This application is based upon and claims the benefit of priority from the prior Japanese Patent Application No. 2005-207304, filed on Jul. 15, 2005, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to an optical disc device performing recording/reproduction of an optical disc having a header field and a recording field successively disposed thereon.
2. Related Art
In DVD-RAM known as one type of optical disc, information is recorded in units of sector, and each sector is provided with the header field and the recording field. There has been proposed a processing operation in which, when recording and reproduction of DVD-RAM is performed, PID (Physical ID) within the header field is detected and an error determination thereof is performed, and based on the determination result, it is determined whether or not the sector address is correct (refer to Japanese Patent Laid-Open No. 11-213392).
A plurality of PIDs are provided within a header field. However, due to reproduction of an inferior disc or effects of disturbances etc. at the time of reproduction, all the PID data may be mistakenly detected, and as a result, it may be mistakenly determined that there is no error. In this case, a sector address is mistakenly defined, and it may be impossible to perform a normal recording and reproduction processing.
Also, since a starting position of recording field is predicted based on a detection result of PID, when PID is misidentified as described above, it is impossible to correctly predict the starting position.
According to one embodiment of the present invention, an optical disc device, comprising:
a header field detector configured to detect a header field of an optical disc;
a header address information detector which detects a plurality of address information recorded to the header field;
a range setting unit configured to set a range predicted that the plurality of address information is present within the header field;
a position determination unit configured to determine whether the plurality of address information detected by the header address information detector is present within the range set by the range setting unit; and
a starting position prediction unit configured to predict a starting position to be assessed in a recording field arranged subsequent to the header field in the optical disc and a sector address corresponding to the header field based on a determination result of the position determination unit.
According to one embodiment of the present invention, an optical disc device, comprising:
a header field detector configured to detect a header field of an optical disc;
a header address information detector configured to detect a plurality of address information recorded to the header field;
a range setting unit configured to set a range in the header field predicted that the remaining address information within the header field is present, based on an interval from a position of a part of the address information detected by the header address information detector;
a position determination unit configured to determine whether a plurality of address information detected by the header address information detector is present within a range set by the range setting unit; and
a starting position prediction unit configured to predict a starting position to be accessed in a recording field arranged subsequent to the header field in the optical disc.
An optical disc device, comprising:
a header region detector configured to detect a header field of an optical disc;
a header address information detector configured to detect a plurality of address information recorded to the header field;
a first range setting unit configured to set a range predicted that the plurality of address information is present within the header field;
a first position determination unit configured to determine whether the plurality of address information detected by the header address information detector is present within a range set by the first range setting unit;
a second range setting unit configured to set a range in the header field predicted that the remaining address information in the header region is present based on an interval from a position of a part of the address information detected by the header address information detector;
a second position determination unit configured to determine whether a plurality of address information detected by the header address information detector is present within a range set by the second range setting unit;
a determination result selector configured to select at least one of a determination result of the first position determination unit and a determination result of the second position determination unit; and
a starting position prediction unit configured to predict a starting position to be accessed in a recording field arranged subsequent to the header field in the optical disc based on a determination result of the determination result selector.
An embodiment of the present invention will be described below with reference to drawings.
First, the schematic configuration of the optical disc device will be described with reference to
The reproduction control unit 7 includes a reproduction amplifier 13, a PLL circuit 14, and a sync/demodulation unit 15 whose detailed configuration is shown in
The configuration of the sync/demodulation unit 15 constituting a characteristic part of the present embodiment will be described hereinafter with reference to
A disc reproduction signal read by the optical pickup head 3 is supplied to the sync detection unit 21 and the header field detection unit 24. The header field detection unit 24 detects a header field based on the disc reproduction signal. The sync detection unit 21 detects an AM pattern within the header field. This AM pattern is a sync signal, and each unit in the rear stage side of the sync detection unit 21 performs processings in synchronization with the AM pattern.
The signal demodulation unit 22 demodulates the disc reproduction signal to generate ID specifying an optical disc sector address. In this example, four types of PIDs (Physical IDs) are generated. The reliability determination unit 23 performs syndrome operation determination of the demodulated signal and generates PIDnOK pulses (n=1 to 4) indicating that PIDs have been detected.
When detecting PID, the header field detection unit 24 in
The recording field starting position determination unit 29 predicts the starting position to be accessed in the recording field in synchronization with a channel clock generated according to wobble of the optical disc 6, based on the PIDnOK pulses. Recording or reproduction is performed from this starting position.
The address information position determination unit 25 sets a prediction window within the header field and determines whether or not PIDnOK pulse is present within the prediction window. The setting of prediction window may be performed by the header field detection unit 24.
As shown in the internal configuration of
The address information position determination result hold unit 27 of
The address information position determination operation selection unit 28 selects either of a determination result by the address information position determination unit 25 or a determination result by the address information interval measurement unit 26.
The PID hold unit 30 stores the PID having reliability guaranteed by the reliability determination unit 23. The sector address defining unit 31 defines a sector address based on the PID stored in the PID hold unit 30 and determination results of the address information position determination unit 25 and the address information interval measurement unit 26.
When a reproduction processing of DVD-RAM disc is performed, due to effects of environmental disturbances, inferiority of the disc or the like, the quality level of a signal supplied to the sync/demodulation unit 15 may be low. In this case, the same PIDnOK pulse (for example, PID1OK pulse) within the same header field may be detected plural times. For example,
Thus, according to the present embodiment, to determine whether or not the position of PIDnOK pulse is correct, it is detected whether or not PIDnOK pulse appears within a prediction window set by the address information position determination unit 25.
In
In this manner, according to the first embodiment, a prediction window is preliminarily set at a position where PIDnOK pulse is predicted to appear, and according to whether or not PIDnOK pulse appears within the prediction window, it is determined whether or not the position of PIDnOK pulse is normal. Therefore, a recording field starting position and sector address can be properly predicted.
In the first embodiment described above, position determination of PIDnOK pulses is performed based on a determination result of the address information position determination unit 25 of
According to a second embodiment, in addition to the prediction window, an interval measurement window is set to perform position determination of PIDnOK pulse.
The determination unit 34 within the address information interval measurement unit 26 determines whether or not the detected PIDnOK pulse appears within the corresponding interval measurement window. If so, it is determined that the position of that PIDnOK pulse is correct. This determination result is stored in the address information position determination result hold unit 27.
In the same manner as that of the first embodiment, the address information position determination operation selection unit 28 finally determines a position of PIDnOK pulse, based on at least one of a determination result by the address information position determination unit 25 and a determination result by the address information interval measurement unit 26 described above.
Meanwhile,
In this manner, according to the second embodiment, the interval measurement windows for predicting a position of other PIDnOK pulses are set according to an interval from the position of the PIDnOK pulse detected for the first time,. Accordingly, even when a position of PIDnOK pulse cannot be accurately determined using prediction window alone, positions of the PIDnOK pulses can be properly detected. Consequently, the starting position of the recording field and sector address can be highly accurately predicted.
In the second embodiment, there has been explained an example in which positions of the PIDnOK pulses are determined using both prediction window and interval measurement window. However, determination of the PIDnOK pulses may be performed using only the interval measurement window. In this case, the address information position determination unit 25 of
In this manner, according to the third embodiment, the interval measurement window is set based on PIDnOK pulse detected for the first time, and position determination of PIDnOK pulses is performed according to whether or not PIDnOK pulse is present within the interval measurement window. Accordingly, the starting position of recording field to be accessed can be predicted with a simple configuration and procedure, compared to the second embodiment.
Number | Date | Country | Kind |
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2005-207304 | Jul 2005 | JP | national |