The present invention relates to an holographic storage medium, where data are stored as data pages having a plurality of pixels within a pixel array, and to a device for reading from and/or writing to such a holographic storage medium.
Since the development of the first optical recording medium it has been a superior objective to increase the storage capacity within a recording medium, i.e. to maximize the amount of data that can be stored on a given recording medium, or to minimize the size of the recording medium for a given quantity of information. Today the largest capacities are achieved with digital holographic data storage technology.
In digital holographic data storage the information is recorded in form of interference patterns inside the volume of the recording medium. In the technology of digital holographic storage, the information is arranged in the form of binary data pages, which is usually realized by a modulation of a laser beam using a spatial light modulator (SLM), i.e. an array of light modulating pixels. This laser beam is systematically scanned over the surface of the recording medium, e.g. a rotating holographic disk having a recording layer or a holographic storage card. The increase of the storage density up to 100 bits/μm2 is due to the use of the third dimension, i.e. not only a plane surface is used for carrying the information, but a volume in the recording layer.
As indicated before the data are arranged in the form of data pages containing a plurality of bits, e.g. 100 or more bits. Recovered data pages are usually analyzed using a CCD array having the same or a larger number of pixels as the SLM. Due to the high parallelism of data readout, high data transfer rates of up to 10 Gbits/s and more are achievable. One problem encountered in holographic recording systems is cross talk from adjacent recorded holograms. The suppression of cross talk between different holograms depends on the field angle. Large cross talk leads to a low signal-to-noise ration (SNR). For example, the shift distance of shift-multiplexed holographic memory systems has to be selected according to the minimum signal to reference beam angle to avoid excessive cross-talk from the corresponding part of the data page. However, this leads to a loss in data density in other parts of the data page, as described by Steckmann et al., Appl. Opt. 40, 3387-3394 (2001). Another example for a position dependent SNR is given by Curtis et al., J. Opt. Soc. Am. A 10 2547-2550 (1993).
Orlov et al., Appl. Opt., 43, 4902-4914 (2004) describe the design and implementation of a high-data rate, high capacity digital holographic storage disk system. The data density per hologram is described as the ratio of the number of recorded data pixels divided by the storage location area. The data storage density is affected by different parameters of the system set up and the storing method. The most influencing parameters are the material of the storage medium itself, the material thickness of the storage medium, and the wavelength of the light beam, as smaller focus geometries are achievable for shorter wavelengths. Generally, for high data densities in a digital holographic storage system the amount of SLM-to-CCD pixel misdetection due to imaging distortions and aberrations has to be within very narrow boundaries, e.g. less than 0,2 pixel or better. This detection precision, along with a high numerical aperture (NA), puts stringent requirements on the quality of the imaging optics.
The imaging at large field angles, e.g. by objective systems with a high NA, is not as good as at small field angles. Consequently, the image is affected by optical aberrations, which increase with the increase of the field angle. This causes the SNR to depend on the field angle. From an economic point of view, it would be desirable to use similar plastic components as used for conventional optical data storage systems also for holographic storage systems. As a result, the suppression of cross talk between different adjacent pixels on the CCD depends on the field angle. The pixel size has to be selected according to the maximum permissible cross talk, which is in general determined by the pixels with large field angle. However, this leads to a loss in data density in other parts of the data page. Therefore, the storage capacity of holographic storage systems is limited by the lowest SNR in the image plane.
The limitation of the storage density in holographic storage systems is given in particular by the pixel size in the border area of the data page. The aberrations in the optical elements within the objectives cause distortions in the optical field, and the SNR decreases in the image of the light beam in outer areas. Thus, the achievable density of data storage is limited by the quality of the optical components. This leads to the problem that on the one hand cheap and low quality optical components are not suitable to be used in pickup systems to read out high density data arrays, while on the other hand expensive and high-performance optical components are usually not employed in standard consumer electronics. Therefore, holographic storage media having very high density data arrays are not reliably readable by said standard consumer electronics.
Thus it is an objective of the present invention to provide a holographic storage medium, which achieves a very high density and is at the same time reliably readable by standard consumer electronics.
This object is achieved by a holographic storage medium according to claim 1 in conjunction with the representative features. Advantageous embodiments of the invention are given in the dependent claims.
According to the present invention the data pages in the storage medium feature at least two different data types, whereas a first type of data is stored in an inner part of the data pages and at least a second type of data is stored in an outer part of the data pages, the second type of data being stored with a pixel size equal to or less than the pixel size of the first type of data.
A corresponding method for storing data as data pages on a holographic storage medium has the steps of:
By distinguishing between said two data types, the storage medium features the possibility to store more information on a recording medium that is to be read by high quality devices, but still allows for lower quality devices with a reduced optical performance the playback of data with a limited content. Thus, a multi system holographic recording medium is proposed. This medium is provided with holograms that contain at least two types of data. A first type of data is generated from the inner part of the pixel array, while a second type of data is generated from the outer part of the pixel array. The first type of data is readable and/or writable by devices using high quality optical components as well as devices using low quality optical components. The second type of data is readable and/or writable only by the more expensive high quality devices.
Optical devices with a high performance achieve a high SNR and allow to read out data, which are assigned in the inner as well as in the outer part of the data pages. These devices may be expensive and may be applied in high grade playback electronics or in electronics, which are applied in a professional equipment. Optical devices with a low performance achieve a lower SNR and allow to read out data only from the inner part of the data page corresponding to small field angles. This type of data may carry standard information for playback, limited resolution of a movie or weaker error correction, etc.
Moreover the pixel array may feature a greater size compared to standard sized pixel arrays, whereby the outer area of the data pages is readable by high performance optical devices, whereas the inner part of the data page is at least partly readable by standard optical devices.
Advantageously, a device for reading from and/or writing to a holographic storage medium according to the invention includes means to check the recording quality of the data page, in order to read out only the inner part of the data page or alternatively the inner and the outer part of the data page. By implementing a check of the readability of the first or of the first and the second type of data, the device evaluates if only the first type of data or the first and the second type of data may be replayed. This evaluation may be performed by a special information, which is generated in the second type of data. If the device is able to read out the special information, the device performs playback of the second type of data in addition to the first type of data, and if the device may not read out the special information contained in the second type of data, it can only playback the first type of data.
The distinction between two different types of data leads to the advantage, that the device may include strong error correction means, in order to read out the second type of data in the outer part of the data page. Thus, data storage media, which are only intended for the playback using high preformed optical components, may be differentiated by the error correction means. Systems including weak error correction means are not suitable to read out the data content stored in the outer part of the data page. Devices having low quality optical means perform a distinction between first and second type of data, whereas the second type of data is not detected. Thus, the second type of data does not appear for these devices, which can be understood as “grey areas”.
Advantageously the second type of data is encoded using a different error correction method. This error correction algorithm allows for correction of a higher error rate, though it thus results in a lower data rate. In this case even devices with a lower quality detection system may be able to reproduce the second type of data provided they are equipped with decoders for both error correction algorithms. A further advantage is that the overall data rate provided via the first and the second type of data is higher than the one that usually would be reached by only a single type of data area, even if it was larger than the area used according to the invention for the first type of data.
In an advanced embodiment of the invention it is proposed that more than two types of data are recorded, in order to provide a higher number of quality graduations. Alternatively three, four or more quality graduations can be envisaged, in order to extend the number of quality steps, which may be read out by devices with more than two different quality degrees.
The distinction of at least two different parts within the data pages in the storage medium may be used for the storage of two different movies, whereas the first type of data includes a first movie and the second type of data includes a second movie. Moreover, high quality devices would allow to play back add-on material in order to give the user an added value such as a sophisticated user interface. Alternatively to a movie data the stored data may include audio data or any different kind of data.
Another feature may be envisaged in the differentiation of the resolution, e.g. in a movie, whereas the first type of data features a standard resolution and the second type of data features a high density resolution. Thus a movie may be read out in two different qualities, whereas the resolution of the data content like a movie is low, when the performance of the device is low, and whereas the resolution is high, when the performance of the device is high. This requires that normal and high density parts of the movie are separated before recording, and that the HD-data playback device is able to combine both parts, whereas regarding the resolution less capacity is required for storing of second type of data.
Another distinction between the two different types of data may be given in a first type of data, which includes most significant data and a second type of data, which includes least significant data. Thus, high quality devices would be able to reproduce highest quality. Low price devices would be able to reproduce acceptable quality, as missing information from second type data is nearly not audible and visible, respectively, by a standard equipment.
Advantageously the first type of data includes encrypted data and the second type of data includes decrypted data. This distinction would allow the producing of recording media, that are playable only on high quality devices. In the case of a mixture of both qualities, high quality devices would give the user an advantage regarding additional movie parts being stored in an encrypted form.
Alternatively the first type of data may feature a weak error correction coding and the second type of data may feature a strong error correction coding. By applying strong and weak error correction coding a reproduction of the second type of data is even possible by low quality devices, as an increase of the error rate in the outer region of the detector array due to a low SNR is compensated by a stronger correction coding. Thus the usable capacity of the recording medium is increased. The different correction coding is applicable for the combination of any of the above mentioned distinction between the at least two types of data.
The foregoing and other aspects will become apparent from the following detailed description of the invention when considered in conjunction with enclosed figures, which show:
In holographic data storage digital data are stored by recording the interference pattern produced by the superposition of two coherent laser beams. A schematic illustration of a holographic storage system 10 is shown in
The stored data are retrieved from the holographic recording medium 19 by illuminating a recorded hologram with the reference beam 17 only. The reference beam 17 is diffracted by the hologram structure and produces a copy of the original object beam 16, the reconstructed object beam 20. This reconstructed object beam 20 is collimated by the objective lens 18 and directed onto a 2-dimensional array detector 22, e.g. a CCD-array, by a further beam splitter 21. The array detector 22 allows to reconstruct the recorded data.
The present invention is not limited by the embodiment described above, which is represented as an example only and can be modified in various ways within the scope of protection defined by the accompanying patent claims. Thus the invention is also applicable to different holographic data storage systems.
Reference Numerals
Number | Date | Country | Kind |
---|---|---|---|
05109542.0 | Oct 2005 | EP | regional |