WO1999017282A1 - Procede et appareil de commande de recherche de piste d'un systeme a disque optique - Google Patents

Procede et appareil de commande de recherche de piste d'un systeme a disque optique Download PDF

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Publication number
WO1999017282A1
WO1999017282A1 PCT/KR1998/000279 KR9800279W WO9917282A1 WO 1999017282 A1 WO1999017282 A1 WO 1999017282A1 KR 9800279 W KR9800279 W KR 9800279W WO 9917282 A1 WO9917282 A1 WO 9917282A1
Authority
WO
WIPO (PCT)
Prior art keywords
signal
servo
track
jump
optical disc
Prior art date
Application number
PCT/KR1998/000279
Other languages
English (en)
Inventor
Hong Moon Bae
Original Assignee
Daewoo Electronics Co., Ltd.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from KR1019970049150A external-priority patent/KR19990026836A/ko
Priority claimed from KR1019970049168A external-priority patent/KR100234223B1/ko
Priority claimed from KR1019970049143A external-priority patent/KR19990026829A/ko
Application filed by Daewoo Electronics Co., Ltd. filed Critical Daewoo Electronics Co., Ltd.
Priority to JP2000514264A priority Critical patent/JP2001518675A/ja
Priority to EP98944321A priority patent/EP1023720A1/fr
Publication of WO1999017282A1 publication Critical patent/WO1999017282A1/fr

Links

Classifications

    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/08Disposition or mounting of heads or light sources relatively to record carriers
    • G11B7/085Disposition or mounting of heads or light sources relatively to record carriers with provision for moving the light beam into, or out of, its operative position or across tracks, otherwise than during the transducing operation, e.g. for adjustment or preliminary positioning or track change or selection
    • G11B7/08505Methods for track change, selection or preliminary positioning by moving the head
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/08Disposition or mounting of heads or light sources relatively to record carriers
    • G11B7/085Disposition or mounting of heads or light sources relatively to record carriers with provision for moving the light beam into, or out of, its operative position or across tracks, otherwise than during the transducing operation, e.g. for adjustment or preliminary positioning or track change or selection
    • G11B7/08505Methods for track change, selection or preliminary positioning by moving the head
    • G11B7/08529Methods and circuits to control the velocity of the head as it traverses the tracks
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/08Disposition or mounting of heads or light sources relatively to record carriers
    • G11B7/09Disposition or mounting of heads or light sources relatively to record carriers with provision for moving the light beam or focus plane for the purpose of maintaining alignment of the light beam relative to the record carrier during transducing operation, e.g. to compensate for surface irregularities of the latter or for track following
    • G11B7/094Methods and circuits for servo offset compensation
    • GPHYSICS
    • G11INFORMATION STORAGE
    • G11BINFORMATION STORAGE BASED ON RELATIVE MOVEMENT BETWEEN RECORD CARRIER AND TRANSDUCER
    • G11B7/00Recording or reproducing by optical means, e.g. recording using a thermal beam of optical radiation by modifying optical properties or the physical structure, reproducing using an optical beam at lower power by sensing optical properties; Record carriers therefor
    • G11B7/08Disposition or mounting of heads or light sources relatively to record carriers
    • G11B7/09Disposition or mounting of heads or light sources relatively to record carriers with provision for moving the light beam or focus plane for the purpose of maintaining alignment of the light beam relative to the record carrier during transducing operation, e.g. to compensate for surface irregularities of the latter or for track following
    • G11B7/0941Methods and circuits for servo gain or phase compensation during operation

Definitions

  • the optical pick-up unit can not jump to an actual target jump position since an over-jump or an under-jump can arise. Furthermore, despite the completion of the jump operation, a whole system of the optical disc player may enter into an unstable state due to an instantaneous oscillation or wavings of the optical pick-up unit even. Consequently, it will take a long time to initiate a normal reproduction from the track jump of the optical pick-up unit. Additionally, since the optical disc player performs the track jump without considering the characteristics of each optical disc, an accurate track search becomes no more possible.
  • a first method for controlling a track search of an optical disc which comprises the steps of: (i) reading out acceleration data about the optical disc which is currently loaded for reproducing programs recorded on the optical disc from a storage of acceleration information; (ii) implementing a track jump for an optical beam to enter into an area of a target track based on the first acceleration information; (iii) comparing a first signal which represents the target track position with a second signal which represents a current jumping track position for finding an 3 error in the track jump; (iv) updating the acceleration information in the storage with new acceleration information of the optical disc which has been compensated by the error to reduce errors in the track jump upon a next reproduction for the optical disc, based on said comparison; and (v) implementing an accurate search for the target track after the track jump by using the first signal and the error.
  • the present invention provides a second method for controlling a track search of an optical disc, which comprises the steps of: (a) reproducing said optical disc in a normal mode by using a first servo gain and a first servo off-set value which are stored in a data storage as servo control factors; (b) calculating a track jump distance between a current track and a target track which is pointed by a user's selection; (c) reading out a second servo gain and a second servo off-set value which corresponds to said track jump distance from said data storage; (d) implementing a track jump of an optical pick-up unit toward the target track of the optical disc; (e) implementing a servo control of the optical disc by using said second servo gain and said second servo off-set value based on an inspection as to the question of whether a jumping position of said optical pick-up unit is within an error limit from said target track; and (f) implementing the servo control of the optical disc by using said first servo gain and
  • the present invention provides a first apparatus for controlling a track search of an optical disc, which comprises: an optical pick-up unit for reading out data from said optical disc and outputting a data signal; a reproducing means for processing the data signal into a digital signal, and for outputting a reproduction position signal which represents a current reproduction position of said optical pick-up unit; a focusing servo means for implementing a focusing servo of said optical pick-up unit; a tracking servo means for implementing a tracking servo of said optical pick-up unit; a transferring servo means for transferring said optical pick-up unit; a storing means for holding a servo gain and a servo off-set value corresponding to a track jump distance of said optical disc; a control means for reading out a first servo gain and a first servo off- set value from said storing means, for controlling said focusing servo means and said tracking servo means to implement a servo control of said optical disc according to the first servo
  • the present invention provides a second apparatus for controlling a track search of an optical disc, which comprises: an optical pick-up unit for irradiating an optical beam onto the optical disc and for converting a reflected optical beam from the optical disc into an electric signal to output the electric signal; a tracking error signal generating means for outputting a tracking error signal which represents whether or not the optical beam hits accurately on a track center of the optical disc based on the electric signal from said optical pick-up unit; an inverting/non-inverting means for inverting or non-inverting the tracking error signal from said tracking error signal generating means; a peak holding means for holding a peak value of the tracking error signal from said inverting/non-inverting means to output a peak value signal of the tracking error signal; a reference level signal generating means for outputting a reference level signal corresponding to the peak value signal from said peak holding means; a first comparing means for comparing the level of the tracking error signal from said inverting/non-inverting means with the reference level signal
  • the optical disc system can reduce a jump error such as an over-jump and an under-jump of the optical pick-up unit and suppress the occurrence of an unstable reproduction due to an instantaneous shaking of the optical pick-up unit. Also, after the track jump operation of the optical pick-up unit, the optical disc system can reduce a delay time to initiate a normal reproduction of the optical disc. As a result of it, the optical disc system can execute the track search accurately and with stable.
  • FIG. 1 is a schematic section view showing a track jump position of an optical pick-up unit on an optical disc
  • FIG. 2 is a block diagram showing a circuit configuration of an apparatus for controlling a track search in an optical disc system according to a first embodiment of the present invention
  • FIG. 3 is a flowchart illustrating a method for controlling a track search of an optical disc system using the apparatus shown in FIG. 2;
  • FIG. 4 is a block diagram showing a circuit configuration of an apparatus for 6 controlling a track search in an optical disc system according to a second embodiment of the present invention
  • FIG. 5 is a flowchart illustrating a method for controlling a track search of an optical disc system using the apparatus shown in FIG. 4; and FIG. 6 is a block diagram for showing a circuit configuration of an apparatus for controlling a track search in an optical disc system according to a third embodiment of the present invention.
  • the apparatus for controlling a track search of an optical disc system has a key inputting section 10 for generating a key signal corresponding to a key operation by a user, a system control section 20 for controlling an operation of the optical disc system in response to the key signal from the key inputting section 10 and to signals from the members of an optical disc reproducing section 40, and a storing section 30 for storing acceleration information corresponding to an inter-track distance of the optical disc, an identification number of the optical disc, and updated acceleration information corresponding to the identification number.
  • the optical disc reproducing section 40 has an optical pick-up unit 41 for irradiating a laser beam onto the optical disc and for transforming the reflected beam from the optical disc into an electric signal to output, a tracking error signal detecting section 42 for detecting and outputting a tracking error signal which represents as to whether the laser beam accurately hits on the center track of the optical disc based on the electric signal from the optical pick-up unit 41, a tracking servo control section 43 for controlling the laser beam to accurately trace along the track of the optical disc, a motor driving section 44 for outputting an optical pick-up transferring signal in response to a control signal from the system control section 20, and an optical pick-up transferring motor 7
  • the system control section 20 interrupts the operation of the optical disc reproducing section 40.
  • the system control section 20 reads out the acceleration information corresponding to the identifying number of the optical disc D from the storing section 30, and controls a motor driving section 44 and an optical pick-up transferring motor 45 to convey the optical pick-up section 41 to the target track based on the accelerated velocity information that was read out.
  • the system control section 20 monitors a track jump position of the optical pick-up section 41 in response to the tracking error signal from the tracking error signal detecting section 42, detects a distance error between the actual-jumping position and the target track position of the optical pick-up section 41, and updates acceleration information based on the distance error.
  • FIG. 3 is a flowchart illustrating a method for controlling a track search of an optical disc by using the apparatus shown in FIG. 2.
  • the optical disc reproducing section 40 reads out a table-of-contents (TOC) information about the TOC area, which is located in the load-in area of the optical disc D, to provide the TOC information for the system control section 20.
  • the system control section 20 stores the TOC information in a memory field (not shown) in the system control section 20, or in the storing section 30 (step S102).
  • the TOC information includes position information of each track and the identifying number of the optical disc D.
  • the identifying number of the optical disk D is an absolute time of the optical disc which is read out from the TOC information of the optical disc D.
  • step SI 04 when the search key signal is provided by the user's operation from the key inputting section 10 during a reproduction mode of the optical disc D 8
  • step SI 06 the system control section 20 changes the operation mode into a stand-by mode for the user to set a target jump position.
  • the system control section 20 starts to search for the question of whether there is the updated acceleration information corresponding to the identifying number of the loaded optical disc D in the storing section 30 (step SI 10).
  • step SI 10 if the updated acceleration information does not exist, the system control section 20 reads out predetermined standard acceleration information (step SI 12). When the updated acceleration information, however, exists in the storing section in step SI 10, the system control section 20 reads out this updated acceleration information corresponding to the loaded optical disc D (step SI 14). The system control section 20 controls the motor driving section 44 and the optical pick-up transferring motor 45 to move the optical pick-up section 41 toward the target track position Tp' taht is adjacent to the target jump position Tp (step SI 16), based on either standard acceleration information or the updated acceleration information.
  • the target track position Tp' which is the track position closest to the target jump position Tp, can be obtained from the TOC information which is read out in step S102.
  • step SI 18 the system control section 20 detects out a current jumping position Tjl of the optical pick-up section 41 and compares the current jumping position Tjl with the target track position Tp'. If the position Tjl is equal to the target track position Tp', the system control section 20 has the absolute time of optical disc D read out in step SI 02 and the acceleration information used in step SI 16 to be saved in the storing section 30 (step S122). However, if the current jumping position Tjl is not equal to the target track position Tp', the system control section 20 calculates a distance error ⁇ t between the current jumping position Tjl and the target track position Tp', and compensates the acceleration information used in step SI 16 as many as the distance error ⁇ t. The system control section 20 has the updated acceleration information, together with the identifying number of the optical disc D, to be saved in the storing section 30 (step S122).
  • the system control section 20 makes the object lens move to the target jump position Tp 9 from the current jumping position Tjl and performs the control of the tracking servo control section 43.
  • the optical pick-up section 41 carries out an accurate search for the target jump position Tp under the control of the servo control section 43 by using the signal of the target track and the error in the track jump (step SI 24).
  • the apparatus for controlling the track search of the optical disc system has an optical pick-up unit 200, a focusing servo section 202, a tracking servo section 204, a transferring servo section 206, a reproducing section 208, a control section 210, and a storing section 212.
  • the optical pick-up unit 200 reads out program data from the optical disc D to output.
  • the focusing servo section 202 conducts the focusing servo control of the optical pick-up unit 200 based on a focusing gain and a focusing offset.
  • the tracking servo section 204 conducts the tracking servo control of the optical pick-up unit 200 based on a tracking gain and a tracking off-set value.
  • the transferring servo section 206 handles the movement of the optical pick-up unit 200.
  • the reproducing section 208 reproduces the data signal as a digital signal, and also outputs a reproducing position signal which represents a current reproducing position of the optical pick-up unit 200.
  • the storing section 212 stores the servo gain and the servo off-set corresponding to inter-track distance of the optical disc D.
  • the control section 210 fetches out the first servo gain and the first servo off-set from the storing section 212, and controls the focusing servo section 202 and the tracking servo section 204 to execute a servo control of the optical disc D according to the first servo gain and the first servo off-set.
  • control section 210 responsive to the reproducing position signal arising from the reproducing section 208 and the track jump signal generated by a user's operation, calculates a track jumping distance of the optical pick-up unit 200 from a currently reproducing track to a target track, and reads out a second servo gain and a second servo off-set which are correspondences to the calculated track jump distance from the storing section 212.
  • the control section 210 controls the transferring servo section 206 to make the optical pick-up unit 200 jump over the target track based on the second servo gain and the second servo off-set value.
  • the control section 210 controls the focusing servo section 10
  • the control section 210 uses the first servo gain and the first servo off-set for controlling the focusing servo section 202 and the tracking servo section 204.
  • FIG. 5 is a flowchart describing a method for controlling a track search of an optical disc by using the apparatus shown in FIG. 4.
  • the control section 210 reads out the first servo gain and the first servo off-set from the storing section 212, and the focusing servo section 202 and tracking servo section 204 implement the reproduction mode of the optical disc D with the first servo gain and the first servo off-set (step S300).
  • step S302 when the track jump signal is provided by the key inputting section 10 activated by the user's operation, the control section 210 calculates a distance between a current reproducing track and a target track which are the correspondences of the reproduction position signal from the reproducing section 208 and the track jump signal respectively (step S304).
  • the control section 210 reads out the second servo gain and the second servo off-set, which are the correspondences of the distance which is previously calculated in step S304, from the storing section 212 (step S306).
  • the control section 210 makes the optical pick-up unit 200 perform a track jump based on the calculated distance first (step S308).
  • the control section 210 controls the transferring servo section 206 to quit the track jump of the optical pick-up unit 200.
  • the focusing servo section 202 and the tracking servo section 204 under the control of the control section 210, implement the focusing servo of and the tracking servo of the optical pick-up unit 200 with the second servo gain and the second servo off-set.
  • the optical pick-up unit 200 becomes capable of reading out the program data normally from optical disc D, and, for the program reproduction of the optical disc D, provides the reproducing section 208 with the data that was read out.
  • control section 210 controls the focusing servo section 202 and the tracking servo section 204 to perform their servo operations with the first servo gain and the first servo off-set.
  • Embodiment 3 In FIG.
  • the apparatus for controlling a track search of the optical disc system has an optical pickup unit 400, a tracking error signal generating section 410, a phase compensating section 420, an inverting/non-inverting section 430, a peak holding section 440, a reference level signal generating section 450, a first comparing section 460, a jump signal generating section 470, a switching section 480, a control section 490, a driving section 500, a jump status detecting section 510, and a storing section 520.
  • the optical pick-up unit 400 irradiates a laser beam onto the optical disc D and converts an reflected beam from the optical disc D into an electric signal to output.
  • the tracking error signal generating section 410 produces a tracking error signal which indicates whether or not the laser beam accurately hits on the center track of the optical disc D based on the electric signal from the optical pick-up unit 400. In the event that the optical pick-up unit 400 crosses a track of optical disc D, the tracking error signal generating the section 410 generates a tracking error signal in a sinusoidal wave form.
  • the inverting/non-inverting section 430 responsive to a control signal from the control section 210, does either invert or not invert the tracking error signal from the tracking error signal generating section 410, and outputs the inverting signal or the non-inverting signal of the tracking error signal.
  • the inverting/non-inverting section 430 does not invert the tracking error signal when the optical pick-up unit 400 jumps toward a first jumping direction, i.e., a direction to the outer-radius, and inverts the tracking error signal when the optical pick-up unit 400 jumps toward the second jumping direction, i.e. , a direction to the inner-radius.
  • the peak holding section 440 holds a peak value of the tracking error signal from inverting/non-inverting section 430 and provides the peak value signal of the 12 tracking error signal to the reference level signal generating section 450.
  • the reference level signal generating section 450 responsive to the control signal from the control section 490, outputs a reference level signal which is the correspondence of the peak value signal from the peak holding section 440.
  • the first comparing section 460 compares the level of the tracking error signal arising from the inverting/non-inverting section 430 with the reference level signal from the reference level signal generating section 450.
  • the first comparing section 460 generates a first clock signal of a high level whenever the level of the tracking error signal goes down to the level of the reference level signal, and provides the first clock signal for the control section 490.
  • the control section 490 obtains an accelerating time and a decelerating time of the track jump of the optical pick-up unit 400 from the first clock signal provided by the first comparing section 460, and controls the jump signal generating section 470 to conduct the track jump corresponding to the accelerating time and the decelerating time.
  • the jump signal generating section 470 generates a control signal which is one of the first and the second direction jump signals, and provides the control signal to the switching section 480. Additionally, when the track jump of the optical pick-up unit 400 ends, the jump signal generating section 470 applies the jump signal to the driving section 500 in order to operate the driving section 500, and a jump completion signal to the jump status detecting section 510.
  • the switching section 480 switches its inner path in response to the control signal from the jump signal generating section 470, and provides one of the first and the second direction jump signals to the driving section 500.
  • the control signal from the jump signal generating section 470 is in a low level
  • the switching section 480 switches itself in order to have a path between the driving section 500 and the jump signal generating section 470.
  • the switching section 480 switches itself in order to have a path between the phase compensating section 420 and the jump signal generating section 470.
  • the driving section 500 responsive to one of the first and the second direction jump signals which are provided by the switching section 480 from the jump signal generating section 470, provides the driving signal for the optical pick-up unit 13
  • the jump status detecting section 510 has a peak detecting section 511, a first comparison level signal generating section 512, a second comparison level signal generating section 513, a second comparing section 514, a third comparing section 515, an OR-gate 516, a first flip-flop 517, and a second flip-flop.
  • the peak detecting section 511 detects a highest and a lowest peaks of the tracking error signal provided by the inverting/non-inverting section 430, and outputs the highest peak value signal and the lowest peak value signal.
  • the first comparison level signal generating section 512 outputs a high level comparison signal corresponding to the highest peak signal from the peak detecting section 511.
  • the second comparison level signal generating section 513 outputs a low level comparison signal corresponding to the lowest peak signal from the peak detecting section 511.
  • both the high level comparison signal and the low level comparison signal are the reference levels for checking the track jump status of the optical pick-up unit 400. This means that, if a system error occurs during the jump of the optical pick-up unit 400, the level of the tracking error signal goes up and down abnormally. Accordingly, when the level of the tracking error signal becomes higher than the high level comparison signal or it becomes lower than the low level comparison signal, the track jump status of the optical pick-up unit 400 can be regarded as an abnormal state.
  • the second comparing section 514 compares the tracking error signal from the inverting/non-inverting section 430 with the high level comparison signal from the first comparison level signal generating section 512, and outputs a second clock signal which has a high level when the tracking error signal is higher than the high level comparison signal.
  • the third comparing section 515 compares the tracking error signal from the inverting/non-inverting section 430 with the low level comparison signal from the second comparison level signal generating section 513, and outputs a third clock signal which has a high level when the tracking error signal is lower than the low level comparison signal.
  • the OR-gate 516 logically adds the second clock signal arising from the second comparing section 514 and the third clock signal arising from the third 14 comparing section 515 to provide the track jump status signal, which represents either a stable status or an unstable status of the track jump, to control section 490.
  • the OR-gate 516 provides a track jump status signal which has a high level to the control section 490. Consequently, when the track jump status signal which has the high level is provided from OR-gate 516, the control section 490 controls the jump signal generating section 470 to quit the track jump of the optical pick-up unit 400.
  • the first flip-flop 517 receives the second clock signal and the jump completion signal from the second comparing section 514 and the jump signal generating section 470 respectively, and provides an over-jumped status signal, which indicates whether the optical pick-up unit 400 jumped over or not, to the control section 490.
  • the second flip-flop 518 receives the third clock signal and the jump completion signal from the third comparing section 515 and the jump signal generating section 470 respectively, and provides an under-jumped status signal, which represents whether the optical pick-up unit 400 jumped under or not, to control the section 490.
  • the first flip-flop 517 and the second flip-flop 518 become enable at the rising edge of the jump completion signal from the jump signal generating section 470.
  • the storing section 520 holds a standard acceleration time and a standard deceleration time which represent the ratio of the peak value of the tracking error signal to the level of the reference level signal for each track jump.
  • the control section 490 controls the jump signal generating section 470 based on the track jump status signals from the jump status detecting section 510, the first clock signal from the first comparing section 460, and a standard value signal from the storing section 520.
  • the optical disc system can reduce a jump error such as an over-jump and an under-jump in the optical pick-up unit, and prevent 15 an unstable reproduction operation resulted from the instantaneous oscillation of or the bias of the optical pick-up unit from occurring. Also, after the track jump operation of the optical pick-up unit, the optical disc system can reduce a delay time for implementing a normal reproducing operation of the optical disc. As a result of it, the optical disc system can perform the track search accurately and stably.
  • a method for controlling a track search of an optical disc system comprising the steps of:
  • step (i) comprises the substeps of: (i-1) monitoring an input of a track search key signal;
  • step (iii) comprises the substeps of: (iii-1) storing said acceleration data which was used for said track jump in said

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  • Optical Recording Or Reproduction (AREA)

Abstract

L'invention se rapporte à un procédé et à un appareil permettant d'effectuer une recherche précise de piste dans un système à disque optique. Une section de commande du système à disque optique fonctionne en mode de lecture classique de disque optique en fonction d'une première valeur de gain d'asservissement et d'une première valeur de décalage d'asservissement. Cette section de commande calcule une distance de saut de piste entre une piste courante et une piste cible suivant qu'un signal de saut de piste a été entré ou non par un utilisateur, elle détermine une seconde valeur de gain d'asservissement et une seconde valeur de décalage d'asservissement correspondant à la distance de saut de piste calculée, elle exécute le saut de piste d'une unité de lecture optique en direction de la piste cible du disque optique, elle exécute une commande d'asservissement du disque optique en fonction de la seconde valeur de gain d'asservissement et de la seconde valeur de décalage d'asservissement suivant que la position après saut de l'unité de disque optique correspond ou non à la position de piste cible, et elle exécute la commande d'asservissement du disque optique correspondant à la première valeur de gain d'asservissement et à la première valeur de décalage d'asservissement suivant que la durée de commande d'asservissement qui utilise la seconde valeur de gain d'asservissement et la seconde valeur de décalage d'asservissement atteint ou non un laps de temps préétabli.
PCT/KR1998/000279 1997-09-26 1998-09-11 Procede et appareil de commande de recherche de piste d'un systeme a disque optique WO1999017282A1 (fr)

Priority Applications (2)

Application Number Priority Date Filing Date Title
JP2000514264A JP2001518675A (ja) 1997-09-26 1998-09-11 光ディスクシステムのトラック探索を制御するための方法および装置
EP98944321A EP1023720A1 (fr) 1997-09-26 1998-09-11 Procede et appareil de commande de recherche de piste d'un systeme a disque optique

Applications Claiming Priority (6)

Application Number Priority Date Filing Date Title
KR1997/49168 1997-09-26
KR1019970049150A KR19990026836A (ko) 1997-09-26 1997-09-26 광디스크 시스템의 트랙점프제어방법
KR1019970049168A KR100234223B1 (ko) 1997-09-26 1997-09-26 광디스크 시스템의 트랙점프장치
KR1997/49143 1997-09-26
KR1019970049143A KR19990026829A (ko) 1997-09-26 1997-09-26 광디스크 플레이어의 트랙 탐색 방법
KR1997/49150 1997-09-26

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PCT/KR1998/000279 WO1999017282A1 (fr) 1997-09-26 1998-09-11 Procede et appareil de commande de recherche de piste d'un systeme a disque optique

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JP (1) JP2001518675A (fr)
CN (1) CN1276901A (fr)
WO (1) WO1999017282A1 (fr)

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Publication number Priority date Publication date Assignee Title
EP1332494A2 (fr) * 2000-09-21 2003-08-06 GSI Lumonics Corporation Servom canisme commande num rique

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Publication number Priority date Publication date Assignee Title
EP0352131A2 (fr) * 1988-07-22 1990-01-24 Sharp Kabushiki Kaisha Dispositif de contrôle de saut de piste pour tête de lecture de disque optique
EP0536737A2 (fr) * 1991-10-09 1993-04-14 Nippon Conlux Co., Ltd. Appareil d'enregistrement/réproduction pour milieu d'enregistrement d'information optique
JPH09167359A (ja) * 1995-12-14 1997-06-24 Hitachi Ltd トラッキングおよびトラックジャンプ制御装置

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0352131A2 (fr) * 1988-07-22 1990-01-24 Sharp Kabushiki Kaisha Dispositif de contrôle de saut de piste pour tête de lecture de disque optique
EP0536737A2 (fr) * 1991-10-09 1993-04-14 Nippon Conlux Co., Ltd. Appareil d'enregistrement/réproduction pour milieu d'enregistrement d'information optique
JPH09167359A (ja) * 1995-12-14 1997-06-24 Hitachi Ltd トラッキングおよびトラックジャンプ制御装置

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
PATENT ABSTRACTS OF JAPAN, Vol. 97, No. 10, 1997; & JP 09167359 A (HITACHI LTD.) 31 October 1997. *

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1332494A2 (fr) * 2000-09-21 2003-08-06 GSI Lumonics Corporation Servom canisme commande num rique
EP1332494A4 (fr) * 2000-09-21 2005-04-20 Gsi Lumonics Corp Servomecanisme commande numerique

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JP2001518675A (ja) 2001-10-16
EP1023720A1 (fr) 2000-08-02
CN1276901A (zh) 2000-12-13

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