a write once recording material can be applied such as an organic dye material and a metal film. In this case, a light spot is irradiated onto an optical disc, and the shapes of information pits are changed by adjusting the recording light intensity and the timing of irradiation, so that information pits having a plurality of reproduction levels are formed. In addition, on a read-only recording medium, information pits called phase pits having lands and recesses can similarly be formed on a substrate. Multilevel recording can be achieved by modulating the sizes or the optical depths of these phase pits.
In order to increase recording capacity, it is necessary to reduce the size of a cell. When the cell size is reduced, as shown in
In
In this exemplary embodiment, the size of the light spot 13 is approximately 0.405 μm and the size of each of the cells is 0.2 μm. In this scale, an a real density is obtained which is about 1.5 times higher than that obtained with a known two-level technique (for example, an a real density of 19.5 Gbit/inch2 obtained where 2T=139 nm, in 1-7PP modulation).
In the following, a result obtained from an optical simulation of a reproduction signal according to this exemplary embodiment is described.
Referring to
As shown in
For illustrative purposes,
In the figure, the position of each of three solid lines indicates a reproduction signal level obtained when the light spot 13 is located at the center of each cell (cell center signal level), and the position of each of two broken lines indicates a reproduction signal level obtained when the light spot 13 is located at a boundary between the cells (cell boundary signal level).
When looking at the values of reproduction signals corresponding to the pit level combination pattern at the boundaries of adjacent cells (i.e., cell boundary signal levels), it can be found that all of the eight pit level combination patterns have approximately the same cell boundary signal levels at the boundary between the second cell and the third cell. More specifically, if in all pit level combination patterns, each of two adjacent cells has the same pit levels (“1” and “6”, for the second and third cells, respectively, in this case), the obtained cell boundary signal level is not significantly affected by the pit level of the cell on the other side (the first cell, in this case), indicating that the effect of inter-symbol interference is very small.
It can be found that these 15 values (value 0 to value 14) can be obtained without signal processing such as waveform equalization. The pit level combination patterns of the two adjacent cells corresponding to the 15 values are shown in
Now, a phenomenon according to a principle of the present invention will be described on the basis of a characteristic of the reproduction signal described above.
Referring back to
Thus, it can be found that from this phenomenon that the cell boundary signal level in an ideal state can be inferred where the pit levels of two adjacent cells corresponding to cell center signal levels having the cell boundary signal level therebetween are determined. At the same time, the gradient of a reproduction signal around the boundary of the two adjacent cells (i.e., in the vicinity of the cell boundary signal level) can be inferred. According to this exemplary embodiment, phase error information can be obtained from a reproduction signal using the phenomenon described above. In addition, since it is necessary in this exemplary embodiment to sample both a cell center signal level and a cell boundary signal level, a reproduction clock has to have a rate which is more than two times higher than the cell frequency.
Further description will be given with reference to
The above ideal states (1) and (2) need not only be those obtained from a simulation or the like, but also be reproduction signal levels obtained from a learning area of a given recording string provided at the head of a user information string. Rather, the latter can be more desirable than the former in that it brings about a state in which various influential factors such as recording conditions are reflected. In the following, a description will be provided in regard to a calculation of a reproduction signal level gradient around the boundary of adjacent cells (in the vicinity of a cell boundary signal level) and a calculation of phase error when learning data is used.
For the calculation of a reproduction signal level gradient in the vicinity of a cell boundary signal level, cell center signal levels of two adjacent cells of learning data are linear-approximated so that the gradient in the vicinity of the cell boundary signal level is calculated. This process is used as the simplest example. When reproduction is in progress, level determination of information pit levels is performed, and using the determined levels, corresponding cell center signal levels, the gradient of these two cell center signal levels (Δv/Δt), and corresponding cell boundary signal level A obtained from learning are extracted. Then, in comparison with an actual cell boundary signal level B obtained during reproduction, a time shift of the sampling time, i.e., a phase error signal, is detected.
Further, a scheme can be applied in which, in the learning data, curve fitting is performed using three values: the cell center signal levels of two adjacent cells and the cell boundary signal level A between the cell center signal levels, and then, the gradient in the vicinity of the cell boundary signal level (Δv/Δt) is calculated using the gradient of the tangent to the cell boundary signal level A. Alternatively, the fitted curve itself can be applied as a gradient curve. With this arrangement, from the difference between the cell boundary signal level A obtained from learning and the cell boundary signal level B obtained during reproduction, a phase error signal can also be calculated with high precision.
Still further, four cell center signal values used for the gradient calculation can be used for a gradient calculation. Specifically, the signal level at the boundary between each of two adjacent cells can be applied as the cell boundary signal levels used for phase error calculation. This enables further higher precision of the gradient calculation at a cell boundary signal level time.
As described above, on the basis of level information of cell center signal levels and a cell boundary signal level which are obtained from a learning process, a reproduction signal level gradient in the vicinity of the cell boundary signal level (Δv/Δt) is calculated. Then, this gradient (Δv/Δt) and the ideal cell boundary signal level A are applied to the cell boundary signal level B obtained from an actual reproduction signal. This allows a phase error signal to be extracted directly from a reproduction signal in reproduction of recorded multilevel information.
In a case where there is no or a small difference between the pit levels of two adjacent cells, a very small reproduction signal level gradient in the vicinity of the corresponding cell boundary signal level is obtained. Therefore, calculation of phase error based on this gradient information results in less accurate phase error information. Thus, in order to improve precision of PLL control, an operation is necessary for not detecting phase error information where the difference between the pit levels of two adjacent cells determined during reproduction is less than a predetermined level. For example, where the two pit levels, k−1, k, and corresponding reproduction signal levels V (k−1), V(k) have a relationship expressed as |V(k−1)−V(k)|≦3, processing for stopping detection of phase error information is necessary.
Referring now to
Referring now to
In the optical information recording/reproduction apparatus 1, the PLL pull-in pattern 11a is first generated for initiating the recording operation, at STEP S1.
It is desirable that the PLL pull-in pattern 11a has a configuration that provides a frequency and phase error information through known binarization processing, so that PLL processing can be performed. For example, irrelevantly to a multilevel recording information string, the PLL pull-in pattern 11a can be configured such that a cell which is filled with an information pit and a cell in which no pit exists are alternately recorded. Moreover, in order to obtain a reproduction signal with an increased S/N ratio, the PLL pull-in pattern can also be configured such that two adjacent pitted cells and two adjacent non-pitted cells are alternately arranged. In addition, these configurations can be combined to form a pattern.
Subsequently, at STEP S2, the learning pattern 11b for a multilevel information string is generated and then appended at the position immediately after the PLL pull-in pattern 11a, as shown in
Taking into account the pit level combination patterns of two adjacent cells, it is necessary that this learning pattern 11b includes at least 64 (8×8) patterns.
Then, transmitted information to be recorded is converted into eight levels in units of three bits as shown in
When the generated recording information string is received, multilevel information is recorded on a target track of the optical disc 4 through the optical head 5 using a recording pulse string corresponding to each of the multiple levels, at STEP S4.
The above procedure from STEP S1 to STEP S4 is repeated as long as recording information to be recorded remains, at STEP S5. When all recording information is recorded, the optical information recording/reproduction apparatus 1 terminates the recording operation procedure.
In regard to address information or the like in a disc, recently, a technique has been widely employed in which address information is formed by wobbling a pregroove on an information recording track, and the address information is extracted by reproducing the signal from the wobbled pregroove. With this technique, it is not necessary to add address information directly to a recording information string or the like.
Now, an operation procedure for reproducing multilevel information recorded through the above recording procedure will be described with reference to
Upon receiving an instruction of information reproduction, the optical information recording/reproduction apparatus 1 initiates a reproduction operation.
In the optical information recording/reproduction apparatus 1, address information is reproduced using wobble information or the like, as described above, and a target track on the optical disc 4 is searched. Using the optical head 5, reproduction of the PLL pull-in pattern 11a provided at the head of the information recording strings is initiated, and a reproduction clock synchronized with the width of a cell is generated, at STEP S6.
Then, using the reproduction clock, the learning pattern 11b is reproduced, and reproduction signal levels (cell center signal level, cell boundary signal level) corresponding to the recorded patterns are sampled and stored in a memory in correspondence with the recorded patterns, at STEP S7.
At this time the reproduction clock in this case can be held synchronized with the reproduction signal by the PLL pull-in pattern 11a. Thus, phase control of the reproduction clock is not necessary. In this operation, after the PLL pull-in pattern 11a is reproduced, phase error information is set to “0”, and thus a PLL state is maintained, so that sufficient phase precision can be achieved.
On the basis of the result obtained from the above learning process, reproduction of the recorded user information 11c is carried out using a reproduction signal, at STEP S8. Since a scheme used for reproducing user information is not directly relevant to the essence of this exemplary embodiment, a detailed description thereof will be omitted.
At this time, it is important to control the reproduction clock so that it is maintained to be synchronized with the reproduction signal in order to reproduce information with precision. Therefore, as described above, obtaining information on a phase error between the reproduction clock and the reproduction signal is necessary.
Thus, the pit levels of information pits written in two adjacent cells sequentially reproduced in STEP S8 are determined. Then, from the determined pit levels, corresponding ideal cell center signal levels and the cell boundary signal level therebetween, which are obtained from the learning process and stored in the memory, are extracted and read, at STEP S9.
Using the change in the read two cell center signal levels and the cell boundary signal level therebetween, a reproduction signal level gradient curve in the vicinity of the cell boundary signal level in the ideal state is calculated. Then, this reproduction signal level gradient curve and cell boundary signal level obtained in the learning process, and the cell boundary signal level of an actual reproduction signal obtained from the sampling process are used to calculate information on phase error between the reproduction clock and the reproduction signal obtained during reproduction, at STEP S10.
As described above, when the difference between the. pit levels of the adjacent cells is smaller than a predetermined level, processing for temporarily discontinuing the phase error detection can also be performed in this reproduction operation procedure.
On the basis of the obtained phase error information, PLL control is performed and thus the reproduction clock is generated, at STEP S11. A PLL circuit used for this PLL control is not required to have a special configuration and its characteristics can be optimized in accordance with a frequency band of the reproduction signal. A description of this PLL circuit will be omitted.
While the information reproduction operation is in progress, the procedure from STEP S9 to STEP S11 is sequentially performed, so that phase error information is extracted from the reproduction signal and thus a synchronous clock is continuously generated.
In addition, the above operation procedure is repeated in units of the information recording strings 11a, 11b, and 11c, such that information reproduction is carried out, at STEP 12.
Upon receiving an instruction of the termination of the reproduction operation, the optical information recording/reproduction apparatus 1 terminates the reproduction operation procedure.
With the above reproduction operation procedure, information reproduction without adding a phase error information pattern can be achieved.
Note that phase error information can be utilized not only for the generation of a reproduction clock. A standard deviation of phase error information can also be used as an indicator which corresponds to jitter in binary reproduction, for example.
In addition, information necessary for phase error detection, such as ideal signal levels and gradient, can be calculated and stored in a memory in correspondence with changes in pit levels of adjacent cells before the optical information recording/reproduction apparatus 1 is delivered to the market. Then, on the basis of this stored information, and cell center signal levels and a cell boundary signal level detected when information is reproduced, phase error information can also be calculated.
Further, it is possible to tabulate phase error information in advance and extract the tabulated phase error information on the basis of an ideal cell boundary signal level and a detected cell boundary signal level.
In the foregoing, a method and an apparatus for performing recording or reproducing using three or more value levels of information pits are described. In the method and apparatus, phase error information for generating a reproduction clock can be obtained from a reproduction signal obtained through reproduction of recorded information, without a pattern specifically arranged for the generation of a reproduction clock.
While the present invention has been described with reference to exemplary embodiments, it is to be understood that the invention is not limited to the disclosed exemplary embodiments. The scope of the following claims is to be accorded the broadest interpretation so as to encompass all modifications, equivalent structures and functions.
This application claims the benefit of Japanese Application No. 2005-216226 filed on Jul. 26, 2005, which is hereby incorporated by reference herein in its entirety.
Number | Date | Country | Kind |
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2005-216226 | Jul 2005 | JP | national |