This invention is related to a method of providing reliable phase error signals in a phase locked loop (PLL) in an optical system, which optical system is adapted to read data from an optical disc.
Optical discs are electronic data storage mediums that hold information in digital form and that are written and read by a laser. These discs include all the various CD, DVD and BD variations. Data are stored in so-called pits and lands (ROM disc) and marks and spaces (re-writable disc), which are read of a laser in an optical system and the data are converted into an electrical signal.
The wave length of the laser beam in an optical system used to read a DVD disc is shorter than that used for standard CDs. The DVD disc is created with shallower and smaller pits, thereby enabling greater storage capacity, which naturally is an issue of considerable importance.
In an optical system it is well known to use a phase locked loop (PLL) where the error signal is generated by comparing the actual zero-crossing with the zero-crossing of the generated clock signal. Given an optical system with a laser wavelength λlaser and an numerical aperture NA, the cut-off wavelength of the Modulation Transfer Function (MTF) is given by λ0=λlaser/(2·NA). The minimum wavelength on the optical disc is determined by the minimum bit length on the optical disc, and with decreasing bit length on the optical disc as a result of larger storage capacities on the optical discs, the amplitude of the signal read by means of an optical system will decrease and will be zero for wavelengths below λ0.
Consequently, the phase error signals generated by zero-crossing of these signals are determined by noise and are therefore inapplicable. It is thus a problem in the state of the art to increase the capacity of optical discs by decreasing the bit length on the discs and at the same time being able to generate reliable phase error signals in the phase locked loop of the optical system reading from and/or writing to the optical disc.
It should be noted, that the MTF in general is a function that is defined as the modulation of an image divided by the modulation of the object and that MTF thus is a function of the spatial frequency of the image, where the image in this case is the bit pattern on the optical disc. When the wavelength of the bit pattern decreases, the MTF goes towards zero and is zero at the so-called cut-off frequency corresponding to the cut-off wavelength, which is mentioned above.
It is thus an object of the invention to procure a method of providing reliable phase error signals in a phase locked loop in an optical system, which optical system is adapted to read data from an optical disc, said method comprising the steps of reading a bit pattern on the optical disc, thereby providing a plurality of signal samples; feeding the signal samples to a phase detector in the phase locked loop; and using a changing of polarity of successive signal samples, a so-called zero crossing, in the phase detector to generate a phase error signal for the phase locked loop. The method is characterized in that the phase detector is adapted to take into account the polarity of a number of signal samples before and after a zero crossing to derive a reliable phase error signal so that the influence of noise is reduced.
Hereby, it is possible to provide reliable phase error detection even in optical systems wherein the smallest wavelength on the optical disc is close to or even smaller than the cut-off wavelength of the MTF associated with the optical system. This makes it possible to store bits with a smaller bit length and thereby an increased amount of bits on an optical disc.
In a preferred embodiment of the method according to the invention, the quality of the zero-crossings depends on the signal samples before and after the zero-crossing. Hereby, the usage of a zero-crossing is limited to the cases, where quality is sufficient. For instance, in reading bit patterns having spatial frequencies far under the cut off frequency of the MTF, the amplitude of signal samples is large and the zero-crossing is reliable. Reading bit patterns with spatial frequencies close to or larger than the cut off frequency the signal amplitudes will be small and the position of the zero-crossing will be unreliable.
The term “quality of the zero-crossings” includes features such as the amplitude of the signal samples before and after the zero-crossing, the signal-to-noise-ratio of the signal samples and the size of the marks in the bit pattern read.
It should be noted, that the frequency and the wavelength of a signal are inversely proportional, so that a signal having a frequency above the cut-off frequency has a wavelength below the cut-off wavelength and vice versa.
In a preferred embodiment of the method according to the invention, the data on the optical disc are stored in Run Length Limited (RLL (d)) encoding with a constraint d being the run length (i.e. the minimum spacing between polarity changes on the disc is equal to d+1). Run Length Limited encoding is an advanced family of coding techniques, which are currently used in all types of optical disc. When the method according to the invention is used with disc whereon the data are stored in RLL encoding, the increased disc capacity provided by the method of the invention is combined with the encoding technique currently most frequently used.
In yet another preferred embodiment of the method according to the invention, the phase detector is adapted to take into account the polarity of n signal samples before and after a zero crossing, where n satisfies the condition: n≧d+2. This provides an easily realizable guideline for the number of signal samples to be used in the generation of reliable phase error signals.
These and other aspects of the invention will be apparent from and elucidated with reference to the embodiments described hereinafter.
The invention will be described in more details in connection with the attached figures, wherein:
a-5c show phase locked loop structures incorporating the method according to the invention;
The Phase Locked Loop 20 comprises a Phase Detector 40, a Loop Filter 50 and an oscillator 60, e.g. a Voltage Controlled Oscillator. The phase detector 40 compares the phase of the output signal to the phase of a reference signal. If there is a phase difference between the two signals, the phase detector 40 generates an output voltage, which is proportional to the phase error between the two signals. This output voltage passes through the loop filter and then as an input to the voltage controlled oscillator (VCO) controls the output frequency. Due to this self correcting technique, the output signal will be in phase with the reference signal. When the two signals are synchronized, the phase error between the two signals is zero or almost zero.
The number, n, preferably depends on the performance of the signals. Thus the method according to the invention only uses zero crossings with a sufficient performance for deriving phase information for the timing recovery in the Phase Locked Loop and therefore step 104 results in a reliable error signal.
The output from the Phase Detector, Δφm, is the phase error signal. In case of RLL codes, the phase information of the data sequence yk can be acquired by the equation: φm=ym/(ym−ym+1), where m and m+1 denote two sampling moments around a zero crossing. For a synchronously sampled sequence (i.e. with ideal bit detection moments), the value of φm equals 0.5 (on average), and therefore the phase error signal can be expressed by the equation:
Δφm=φm−0.5.
The phase error signals usually suffer from noise and inter-symbol interference (ISI). As a result, after the PLL has settled down, i.e. the PLL is in the lock condition, the sample frequency fm can fluctuate around a certain value, which leads to non-ideal sampling moments. The higher storage density on an optical disc, the stronger ISI, due to narrowed mark/pit length. Thus the idea of the method according to the invention is to ignore the phase information extracted from the zero crossings that involve short run lengths (e.g. d=1 and d=2 in a Run Length Limited (RLL) encoding with a run length d+1). Thus some phase error pre-processing steps are introduced, which will be explained below in relation to
a-5c show phase locked loop structures incorporating the method according to the invention in the case of RLL (d=1) code. In
c shows a phase locked loop structure incorporating a preferred embodiment of the method according to the invention. The Phase Locked Loop structure comprises a first phase detector 43 configured to only take into account those zero crossing preceded and followed by run lengths equal to or greater than 2, an Anti-Aliasing Filter 44 and a second Phase Detector 45 configured to only take into account those zero crossing preceded and followed by run lengths equal to or greater than 3. The output of the first phase detector 43 is denoted ΔφmA and the output of the second Phase Detector 45 is denoted ΔφmC. The remaining structural elements of the Phase Locked Loop structure shown in
In order to evaluate the timing recovery, a signal-to-noise ratio SNRTR is determined by:
Since the incoming sample sequence Sk is synchronous and noise free, SNRTR indicates the robustness of the timing recovery scheme against ISI. SNRTR have been measured for the Phase Locked Loops in
Number | Date | Country | Kind |
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03103516.5 | Sep 2003 | EP | regional |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/IB04/51762 | 9/15/2004 | WO | 3/16/2006 |