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Homework 6 Solution

Q1.

Matlab code:

MCode HW6 Q1.jpg

Assign the value of parameters and then call the function signalDFT

For example, in case 6 type following command in the command window of Matlab:

N=20;

w1=0.62831853;

k=0.2;

w2=0.79168135;

[x,X]=signal(w1,w2,k,N);

Plot result:

case 1:

HW6 Q1 Case1.jpg

case 2:

HW6 Q1 Case2.jpg

case 3:

HW6 Q1 Case3.jpg

case 4:

HW6 Q1 Case4.jpg

case 5:

HW6 Q1 Case5.jpg

case 6:

HW6 Q1 Case6.jpg


Q2.

Recall the definition of DFT: $ X[k]=\sum_{n=0}^{N-1} x[n]e^{-j2\pi k/N} $

In this question N=8

If we use summation formula to compute DFT, for each k, we need N times complex multiplications and N times complex additions.

In total, we need N*N=64 times of complex multiplications and N*(N-1)=56 times of complex additions.

In decimation-in-time FFT algorithm, we keep on decimating the number of points by 2 until we get 2 points DFT. At most, we can decimate $ v=log_2 N $ times. As a result, we get v levels of DFT. For each level, we need N/2 times of complex multiplications and N times of complex additions.

In total, we need $ \frac{N}{2}log_2 N=12 $N times of complex multiplications and $ Nlog_2 N=24 $ times of complex additions.


Q3.

Denote N is the points number of the input signal's DFT. Then N=6.

1) The normal DFT algorithm: If we use summation formula to compute DFT, according to the analysis of Q2. We need N*N=36 times of complex multiplications and N*(N-1)=30 times of complex additions.

Flow diagram of FFT:

DiagramFFT1.jpg

In this FFT algorithm, the computing of DFT is divided into two levels. First, we compute two 3 points DFT, which are DFT of even and odd points.

According to the analysis of Q2, we need N*N=9 times of complex multiplications and N*(N-1)=6 times of complex additions. Since we have to do this twice, we need 9*2=18 times of complex multiplications and 6*2=12 times of complex additions.

Second, we compute the final DFT by combing the first level result. According to the analysis of Q2, we need N/2=3 times of complex multiplications and N=6 times of complex additions.

In total, we need 18+3=21 times of complex multiplications and 12+6=18 times of complex additions.

2)

Flow diagram of FFT:

DiagramFFT2.jpg

In this FFT algorithm, the computing of DFT is still divided into two levels. However, we will first compute three 2 points DFT, which are DFT of the first half points and the second half points. According to analysis of Q2, we need N/2=3 times of complex multiplications and N=6 times of complex additions.

Second, we compute the two 3 points DFT using first level result. According to the analysis of Q2, for each 3 points DFT we need N*N=9 times of complex multiplications and N*(N-1)=6 times of complex additions. Since we have to do this twice, we need 9*2=18 times of complex multiplications and 6*2=12 times of complex additions.

In total, we need 3+18=21 times of complex multiplications and 6+12=18 times of complex additions.

Notice that the output sequences of DFT of 2) is different from 1).

Compare 1) and 2), both methods have the same amount of complex operations.


Q4.



Q5.



Q6.



Q7.



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Ph.D. on Applied Mathematics in Aug 2007. Involved on applications of image super-resolution to electron microscopy

Francisco Blanco-Silva