WO2007148672A1 - 光記録再生方法およびシステム、ならびにプログラム - Google Patents
光記録再生方法およびシステム、ならびにプログラム Download PDFInfo
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- WO2007148672A1 WO2007148672A1 PCT/JP2007/062272 JP2007062272W WO2007148672A1 WO 2007148672 A1 WO2007148672 A1 WO 2007148672A1 JP 2007062272 W JP2007062272 W JP 2007062272W WO 2007148672 A1 WO2007148672 A1 WO 2007148672A1
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- clock
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- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B7/00—Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
- G11B7/12—Heads, e.g. forming of the optical beam spot or modulation of the optical beam
- G11B7/125—Optical beam sources therefor, e.g. laser control circuitry specially adapted for optical storage devices; Modulators, e.g. means for controlling the size or intensity of optical spots or optical traces
- G11B7/128—Modulators
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B7/00—Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
- G11B7/12—Heads, e.g. forming of the optical beam spot or modulation of the optical beam
- G11B7/125—Optical beam sources therefor, e.g. laser control circuitry specially adapted for optical storage devices; Modulators, e.g. means for controlling the size or intensity of optical spots or optical traces
- G11B7/126—Circuits, methods or arrangements for laser control or stabilisation
- G11B7/1263—Power control during transducing, e.g. by monitoring
-
- G—PHYSICS
- G11—INFORMATION STORAGE
- G11B—INFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
- G11B7/00—Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
- G11B7/004—Recording, reproducing or erasing methods; Read, write or erase circuits therefor
- G11B7/005—Reproducing
Definitions
- the present invention relates to an optical recording / reproducing method and system for reproducing data optically recorded on a recording medium such as a CD, a DVD, a Blu-ray DISC, and an HD (High Definition) DVD, and a program.
- a recording medium such as a CD, a DVD, a Blu-ray DISC, and an HD (High Definition) DVD
- Recording media such as CDs, DVDs, and next-generation DVDs (Blu-ray DISCs, HD DVDs) are irradiated with laser light, and the state of the media recording layer changes based on the heat caused by the irradiated laser light.
- the optical recording / reproducing apparatus for writing data as a recording signal and reproducing the corresponding data based on the reflected light from the recording signal is a data recording that replaces a conventional video tape recorder using a magnetic tape as a recording medium. As a playback device, it is rapidly spreading.
- the linear velocity (speed of the laser beam traveling on the medium 3 during recording and Z or reproduction) is increased (for example, changing from 1 ⁇ to 2 ⁇ , 32 ⁇ speed, etc.) This makes it possible to shorten playback and Z or recording speed and time.
- a single mode laser (laser having a single longitudinal mode) having a relatively small operating current is used as a light source.
- the laser light emitted from this single mode laser is very coherent, so noise that causes fluctuations in the laser light power of the laser light emitted from the light source (single mode laser) when reproducing data.
- the noise that causes the laser light power fluctuation includes noise (return light noise) caused by interference with the return light from the recording medium, optical components, and the like, and laser noise caused by temperature fluctuation and the like.
- Patent Documents 1 and 2 describe the optical coupling efficiency, which is the ratio of the amount of laser light focused on the recording medium to the total amount of laser light emitted from the light source, in its mode (recording). (Mode Z playback mode), by changing according to the type of recording medium and Z or its recording layer (multilayer Z single layer), it is possible to maintain a high CNR while suppressing the irradiation laser light power,
- the optical coupling efficiency which is the ratio of the amount of laser light focused on the recording medium to the total amount of laser light emitted from the light source, in its mode (recording).
- Mode Z playback mode by changing according to the type of recording medium and Z or its recording layer (multilayer Z single layer), it is possible to maintain a high CNR while suppressing the irradiation laser light power.
- Patent Document 1 JP 2002-260272 A
- Patent Document 2 Japanese Patent Laid-Open No. 2003-196880
- Patent Document 3 Japanese Patent Laid-Open No. 2005-346823
- FIG. 1 is a diagram showing an example of a relationship between a recording signal (also referred to as a recording mark or a pit) written on a part of a certain recording track and a laser light output waveform obtained by high-frequency superposition.
- a recording signal also referred to as a recording mark or a pit
- the run length (mark length) along the recording track of the recording signal is modulated.
- the recording signal having the shortest run length is recorded on the recording track. It shall be written in a part.
- a part of the recording track is developed in a straight line along the track direction.
- an intermittent high-frequency current having a positive duty (on-duty) in a sine wave of less than 50% is used as the high-frequency current.
- the present invention has been made in view of the above-described circumstances. Even when the reproduction linear velocity is increased, the recorded signal recorded on the recording medium is surely read and the corresponding data is read. Its purpose is to make it possible to play
- a first aspect of the present invention is an optical recording / reproducing system that reads information related to a recording track of a recording medium based on a predetermined reproduction clock by irradiation with periodic light that is scanned at a predetermined scanning speed.
- This system includes a modulation unit that modulates light by a drive signal on which a frequency signal is superimposed and outputs the periodic light, and a synchronization that synchronizes the frequency of the frequency signal with the frequency of the reproduction clock according to the scanning speed. Unit.
- information related to the recording track of the recording medium is read based on a predetermined reproduction clock by irradiation of periodic light scanned at a predetermined scanning speed, and a frequency signal is superimposed.
- a computer-readable program provided in an optical recording / reproducing system including a modulation unit that modulates light with a drive signal and outputs the periodic light. This program causes the computer to execute processing for synchronizing the frequency of the frequency signal with the frequency of the reproduction clock according to the scanning speed.
- a third aspect of the present invention is an optical recording / reproducing method for reading information related to a recording track of a recording medium based on a predetermined reproduction clock by irradiation of periodic light scanned at a predetermined scanning speed.
- the method includes the steps of: modulating light with a drive signal on which a frequency signal is superimposed and outputting the periodic light; synchronizing the frequency of the frequency signal with the frequency of the reproduction clock according to the scanning speed; Is included.
- FIG. 1 is a diagram showing an example of a relationship between a plurality of recording signals written on a part of a recording track and a laser beam output waveform obtained by high-frequency superposition.
- FIG. 2 is a block diagram showing a schematic configuration of the data recording / reproducing system according to the first embodiment of the present invention.
- FIG. 3 shows a computer of the data recording / reproducing system according to the first embodiment of the invention.
- the flowchart which shows an example of the process performed schematically.
- FIG. 4 is a flowchart schematically showing an example of processing executed by the computer of the data recording / reproducing system according to the first embodiment of the present invention.
- FIG. 5 is a diagram showing a relationship with laser light output outputted from the LD unit shown in FIG. 2 corresponding to the intermittent high frequency current.
- FIG. 6 is a flowchart schematically showing an example of processing executed by the computer of the data recording / reproducing system according to the second embodiment of the present invention.
- FIG. 7 is a flowchart schematically showing an example of processing executed by a computer of the data recording / reproducing system according to the third embodiment of the present invention.
- FIG. 8 is a flowchart schematically showing an example of processing executed by the computer of the data recording / reproducing system according to the fourth embodiment of the present invention.
- FIG. 9 is a flowchart schematically showing an example of processing executed by a computer of a data recording / reproducing system according to a modification of the first to fourth embodiments of the present invention.
- FIG. 2 is a block diagram showing a schematic configuration of the data recording / reproducing system 1 according to the first embodiment of the present invention.
- reference numeral 3 denotes a recording medium having, for example, a disk-shaped protective layer and a disk-shaped recording layer that includes a recording track formed in a snoral shape or a concentric shape and is laminated on the protective layer. It is.
- this recording medium 3 includes CD, DVD, Blu-ray Disc, HD
- DVD or the like can be used.
- the data recording / reproducing system 1 includes a recording medium that rotates at a desired speed. These are apparatuses each having a function of recording information on a recording track of the recording medium 3 and a function of reproducing information recorded on the recording track of the recording medium 3.
- the recording track has at least one of lands and groups alternately arranged along the radial direction as one configuration example. At least one of them is meandered at a predetermined frequency, and a part thereof is phase-modulated, for example, so that information such as address information of the recording track is included in the modulation portion.
- the data recording / reproducing system 1 includes an optical pickup unit (optical head unit) 5 for recording and / or reproducing information by spot-irradiating light onto a recording track of a rotating recording medium 3. And a power adjusting unit 7 for adjusting the uniformity of the light irradiated on the recording medium 3 on the recording medium 3.
- optical pickup unit optical head unit
- power adjusting unit 7 for adjusting the uniformity of the light irradiated on the recording medium 3 on the recording medium 3.
- the data recording / reproducing system 1 includes the rotational speed control of the recording medium 3, the focus position control of the spot light irradiated onto the recording track of the recording medium 3 by the optical pickup unit 5, and the spot light with respect to the recording track.
- Servo driver 9 is provided as a servo control system for tracking control (tracking control).
- the data recording / reproducing system 1 includes a function for generating data corresponding to information to be recorded on the recording medium 3 (hereinafter referred to as recording data), and a recording medium obtained by the optical pickup unit 5.
- a recording / playback data processing unit 11 having a function of generating data corresponding to the information recorded in 3 (hereinafter referred to as playback data) is provided.
- the data recording / reproducing system 1 includes an optical pickup unit 5, a power adjusting unit 7, a servo driver 9, and a computer 13 for controlling the recording / reproducing data processing unit 11.
- the computer 13 is a first memory 13a such as an HDD (Hard Disk Drive), FLASH MEMORY or the like for storing data representing processing results and the like, and a main memory of the computer 13, such as a first memory. And a second memory 13b holding a plurality of programs P loaded from 13a.
- the plurality of programs P are programs that cause the computer 13 to execute the control operation.
- the computer 13 has a crystal oscillator 13c therein, and this crystal oscillator It is configured to execute the operation according to the clock (crystal clock) oscillated by the 13c.
- the optical pickup unit 5 emits laser light as information recording and Z or reproduction light, and drives and controls the LD unit 15.
- the LD driver 17 that controls the output waveform of the laser light output from the LD unit 15 and the LC (Light Control) described later as an element for adjusting the amount of laser light output from the LD unit 15
- a light amount adjusting element 19 configured to have a liquid crystal element force in which the light transmittance is changed by a change in applied voltage from the driver.
- the LD unit 15 and the light amount adjusting element 19 in the optical pickup unit 5 are such that the optical axis of the laser light guided through both elements is substantially parallel to the transparent layer surface of the recording medium 3. It is arranged to become.
- the light amount adjusting element 19 has a light transmittance of about 100% (attenuation rate is about 0%) in the initial state (non-voltage application state).
- the optical pickup unit 5 includes a beam splitter 21 disposed on the optical path of laser light that is output from the LD unit 15 and travels through the light amount adjusting element 19.
- the beam splitter 21 has a function of transmitting the laser beam traveling through the light amount adjusting element 19 and reflecting the light transmitted through a rising mirror described later.
- the optical pickup unit 5 includes a rising mirror 23 disposed on the optical path of the laser light that has passed through the beam splitter 21.
- the rising mirror 23 is configured to reflect the laser light transmitted through the beam splitter 21 in a direction orthogonal to the optical axis and directed to the recording medium 3.
- the optical pickup unit 5 supports the recording medium 3 so as to face the rising mirror 23 and so that the optical axis of the laser beam reflected by the rising mirror 23 is orthogonal to the surface of the transparent layer. And a spindle motor 25 for rotating the recording medium 3.
- the optical pickup unit 5 has an objective lens 27 interposed between the rising mirror 23 and the protective layer surface of the recording medium 3.
- the objective lens 27 focuses the laser beam reflected by the rising mirror 23 on the recording track of the recording medium 3 to produce a spot. It has the function of irradiating as light.
- the optical pickup unit 5 is configured to be able to move the objective lens 27 along at least the radial direction of the recording medium 3 and the direction away from the recording medium 3, and is electrically connected to the servo driver 9. And an actuator 29 connected to the.
- the actuator 29 is configured to adjust the focus position and tracking position of the optical spot by moving the objective lens 27 based on control from the servo driver 9.
- the objective lens 27 has a function of receiving light (reflected light) reflected from the recording track of the recording medium 3 and outputting it as parallel light having a predetermined beam diameter during reproduction.
- the rising mirror 23 has a function of reflecting the reflected light sent through the objective lens 27 and sending it to the beam splitter 21.
- the beam splitter 21 has a function of reflecting the reflected light transmitted through the rising mirror 23.
- the optical pickup unit 5 is arranged on the optical path of the reflected light reflected by the beam splitter 21, and receives the reflected light and converts it into an electrical signal (hereinafter referred to as an RF signal). Have 30.
- the power adjusting unit 7 is a laser beam emitted from the surface opposite to the LD unit output end in the package of the LD unit 15 (back side laser beam: laser beam and power emitted from the normal output end) Are placed on the optical path of the same laser beam), the power (intensity) of the back side laser beam is constantly monitored, and the monitoring result is output as a monitor signal (electrical signal for monitoring, for example, monitor current)
- a photodiode (hereinafter simply referred to as a monitor diode) 31 and an amplifier 33 which is electrically connected to the monitor diode 31 and amplifies the monitor signal output from the monitor diode 31 are provided.
- the amplifier 33 is electrically connected to the computer 13, and the computer 13 records the recording medium based on the monitor signal amplified by the amplifier 33 and the currently set light transmittance of the light amount adjusting element 19. It is possible to monitor the power of irradiation laser light on 3.
- the power adjustment unit 7 is electrically connected to the amplifier 33 and the computer 13.
- the sample and hold circuit (SZH) 35 is provided.
- the sample hold circuit 35 has a function of sampling and holding the value of the monitor signal output from the amplifier 33 when APC (Automatic Power Control) of the computer 13 is executed (when on).
- the power adjustment unit 7 includes an APC circuit 37 that is electrically connected to the sample hold circuit 35 and the LD driver 17.
- the APC circuit 37 uses the monitor signal value held by the sample and hold circuit 35 during APC execution, and the monitor signal value is a predetermined power value (power level) of the irradiation laser light on the recording medium 3.
- the drive current applied to the LD unit 15 via the LD driver 17 so as to substantially match the predetermined value corresponding to the output value of the laser beam output from the LD unit 15 (the output power level). (Including feedback).
- the power adjustment unit 7 includes a light amount adjustment element driver (LC driver) 38.
- the LC driver 38 has a function of controlling the transmittance of the light amount adjusting element 13 by controlling the voltage applied to the light amount adjusting element 13 under the control of the computer 5.
- the recording / reproduction data processing unit 11 is connected to the interface 41 for receiving recording data (bit string data) input from the connected device and electrically connected to the interface 41 at the time of recording.
- a buffer 43 that holds the recorded data, and a modem 45 that is electrically connected to the buffer 43.
- the interface 41, the notch 43, and the modulation / demodulation unit 45 are each electrically connected to the computer 13, and their operations are controlled by the computer 13, for example.
- the computer 13 has a linear velocity of the recording medium 3 (speed of laser light traveling on the medium 3 during recording and Z or reproduction; for example, 1 ⁇ speed, 2 ⁇ speed,..., 32 ⁇ speed, etc.)
- An input unit 47 for inputting various information such as setting information and commands to the computer 13 by a user operation is connected.
- the computer 13, the servo driver 9, and the modulation / demodulation unit 45 include a digital signal processor (DSP: Digital Signal Pro) that operates according to control from the computer 13. cessor) 49 is connected!
- DSP Digital Signal Pro
- the modulation / demodulation unit 45 performs, for each predetermined unit, the recording data held in the buffer 43 based on the control of the computer 13 (in this embodiment, an ECC (Error Correlation Code) block). It has a function of adding an error correction code ⁇ for example, a PI (Parity Inner) correction code and a Z or PO (Parity Outer) correction code ⁇ to each unit ⁇ .
- ECC Error Correlation Code
- ECC block represents a unit of data recorded on the recording medium 3.
- the ECC block has 182 bytes (17
- the recording data of each frame of each ECC block after the error correction code is added is extracted from the wobble signal force obtained by the meandering recording track scan by the computer 13.
- the signal level is converted from a noise level to a low level or a signal that changes from a low level to a high level in the case of the value of the bit.
- the converted data ⁇ NRZI (Non Return to Zero Inverted) data ⁇ is data corresponding to the recording signal (record mark, pit) written to the recording track of the recording medium 3.
- the bit length (run length; recording signal length) until the edge of the NRZI data changes varies depending on the modulation method or the like.
- NT ⁇ N is the type of recording medium 3
- the recording medium 3 is a DVD, it is configured to be an integer of 3 or more, and when the recording medium power is 3 ⁇ 4Lu-ray DISC, an integer of 2 or more, and T is a period of a wobble clock).
- the power level on the recording medium 3 is automatically feedback-controlled to the recording power level on the recording track of the recording medium 3, and the output waveform is deformed (for example, multi-track). Pulsed laser light is irradiated, and a recording signal corresponding to the run length of each NRZI data is written on the recording track of recording medium 3. It has become so.
- This laser light output waveform control (multi-pulse control) is called a write strategy, and the width of the multi-pulse is appropriately set according to the power level of the laser light on the recording medium 3. Further, it is possible to prevent the deterioration of the recording signal due to the continuous irradiation of the laser beam having a constant power level.
- the LD driver 17 controls the drive current (DC) based on the power control command sent from the APC circuit 37, and based on the superimposed frequency control command sent from the computer 13. For example, a frequency of the order of several hundred MHz is set, and as a high-frequency current having a set superposition frequency, for example, an intermittent high-frequency current with a positive duty (on duty) in a sine wave of less than 50% is superimposed on the drive current.
- the function F2 is given to the LD unit 15 to drive the LD unit 15. This function F2 causes the LD unit 15 to output high-frequency superimposed laser light with an on-duty of less than 50%.
- the reflected light reflected from the corresponding recording signal is detected as an RF signal via the light receiving unit 30 by the operation of the optical pickup unit 5.
- the modulation / demodulation unit 45 amplifies the RF signal obtained by the light receiving unit 30 during reproduction, and from the amplified RF signal, a wobble modulation signal, a tracking error signal representing an error (error) of tracking control, It also has a function to generate a focus error signal that represents an error in focus control.
- the modem unit 45 has a function of demodulating (decoding) the RF signal power reproduction data (bit string data: NRZI data) based on an RF clock obtained by the DSP 49 described later. .
- the demodulated playback data is sent to the computer 13, where the computer 13 performs error detection processing, judgment processing for determining whether the detected error is correctable, and error correction when correction is possible. Correction processing or the like is performed.
- the reproduction data after the correction processing is held in the buffer 43 by the processing of the computer 13.
- the interface 41 has a function of outputting reproduction data held in the buffer 43 to the information output device according to the control of the information output device connected to the interface 41! / RU
- the DSP 49 is set by the input unit 47 and passed through the computer 13. Based on the information, a linear velocity setting unit 49a for sending a linear velocity command corresponding to the linear velocity setting information to the servo driver 9 is provided.
- the DSP 49 has a PLL (Phase Locked Loop) module 49b for outputting a clock accurately synchronized with the input signal.
- PLL Phase Locked Loop
- This PLL module 49b includes a PLL circuit 49b1 that extracts an RF clock from the input NRZI data, a PLL circuit 49b2 that generates a double wobble clock from the input wobble clock, and an input crystal clock. And a PLL circuit 49b3 for generating a double crystal clock.
- the PLL circuit 49bl includes a digital phase comparator, a digital loop filter, a digital VCO (Voltage Controlled Oscillator), and a frequency divider.
- the NRZI data and the digital VCO force input to the digital phase comparator are also output, and the frequency is divided by the frequency divider into lZm (m : positive integer).
- the phase difference from the digital data is calculated by the digital phase comparator, and this phase difference data is input to the digital VCO via the digital loop filter.
- a clock whose frequency is adjusted so that the input phase difference data becomes zero is fed back to the digital phase comparator via a frequency divider.
- a clock (RF clock) synchronized with the phase of the input NRZI data (PLL lock) is output. Note that this RF clock may be multiplied after the PLL circuit 49bl outputs.
- the configurations of the PLL circuits 49b2 and 49b3 are substantially the same as the configuration of the PLL circuit 49bl, and the double crystal clock and the double wobble clock are output from the PLL circuits 49b2 and 49b3, respectively.
- the DSP 49 has a selector 49c that selects any one of the RF clock, the double wobble clock, and the double crystal clock generated by the PLL module 49b as a reproduction clock.
- the servo driver 9 drives and controls the spindle motor 25 in accordance with the linear velocity command from the linear velocity setting unit 49a of the DSP 49, and keeps the linear velocity set and inputted to the recording medium 3 by the input unit 47 constant.
- Function to rotate while (CLV: Constant Linear Velocity), or It has a function of rotating while keeping the angular velocity constant (CAV: Constant Angular Velocity) based on the set linear velocity.
- the servo driver 9 controls the actuator 29 based on the tracking error signal and the focus error signal obtained by the modem unit 45, thereby focusing the spot light irradiated on the recording track of the recording medium 3. It has a function to perform position control and tracking control respectively!
- the computer 13 to the LC driver 38 serve as the light amount adjusting element 19 configured to change the light amount of the output laser light according to control information applied from the computer 13 via the LC driver 38.
- the present invention is not limited to this configuration.
- variable optical attenuator ⁇ variable ND (Neutral Density ) Filters, etc. ⁇
- polarizing elements wavelength plates, liquid crystal elements, etc.
- beamsplitters It is also possible to use elements.
- a light amount adjusting unit according to the present invention by arranging a polarizing element instead of the light amount adjusting element 19 in Fig. 2 and combining the beam splitter 21.
- the optical axis direction (polarization direction) of the polarization element is changed by a predetermined angle from the polarization direction of the incident laser light by the control information applied from the computer 13 via the driver, and the polarization element passes through this polarization element.
- the light transmittance of the incident laser light after passing through the polarizing element and the beam splitter 21 is changed by separating the predetermined amount of light in the subsequent laser light and the remaining amount of light by the beam splitter 21. Can do.
- the computer 13 performs the control process of the LD driver 17 and the light amount adjustment element 19 in the optical pickup unit 5, the control process of the power adjustment unit 7, and the control process of the servo driver 9. And the process relating to error detection and / or correction in the recording / reproduction data processing unit 11 is executed according to the corresponding program P loaded in the second memory 13b.
- step S1 the computer 13 executes a recording medium reproduction process in a state where the light transmittance of the light amount adjusting element 19 is set to 100% which is an initial ratio.
- the light transmittance of the light amount adjusting element 19 being 100% means the light transmittance of the light amount adjusting element 19 in the voltage non-application state.
- the computer 13 controls the spindle motor 25 via the DSP 49 and the servo driver 9 to rotate the recording medium 3 at the linear velocity set and input by the input unit 47.
- the power level of the irradiation laser beam on the recording medium 3 is set to a predetermined level for reproduction (hereinafter referred to as the reproduction power level), and the APC on control of the sample hold circuit 35 is performed based on the set reproduction power level, Further, a superposition frequency control command is transmitted to the LD driver 17 with the predetermined frequency as the superposition frequency (eg, the superposition frequency fl on the order of several hundred MHz).
- the sample hold circuit 35 samples and outputs the monitor signal value detected by the monitor diode 31 and output from the amplifier 33 to the APC circuit 37.
- the APC circuit 37 sends to the LD driver 17 a power control command for making the monitor power level corresponding to the sampled and held monitor signal value substantially coincide with the reproduction power level.
- the LD driver 17 controls the drive current based on the power control command sent from the APC circuit 37, and has a predetermined amplitude having the superimposed frequency fl based on the superimposed frequency control command sent from the computer 13.
- the high-frequency current for example, the intermittent high-frequency current IoutlO with an on-duty of less than 50% in the sine wave is superimposed on the drive current, and the LD unit 15 To drive the LD unit 15.
- the LD unit 15 power, and the on-duty less than 50%, the high frequency superimposed laser beam is output.
- the operation of the optical pickup unit 5 irradiates the recording signal written on the recording track of the recording medium 3 with the laser beam superimposed on the high frequency.
- the power of the irradiation laser beam on the recording medium 3 is maintained substantially constant at the reproduction power level by the APC control described above.
- the laser light applied to the recording track of the recording medium 3 is converted into wobble signal force recognized address information obtained by scanning the meandering recording track by the computer 13 by the operation of the optical pickup unit 5 by the computer 13. Based on this, the playback start address is searched by the laser beam.
- step S1 the computer 13 monitors the linear velocity of the recording medium 3 via the servo driver 9, and determines whether the linear velocity is equal to or higher than the threshold velocity (step S1). S 2).
- step S2 determines whether the result of determination in step S2 is NO, that is, if the monitor linear velocity is less than the threshold velocity.
- the computer 13 indicates that the recording signal (its edge) is laser at the current reproduction linear velocity. It is determined that the laser beam scanning position does not pass during the light-off period, in other words, the recording signal can be read by the laser beam, and the process is terminated.
- step S2 determines whether the result of determination in step S2 is YES, that is, if the monitor linear velocity is equal to or higher than the threshold velocity. If the result of determination in step S2 is YES, that is, if the monitor linear velocity is equal to or higher than the threshold velocity, the computer 13 indicates that the recording signal (the edge) is at the laser beam off period at the current reproduction linear velocity. In other words, it is determined that there is a possibility that the recording signal may not be read by the laser beam, and the process proceeds to step S3.
- step S3 the computer 13 reproduces, as a superposition frequency control command, a process of transmitting a superposition frequency increase command having a superposition frequency f2 higher than the superposition frequency fl to the LD driver 17, and reproduces the superposition frequency fl.
- One of the processes of sending a double clock clock as a clock or a command to synchronize with the double crystal clock (reproduced clock synchronization command) to the LD driver 17A and DSP 49 is executed.
- the LD driver 17A While controlling the drive current based on the power control command sent from the APC circuit 37, the frequency fl of the intermittent high-frequency current I outlO superimposed on the drive current based on the superimposed frequency increase command The frequency is increased to the frequency f 2 corresponding to the increase command (see Fig. 2; superposition frequency setting function F1).
- the DSP 49 selects the double wobble clock or the double crystal clock through the selector 49c and supplies the selected clock to the LD driver 17 as the reproduction clock. Send.
- the LD driver 17 controls the drive current based on the power control command sent from the APC circuit 37, and based on the reproduction clock synchronization command.
- the frequency fl of the intermittent high-frequency current lout 10 superimposed on the drive current is synchronized with the frequency of the reproduction clock (double double clock Z double double crystal clock) sent from the DSP 49.
- the computer 13 determines whether or not the laser beam is currently being searched for a reproduction start address, in other words, whether or not an RF signal corresponding to the reflected light from the recording medium 3 has been transmitted. (Step S4).
- step S4 determines that the playback start address search is currently being performed, and proceeds to step S5.
- the frequency of the intermittent high-frequency current IoutlO set in step S3 is maintained.
- the reproduction start address force is increased in the track traveling direction based on the irradiated laser beam.
- the recorded signal force recorded along the reflected light is detected as an RF signal through the light receiving unit 30 by the operation of the optical pickup unit 5.
- the detected RF signal is decoded as ECC block reproduction data (bit string data) via the modulation / demodulation unit 45, and then transmitted to the computer 13. After error correction processing, information is output via the buffer 43 and the interface 41. Output to the device.
- step S4 determines whether an RF signal has been transmitted. If the result of determination in step S4 is YES, that is, if it is determined that an RF signal has been transmitted, the computer 13 proceeds to step S6 and executes RF clock synchronization processing. To do. [0095] Fig. 4 shows the RF clock synchronization processing of step S6.
- the computer 13 controls the DSP 49 as step S6al to determine whether the NRZI data is PLL-locked by the PLL pull-in of the NRZI data (whether the input / output of the PLL 49b is phase-synchronized). To do.
- step S6al If the result of the determination in step S6al is NO, that is, if it is determined that the lock is released, the computer 13 controls the DSP 49 to adjust the frequency of the clock in the digital VCO of the PLL 49bl (step S6a2 ), Move to step S6al, and execute the PLL lock determination process in step S6a 1 again.
- the computer 13 issues a command (regenerated clock synchronization command) to synchronize the superimposed frequency fl with the frequency of the RF clock. Transmit to DSP49 and LD driver 17 (step S6a3).
- the DSP 49 selects the RF clock output from the PLL 49bl via the selector 49c, and transmits the selected RF clock to the LD driver 17 as a recovered clock.
- the LD driver 17 controls the drive current based on the power control command sent from the APC circuit 37, and based on the reproduction clock synchronization command.
- the frequency fl of the intermittent high-frequency current lout 10 superimposed on the drive current is synchronized with the frequency f 3 of the reproduction clock (RF clock) sent from the DSP 49.
- FIG. 5 shows intermittent high-frequency currents IoutlO and Ioutll superimposed on the drive current Id from the APC circuit 37 by the processing of step S2 and step S6 (6al to 6a3) of the computer 13.
- LD unit corresponding to intermittent high-frequency current IoutlO and Ioutll 15 laser light output PoutlO and Poutll and playback start address force are also recorded in multiple recording marks (recording pits) written along the track traveling direction. ) And the NRZI data obtained with the multiple recording mark strengths.
- step S2 if the monitor linear velocity is greater than or equal to the threshold velocity as a result of the determination in step S2 (step S2 ⁇ YES), the laser light output waveform shown in Fig. 1 is compared with the recording signal (each recording mark). There is a risk that the recorded signal will pass during the laser beam off period.
- the high-frequency current IoutlO is maintained in a state where the power of the irradiation laser light on the recording medium 3 is maintained substantially constant at the reproduction power level by the APC on control. Is superimposed on the drive current as a high-frequency current Ioutll in a state where the superposition frequency fl is synchronized with the frequency f 3 of the reproduction clock (RF clock).
- the laser light output timing from the LD unit 15 is recorded as shown in FIG. It can be synchronized with the laser beam scanning position passing timing of each recording mark edge of the signal.
- each recording mark of the recording signal always passes the laser beam scanning position when the laser beam output is on, so that the recording signal can be read reliably. Monkey.
- the reproduction linear velocity of the recording medium 3 is set to a velocity at which the recording signal may pass through the laser beam scanning position during the laser beam off period.
- the frequency of superposition of the intermittent high-frequency current with respect to the drive current of the LD unit 15 is synchronized with the frequency of the extracted RF clock based on the recorded RF signal force.
- the recorded signal can be read reliably.
- the driving current of the recording track is not only during the reading of the recorded recording signal, but also during the search of the playback start address. It is synchronized with the force to raise the frequency of the intermittent high-frequency current superimposed on the frequency of the playback clock ( ⁇ double wobble clock Z ⁇ double crystal clock) sent from DSP49.
- the superposition frequency when the recording signal is read from the search time, the superposition frequency can be quickly shifted to a state in which the superposition frequency is synchronized with the RF clock. As a result, it is possible to quickly change the intermittent high-frequency current superimposed on the drive current when the address search power shifts to reading each recorded signal. become.
- the superimposition frequency is changed from the synchronized state of the double wobble clock Z to the double frequency clock when shifting to the time of reading the recording signal at the time of search. It is possible to move quickly and smoothly to the synchronized state.
- a data recording / reproducing system according to a second embodiment of the present invention will be described with reference to the drawings.
- the hardware components of the data recording / reproducing system according to the second embodiment are substantially the same as the hardware configuration of the data recording / reproducing system 1 according to the first embodiment. A description thereof will be omitted or simplified.
- the computer 13 when reproducing the recording data recorded on the recording track of the recording medium 3, the computer 13 is loaded at least into the second memory 13b.
- the processing shown in FIG. 6 is executed instead of the processing shown in FIG.
- the process shown in FIG. 6 is executed for each ECC block of recording data to be reproduced starting from the reproduction start address.
- step S4 of the computer 13 in the present embodiment is the same as the processing up to steps S1 to S4 shown in FIG. 3, the description thereof is omitted.
- step S4 If the result of determination in step S4 is NO, the computer 13 executes the process of step S5 shown in FIG.
- step S4 determines whether an RF signal has been transmitted. If the result of determination in step S4 is YES, that is, if it is determined that an RF signal has been transmitted, the computer 13 proceeds to step S10 shown in FIG.
- step S10 the computer 13 obtains an error rate as reproduction characteristics based on the transmitted reproduction data of the ECC block, and determines whether or not the obtained error rate is equal to or greater than a predetermined threshold value.
- the reproduction characteristics in this embodiment are the recording / reproduction data processing unit 11 and the combination. This is an index for evaluating the reproduction data obtained by the user 13. For example, in this embodiment, an error rate indicating the ratio of the PI error (number of error bytes in each ECC block Z number of normal bytes) indicating the number of error noises for all rows in each ECC block is used as a reproduction characteristic. .
- step S10 determines whether the result of determination in step S10 is NO, that is, if the error rate is less than the predetermined threshold. If the result of determination in step S10 is NO, that is, if the error rate is less than the predetermined threshold, the computer 13 determines that the corresponding ECC block is in a reproducible state, and ends the process.
- step S10 determines that the corresponding ECC block has become difficult to reproduce and proceeds to step S6. Then, by executing the RF clock synchronization process described above (see Figure 3; Step S6), the laser beam output timing from the LD unit 15 is changed to the laser beam scanning position passing timing of each recording mark edge in the recording signal. (See Figure 5).
- the reproduction linear velocity of the recording medium 3 is set to a velocity at which the recording signal may pass through the laser beam scanning position during the laser beam off period. Even when the error rate is equal to or higher than a predetermined threshold value indicating that reproduction is difficult, as described in the first embodiment, the superposition frequency of the intermittent high-frequency current with respect to the drive current of the LD unit 15 is changed according to the speed change. By synchronizing with the frequency of the RF clock extracted from the RF signal obtained based on the recording signal, the recording signal can be reliably read. As a result, as in the first embodiment, it is possible to provide the data recording / reproducing system 1 without skipping the recording signal while improving the reproducing performance by increasing the reproducing linear velocity.
- a data recording / reproducing system according to a third embodiment of the present invention will be described with reference to the drawings.
- the hardware components of the data recording / reproducing system according to the third embodiment are substantially the same as the hardware configuration of the data recording / reproducing system 1 according to the first embodiment. A description thereof will be omitted or simplified.
- the recording When the recorded data recorded in the memory is played back, the computer 13 performs the process shown in FIG. 7 instead of the process shown in FIG. 3 according to at least one program P loaded in the second memory 13b. Execute.
- step S2 of the computer 13 in the present embodiment is the same as the processing up to steps S1 to S2 shown in FIG.
- step S2 determines that the recording signal is at the laser beam scanning position during the laser beam off period at the current reproduction linear velocity. In other words, it is determined that the recording signal may become unreadable by the laser beam, and the process proceeds to step S20 shown in FIG.
- step S20 the computer 13 adjusts the amount of light via the LC driver 38 while executing APC on control, that is, maintaining the power of the irradiation laser light on the recording medium 3 substantially constant.
- the voltage applied to the element 19 is controlled to reduce the light transmittance of the light quantity adjusting element 19 to a predetermined value (for example, 50%).
- the light transmittance of the light amount adjusting element 19 is 50%.
- the ratio between the monitor power level when the voltage is not applied to the light amount adjusting element 19 (transmittance 100%) and the monitor power level when controlling the applied voltage. Means approximately 50%.
- the emission power of the laser light output from the LD unit 15 is increased by the reduction of the light transmittance of the light quantity adjusting element 19 and the APC on control (the constant control of the irradiation laser light).
- the computer 13 executes the processing of steps S3 to S6 shown in FIG. 3 to determine the laser beam output timing from the LD unit 15 by scanning the laser beam at each recording mark edge in the recording signal. Synchronize with the position passing timing (see Fig. 5).
- the irradiation laser beam on the recording medium 3 While maintaining the power of the laser beam approximately constant, the LD noise can be reduced by increasing the output power of the LD, and the laser beam can be turned on and off intermittently via the LD unit 15. As a result, it is possible to improve reproduction performance while preventing deterioration of the recording layer of the recording medium 3. it can.
- a data recording / reproducing system according to a fourth embodiment of the present invention will be described with reference to the drawings.
- the hardware components of the data recording / reproducing system according to the fourth embodiment are substantially the same as the hardware configuration of the data recording / reproducing system 1 according to the first embodiment. A description thereof will be omitted or simplified.
- the computer 13 when reproducing the recording data recorded on the recording track of the recording medium 3, the computer 13 is loaded at least into the second memory 13b. According to one program P, the processing shown in FIG. 8 is executed instead of the processing shown in FIG.
- step S2 of the computer 13 in the present embodiment is the same as the processing up to steps S1 to S2 shown in FIG.
- step S2 determines that the recording signal is at the laser beam scanning position during the laser beam off period at the current reproduction linear velocity. 8 in other words, it is determined that there is a possibility that the recording signal cannot be read by the laser beam, and the process proceeds to step S20 shown in FIG.
- step S20 the computer 13 adjusts the amount of light via the LC driver 38 while executing the APC on control, that is, maintaining the power of the irradiation laser light on the recording medium 3 substantially constant.
- the voltage applied to the element 19 is controlled to reduce the light transmittance of the light quantity adjusting element 19 to a predetermined value (for example, 50%).
- the emission power of the laser light output from the LD unit 15 is increased by reducing the light transmittance of the light amount adjusting element 19 and by controlling APC on (constant control of the irradiated laser light).
- step S4 If the result of the determination at step S4 is NO, the computer 13 executes the process at step S5 shown in FIG.
- step S4 determines whether or not an RF signal has been transmitted. If the result of determination in step S4 is YES, that is, if it is determined that an RF signal has been transmitted, the computer 13 proceeds to step S10 shown in FIG. [0139] In step S10, the computer 13 obtains an error rate as a reproduction characteristic based on the transmitted reproduction data of the ECC block, and determines whether or not the obtained error rate is equal to or greater than a predetermined threshold value.
- step S10 determines whether the result of determination in step S10 is NO, that is, if the error rate is less than the predetermined threshold. If the result of determination in step S10 is NO, that is, if the error rate is less than the predetermined threshold, the computer 13 determines that the corresponding ECC block is in a reproducible state, and ends the process.
- step S10 determines that the corresponding ECC block has become difficult to reproduce and proceeds to step S6. Then, by executing the RF clock synchronization process described above (see Figure 3; Step S6), the laser beam output timing from the LD unit 15 is changed to the laser beam scanning position passing timing of each recording mark edge in the recording signal. (See Figure 5).
- the reproduction linear velocity of the recording medium 3 is set to a velocity at which the recording signal may pass through the laser beam scanning position during the laser beam off period. Even when the error rate is equal to or higher than a predetermined threshold value indicating that reproduction is difficult, as described in the first embodiment, the superposition frequency of the intermittent high-frequency current with respect to the drive current of the LD unit 15 is changed according to the speed change. By synchronizing with the frequency of the RF clock extracted from the RF signal obtained based on the recording signal, the recording signal can be reliably read. As a result, as in the first embodiment, it is possible to provide the data recording / reproducing system 1 without skipping the recording signal while improving the reproducing efficiency by increasing the reproducing linear velocity.
- the LD noise is reduced by increasing the output power of the LD while maintaining the power of the irradiation laser light on the recording medium 3 substantially constant, and the LD unit.
- the laser beam can be turned on and off intermittently via 15. As a result, the reproduction performance can be improved while preventing the recording layer of the recording medium 3 from being deteriorated.
- the LD driver 17 uses the intermittent high frequency current superimposed on the drive current of the LD unit 15 based on the superimposed frequency increase command Z reproduction clock synchronization command of the computer 13.
- the present invention is limited to this configuration. It is not specified.
- the computer 13 uses the current attenuation frequency characteristic related to the current transfer between the LD driver 17 and the LD unit 15 (for example, the current of the wiring between the LD driver 17 and the LD unit 15). Data representing the attenuation frequency characteristic) is stored in advance in the memory 13a.
- step S3A corresponding to step S3 of FIG. 3
- the computer 13 transfers the current from the LD driver 17 to the LD unit 15 based on the superposed frequency change as shown in FIG.
- the current attenuation frequency characteristic data stored in the memory 13a is also obtained.
- step S3B the computer 13 transmits a correction command representing the correction current amount for canceling the obtained current attenuation amount to the LD driver 17 in addition to the overlap frequency increase command Z reproduction clock synchronization command. To do.
- the LD driver 17 controls the drive current based on the power control command sent from the APC circuit 37, and controls the drive current based on the superimposed frequency increase command Z reproduction clock synchronization command sent from the computer 13.
- the superposition frequency f 1 of the intermittent high-frequency current IoutlO superimposed on is changed, and the amplitude of the intermittent high-frequency current IoutlO is increased by the amount of correction current in the correction command.
- the level of the high-frequency modulated laser beam output from the LD unit 15 can be always set to ON, and the amount of current attenuation in the transfer from the LD driver 17 to the LD unit 15 of intermittent high-frequency current can be set. It is possible to correct this.
- step S6a3 in this embodiment and the process equivalent to step S3 and step S6a in the other embodiments, the process of steps S3A and S3B can be performed.
- an error in each ECC block is used as a reproduction characteristic that serves as an index for evaluating the reproduction data obtained by the recording / reproduction data processing unit 11 and the computer 13.
- Power Using Rate The present invention is not limited to this configuration, and various data can be used as long as it serves as the reproduction data evaluation index. For example, jitter representing the rate of change between the reproduced data and the RF clock extracted from the reproduced data force can be used as the reproduction characteristic.
- control processing of the light amount adjustment element 19 in the optical pickup unit 5, the control processing of the power adjustment unit 7, the control processing of the servo driver 9, and Power configured to cause the computer 13 to execute processing relating to error detection and Z or correction in the recording / reproduction data processing unit 11 according to the corresponding program P.
- the present invention is not limited to the above configuration, for example, two units It is also possible to carry out the decentralization by using the above computers.
- the superimposition frequency setting function F1 in the LD driver is based on, for example, a program loaded from the outside (such as a computer), and is incorporated in the LD driver. It can also be executed as a superposition amount setting process and a superposition frequency setting process by a computer circuit such as a computer.
- the computer 13 when the monitored linear velocity is less than the threshold velocity corresponding to the shortest signal length, the computer 13 can read the recording signal with the laser beam. Determined force
- the present invention is not limited to this configuration.
- the computer 13 can always monitor the current playback linear velocity via the servo driver 9 during playback.
- the playback linear velocity increases toward the outer periphery of the recording medium 3, and exceeds the threshold speed (for example, 4 ⁇ speed) corresponding to the shortest signal length, for example, 3T.
- the computer 13 detects the increase in the reproduction linear velocity above the threshold speed and performs the above-described processes ⁇ frequency increase process Z reproduction clock synchronization process (see step S3), and RF clock synchronization process (step S6). Etc.) can be prevented from being skipped.
- step S6 the force that synchronizes the frequency of the intermittent high-frequency current superimposed on the drive current with the frequency of the RF clock.
- the present invention is limited to this configuration. is not.
- the double clock since the double clock is used as the recording clock, the double clock and the RF clock have the same frequency. Therefore, as the processing of step S6, the frequency of the intermittent high-frequency current superimposed on the drive current may be synchronized with the frequency of the wobble clock instead of the frequency of the RF clock! ,.
- the LD driver is turned on in a sine wave.
- the force configured to drive the LD unit 15 by superimposing an intermittent high frequency current having a duty of less than 50% on the drive current to the LD unit 15 is not limited to this configuration.
- the LD driver may use a periodic wave current other than a sine wave as the high-frequency current superimposed on the drive current, and the on duty can be set to an arbitrary ratio.
- the monitor diode is arranged on the optical path of the back side laser light emitted from the surface opposite to the output end of the LD unit in the LD unit package, and the knock Force configured to monitor side laser light
- the present invention is not limited to this configuration.
- it may be configured to constantly monitor the power of a part of the laser beam that has passed through the beam splitter 21 shown in FIG. 2 and passed through the rising mirror 23. It is also possible to arrange on the optical path between the optical system 27 and the optical path branched from the optical system between them and monitor the reflected light on the corresponding optical path.
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- Optics & Photonics (AREA)
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- Optical Recording Or Reproduction (AREA)
Abstract
Description
Claims
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US12/305,845 US7986596B2 (en) | 2006-06-20 | 2007-06-19 | Optical recording/reproducing method, system, and program |
| JP2008522464A JP4493717B2 (ja) | 2006-06-20 | 2007-06-19 | 光記録再生方法およびシステム、ならびにプログラム |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2006170664 | 2006-06-20 | ||
| JP2006-170664 | 2006-06-20 |
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| WO2007148672A1 true WO2007148672A1 (ja) | 2007-12-27 |
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| Application Number | Title | Priority Date | Filing Date |
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| PCT/JP2007/062272 Ceased WO2007148672A1 (ja) | 2006-06-20 | 2007-06-19 | 光記録再生方法およびシステム、ならびにプログラム |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US7986596B2 (ja) |
| JP (3) | JP4493717B2 (ja) |
| WO (1) | WO2007148672A1 (ja) |
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| JPH05120717A (ja) * | 1991-10-28 | 1993-05-18 | Fujitsu Ltd | 光デイスク装置 |
| JPH05197994A (ja) * | 1992-01-20 | 1993-08-06 | Ricoh Co Ltd | 半導体レーザのノイズ低減回路および光ディスク装置 |
| JPH0652569A (ja) * | 1992-07-30 | 1994-02-25 | Matsushita Electric Ind Co Ltd | レーザノイズ低減装置 |
| JPH0773497A (ja) * | 1993-09-02 | 1995-03-17 | Toshiba Corp | 光ディスク装置 |
| JPH0817065A (ja) * | 1994-06-30 | 1996-01-19 | Sony Corp | 光ピックアップ装置 |
| JP2001256652A (ja) * | 2000-03-09 | 2001-09-21 | Hitachi Ltd | 光ディスク装置 |
| JP2002230814A (ja) * | 2001-01-30 | 2002-08-16 | Yamaha Corp | 光ディスク記録再生装置 |
| JP2002358681A (ja) * | 2001-03-30 | 2002-12-13 | Asahi Glass Co Ltd | 光ヘッド装置 |
| JP2005108342A (ja) * | 2003-09-30 | 2005-04-21 | Pioneer Electronic Corp | 駆動装置及び情報処理装置 |
Family Cites Families (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| DE60027815T2 (de) * | 1999-05-19 | 2006-12-21 | Mitsubishi Kagaku Media Corp., Ltd. | Wiederbeschreibbares optisches Aufzeichnungsmedium und optisches Aufzeichnungsverfahren |
| JP4051590B2 (ja) * | 1999-06-30 | 2008-02-27 | ソニー株式会社 | 光情報再生装置及び光情報再生装置の光量設定方法 |
| CN1287362C (zh) * | 2002-02-13 | 2006-11-29 | 三菱化学媒体株式会社 | 可改写光记录媒体和光记录方法 |
| JP2007073147A (ja) * | 2005-09-08 | 2007-03-22 | Hitachi Ltd | 光ディスク装置及びそれに用いられる集積回路 |
-
2007
- 2007-06-19 JP JP2008522464A patent/JP4493717B2/ja not_active Expired - Fee Related
- 2007-06-19 US US12/305,845 patent/US7986596B2/en not_active Expired - Fee Related
- 2007-06-19 WO PCT/JP2007/062272 patent/WO2007148672A1/ja not_active Ceased
-
2009
- 2009-02-24 JP JP2009040916A patent/JP4493722B2/ja not_active Expired - Fee Related
- 2009-02-24 JP JP2009040917A patent/JP4493723B2/ja not_active Expired - Fee Related
Patent Citations (9)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH05120717A (ja) * | 1991-10-28 | 1993-05-18 | Fujitsu Ltd | 光デイスク装置 |
| JPH05197994A (ja) * | 1992-01-20 | 1993-08-06 | Ricoh Co Ltd | 半導体レーザのノイズ低減回路および光ディスク装置 |
| JPH0652569A (ja) * | 1992-07-30 | 1994-02-25 | Matsushita Electric Ind Co Ltd | レーザノイズ低減装置 |
| JPH0773497A (ja) * | 1993-09-02 | 1995-03-17 | Toshiba Corp | 光ディスク装置 |
| JPH0817065A (ja) * | 1994-06-30 | 1996-01-19 | Sony Corp | 光ピックアップ装置 |
| JP2001256652A (ja) * | 2000-03-09 | 2001-09-21 | Hitachi Ltd | 光ディスク装置 |
| JP2002230814A (ja) * | 2001-01-30 | 2002-08-16 | Yamaha Corp | 光ディスク記録再生装置 |
| JP2002358681A (ja) * | 2001-03-30 | 2002-12-13 | Asahi Glass Co Ltd | 光ヘッド装置 |
| JP2005108342A (ja) * | 2003-09-30 | 2005-04-21 | Pioneer Electronic Corp | 駆動装置及び情報処理装置 |
Also Published As
| Publication number | Publication date |
|---|---|
| JP4493722B2 (ja) | 2010-06-30 |
| JP4493723B2 (ja) | 2010-06-30 |
| JPWO2007148672A1 (ja) | 2009-11-19 |
| JP2009199711A (ja) | 2009-09-03 |
| US20100008198A1 (en) | 2010-01-14 |
| JP2009176412A (ja) | 2009-08-06 |
| JP4493717B2 (ja) | 2010-06-30 |
| US7986596B2 (en) | 2011-07-26 |
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