This application claims the priority of Korean Patent Application No. 2004-69998, filed on Sep. 2, 2004 in the Korean Intellectual Property Office, the disclosure of which is incorporated herein by reference.
1. Field of the Invention
The present invention relates to a disk, and more particularly, to a disk area type detection method and apparatus.
2. Description of the Related Art
Optical information storage media, such as optical disks, are widely used, in conjunction with an optical pickup apparatus which can record and reproduce information without physical contact.
Compact disks (CDs) and digital versatile disks (DVDs) are two types of optical disks, each with different recording capacity. Optical disks can also be broken down into read-only disks and recordable disks. Examples of the former are the 650 MB CD and the 4.7 GB DVD-ROM. Examples of the latter are the 650 MB CD-recordable (R) and CD-rewritable (RW), and the 4.7 GB DVD+R/RW, DVD-RAM and DVD-R/RW. Furthermore, a high-density optical disk (HD-DVD) with a recording capacity of 23 GB or more is under development.
An ordinary optical information storage medium employs a method by which data is recorded in the form of pits or a groove wobble. Here, the pits are openings formed through engraving a substrate during manufacture, and a pit signal is detected as a jitter value. The groove wobble is a groove formed on a substrate in the form of a wave, and a groove wobble signal is detected as a push-pull signal.
Referring to
Meanwhile, a push-pull signal generation method according to the conventional technology will now be explained briefly.
In a DPP method, a diffraction unit is aligned with a beam from a laser light source, and three spots by three beams of ninth order diffracted light (main beam) and first order diffracted light (side beams) are formed on an optical disk. Reflected light from each spot is received by a corresponding photo detector, and the main spot by the main beam is used for recording or reading a signal, while side spots by side beams are used for detecting tracking errors.
In the DPP method, by using the main spot and two side spots, a tracking error signal is generated. Referring to
MPP=(B+C)−(A+D)
SPP1=E−F
SPP2=G−H
DPP=MPP−k(SPP1+SPP2)
Here, the main push-pull (MPP) signal is the diagonal difference of signals generated in the main photo detector, and side push-pull (SPP)1 and SPP2 are the differences of signals generated in the respective side photo detectors. Also, k denotes a coefficient, and DPP denotes a tracking error signal generated by the DPP method.
Referring to
According to an aspect of the present invention, there is provided a disk area type detection method and apparatus enabling simple identification of a disk area type.
According to another aspect of the present invention, there is provided a disk area type detection method including detecting the difference between a side push-pull (SPP) 1 signal and an SPP2 signal based on the signals reflected from the disk; and determining whether an area of the disk is a storage medium related information area or a user data area, based on the detected difference.
According to another aspect of the present invention, the detecting of the difference may include detecting the peak-to-peak value of (SPP1−SPP2). At this time, determining the area type may include: if the peak-to-peak value of (SPP1−SPP2) exceeds a predetermined threshold, determining that the area is a storage medium related information area.
According to another aspect of the present invention, the detecting of the difference may include detecting the phase difference between SPP1 and SPP2. At this time, determining the area type may further include: if the phase difference is output as direct current (DC), determining that the area is a storage medium related information area.
According to another aspect of the present invention, the method may further include outputting a phase locked loop (PLL) condition based on the determination result, to a PLL.
According to another aspect of the present invention, there is provided a disk area type detection apparatus for detecting the type of an area of a disk, including a difference signal detection unit which detects the difference between an SPP1 signal and an SPP2 signal based on the signals reflected from the disk; and an area determination unit which determines whether an area on the disk is a storage medium related information area or a user data area, based on the detected difference.
Additional aspects and/or advantages of the invention will be set forth in part in the description which follows and, in part, will be obvious from the description, or may be learned by practice of the invention.
These and/or other aspects and advantages of the invention will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
Reference will now be made in detail to the present embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like reference numerals refer to the like elements throughout. The embodiments are described below in order to explain the present invention by referring to the figures.
Referring to
Accordingly, to an embodiment of the present invention is based on the fact that a user data area can be distinguished from a storage medium related information area by detecting the phase difference of sub-beams SPP1 and SPP2.
The optical recording and/or reproducing apparatus to which the present invention is applied includes an optical disk 410, a pickup 420, an RF and servo error generation unit 440, a servo control unit 450, a focus servo driving unit 460, a tracking servo driving unit 470, a slide servo driving unit 480, a slide motor 430, and a PLL 490.
The pickup 420 includes an optical system including a laser diode, an optical detector, a variety of lenses, and a focus/tracking actuator. According to tracking and focus control of the servo control unit 450, a light beam is condensed onto an object lens, and the pickup 420 directs the light beam onto the track of the optical disk 410. Also, light reflected from the recording surface of the optical disk 410 is condensed again onto the object lens and directed onto the optical detector, in order to detect a focus error signal and a tracking error signal.
The photo detector includes a plurality of photo detecting devices and outputs an electric signal in proportion to the amount of light obtained by each photo detecting device, to the RF and servo error generation unit 440.
The RF and servo error generation unit 440 generates an RF signal for reproducing data, a focus error (FE) signal and a tracking error (TE) signal for servo control, from the electrical signal output from each photo detecting device of the photo detector.
The generated RF signal is output to a data decoder (not shown), and the focus error (FE) signal and the tracking error (TE) signal are output to the servo control unit 450.
The servo control unit 450 processes the focus error (FE) signal and outputs a driving signal for focusing control, to the focus servo driving unit 460, and processes the tracking error (TE) signal and outputs a driving signal for tracking control, to the tracking servo driving unit 470.
The focus servo driving unit 460 moves the pickup 420 up and down to follow the disk, by driving the focus actuator in the pickup 420 such that a focus is formed on the surface of the disk 410 according to the upward and downward movement together with the rotation of the disk 410.
The tracking servo driving unit 470 moves the object lens of the pickup 420 radially by driving the tracking actuator in the pickup 420, such that the beam follows the track.
The RF and servo error generation unit 440 includes a tracking error signal generation circuit and also an area detection unit 441, which detects whether the pickup 420 is in the user data area or in the storage medium related information area of the disk according to an embodiment of the present invention. For convenience of explanation, it is assumed that the photo detector embedded in the pickup 420 has the structure shown in
Referring to
The SPP1 signal generation unit 510 subtracts the F signal from the E signal, and generates and outputs the SPP1 signal.
The SPP2 signal generation unit 520 subtracts the H signal from the G signal and generates and outputs the SPP2 signal.
The subtraction unit 530 receives the SPP1 signal and the SPP2 signal, subtracts the SPP2 signal from the SPP1 signal, and outputs the result to the area determination unit 540.
If the peak-to-peak value of the signal resulting from subtracting the SPP2 signal from the SPP1 signal is less than a predetermined threshold value, the area determination unit 540 determines that the pickup is in the user data area, and if the resulting value is greater than the predetermined threshold, the area determination unit 540 determines that the pickup is in the storage medium related information area. Then, the area determination unit 540 outputs PLL control condition information according to the determined area, to the PLL 490.
Referring to
The SPP1 signal generation unit 610 subtracts the F signal from the E signal and generates and outputs the SPP1 signal, and the binarization unit 620 binarizes the SPP1 signal and outputs the result to the phase detection unit 650.
The SPP2 signal generation unit 630 subtracts the H signal from the G signal and generates and outputs the SPP2 signal, and the binarization unit 640 binarizes the SPP2 signal and outputs the result to the phase detection unit 650.
The phase detection unit 650 receives the binarized SPP1 and SPP2 signals and detects the phase difference. If the phase of the SPP1 signal is greater, the phase difference is output to the LPF 660, and if the phase of the SPP2 signal is greater, the phase difference is output to the LPF 670.
The LPF 660 and the LPF 670 filter any received signal from the phase detection unit 650, and output the result to the subtraction unit 680.
The subtraction unit 680 subtracts the output signal from the LPF 670 from the output signal from the LPF 660, and outputs the subtraction result PIC_s to the area determination unit 690.
If the received PIC_s value is close to 0, the area determination unit 690 determines that the pickup is within the user data area, and if the value is a predetermined positive or negative value, the area determination unit 690 determines that the pickup is within the storage medium related information area.
Referring to
Meanwhile, referring to
Accordingly, if the peak-to-peak value of (SPP1−SPP2) is less than a predetermined threshold value, it can be determined that the pickup is in the user data area, and if the peak-to-peak value is greater than the predetermined threshold value, it can be determined that the pickup is in the storage medium related information area.
Thus, determining the area by using the difference between SPP1 and SPP2 can also be applied when the disk is tilted.
Referring to
Referring to
Referring to
Referring to
Meanwhile, in an on track state, by detecting (SPP1−SPP2) and determining whether the value is DC, it can be simply determined whether or not the pickup is in the storage medium related information area.
While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those of ordinary skill in the art that various changes in form and details may be made therein without departing from the spirit and scope of the present invention as defined by the following claims.
According to the present invention as described above, the user data area can be easily distinguished from the storage medium related information area, allowing appropriate PLL control to be performed.
Number | Date | Country | Kind |
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2004-69998 | Sep 2004 | KR | national |