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1\section{Performance}
2
3\subsection{Calibration}
4
5In this section, we describe the tests performed using light pulses of different colour,
6pulse shapes and intensities with the MAGIC LED Calibration Pulser Box \cite{hardware-manual}.
7\par
8The LED pulser system is able to provide fast light pulses of 3--4\,ns FWHM
9with intensities ranging from 3--4 photo-electrons to more than 500 in one inner pixel of the
10camera. These pulses can be produced in three colours $green$, $blue$ and $UV$.
11
12\begin{table}[htp]
13\centering
14\begin{tabular}{|c|c|c|c|c|c|c|}
15\hline
16\hline
17\multicolumn{7}{|c|}{The possible pulsed light colours} \\
18\hline
19\hline
20Colour & Wavelength & Spectral Width & Min. Nr. & Max. Nr. & Secondary & FWHM \\
21 & [nm] & [nm] & Phe's & Phe's & Pulses & Pulse [ns]\\
22\hline
23Green & 520 & 40 & 6 & 120 & yes & 3--4 \\
24\hline
25Blue & 460 & 30 & 6 & 500 & yes & 3--4 \\
26\hline
27UV & 375 & 12 & 3 & 50 & no & 2--3 \\
28\hline
29\hline
30\end{tabular}
31\caption{The pulser colours available from the calibration system}
32\label{tab:pulsercolours}
33\end{table}
34
35Table~\ref{tab:pulsercolours} lists the available colours and intensities and
36figures~\ref{fig:pulseexample1leduv} and~\ref{fig:pulseexample23ledblue} show exemplary pulses
37as registered by the FADCs.
38Whereas the UV-pulse is very stable, the green and blue pulses show sometimes smaller secondary
39pulses after about 10--40\,ns from the main pulse.
40One can see that the very stable UV-pulses are unfortunately only available in such intensities as to
41not saturate the high-gain readout channel. However, the brightest combination of light pulses easily
42saturates all channels in the camera, but does not reach a saturation of the low-gain readout.
43\par
44Our tests can be classified into three subsections:
45
46\begin{enumerate}
47\item Un-calibrated pixels and events: These tests measure the percentage of failures of the extractor
48resulting either in a pixel declared as un-calibrated or in an event which produces a signal ouside
49of the expected Gaussian distribution.
50\item Number of photo-electrons: These tests measure the reconstructed numbers of photo-electrons, their
51spread over the camera and the ratio of the obtained mean values for outer and inner pixels, respectively.
52\item Linearity tests: These tests measure the linearity of the extractor with respect to pulses of
53different intensity and colour.
54\item Time resolution: These tests show the time resolution and stability obtained with different
55intensities and colours.
56\end{enumerate}
57
58\begin{figure}[htp]
59\centering
60\includegraphics[width=0.48\linewidth]{1LedUV_Pulse_Inner.eps}
61\includegraphics[width=0.48\linewidth]{1LedUV_Pulse_Outer.eps}
62\caption{Example of a calibration pulse from the lowest available intensity (1\,Led UV).
63The left plot shows the signal obtained in an inner pixel, the right one the signal in an outer pixel.
64Note that the pulse height fluctuates much more than suggested from these pictures. Especially, a
65zero-pulse is also possible.}
66\label{fig:pulseexample1leduv}
67\end{figure}
68
69\begin{figure}[htp]
70\centering
71\includegraphics[width=0.48\linewidth]{23LedsBlue_Pulse_Inner.eps}
72\includegraphics[width=0.48\linewidth]{23LedsBlue_Pulse_Outer.eps}
73\caption{Example of a calibration pulse from the highest available mono-chromatic intensity (23\,Leds Blue).
74The left plot shows the signal obtained in an inner pixel, the right one the signal in an outer pixel.
75One the left side of both plots, the (saturated) high-gain channel is visible,
76on the right side from FADC slice 18 on,
77the delayed low-gain
78pulse appears. Note that in the left plot, there is a secondary pulses visible in the tail of the
79high-gain pulse. }
80\label{fig:pulseexample23ledblue}
81\end{figure}
82
83We used data taken on the 7$^{th}$ of June, 2004 with different pulser LED combinations, each taken with
8416384 events. The corresponding run numbers range from nr. 31741 to 31772. This data was taken before the
85latest camera repair access which resulted in a replacement of about 2\% of the pixels known to be
86mal-functionning at that time.
87Thus, there is a lower limit to the number of un-calibrated pixels of about 1.5--2\% known
88mal-functionning pixels.
89\par
90Although we had looked at and tested all colour and extractor combinations resulting from these data,
91we refrain ourselves to show here only exemplary behaviour and results of extractors.
92All plots, including those which are not displayed in this TDAS, can be retrieved from the following
93locations:
94
95\begin{verbatim}
96http://www.magic.ifae.es/~markus/pheplots/
97http://www.magic.ifae.es/~markus/timeplots/
98\end{verbatim}
99
100%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
101
102\subsubsection{Un-Calibrated Pixels and Events}
103
104The MAGIC calibration software incorporates a series of checks to sort out mal-functionning pixels.
105Except for the software bug searching criteria, the following exclusion reasons can apply:
106
107\begin{enumerate}
108\item The reconstructed mean signal is less than 2.5 times the extractor resolution $R$ from zero.
109(2.5 Pedestal RMS in the case of the simple fixed window extractors, see section~\ref{sec:pedestals}).
110This criterium essentially cuts out
111dead pixels.
112\item The reconstructed mean signal error is smaller than its value. This criterium cuts out
113signal distributions which fluctuate so much that their RMS is bigger than its mean value. This
114criterium cuts out ``ringing'' pixels or mal-functionning extractors.
115\item The reconstructed mean number of photo-electrons lies 4.5 sigma outside
116the distribution of photo-electrons obtained with the inner or outer pixels in the camera, respectively.
117This criterium cuts out pixels channels with apparently deviating (hardware) behaviour compared to
118the rest of the camera readout.
119\item All pixels with reconstructed negative mean signal or with a
120mean numbers of photo-electrons smaller than one. Pixels with a negative pedestal RMS subtracted
121sigma occur, especially when stars are focussed onto that pixel during the pedestal taking (resulting
122in a large pedestal RMS), but have moved to another pixel during the calibration run. In this case, the
123number of photo-electrons would result artificially negative. If these
124channels do not show any other deviating behaviour, their number of photo-electrons gets replaced by the
125mean number of photo-electrons in the camera, and the channel is further calibrated as normal.
126\end{enumerate}
127
128Moreover, the number of events are counted which have been reconstructed outside a 5 sigma region
129from the mean signal. These events are called ``outliers''. Figure~\ref{fig:outlier} shows a typical
130outlier obtained with the digital filter applied to a low-gain signal.
131
132\begin{figure}[htp]
133\centering
134\includegraphics[width=0.95\linewidth]{Outlier.eps}
135\caption{Example of an event classified as ``un-calibrated''. The histogram has been obtained
136using the digital filter (extractor \#32) applied to a high-intensity blue pulse (run 31772).
137The event marked as ``outlier'' clearly has been mis-reconstructed. It lies outside the 5 sigma
138region from the fitted mean.}
139\label{fig:outlier}
140\end{figure}
141
142The following figures~\ref{fig:unsuited:5ledsuv},~\ref{fig:unsuited:1leduv},~\ref{fig:unsuited:2ledsgreen}
143and~\ref{fig:unsuited:23ledsblue} show the resulting numbers of un-calibrated pixels and events for
144different colours and intensities.
145
146\par
147
148\begin{figure}[htp]
149\centering
150\includegraphics[height=0.95\textheight]{UnsuitVsExtractor-5LedsUV-Colour-13.eps}
151\caption{Uncalibrated pixels and pixels outside of the Gaussian distribution for a typical calibration
152pulse of UV-light which does not saturate the high-gain readout.}
153\label{fig:unsuited:5ledsuv}
154\end{figure}
155
156\begin{figure}[htp]
157\centering
158\includegraphics[height=0.95\textheight]{UnsuitVsExtractor-1LedUV-Colour-04.eps}
159\caption{Uncalibrated pixels and pixels outside of the Gaussian distribution for a very low
160intensity pulse.}
161\label{fig:unsuited:1leduv}
162\end{figure}
163
164\begin{figure}[htp]
165\centering
166\includegraphics[height=0.95\textheight]{UnsuitVsExtractor-2LedsGreen-Colour-02.eps}
167\caption{Uncalibrated pixels and pixels outside of the Gaussian distribution for a typical green pulse.}
168\label{fig:unsuited:2ledsgreen}
169\end{figure}
170
171\begin{figure}[htp]
172\centering
173\includegraphics[height=0.95\textheight]{UnsuitVsExtractor-23LedsBlue-Colour-00.eps}
174\caption{Uncalibrated pixels and pixels outside of the Gaussian distribution for a high-intensity blue pulse.}
175\label{fig:unsuited:23ledsblue}
176\end{figure}
177
178One can see that in general, big extraction windows raise the
179number of un-calibrated pixels and are thus less stable. Especially for the very low-intensity
180$1Led\,UV$-pulse, the big extraction windows summing 8 or more slices, cannot calibrate more than 50\%
181of the inner pixels (fig.~\ref{fig:unsuited:1leduv}). This is an expected behavior since big windows
182add up more noise which in turn makes the for the small signal more difficult.
183\par
184In general, one can also say that all ``sliding window''-algorithms (extractors \#17-32) discard
185less pixels than the ``fixed window''-ones (extractors \#1--16). The digital filter with
186the correct weights (extractor \#32) discards the least number of pixels, but is also robust against
187slight modifications of its weights (extractors \#28--31). Also the ``spline'' algorithms on small
188windows (extractors \#23--25) discard less pixels than the previous extractors, although slightly more
189then the digital filter.
190\par
191In the low-gain, there is one extractor discarding a too high amount of events which is the
192MExtractFixedWindowPeakSearch. The reason becomes clear when one keeps in mind that this extractor
193defines its extraction window by searching for the highest signal found in a sliding peak search window
194 looping only over {\textit non-saturating pixels}. In the case of an intense calibration pulse, only
195the dead pixels match this requirement and define thus an alleatory window fluctuating like the noise
196does in these channels. It is clear that one cannot use this extractor for the intense calibration pulses.
197\par
198It seems also that the spline algorithm extracting the amplitude of the signal produces an over-proportional
199number of excluded pixels in the low-gain. The same, however in a less significant manner, holds for
200the digital filter with high-low-gain inverted weights. The limit of stability with respect to
201changes in the pulse form seems to be reached, there.
202\par
203Concerning the numbers of outliers, one can conclude that in general, the numbers are very low never exceeding
2040.25\%. There seems to be the opposite trend of larger windows producing less
205outliers. However, one has to take into account that already more ``unsuited'' pixels have
206been excluded thus cleaning up the sample somewhat. It seems that the ``digital filter'' and a
207medium-sized ``spline'' (extractors \#25--26) yield the best result except for the outer pixels
208in fig~\ref{fig:unsuited:5ledsuv} where the digital filter produces a worse result than the rest
209of the extractors.
210\par
211In conclusion, one can say that this test excludes all extractors with too big window sizes because
212they are not able to extract small signals produced by about 4 photo-electrons. The excluded extractors
213are:
214\begin{itemize}
215\item: MExtractFixedWindow Nr. 3--5
216\item: MExtractFixedWindowSpline Nr. 6--11
217\item: MExtractFixedWindowPeakSearch Nr. 14--16
218\item: MExtractTimeAndChargeSlidingWindow Nr. 21--22
219\item: MExtractTimeAndChargeSpline Nr. 27
220\end{itemize}
221
222The best extractors after this test are:
223\begin{itemize}
224\item: MExtractFixedWindow Nr. 1--2
225\item: MExtractFixedWindowPeakSearch Nr. 13
226\item: MExtractTimeAndChargeSlidingWindow Nr. 17--19
227\item: MExtractTimeAndChargeSpline Nr. 24--25
228\item: MExtractTimeAndChargeDigitalFilter Nr. 28--32
229\end{itemize}
230
231%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
232
233\subsubsection{Number of Photo-Electrons \label{sec:photo-electrons}}
234
235Assuming that the readout chain is clean and adds only negligible noise with respect to the one
236introduced by the photo-multiplier itself, one can make the assumption that variance of the
237true (non-extracted) signal $ST$ is the amplified Poisson variance on the number of photo-electrons,
238multiplied with the excess noise of the photo-multiplier, characterized by the excess-noise factor $F$.
239
240\begin{equation}
241Var(ST) = F^2 \cdot Var(N_{phe}) \cdot \frac{<ST>^2}{<N_{phe}>^2}
242\label{eq:excessnoise}
243\end{equation}
244
245After introducing the effect of the night-sky background (eq.~\ref{eq:rmssubtraction})
246in formula~\ref{eq:excessnoise} and assuming that the number of photo-electrons per event follows a
247Poisson distribution, one can
248get an expression to retrieve the mean number of photo-electrons impinging on the pixel from the
249mean extracted signal $<SE>$, its variance $Var(SE)$ and the RMS of the extracted signal obtained from
250pure pedestal runs $R$ (see section~\ref{sec:determiner}):
251
252\begin{equation}
253<N_{phe}> \approx F^2 \cdot \frac{Var(SE) - R^2}{<SE>^2}
254\label{eq:pheffactor}
255\end{equation}
256
257Equation~\ref{eq:pheffactor} must not depend on the extractor! Effectively, we will use it to test the
258quality of our extractors by requiring that a valid extractor yields the same number of photo-electrons
259for all pixels of a same type and does not deviate from the number obtained with other extractors.
260As the camera is flat-fielded, but the number of photo-electrons impinging on an inner and an outer pixel is
261different, we also use the ratio of the mean numbers of photo-electrons from the outer pixels to the one
262obtained from the inner pixels as a test variable. In the ideal case, it should always yield its central
263value of about 2.4--2.8.
264\par
265In our case, there is an additional complication due to the fact that the green and blue coloured pulses
266show secondary pulses which destroy the Poisson behaviour of the number of photo-electrons. We will thus
267have to split our sample of extractors into those being affected by the secondary pulses and those without
268showing any effect.
269\par
270Figures~\ref{fig:phe:5ledsuv},~\ref{fig:phe:1leduv},~\ref{fig:phe:23ledsblue}~and~\ref{fig:phe:2ledsgreen} show
271some of the obtained results. Although one can see an amazing stability for the standard 5Leds UV pulse,
272there is a considerable difference for all shown non-standard pulses. Especially the pulses from green
273and blue LEDs
274show a clear dependency on the extraction window of the number of photo-electrons. Only the largest
275extraction windows seem to catch the entire range of (jittering) secondary pulses and get also the ratio
276of outer vs. inner pixels right.
277\par
278The strongest discrepancy is observed in the low-gain extraction (fig.~\ref{fig:phe:23ledsblue}) where all
279fixed window extractors
280
281
282\begin{figure}[htp]
283\centering
284\includegraphics[height=0.92\textheight]{PheVsExtractor-5LedsUV-Colour-13.eps}
285\caption{Number of photo-electrons from a typical, not saturating calibration pulse of colour UV,
286reconstructed with each of the tested signal extractors.
287The first plots shows the number of photo-electrons obtained for the inner pixels, the second one
288for the outer pixels and the third shows the ratio of the mean number of photo-electrons for the
289outer pixels divided by the mean number of photo-electrons for the inner pixels. Points
290denote the mean of all not-excluded pixels, the error bars their RMS.}
291\label{fig:phe:5ledsuv}
292\end{figure}
293
294\begin{figure}[htp]
295\centering
296\includegraphics[height=0.92\textheight]{PheVsExtractor-1LedUV-Colour-04.eps}
297\caption{Number of photo-electrons from a typical, very low-intensity calibration pulse of colour UV,
298reconstructed with each of the tested signal extractors.
299The first plots shows the number of photo-electrons obtained for the inner pixels, the second one
300for the outer pixels and the third shows the ratio of the mean number of photo-electrons for the
301outer pixels divided by the mean number of photo-electrons for the inner pixels. Points
302denote the mean of all not-excluded pixels, the error bars their RMS.}
303\label{fig:phe:1leduv}
304\end{figure}
305
306\begin{figure}[htp]
307\centering
308\includegraphics[height=0.92\textheight]{PheVsExtractor-2LedsGreen-Colour-02.eps}
309\caption{Number of photo-electrons from a typical, not saturating calibration pulse of colour green,
310reconstructed with each of the tested signal extractors.
311The first plots shows the number of photo-electrons obtained for the inner pixels, the second one
312for the outer pixels and the third shows the ratio of the mean number of photo-electrons for the
313outer pixels divided by the mean number of photo-electrons for the inner pixels. Points
314denote the mean of all not-excluded pixels, the error bars their RMS.}
315\label{fig:phe:2ledsgreen}
316\end{figure}
317
318
319\begin{figure}[htp]
320\centering
321\includegraphics[height=0.92\textheight]{PheVsExtractor-23LedsBlue-Colour-00.eps}
322\caption{Number of photo-electrons from a typical, high-gain saturating calibration pulse of colour blue,
323reconstructed with each of the tested signal extractors.
324The first plots shows the number of photo-electrons obtained for the inner pixels, the second one
325for the outer pixels and the third shows the ratio of the mean number of photo-electrons for the
326outer pixels divided by the mean number of photo-electrons for the inner pixels. Points
327denote the mean of all not-excluded pixels, the error bars their RMS.}
328\label{fig:phe:23ledsblue}
329\end{figure}
330
331One can see that all extractor using a large window belong to the class of extractors being affected
332by the secondary pulses. The only exception to this rule is the digital filter which - despite of its
3336 slices extraction window - seems to filter out all the secondary pulses.
334\par
335Moreover, one can see in fig.~\ref{fig:phe:1leduv} that all peak searching extractors show the influence of
336the bias at low numbers of photo-electrons.
337\par
338The extractor MExtractFixedWindowPeakSearch at low extraction windows apparently yields chronically low
339numbers of photo-electrons. This is due to the fact that the decision to fix the extraction window is
340made sometimes by an inner pixel and sometimes by an outer one since the camera is flat-fielded and the
341pixel carrying the largest non-saturated peak-search window is more or found by a random signal
342fluctuation. However, inner and outer pixels have a systematic offset of about 0.5 to 1 FADC slices.
343Thus, the extraction fluctuates artificially for one given channel which results in a systematically
344large variance and thus in a systematically low reconstructed number of photo-electrons. This test thus
345excludes the extractors \#11--13.
346\par
347Moreover, one can see that the extractors applying a small fixed window do not get the ratio of
348photo-electrons from outer to inner pixels correctly for the green and blue pulses.
349\par
350The extractor MExtractTimeAndChargeDigitalFilter seems to be stable against modifications in the
351exact form of the weights in the high-gain readout channel since all applied weights yield about
352the same number of photo-electrons and the same ratio of outer vs. inner pixels. This statement does not
353hold any more for the low-gain, as can be seen in figure~\ref{fig:phe:23ledsblue}. There, the application
354of high-gain weights to the low-gain signal (extractors \#30--31) produces a too low number of photo-electrons
355and also a too low ratio of outer per inner pixels.
356\par
357All sliding window and spline algorithms yield a stable ratio of outer vs. inner pixels in the low-gain,
358however the effect of raising the number of photo-electrons with the extraction window is very pronounced.
359Note that in figure~\ref{fig:phe:23ledsblue}, the number of photo-electrons raises by about a factor 1.4,
360which is slightly higher than in the case of the high-gain channel (figure~\ref{fig:phe:2ledsgreen}).
361\par
362Concluding, there is now fixed window extractor yielding the correct number of photo-electrons
363for the low-gain, except for the largest extraction window of 10 low-gain slices.
364Either the number of photo-electrons itself is wrong or the ratio of outer vs. inner pixels is
365not correct. All sliding window algorithms seem to reproduce the correct numbers if one takes into
366account the after-pulse behaviour of the light pulser itself. The digital filter seems to be not
367stable against exchanging the pulse form to match the slimmer high-gain pulses, though.
368
369
370\subsubsection{Linearity Tests}
371
372In this section, we test the lineary of the extractors. As the photo-multiplier is a linear device over a
373wide dynamic range, the number of photo-electrons per charge has to remain constant over the tested
374linearity region. We will show here only examples of extractors which were not already excluded in the
375previous section.
376\par
377A first test concerns the stability of the conversion factor photo-electrons per FADC counts over the
378tested intensity region.
379
380
381\begin{figure}[htp]
382\centering
383\includegraphics[width=0.95\linewidth]{PheVsCharge-3.eps}
384\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
385exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
386A fixed window extractor on a window size of 6 high-gain and 6 low-gain slices has been used (extractor \#3). }
387\label{fig:linear:phevscharge3}
388\end{figure}
389
390\begin{figure}[htp]
391\centering
392\includegraphics[width=0.95\linewidth]{PheVsCharge-8.eps}
393\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
394exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
395A fixed window spline extractor on a window size of 6 high-gain and 6 low-gain slices has been used
396(extractor \#8). }
397\label{fig:linear:phevscharge8}
398\end{figure}
399
400\begin{figure}[htp]
401\centering
402\includegraphics[width=0.95\linewidth]{PheVsCharge-14.eps}
403\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
404exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
405A fixed window peak search extractor on a window size of 6 high-gain and 6 low-gain slices has been used
406(extractor \#14). }
407\label{fig:linear:phevscharge14}
408\end{figure}
409
410\begin{figure}[htp]
411\centering
412\includegraphics[width=0.95\linewidth]{PheVsCharge-20.eps}
413\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
414exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
415A sliding window extractor on a window size of 6 high-gain and 6 low-gain slices has been used
416 (extractor \#20). }
417\label{fig:linear:phevscharge20}
418\end{figure}
419
420\begin{figure}[htp]
421\centering
422\includegraphics[width=0.95\linewidth]{PheVsCharge-25.eps}
423\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
424exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
425An integrating spline extractor on a sliding window and a window size of 2 high-gain and 3 low-gain slices
426has been used (extractor \#25). }
427\label{fig:linear:phevscharge25}
428\end{figure}
429
430\begin{figure}[htp]
431\centering
432\includegraphics[width=0.95\linewidth]{PheVsCharge-27.eps}
433\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
434exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
435An integrating spline extractor on a sliding window and a window size of 6 high-gain and 7 low-gain slices
436has been used (extractor \#27). }
437\label{fig:linear:phevscharge27}
438\end{figure}
439
440\begin{figure}[htp]
441\centering
442\includegraphics[width=0.95\linewidth]{PheVsCharge-32.eps}
443\caption{Example of a the development of the conversion factor FADC counts to photo-electrons for two
444exemplary inner pixels (upper plots) and two exemplary outer ones (lower plots).
445A digital filter extractor on a window size of 6 high-gain and 6 low-gain slices has been used
446 (extractor \#32). }
447\label{fig:linear:phevscharge32}
448\end{figure}
449
450
451
452\subsubsection{Time Resolution}
453
454The extractors \#17--32 are able to extract also the arrival time of each pulse. In the calibration,
455we have a fast-rising pulse, uniform over camera also in time. We estimate the time-uniformity to better
456than 300\,ps, a limit due to the different travel times of the light between inner and outer parts of the
457camera. Since the calibraion does not have an absolute measurement of the arrival time, we measure
458the relative arrival time, i.e.
459
460\begin{equation}
461\delta t_i = t_i - t_1
462\end{equation}
463
464where $t_i$ denotes the reconstructed arrival time of pixel number $i$ and $t_1$ the reconstructed
465arrival time of pixel number 1 (software numbering). For one calibration run, one can then fill
466histograms of $\delta t_i$ for each pixel which yields then a mean $<\delta t_i>$, comparable to
467systematic offsets in the signal delay and a sigma $\sigma(\delta t_i)$ which is a measure of the
468combined time resolutions of pixel $i$ and pixel 1. Assuming that the PMTs and readout channels are
469of a same kind, we obtain an approximate absolute time resolution of pixel $i$ by:
470
471\begin{equation}
472tres_i \approx \sigma(\delta t_i)/sqrt(2)
473\end{equation}
474
475Figures~\ref{fig:reltimesinner10leduv} and~\ref{fig:reltimesouter10leduv} show distributions of $<\delta t_i>$
476for
477one typical inner pixel and one typical outer pixel and a non-saturating calibration pulse of UV-light,
478obtained with three different extractors. One can see that the first two yield a Gaussian distribution
479to a good approximation, whereas the third extractor shows a three-peak structure and cannot be fitted.
480We discarded that particular extractor for this reason.
481
482\begin{figure}[htp]
483\centering
484\includegraphics[width=0.3\linewidth]{RelArrTime_Pixel97_10LedUV_Extractor32.eps}
485\includegraphics[width=0.32\linewidth]{RelArrTime_Pixel97_10LedUV_Extractor23.eps}
486\includegraphics[width=0.32\linewidth]{RelArrTime_Pixel97_10LedUV_Extractor17.eps}
487\caption{Example of a two distributions of relative arrival times of an inner pixel with respect to
488the arrival time of the reference pixel Nr. 1. The left plot shows the result using the digital filter
489 (extractor \#32), the central plot shows the result obtained with the half-maximum of the spline and the
490right plot the result of the sliding window with a window size of 2 FADC slices (extractor \#17). A
491medium sized UV-pulse (10Leds UV) has been used which does not saturate the high-gain readout channel.}
492\label{fig:reltimesinner10leduv}
493\end{figure}
494
495\begin{figure}[htp]
496\centering
497\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel400_10LedUV_Extractor32.eps}
498\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel400_10LedUV_Extractor23.eps}
499\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel400_10LedUV_Extractor17.eps}
500\caption{Example of a two distributions of relative arrival times of an outer pixel with respect to
501the arrival time of the reference pixel Nr. 1. The left plot shows the result using the digital filter
502 (extractor \#32), the central plot shows the result obtained with the half-maximum of the spline and the
503right plot the result of the sliding window with a window size of 2 FADC slices (extractor \#17). A
504medium sized UV-pulse (10Leds UV) has been used which does not saturate the high-gain readout channel.}
505\label{fig:reltimesouter10leduv}
506\end{figure}
507
508Figures~\ref{fig:reltimesinner10ledsblue} and~\ref{fig:reltimesouter10ledsblue} show distributions of
509$<\delta t_i>$ for
510one typical inner and one typical outer pixel and a high-gain-saturating calibration pulse of blue-light,
511obtained with two different extractors. One can see that the first (extractor \#23) yields a Gaussian
512distribution to a good approximation, whereas the second (extractor \#32) shows a two-peak structure
513and cannot be fitted.
514\par
515\ldots {\it Unfortunately, this happens for all digital filter extractors in the low-gain.
516The reason is not yet understood, and has to be found by Hendrik... } \ldots
517\par
518
519\begin{figure}[htp]
520\centering
521\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel97_10LedBlue_Extractor23.eps}
522\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel97_10LedBlue_Extractor32.eps}
523\caption{Example of a two distributions of relative arrival times of an inner pixel with respect to
524the arrival time of the reference pixel Nr. 1. The left plot shows the result using the half-maximum of the spline (extractor \#23), the right plot shows the result obtained with the digital filter
525(extractor \#32). A
526medium sized Blue-pulse (10Leds Blue) has been used which saturates the high-gain readout channel.}
527\label{fig:reltimesinner10ledsblue}
528\end{figure}
529
530
531
532\begin{figure}[htp]
533\centering
534\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel400_10LedBlue_Extractor23.eps}
535\includegraphics[width=0.31\linewidth]{RelArrTime_Pixel400_10LedBlue_Extractor32.eps}
536\caption{Example of a two distributions of relative arrival times of an outer pixel with respect to
537the arrival time of the reference pixel Nr. 1. The left plot shows the result using the half-maximum of the spline (extractor \#23), the right plot shows the result obtained with the digital filter
538(extractor \#32). A
539medium sized Blue-pulse (10Leds Blue) has been used which saturates the high-gain readout channel.}
540\label{fig:reltimesouter10ledsblue}
541\end{figure}
542
543\begin{figure}[htp]
544\centering
545\includegraphics[width=0.95\linewidth]{TimeResExtractor-5LedsUV-Colour-12.eps}
546\caption{Reconstructed arrival time resolutions from a typical, not saturating calibration pulse
547of colour UV, reconstructed with each of the tested arrival time extractors.
548The first plots shows the time resolutions obtained for the inner pixels, the second one
549for the outer pixels. Points
550denote the mean of all not-excluded pixels, the error bars their RMS.}
551\label{fig:time:5ledsuv}
552\end{figure}
553
554\begin{figure}[htp]
555\centering
556\includegraphics[width=0.95\linewidth]{TimeResExtractor-1LedUV-Colour-04.eps}
557\caption{Reconstructed arrival time resolutions from the lowest intensity calibration pulse
558of colour UV (carrying a mean number of 4 photo-electrons),
559reconstructed with each of the tested arrival time extractors.
560The first plots shows the time resolutions obtained for the inner pixels, the second one
561for the outer pixels. Points
562denote the mean of all not-excluded pixels, the error bars their RMS.}
563\label{fig:time:1leduv}
564\end{figure}
565
566\begin{figure}[htp]
567\centering
568\includegraphics[width=0.95\linewidth]{TimeResExtractor-2LedsGreen-Colour-02.eps}
569\caption{Reconstructed arrival time resolutions from a typical, not saturating calibration pulse
570of colour Green, reconstructed with each of the tested arrival time extractors.
571The first plots shows the time resolutions obtained for the inner pixels, the second one
572for the outer pixels. Points
573denote the mean of all not-excluded pixels, the error bars their RMS.}
574\label{fig:time:2ledsgreen}
575\end{figure}
576
577\begin{figure}[htp]
578\centering
579\includegraphics[width=0.95\linewidth]{TimeResExtractor-23LedsBlue-Colour-00.eps}
580\caption{Reconstructed arrival time resolutions from the highest intensity calibration pulse
581of colour blue, reconstructed with each of the tested arrival time extractors.
582The first plots shows the time resolutions obtained for the inner pixels, the second one
583for the outer pixels. Points
584denote the mean of all not-excluded pixels, the error bars their RMS.}
585\label{fig:time:23ledsblue}
586\end{figure}
587
588
589\begin{figure}[htp]
590\centering
591\includegraphics[width=0.95\linewidth]{TimeResVsCharge-Area-21.eps}
592\caption{Reconstructed mean arrival time resolutions as a function of the extracted mean number of
593photo-electrons for the weighted sliding window with a window size of 8 FADC slices (extractor \#21).
594Error bars denote the
595spread (RMS) of the time resolutions over the investigated channels.
596The marker colours show the applied
597pulser colour, except for the last (green) point where all three colours were used.}
598\label{fig:time:dep20}
599\end{figure}
600
601\begin{figure}[htp]
602\centering
603\includegraphics[width=0.95\linewidth]{TimeResVsCharge-Area-23.eps}
604\caption{Reconstructed mean arrival time resolutions as a function of the extracted mean number of
605photo-electrons for the half-maximum searching spline (extractor \#23). Error bars denote the
606spread (RMS) of the time resolutions over the investigated channels.
607The marker colours show the applied
608pulser colour, except for the last (green) point where all three colours were used.}
609\label{fig:time:dep23}
610\end{figure}
611
612
613\begin{figure}[htp]
614\centering
615\includegraphics[width=0.95\linewidth]{TimeResVsCharge-Area-30.eps}
616\caption{Reconstructed mean arrival time resolutions as a function of the extracted signal
617for the digital filter with inverted high- and low-gain weights (extractor \#30). Error bars denote the
618spread (RMS) of the time resolutions over the investigated channels.
619The marker colours show the applied
620pulser colour, except for the last (green) point where all three colours were used.}
621\label{fig:time:dep30}
622\end{figure}
623
624
625\begin{figure}[htp]
626\centering
627\includegraphics[width=0.95\linewidth]{TimeResVsCharge-Area-32.eps}
628\caption{Reconstructed mean arrival time resolutions as a function of the extracted signal
629for the digital filter (extractor \#32). Error bars denote the
630spread (RMS) of the time resolutions over the investigated channels.
631The marker colours show the applied
632pulser colour, except for the last (green) point where all three colours were used.}
633\label{fig:time:dep32}
634\end{figure}
635
636
637
638
639
640\clearpage
641
642\subsection{Pulpo Pulses}
643\subsection{MC Data}
644\subsection{Cosmics Data?}
645The results of this subsection are based on the following runs taken
646on the 21st of September 2004.
647\begin{itemize}
648\item{Run 39000}: OffCrab11 at 19.1 degrees zenith angle and 106.2
649azimuth.
650\item{Run 39182}: CrabNebula at 19.0 degrees zenith angle and 106.0 azimuth.
651\end{itemize}
652
653\subsection{Pedestals}
654
655
656%%% Local Variables:
657%%% mode: latex
658%%% TeX-master: "MAGIC_signal_reco"
659%%% TeX-master: "MAGIC_signal_reco."
660%%% TeX-master: "MAGIC_signal_reco"
661%%% TeX-master: "MAGIC_signal_reco"
662%%% TeX-master: "MAGIC_signal_reco"
663%%% TeX-master: "MAGIC_signal_reco"
664%%% TeX-master: "MAGIC_signal_reco"
665%%% End:
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