This application is the U.S. National Phase under 35 U.S.C. §371 of International Application No. PCT/JP2006/316318, filed on Aug. 21, 2006, which claims priority of JP 2005-282078, filed on Sep. 28, 2005, the disclosures of which Application is incorporated by reference herein.
The present invention relates to an optical disc apparatus for recording and reproduction of an optical disc medium. More particularly, the present invention relates to the field of signal processing which has a function of generating an envelope of a reproduced signal.
At present, the market of optical disc apparatuses is growing, and there is a demand for a high-stability and high-quality reproduced signal in the optical disc apparatus. When information is extracted from an optical disc medium, the amplitude of a signal extracted by a pickup is altered if there is a defect in the optical disc medium, or dust, a fingerprint or the like is attached on the optical disc medium. The amplitude of a signal extracted by a pickup is also altered due to a stress on an optical disc apparatus (e.g., defocusing, tilt, etc.), or a variation in reflectance, modulation factor or the like of an optical disc medium itself.
Therefore, conventionally, a VGA (Variable Gain Amplifier) is provided before binary data is generated, so as to cause an amplitude value to be constant to stably generate binary data, thereby providing high-quality reproduced information. Also, it is necessary to detect an envelope of a signal extracted from a pickup so as to use the envelope for pickup focus position learning, medium record/unrecord determination, or the like. However, since the envelope of a signal extracted by a pickup cannot be reproduced from a signal whose amplitude has been caused to be constant after the VGA, conventional optical disc apparatuses detect an envelope from a signal before the VGA (see Patent Document 1).
It is contemplated that an ADC (Analog-to-Digital Converter) is added after the VGA so as to exploit a digital signal processing technique, such as PRML (Partial Response Maximum Likelihood) or the like, and thereby further improve the accuracy of binary data. Further, as a miniaturization process progresses, the circuit scale of an analog portion tends to be dominant as compared to the circuit scale of a digital portion. Therefore, a digital circuit configuration leads to a reduction in cost.
Patent Document 1: Japanese Patent Unexamined Publication No. 2001-243714
However, when the configuration for detecting the envelope as described above is replaced with a digital circuit, which is suitable for miniaturization, an envelope detection circuit must be comprised of an analog circuit, or an ADC must be prepared for each of envelope detection and binary data generation (i.e., a total of two ADCs) to achieve the digital configuration. As a result, the circuit scale of the analog portion is not much reduced, leading to high cost.
The present invention is provided in view of the above-described problems. An object of the present invention is to provide an optical disc apparatus which generates the envelope of a signal extracted by a pickup from a signal after a VGA, thereby reducing an analog circuit, resulting in a reduction in cost.
To achieve the object, the optical disc apparatus of the present invention has the following features. Specifically, the optical disc apparatus comprises an amplitude control means for stabilizing an amplitude of a signal extracted by a pickup, an A/D conversion means for subjecting a signal whose amplitude has been controlled to digital sampling, a binary data generating means for generating binary reproduced data from the digital sampling signal, an amplitude detecting means for detecting an amplitude of the digital sampling signal, and an envelope generating means for extracting an envelope of the pickup from the detected digital amplitude. The amplitude control means includes an amplification means (VGA), a gain control means for determining an amplitude increase or decrease amount of the amplification means, a gain holding means for holding the control of the amplification means, and a gain fixing means for fixing the control of the amplification means.
Also, the envelope generating means includes a unity gain control value setting means for setting information for causing the gain of the amplification means to be one or m (m is not limited to integers), and a gain tilt correction value setting means for setting a gain tilt of the amplification means, and obtains the envelope of the pickup from these values and a control value for the amplification means. When transfer characteristics of the amplification means are known, a unity gain control value and a gain tilt correction value can be set from the transfer characteristics. If allowance is made to some extent for a variation so as to reduce the difficulty in designing the amplification means, the process of setting the unity gain control value and the gain tilt correction value can be carried out using a variation correcting procedure.
When the variation correcting procedure is carried out, the output amplitude of the pickup is required. Therefore, a system for measuring the output amplitude of the pickup without via the amplification means, and a means for holding the output amplitude of the pickup in the predetermined area, are provided. Note that a system controller may be used to hold the pickup output amplitude. Next, the output amplitude of the pickup is passed through the amplification means while the control value of the amplification means is fixed, and in this state, the digital amplitude value is detected. A control value of the amplification means which causes the read digital amplitude value to be equal to the held pickup output amplitude value, is searched for. The eventually found control value is set as a unity gain control value. Further, in the state, the control value of the amplification means is varied so as to obtain a control value which has a ratio of 6 [dB] with respect to the pickup output amplitude. The obtained value is set as a gain tilt correction value. Note that the ratio does not necessarily need to be fixed to 6 [dB].
According to the optical disc apparatus of the present invention, an envelope of a signal extracted by a pickup from a signal after a VGA, thereby making it possible to suppress the circuit scale of an analog portion to be a minimum level, resulting in low cost.
a) and 7(b) are diagrams illustrating exemplary output characteristics of a splitting circuit of
Hereinafter, embodiments of the present invention will be described in detail with reference to the accompanying drawings.
a) and 7(b) illustrate output characteristics of the splitting circuit 504.
A flow of a signal and an outline of an envelope generating operation will be described with reference to
The signal S102 extracted by the pickup 102 is assumed to be a signal having an amplitude xp. When the gain control value S105 for controlling the VGA 103 has a value xg, an amplitude xpa of the signal S103 input to the A/D converter 104 is amplified or attenuated by 25.5/255×(xg−255×5.5/25.5) [dB] in accordance with the characteristics of the VGA 103 of
where “^” represents a power operation (the same is true of the description below). S103 is converted into a digital value by the A/D converter 104, but the amplitude information is not lost. In other words, the amplitude of the amplitude information S106 detected by the amplitude detecting circuit 106 has the same value xpa as that of the amplitude of S103. The amplitude information S106 is input to the comparison circuit 302 of
By repeatedly executing the above-described operation, the target amplitude value 301 and the amplitude information S106 eventually become equal to each other, transitioning to a steady state. When the target amplitude value 301 is set to be trg, the amplitude information S106 in the steady state is trg. Even when the amplitude of S102 extracted by the pickup 102 varies, S103 has the constant amplitude value trg in accordance with the above-described flow. Since S103 is constant, the dynamic range of the A/D converter 104 can be effectively utilized, and S104 is also stable. The binary data generating circuit 108, which receives the stable S104, can output a binary reproduced signal with high precision.
Next, the envelope generation will be described. The envelope of the signal S102 extracted by the pickup 102 may be used for focus position learning of the pickup 102 or record/unrecord determination of a writable optical disc medium. However, when an envelope is simply generated from S103, S104 and S106 having a steady amplitude, focus position learning or record/unrecord determination may not be carried out. However, by using the envelope generating circuit 107 of
A function of absorbing the characteristics of the VGA 103 of
f(xpa,xg)=1/(10^((xg−55)/200)).
According to the function above, the envelope ye is represented by:
Thereby, the amplitude of the signal S102 extracted by the pickup 102 can be restored. Note that the process may be implemented either by software or by hardware.
The envelope generation will be described in more detail with reference to
Specifically, the gain tilt correction value 502 is 200×log10(2). Therefore, the divider 509 outputs (xg−55)/(200×log10(2)). The result of the operation by the divider 509 is split by the splitting circuit 504 into the signal S504a for controlling a small gain and the signal S504b for controlling a large gain. When it is assumed that S504a is the fractional part of the divider 509 and S504b is the integer part of the divider 509, it is convenient in terms of circuit configuration. When the fractional part has a value xf, the logarithm table 506 subjects the amplitude information S106 having the value xpa to an amplitude correcting process represented by:
xlt=2^(1−xf)×xpa
where xlt represents the resultant output amplitude.
Note that the fractional part xf of the result of the division is 0≦xf<1. The output amplitude xlt of the logarithm table 506 is further subjected to an amplitude operation by the bit shift operation circuit 507. The bit shift operation circuit 507 executes an amplitude operation larger than that of the logarithm table 506. The amplitude correcting process is represented by:
where ye represents the output of the bit shift operation circuit 507, and xi represents the integer part of the result of the division.
xf+xi is the sum of the fractional part and the integer part of the splitting circuit 504, and is equal to the output result of the divider 509. Specifically,
Thus, the amplitude value of the output of the bit shift operation circuit 507 is equal to the amplitude value of the output of the pickup 102.
As a more practical configuration, an operation when the set value of the gain tilt correction value 502 is rounded off, i.e., log10(2)≈60 [dec], will be described with reference to
When the gain tilt correction value 502 is set to be 60 [dec], the output of the divider 509 is (xg−55)/60, which provides characteristics illustrated in
xlt=2^(1−xf)×xpa
where xlt represents the output amplitude of the amplitude information S106.
The characteristics are illustrated with a solid line in
The output amplitude xlt of the logarithm table 506 is further subjected to an amplitude operation by the bit shift operation circuit 507. In the bit shift operation circuit 507, the amplitude operation larger than that of the logarithm table 506 is executed. The amplitude correcting process is represented by:
where ye represents the output of the bit shift operation circuit 507, and xi represents the integer part of the division result.
xf+xi is equal to the output result of the divider 509, i.e., (xg−55)/60. Specifically,
Even when the gain tilt correction value 502 is rounded off, the amplitude value of the output of bit shift operation circuit 507 is substantially equal to the amplitude value of the output of the pickup 102.
As described above, by providing the envelope generating circuit 107 of Embodiment 1 of the present invention, amplitude information can be extracted even from a signal after the VGA, so that focus position learning can be performed. Also, the configuration of the envelope generating circuit 107 by employing a signal after A/D conversion means that the envelope generating circuit 107 can be comprised of a digital circuit, and therefore, can be provided with lower cost than when the envelope generating circuit 107 is comprised of an analog circuit.
In
Hereinafter, a method of setting the unity gain control value 501 and the gain tilt correction value 502 when the characteristics of the VGA 203 vary, will be described with reference to
In
Next, the selector 212 is set so as to select the output of the VGA 203 as the input of the A/D converter 204, and the selector 213 is set to select the gain fixation value 211 as a gain control value S205 for controlling the VGA 203. As is similar to the case where the selector 212 is set so as to select the output of the pickup 202, the signal S202 is extracted from a predetermined area in which data is present on the optical disc medium 201. The signal S202, whose amplitude is increased or decreased by the VGA 203, is transferred via the selector 212 to the A/D converter 204. Note that the increase or decrease amount of the amplitude is determined by the gain fixation value 211 via the selector 213. From information converted into digital by the A/D converter 204, the amplitude information S206 when the signal S202 has been transferred via the VGA 203 is detected by the amplitude detecting circuit 206, and is read by the system controller 209. The amplitude of the VGA 203 is compared with the previously held amplitude information of the pickup 202. When the amplitude of the VGA 203 is larger than the previously held amplitude information of the pickup 202, the gain fixation value 211 is adjusted so that the signal is attenuated by the VGA 203. On the other hand, when the amplitude of the VGA 203 is smaller, the gain fixation value 211 is adjusted so that the signal of the VGA 203 is amplified. By repeatedly executing the above-described operation, a gain fixation value 211 which is equal to the held amplitude information of the pickup 202 is searched for. If the eventually found gain fixation value is used as the unity gain control value 501, the offset variation of the VGA 203 can be absorbed.
After the unity gain control value 501 is obtained, the gain fixation value 211 is shifted in a direction which increases the signal of the VGA 203, and the amplitude information S206 successively detected by the amplitude detecting circuit 206 with respect to the gain fixation value 211 is read by the system controller 209. The read amplitude information S206 is compared with the amplitude value of the pickup 202 held by the system controller 209. By obtaining a gain fixation value 211 when the difference is 6 [dB], gain tilt characteristics of the VGA 203 can be measured. If the obtained gain fixation value 211 is used as the gain tilt correction value 502, the tilt of the VGA 203 can be absorbed.
After the unity gain control value 501 and the gain tilt correction value 502 are determined, the selector 212 may be set so as to select the output of the VGA 203 as the input of the A/D converter 204, and the selector 213 may be set so as to select the output of the gain control circuit 205 as the gain control value S205 of the VGA 203. In this case, the same operation as that of Embodiment 1 can be executed.
As described above, according to Embodiment 2 of the present invention, by adjusting the characteristics of the VGA, the specification of the VGA 203 can be relaxed. Therefore, the difficulty in designing the VGA 203 which is comprised of an analog circuit can be reduced, thereby making it possible to provide the VGA 203 with low cost. Also, by configuring an envelope generating circuit 207 as in Embodiment 1, amplitude information can be extracted from a signal after the VGA, thereby making it possible to perform focus position learning. Also, the configuration of the envelope generating circuit 207 by employing a signal after A/D conversion means that the envelope generating circuit 207 can be comprised of a digital circuit, and therefore, can be provided with lower cost than when the envelope generating circuit 207 is comprised of an analog circuit.
According to the present invention, an envelope of a pickup is detected from a signal after a VGA, thereby making it possible to provide an envelope generating circuit whose circuit scale is suppressed to a minimum level. Also, by adding a VGA characteristics correcting process, a specification required for the VGA can be relaxed. Therefore, the present invention is useful for configuration of a low-cost optical disc apparatus. The present invention can also be applied to applications, such as magnetic disks and the like.
Number | Date | Country | Kind |
---|---|---|---|
2005-282078 | Sep 2005 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2006/316318 | 8/21/2006 | WO | 00 | 4/11/2007 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2007/037076 | 4/5/2007 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20070280059 | Cheng et al. | Dec 2007 | A1 |
20070280079 | Cheng et al. | Dec 2007 | A1 |
Number | Date | Country |
---|---|---|
4-178025 | Jun 1992 | JP |
5-182104 | Jul 1993 | JP |
2001-210018 | Aug 2001 | JP |
2001-243714 | Sep 2001 | JP |
WO 03077248 | Sep 2003 | WO |
Number | Date | Country | |
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20090207719 A1 | Aug 2009 | US |