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Title: mobile sampling of sensor field data using controlled broadcast full documentation Page Link: mobile sampling of sensor field data using controlled broadcast full documentation - Posted By:
Created at: Monday 10th of December 2012 07:32:31 PM
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Title: to verify de morgan theorem using ic 7400 Page Link: to verify de morgan theorem using ic 7400 - Posted By:
Created at: Friday 18th of March 2016 01:22:19 PM
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Title: matlab code for verifying the de morgan s theorem Page Link: matlab code for verifying the de morgan s theorem - Posted By:
Created at: Thursday 06th of October 2016 02:06:48 PM
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Title: mobile sampling of sensor field data using controlled broadcast Page Link: mobile sampling of sensor field data using controlled broadcast - Posted By:
Created at: Sunday 11th of November 2012 08:15:19 PM
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Title: VERIFICATION OF SAMPLING THEOREM Page Link: VERIFICATION OF SAMPLING THEOREM - Posted By: seminar class
Created at: Friday 06th of May 2011 05:52:55 PM
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Procedure: -
1. Select a frequency of ‘f’ Hz
2. To generate a sine wave of F Hz, define a closely spaced time vector(to represent analog signal, at least 1000 samples pr cycle)t=0:1/1000:1;
3. Generate the sinusoid, and plot the signal x_analog=sin(2*pi*F*t)
4. Select a sampling frequency Fs=10Fsamples/sec,generate a suitable time scale for this sampling signal n=0:1/Fs:1;%vector to define the sampling instants
5. Sample the analog signal at the instants specified by ’n ’
x_discreate =sin (2*pi*F*n) plot this using separa ....etc
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Title: verification of sampling theorem using matlab program with explanation Page Link: verification of sampling theorem using matlab program with explanation - Posted By:
Created at: Friday 02nd of November 2012 08:43:46 PM
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Title: A proof of the Heine-Borel Theorem Page Link: A proof of the Heine-Borel Theorem - Posted By: seminar class
Created at: Tuesday 15th of February 2011 02:58:34 PM
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A proof of the Heine-Borel Theorem
Theorem (Heine-Borel Theorem). A subset S of Ris compact if and only if S is closed and bounded.
Proof. First we suppose that S is compact. To see that S is bounded is fairly simple: Let In = (−n, n).
Then
1
[
n=1
In = R.
Therefore S is covered by the collection of {In}. Hence, since S is compact, finitely many will suffice.
S (In1 [ · · · [ Ink ) = Im,
where m = max{n1, . . . , nk}. Therefore |x| m for all x 2 S, and S is bounded.
Now we will show that S is closed. Suppose not. The ....etc
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Title: Basic Proportionality Theorem Page Link: Basic Proportionality Theorem - Posted By: projectsofme
Created at: Monday 18th of October 2010 02:04:27 PM
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