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четверг, 21 января 2010 г.

New update! Improved bit stream.


Please watch small video-clip about new update.


In all previous versions, the bit stream received as a result of demodulation of PSK signals in SA, was represented as relative corners, that caused some problems with the subsequent processing of the received data.

From version 6.1.0.8 and above, universal PSK demodulator in SA, produces a bit stream in conditional codes of absolute corners. Such approach in the first, removes set of artificial problems with the subsequent data conversion, because to receive bites from absolute codes of corners does not represent special complexity, and in the second, it is a standard format for the majority of similar solutions.

We have divided/separated operation of the viewer, and operation of the demodulator, although they are still closely connected, but can work in different dimensions n-Ary. It allows to select an optimal mode of demodulation, that is certainly positively influences on the quality of a bit stream.

Two new units are added:

1) Vectors dem - at active state shows working positions of the demodulator, in the form of the vector diagram.
2) Dem output as - the list of modes accessible to the demodulator, it is possible to select any, depending on a signal and the task.

The bit stream is output by the demodulator in the form of codes of positions of absolute corners, which are occupied with a constellation point, at the time moment, which is corresponding to clock synchronization. The zero vector is displayed by light-blue colour, and encoded as 0, other positions are encoded by increasing and numbered counter-clockwise from a zero vector.

The list of operating modes of the demodulator includes:
1) standard mode
2) modes for demodulation of relative sorts, such as PI/4 DQPSK and similar.

For these sorts of signals, mapping of constellation with reduced arity in a mode of the first difference, and besides, turn of the constellation on an appropriate corner is characteristic. All this is well-known, but it was an absolute barrier for the qualitative demodulation in former versions.

In the list of modes of demodulation, for such signals these modes are flagged by s character (s means- special/shifted).

Please, pay attention that dimension of a viewer n-Ary 8 does not correspond to dimension of demodulation 4, and besides, special shift is necessary. In usual universal demodulators, it calls very serious problems with the quality of a bit stream for such signals.

One more example of receiving of a direct bit stream for the signal Orbcomm: it is possible thanks to the fact, that modulation used, in this case, is SDPSK, and it is equivalent to PI/2 DBPSK( or other names, PSK-2 with phase rotation, PSK-4 without transitions on 180 etc). And as it is binary sort of modulation, there is possibility to receive bits directly from the demodulator.

It is known that such sort of manipulation concerns to half-modes, and the signal can be demodulated by the frequency detector ( as a compulsory measure of course). Let's compare quality of the received bit stream with the coherent demodulator in SA and the bit stream, received in the frequency detector. Naturally, in this case, the stream from SA demodulator is more preferable, because all possibilities of coherent processings are realised.


четверг, 27 августа 2009 г.

Analysis of QAM-16.

The example of analysis of the real signal.
Analysis of the record of QAM-16 signal.
The example of analysis of the real signal 2008_21_12_fm.wav

The video clip to this article is attached!

The first mandatory step is the testing of the record on suitability for analysis. This step does not guarantee exact diagnostics, and the main objective of the test is the tentative estimation of chances of success. If will be found out, that the record is made with rough disturbances, has strong distortions or was exposed to a compression, then the chances of carrying out of the qualitative analysis are extremely small.

In generall, the there are no big problems, and it is possible to hope that the efforts spent for the analysis will be not vain. The record seems to has a notable blockage/obstruction of level on the low frequencies, but it is not the reason for refusal of the analysis.
We get, where possible, the preliminary "measures" from the signal, at the same time we are marking that the blockage/obstruction is really present. When we say "Measures" here, we mean:
  • preliminary, and rough enough estimates, of the spectrum's centre of the signal
  • presence and direction of distortion/defect of the spectrum, of spectrum's width and etc
All that can be useful further for specification conclusions and summarys.
We receive clock frequency of manipulation, through two methods, both methods give identical results. The line of the clock frequency is clear and bright enough, that gives grounds to consider the received value relieble.

We check the version that it is FSK, MFSK or something like that. The version does not prove to be true, the histogram does not show any obvious allocation of frequencies.

There are two not so clear lines, with frequencies of ~1667 and ~1336 Hz, In the module of obtaining of harmonics, in the fourth degree. The standard error in this case, that, usually, an analyst does not check the following higher harmonics, in this case there is a risk to skip brighter and correct/clear enough picture. However on this signal, the higher harmonics do not give any lines at all.

Usually, the purpose in the exponentation module in a degree of harmonic's getting, the is to get any possible lines, in case when lines are gotten, the chances to open the signal are very great. Not always quality of the signal or modulation allows to make it, but in our case there are hooks. It is necessary, starting with Suppositions that it is a PSK-like signal to prove a choice of one of frequencies as carrier frequency. Of course, in hard cases, it is necessary to sort out simply all variants, but that does not forbid to prove the first variant somehow. On preliminary "measures" taking, Fc - is defined at level of 1320-1350 Hz, it is logical to make the first, and probably not correct supposition that carrier will be will be somewhere in this area and the choice falls on frequency ~1336.

Lanuch Phase Plane module and specify the fourth degree, that degree, in which the lines were detected. Please Pay attention that the preliminary "not proved" carrier, has much bigger amplitude, and looks as real carrier much more convincingly. But it is also necessary to pay attention that the common tendency of the non-uniform spectrum is saved and approximately conform to initial non-uniformity. It means that ,easily, at the expense of the distorted frequency characteristic such non-uniformity in levels of the lines can be objective, and is not mandatory that the strongest line is really carrier, that is is possible that a preliminary choice and was not wrong, but correct.

We start the process of constellation's mapping, after some time of capturing and synchronisation of the internal generators, the picture is more or less stabilised, and it will be possible to take advantage of the corrector for attempts to restore the signal.

The corrector successfully copes with the task, and it becomes absolutely clear that the researched signal is QAM-16, but it has some features. On the lines of the external big square, the positions, which do not coincide with positions of standard constellation QAM-16 are used. It is desirable to understand somehow what these positions are andd how they are related with the signal.

By having included mapping of transitions in the constellation, It is possible to notice that constellation's points produce the square in the main constellation QAM-16. If to look on the mapping transitions more attentive, then it is possible to notice that this additional square, is not linked by transitions to the main constellation. It is typical sort of constellation for QAM modulation, with so-called re-trainings. Re-trainings are injected into the signal specially, with the purpose to provide qualitative work of the adaptive corrector in the demodulator. It solves tasks of the qualitative demodulation of a signal in very hard and difficult conditions of reception, since re-trainings are known in advance to the receiving side, and the very effective tuning by time and setup of the adaptive corrector of the receiver are realized by re-trainings.

Having played with the semiautomatic corrector, and having selected more correct degree (12th) it is possible to receive the final signal with high quality enough. For the control this signal can be saved and cheked up for how should look the record with the absence of distortions or at their minimum value.

Much more regular allocation of the spectrum is visible, and besides, the signals of such quality, as a rule, do not call difficulties at the analysis, because practically at once in 12th degree, it is possible to recive value of the carrier, and the ideal constellation on phase plane. But in practice such signals are rare exception, than a rule.

The small video clip is attached to the article. The video clip, where the main course of process of getting of parametres of the signal and its correction is showed.

Good Luck!