1. Field of the Invention
The present invention relates to a signal process device and method utilized by an optical information recording/producing apparatus. More particularly, the present invention utilizes a feedback control module and a band-pass filter to obtain a wobble signal retrieved from an optical information recordable medium by the optical information recording/producing apparatus.
2. Description of the Prior Art
Most optical information recording/producing apparatuses adopt the constant linear velocity (CLV) operation mode in reading or recording optical data on the optical information recordable medium (e.g., CD-R, CD-RW, DVD-R, DVD-RW, etc.). The recording/producing apparatus utilizes a wobble signal from a set of retrieved signals to control the optical pick-up head. Because the central frequency of the wobble signal in the retrieved signals is constant, it is rather simple to obtain the wobble signal from the retrieved signals.
Under the CLV mode, it is also easy for the recording/producing apparatus to control the optical pick-up head. However, when the optical pick-up head moves from the inner zone of the optical information recordable medium, for example a CD-R, to its outer zone, or vice versa, instability sometimes occurs due to the different circumstantial lengths of the inner and outer zone. This will cause errors in reading or recording the optical data. In order to reduce the instability, another operation mode, constant angular velocity (CAV), is adopted in the recording/producing apparatus. Under the CAV mode, the central frequency of the wobble signal in the retrieved signals is variable with the location of the pick-up head on the CD-R medium. It is not easy to obtain the wobble signal from the retrieved signals to control the optical pick-up head. There is no satisfactory solution in prior art so far.
Besides, when there is unknown instability situation or the user intends to change the reading speed in the recording/producing apparatus, the central frequency of the wobble signal in the retrieved signals also varies.
An objective of the present invention is to provide a signal process device and method. By utilizing a feedback control module and a band-pass filter, the wobble signal can be obtained from the retrieved signals reflected from the optical information recordable medium. More particularly, the signal process device and method of the present invention provide superior solution in the situation where the central frequency of the wobble signal is variable.
According to a preferred embodiment of the present invention, the signal process device comprises: an RF amplifier, a band-pass filter, and a feedback control module. The RF amplifier generates a mix signal by synthesizing the set of retrieved signals reflected from an optical information recordable medium. The band-pass filter generates a transient-state wobble signal by performing band-pass filtering on the mix signal based on a target frequency. The feedback control module provides the target frequency by receiving the transient-state wobble signal and performing phase-locked loop and frequency dividing functions thereon. The feature and characteristic of the invention resides especially on repeatedly amending the target frequency via the feedback control module. In this setting, the band-pass filter is able to perform band-pass filtering on the mix signal based on the amended target frequencies and ultimately obtain the desired wobbly signal.
According to another preferred embodiment of the present invention, the signal process device comprises: an automatic gain controller (AGC), a comparator, a phase-locked loop device, and a frequency divider. The phase-locked loop device receives a digital signal from the comparator and performs phase-locked loop function to generate a first reference clock. The frequency divider receives the first reference clock from the phase-locked loop device and performs frequency division function, so as to obtain the target frequency for the band-pass filter. This would ultimately help to obtain the desired wobble signal from the retrieved signals.
According to another preferred embodiment of the present invention, a signal process method is provided for obtaining a wobble signal from a set of retrieved signals. The method mainly comprises the following steps: (1) retrieving the set of retrieved signals reflected from an optical information recordable medium and synthesizing into a mix signal; (2) performing band-pass filtering on the mix signal based on a target frequency and obtaining a transient-state wobble signal; (3) performing phase-locked loop and frequency dividing functions on the transient-state wobble signal in a feedback control module for obtaining the target frequency; and (4) repeatedly amending the target frequency in the feedback control module so as to perform band-pass filtering on the mix signal based on the amended target frequency, and obtaining the desired wobbly signal.
According to another preferred embodiment of the present invention, the signal process method obtains the desired target frequency in the following steps: (3a) automatically adjusting a gain of the transient-state wobble signal obtained in step (2) and generating an analog signal with substantially the same peak-to-peak value; (3b) comparing the analog signal with a reference signal to generate a digital signal; (3c) performing phase-locked loop function on the digital signal to generate a first reference clock; and (3d) performing frequency division function on the first reference clock, so as to obtain the desired target frequency.
The advantage and spirit of the invention may be understood by the following recitations together with the appended drawings.
The present invention provides a signal process device and method. By repeatedly amending a target frequency in a feedback control module, a band-pass filter of the present invention is able to perform band-pass filtering on a mix signal based on the amended target frequencies and further obtain the wobbly signal from a set of retrieved signals reflected from an optical information recordable medium.
Refer to
Referring to
Referring to
the mix signal=(the first signal+the fourth signal)−(the second signal+the third signal).
Referring to
Refer to
After the RF amplifier 28 obtains the mix signal 19 according to the following formulae: the mix signal=(the first signal+the fourth signal)−(the second signal+the third signal), the mix signal 19 is further processed by the band-pass filter 30. The spectrum distribution of the signal generated by the band-pass filter 30 is clearly shown in
Take CD-R/RW disk as an example. The present invention utilizes the BPF 30 to extract the needed ATIP. Though under the CLV mode, the central frequency of the BPF 30 can be constant value, under the CAV mode, the central frequency of the BPF 30 must be varied. One objective of the present invention is to control the central frequency of the BPF 30 by a first reference clock (EFMPLCK) 58 in a feedback manner. This would enable a more precise separation of the desired wobble signal to better serve the objective of the present invention. The details would be clearly described in the following.
Referring to
Referring to
The phase-locked loop device 26 receives the digital signal 27 from the comparator 24, performs the phase-locked loop function and generates a first reference clock (EFMPLCK) 58. The phase-locked loop device 26 comprises a first input terminal 52, a second input terminal 54 and an output terminal 56. The first input terminal 52 receives the digital signal 27 generated from the comparator 24. Afterwards, the phase-locked loop function is performed on the digital signal 27 within the phase-locked loop device 26. The result, i.e., the first reference clock (EFMPLCK) 58, is outputted via the output terminal 56 to the frequency divider 50. The first reference clock (EFMPLCK) 58 is also fed back to the second input terminal 54, and becomes another input signal in performing the phase-locked loop function. In a preferred embodiment, the phase-locked loop device 26 is an Eight-to-Fourteen Modulation (EFM) phase-locked loop device for performing phase-locked loop function. The EFM phase-locked loop device is commonly accommodated in this art, and inside operation and function are not repeated here.
Finally, the frequency divider 50 receives the first reference clock (EFMPLCK) 58 from the phase-locked loop device 26 and performs necessary frequency division function. This would effectively make the signal frequency lower, so as to obtain the target frequency 60 for the next band-pass filtering operation. This iteration continues until the signal becomes stable. The timing of stability can be observed from the changes of the transient-state wobble signal 21. When the transient-state wobble signal 21 becomes stable, it means the phase-locked loop device 26 has successfully locked the phase of the signal, and a stable target frequency 60 has been obtained. Then, the output of the BPF 30 is the wobble signal that the present invention tries to obtain.
Referring to
In the step (3) above, the desired target frequency can be obtained in the following sub-steps: (3a) automatically adjusting a gain of the transient-state wobble signal obtained in step (2) and generating an analog signal with substantially the same peak-to-peak value; (3b) comparing the analog signal with a reference signal to generate a digital signal; (3c) performing phase-locked loop function on the digital signal to generate a first reference clock; and (3d) performing frequency division function on the first reference clock, so as to obtain the desired target frequency.
The signal process method above can be explained in detailed steps in reference to the flowcharts in
Step 100: Extract the retrieved signal 16 (A, B, C, D) by the optical pick-up-head. Go to Step 102.
Step 102: Synthesize the retrieved signal 16 into a mix signal 19 by the RF amplifier 28. Go to Step 104.
Step 104: Perform band-pass filtering on the mix signal 19 by BPF 30 based on a target frequency (WBLCK) and obtain a transient-state wobble signal 21. Go to Step 106.
Step 106: Perform phase-locked loop function on the transient-state wobble signal 21 in a feedback control module 29. Go to Step 108.
Step 108: Automatically adjust the gain of the transient-state wobble signal 21 by AGC 22 and generates an analog signal Vp-p 23. Go to Step 110.
Step 110: Compare the analog signal (Vp-p) 23 with a reference signal (Vref) 25 to generate a digital signal 27. Go to Step 112.
Step 112: Receive the digital signal 27 via the first input terminal 52 of the phase-locked loop device 26. Go to Step 114.
Step 114: Perform phase-locked loop function on the digital signal 27 and generate a first reference clock (EFMPLCK) 58. Go to Step 116.
Step 116: Output the first reference clock (EFMPLCK) 58 to the frequency divider 50 via the output terminal 56, and feedback EFMPLCK 58 to the second input terminal 54. Go to Step 118.
Step 118: Perform frequency division function (1/N) on the first reference clock (EFMPLCK) 58 to obtain the amended target frequency (WBLCK) 60. Go to Step 120.
Step 120: Does the transient-state wobble signal 21 become stable? No, go to Step 104. Yes, go to Step 122
Step 122: Obtain the output of the BPF 30 to serve as the desired wobble signal. Go to Step 124.
Step 124: End.
The features and benefits of the signal process device and method according to the present invention can be summarized, but not limited to, in the following. (1) The present invention obtains the wobble signal on the recorded medium by utilizing the band-pass filter on the mix signal generated from the RF amplifier. Here, the central frequency of the band-pass filter is adjustable. This is especially beneficial for the optical drivers operated under the CAV mode. (2) The present invention proposes a novel means as to the central frequency adjustment of the band-pass filter. A target frequency is obtained via a feedback control module together with the phase-locked loop and necessary frequency division operations. It then serves as the central frequency required by the filtering function of the band-pass filter. (3) The present invention provides the feedback control module to repeatedly amend the obtained target frequency, based on which the mix signal is band-pass filtered. Therefore, the target frequency can be finely tuned. The band-pass filter can output the desired wobble signal in a more precise manner by filtering most of the unwanted high frequency RF signals. This would obtain the desired wobble signal from the retrieved signals in a more effective and precise manner. The obtained wobble signal therefore possesses higher quality and higher S/N ratio than the prior-art. (4) The AGC is utilized to avoid wide range of amplitude differences from the transient-state wobble signals in different optical information recordable mediums. The amplitudes of the transient-state wobble signals in different recordable mediums are thus kept substantially the same peak-to-peak values. This would assure and enhance the normal and stable operations of the comparator and the phase-locked loop device. This also greatly contributes to the accuracy of the target frequency. (5) The delayed comparator is utilized to delay the analog signal of the AGC for a period of time. This can minimize the noise interference, and also greatly contribute to the accuracy of the target frequency. (6) The reference signal used in the delayed comparator is obtained from the DC level of the retrieved signals. This would also help the stable operation of the signal process device 20, so that the signal quality is maintained in different circuit stages.
With the example and explanations above, the features and spirits of the invention will be hopefully well described. Those skilled in the art will readily observe that numerous modifications and alterations of the device may be made while retaining the teaching of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Number | Date | Country | Kind |
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094232590 | Sep 2005 | TW | national |