The foregoing aspects and many of the attendant advantages of this invention will become more readily appreciated as the same becomes better understood by reference to the following detailed description, when taken in conjunction with the accompanying drawings, wherein:
The apparatus 100 for servo balance calibration mainly comprises an amplifying unit 106, a servo signal generator 108, a controlling unit 110, and a balance calibration unit 112. The amplifying unit 106 receives the detected signals (Sd) and amplifies the detected signals (Sd) to be a first set of amplified signals (S1a). The servo signal generator 108 having the servo balance gain receives the first set of amplified signals (S1a) and generates a first servo signal (S1s) derived from the first set of amplified signals (S1a). The controlling unit 110 is coupled to the OPU 102 and the amplifying unit 106 and controls at last one of the OPU 102 and the amplifying unit 106 to generate a second set of amplified signals (S2a). The balance calibration unit 112 is coupled to the servo signal generator 108 and calculates the first servo signal (S1s) and a second servo signal (S2s) derived from the second set of amplified signals (S2a) to adjust the servo balance gain of the servo signal generator 108 to perform the servo balance calibration completely.
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In a first embodiment of the present invention, the controlling unit 110 controls the OPU 102 to emit light with a first power to make the amplifying unit 106 generate the first set of amplified signals (S1a). The servo signal generator 108 having the servo balance gain (kb) then receives the first set of amplified signals (S1a) and generates a first servo signal (S1s) derived from the first set of amplified signals (S1a). The controlling unit 110 further controls the OPU 102 to emit light with a second power to make the amplifying unit generate the second set of amplified signals (S2a). The servo signal generator 108 having the servo balance gain (kb) then receives the second set of amplified signals (S2a) and generates a second servo signal (S2s). In comparison with a reference level (RL), the first servo signal (S1s) has a first offset level (OL1) and the second servo signal (S2s) has a second offset level (OL2). Preferably, the reference level (RL) is defined as the following formula: RL=OL1−(OL2−OL1). It should be noted that arbitrary ratio of the first offset level (OL1) and the second offset level (OL2) is suitable for the present invention. According to the above description, the controlling unit 110 controls the OPU 102 to emit light with different power levels so that the servo signal generator 108 generates servo signals (S1a, S2s) with different DC offset levels (OL1, OL2).
In the present invention, the servo signals (S1s, S2s) are represented as the following formula:
(S1s or S2s)=kb*(Sda+Sdd)−(Sdb+Sdc) (1);
where kb is servo balance gain in the servo signal generator 108, and Sda=PR*a, Sdb=PR*b, Sdc=PR*c, and Sdd=PR*d.
Therefore, in the first embodiment, formula (1) is represented as follows:
(S1s or S2s)=PR[kb(a+d)−(b+c)] (2);
where PR is the laser power, e.g. reading power, of the OPU 102, the value of PR is adjustable, and a, b, c and d are electrical signals associated with the detected signals (Sda, Sdb, Sdc, and Sdd).
In a second embodiment of the present invention, the amplifying unit 106 amplifies the detected signals from the OPU 102 to generate a first set of amplified signal (S1a) according to an amplified gain (kpd), such as a low gain. The servo signal generator 108 having the servo balance gain (kb) receives the first set of amplified signals (S1a) and generates a first servo signal (S1s) derived from the first set of amplified signals (S1a). The amplifying unit 106 further amplifies the detected signals from the OPU 102 to generate a second set of amplified signal (S2a) according to an amplified gain (kpd), such as a high gain. The servo signal generator 108 having the servo balance gain generates a second servo signal (S2s) derived from the second set of amplified signals (S2a). In comparison with the reference level (RL), the first servo signal (S1s) has a first offset level (OL1) and the second servo signal (S2s) has a second offset level (OL2). Based on the above description, the controlling unit 110 adjusts the amplified gain (kpd) of the amplifying unit 106 to adjust the first set of amplified signals (S1a) to the second set of amplified signals (S2a) so that the servo signal generator 108 generates servo signals (S1s, S2s) with different DC offset levels (OL1, OL2).
Similarly, in the second embodiment, formula (1) is represented as follows:
(S1s or S2s)=kpd[kb(a+d)−(b+c)] (3);
where Sda=kpd*a, Sdb=kpd*b, Sdc=kpd*c, and Sdd=kpd*d, where amplified gain kpd is adjustable, and a, b, c and d are electrical signals associated with the detected signals (Sda, Sdb, Sdc, and Sdd).
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The controlling unit 110 controls the OPU 102 to emit light with a first power to make the servo signal generator 108 generate a first servo signal (S1s), and further controls the OPU 102 to emit light with a second power to make the servo signal generator 108 generate a second servo signal (S2s). In addition, the controlling unit 110 controls the amplifying unit 106 to amplify the detected signals for generating a first set of amplified signal (S1a) according to an amplified gain (kpd), such as a low gain. The servo signal generator 108 generates a first servo signal (S1s) derived from the first set of amplified signals (S1a). The controlling unit 110 controls the amplifying unit 106 to amplify the detected signals for generating a second set of amplified signal (S2a) according to an amplified gain (kpd), such as a high gain. The servo signal generator 108 generates a second servo signal (S2s) derived from the second set of amplified signals (S2a).
The balance calibration unit 112 compares the first offset level (OL1) with the second offset level (OL2) to determine that the first offset level (OL1) is the same as the second offset level (OL2) or not. When the first offset level (OL1) is different from the second offset level (OL2) or the level difference between the first offset level (OL1) and the second offset level (OL2) exceeds a predetermined offset threshold, the balance calibration unit 112 adjusts the servo balance gain (kb) of the servo signal generator 108 continuously by aligning the first servo signal (S1s) and the second servo signal (S2s) until the first offset level (OL1) is same as the second offset level (OL2). In other words, the first servo signal (S1s) is aligned to the second servo signal (S2s) at the same central level.
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The balance calibration unit 112 compares the first offset level (OL1) with the reference level (RL) to determine that the second offset level (OL2) is the same as the reference level (RL) or not. When the first offset level (OL1) is different from the reference level (RL) or the level difference between the first offset level (OL1) and the reference level (RL) exceeds a predetermined offset threshold, the balance calibration unit 112 continuously adjusts the servo balance gain (kb) of the servo signal generator 108 by aligning the second servo signal (S2s) until the second offset level (OL2) is same as the reference level (RL). Preferably, the first offset level (OL1) and the second offset level (OL2) have a ratio 1/2 associated with the laser power levels or the amplified gain (kpd) and the reference level (RL) is defined as the following formula: RL=OL1−(OL2−OL1). It should be noted that arbitrary ratio of the first offset level (OL1) and the second offset level (OL2) is suitable for the present invention.
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In step S400, the controlling unit 110 sets the laser power level of the OPU 102 as the first power. In step S402, the OPU 102 emits light with the first power. In step S404, the servo signal generator 108 having the servo balance gain (kb) generates the first servo signal (S1s) corresponding to the first power. In step S406, the controlling unit 110 controls the servo signal generator 108 to measure the first offset level of the first servo signal (S1s).
In step S408, the controlling unit 110 sets the laser power level of the OPU 102 as the second power. In step S410, the OPU 102 emits light with the second power. In step S412, the servo signal generator 108 having the servo balance gain (kb) generates the second servo signal (S2s) corresponding to the second power. In step S414, the controlling unit 110 controls the servo signal generator 108 to measure the second offset level of the second servo signal (S2s).
In step S416, the balance calibration unit 112 compares the first offset level with the second offset level to determine that the first offset level is the same as the second offset level or not. If the decision result is “YES”, the servo balance calibration is finished to generate the desired servo balance gain (kb). If the decision result is “NO”, the balance calibration unit 112 adjusts the servo balance gain (kb) of the servo signal generator 108 and return to step S400 for adjusting the servo balance gain continuously until the first offset level is the same as the second offset level for completing the servo balance calibration.
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In step S500, the controlling unit 110 sets the laser power level of the OPU 102 as the predetermined power. In step S502, the OPU 102 generates a set of detected signals corresponding to the predetermined power.
In step S504, the amplifying unit 106 amplifies the detected signals from the OPU 102 to generate a first set of amplified signals according to an amplified gain, such as a low gain. In step S506, the servo signal generator 108 having the servo balance gain (kb) generates a first servo signal (S1s) derived from the first set of amplified signals. In step S508, the controlling unit 110 measures the first offset level of the first servo signal (S1s) corresponding to the first set of amplified signals.
In step S510, the amplifying unit 106 amplifies the detected signals from the OPU 102 to generate a second set of amplified signal according to an amplified gain, such as a high gain. In step S512, the servo signal generator 108 having the servo balance gain (kb) generates a second servo signal (S2s) derived from the second set of amplified signals. In step S514, the controlling unit 110 measures the second offset level of the second servo signal (S2s) corresponding to the second set of amplified signals.
In step S516, the balance calibration unit 112 compares the first offset level with the second offset level to determine that the first offset level is the same as the second offset level or not. If the decision result is “YES”, the servo balance calibration is finished to generate the desired servo balance gain (kb). If the decision result is “NO”, the balance calibration unit 112 adjusts the servo balance gain (kb) of the servo signal generator 108 and return to step S504 for adjusting the servo balance gain (kb) continuously until the first offset level is the same as the second offset level for completing the servo balance calibration.
The features of the present invention mainly include: (a) simply performing servo balance calibration in an optical disc driver; and (b) effectively performing the servo balance calibration by adjusting power levels and amplified gain corresponding to the servo signals.
As is understood by a person skilled in the art, the foregoing preferred embodiments of the present invention are illustrative rather than limiting of the present invention. It is intended that they cover various modifications and similar arrangements be included within the spirit and scope of the appended claims, the scope of which should be accorded the broadest interpretation so as to encompass all such modifications and similar structure.
This patent application claims priority from U.S. Provisional Patent Application Ser. No. 60/805,684, which are filed on Jun. 23, 2006 and incorporated herein by reference.
Number | Date | Country | |
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60805684 | Jun 2006 | US |