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|
{
"cells": [
{
"cell_type": "markdown",
"metadata": {
"collapsed": true
},
"source": [
"# Chapter 7 Digital Modulation Techniques"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.01 page 294"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
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xZiXQJcPz3wBnef//EmiRtzpHoBx5JFSrBjNnQvPmttX4R9AdZ47i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\nXOJ3OByOhOESv8PhcCSM/wdwWK/k21w2GAAAAABJRU5ErkJggg==\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7fa9141608d0>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from __future__ import division\n",
"from numpy import arange, sin, pi,zeros\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,grid,show\n",
"#Caption:Waveforms of Different Digital Modulation techniques\n",
"#Figure7.1\n",
"#Digital Modulation Techniques\n",
"#To Plot the ASK, FSK and PSk Waveforms\n",
"f = 2 # the Analog Carrier Frequency in Hz\n",
"t = arange(0,1/512+1,1/512)\n",
"x = [sin(2*pi*f*tt) for tt in t]\n",
"I = [0,1,1,0,1,0,0,1] # the digital binary data\n",
"#Generation of ASK Waveform\n",
"#Xask = []#\n",
"Xask=zeros(len(x))\n",
"for n in range(0,len(I)):\n",
" if((I[n]==1) and (n==0)):\n",
" Xask = [x,Xask]#\n",
" elif((I[n]==0) and (n==0)):\n",
" Xask = [zeros(len(x)),Xask]\n",
" elif((I[n]==1) and (n!=1)):\n",
" Xask = [Xask,x]\n",
" elif((I[n]==0) and (n!=1)): \n",
" Xask = [Xask,zeros(len(x))]\n",
" \n",
"\n",
"#Generation of FSK Waveform\n",
"Xfsk = []#\n",
"x1 = [sin(2*pi*f*tt) for tt in t]\n",
"x2 = [sin(2*pi*(2*f)*tt) for tt in t]\n",
"for n in range(0,len(I)):\n",
" if (I[n]==1):\n",
" Xfsk = [Xfsk,x2]\n",
" elif (I[n]!=1):\n",
" Xfsk = [Xfsk,x1]\n",
" \n",
"\n",
"#Generation of PSK Waveform\n",
"Xpsk = []#\n",
"x1 = [sin(2*pi*f*tt) for tt in t]\n",
"x2 = [-sin(2*pi*f*tt) for tt in t]\n",
"for n in range(0,len(I)):\n",
" if (I[n]==1):\n",
" Xpsk = [Xpsk,x1]\n",
" elif (I[n]!=1):\n",
" Xpsk = [Xpsk,x2]\n",
" \n",
"plot(t,x)\n",
"title('Analog Carrier Signal for Digital Modulation')\n",
"grid()\n",
"show()\n"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.1 page 298"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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y+9k+0EdYC3DVohB5w8fe8WHqA0GCeoCylQNdpzHoZ99YmiWNEYbTZXRV4tN0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\nMVMEDMMwerH/AGh7YG2JCpsXAAAAAElFTkSuQmCC\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7fa55c4e1c50>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show\n",
"\n",
"M =4#\n",
"i = range(0,M)\n",
"t = arange(0,0.001+1,0.001)\n",
"s1=ones([len(i),len(t)])\n",
"s2=ones([len(i),len(t)])\n",
"for i in range(0,M):\n",
" s1[i,:] = [cos(2*pi*2*tt)*cos((2*i-1)*pi/4) for tt in t]\n",
" s2[i,:] = [-sin(2*pi*2*tt)*sin((2*i-1)*pi/4) for tt in t]\n",
"\n",
"S1 =[]#\n",
"S2 = []#\n",
"S = []#\n",
"Input_Sequence =[0,1,1,0,1,0,0,0]\n",
"m = [3,1,1,2]\n",
"for i in range(0,len(m)):\n",
" S1 = S1+[s1[m[i],:]]\n",
" S2 = S2+[s2[m[i],:]]\n",
"S = S1+S2#\n",
"subplot(3,1,1)\n",
"plot(S1)\n",
"title('Binary PSK wave of Odd-numbered bits of input sequence') \n",
"subplot(3,1,2)\n",
"plot(S2)\n",
"title('Binary PSK wave of Even-numbered bits of input sequence') \n",
"subplot(3,1,3)\n",
"plot(S)\n",
"title('QPSK waveform') \n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.02 page 302"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"coordinates of message points [1.0, -1.0]\n",
"Message points ['0b1', '0b0']\n"
]
},
{
"data": {
"image/png": 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"text/plain": [
"<matplotlib.figure.Figure at 0x7fcab6354f10>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show\n",
"\n",
"M =2#\n",
"i = range(1,M+1)\n",
"y = [cos(2*pi+(ii-1)*pi) for ii in i]\n",
"\n",
"annot = [bin(xx) for xx in arange(len(y)-1,-1,-1)]\n",
"annot = [bin(yy) for yy in arange(len(y)-1,-1,-1)]\n",
"\n",
"print 'coordinates of message points',y\n",
"\n",
"print 'Message points',annot\n",
"plot(y)\n",
"xlabel(' In-Phase')#\n",
"ylabel(' Quadrature')#\n",
"title('Constellation for BPSK')\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.2 page 304"
]
},
{
"cell_type": "code",
"execution_count": 4,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"coordinates of message points\n",
"[1.0, -1.0]\n",
"[-1.0, -1.0]\n",
"[-1.0, 1.0]\n",
"[1.0, 1.0]\n"
]
},
{
"data": {
"image/png": 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/XfKGbwAsyPtuaeB0YCzwbN7/ZgFwEvB2jOEKQMnlIBxgZ8b4eiV+Oxo4tsC8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\nzjmXyv8Dg9CmkODLrqIAAAAASUVORK5CYII=\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7f2c4eca9c10>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show,legend,grid,subplot\n",
"#Table 7.2 signal space characterization of MSK\n",
"\n",
"M =2#\n",
"Tb =1#\n",
"t1 = arange(-Tb,0.01+Tb,Tb)\n",
"t2 = arange(0,0.01+2*Tb,2*Tb)\n",
"phi1 = [cos(2*pi*t11)* cos((pi/(2*Tb))*t11) for t11 in t1]\n",
"phi2 = [sin(2*pi*t22)*sin((pi/(2*Tb))*t22) for t22 in t2]\n",
"teta_0 = [0,pi]\n",
"teta_tb = [pi/2,-pi/2]\n",
"S1 = [];s1 = []\n",
"S2 = [];s2 = []\n",
"for i in range(0,M):\n",
" s1.append(cos(teta_0[i]))\n",
" s2.append(-sin(teta_tb[i]))\n",
" S1 = S1+[s1[i]*phi1]\n",
" S2 = S2+[s2[0]*phi2]\n",
"\n",
"for i in arange(M,-1+1,1):\n",
" S1 = S1+[s1[i]*phi1]\n",
" S2 = S2+[s2(1)*phi2]\n",
"\n",
"Input_Sequence =[1,1,0,1,0,0,0]\n",
"S = []\n",
"t = arange(0,0.01+1,1)\n",
"S = S+[cos(0)*cos(2*pi*tt)-sin(pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(0)*cos(2*pi*tt)-sin(pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(pi)*cos(2*pi*tt)-sin(pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(pi)*cos(2*pi*tt)-sin(-pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(0)*cos(2*pi*tt)-sin(-pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(0)*cos(2*pi*tt)-sin(-pi/2)*sin(2*pi*tt) for tt in t]\n",
"S = S+[cos(0)*cos(2*pi*tt)-sin(-pi/2)*sin(2*pi*tt) for tt in t]\n",
"\n",
"y = [[s1[0],s2[0]],[s1[1],s2[0]],[s1[1],s2[1]],[s1[0],s2[1]]]\n",
"print 'coordinates of message points'\n",
"for yy in y:\n",
" print yy\n",
" \n",
"\n",
"subplot(3,1,1)\n",
"plot(S1[0])\n",
"title('Scaled time function s1*phi1(t)')\n",
"#subplot(3,1,2)plot(S2[0])title('Scaled time function s2*phi2(t)')\n",
"subplot(3,1,3)\n",
"plot(S)\n",
"title('Obtained by adding s1*phi1(t)+s2*phi2(t) on a bit-by-bit basis') \n",
"show()\n",
"\n"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.3 page 308"
]
},
{
"cell_type": "code",
"execution_count": 2,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"Table 7.3 Illustrating the Generation of DPSK Signal\n",
"_____________________________________________________\n",
"\n",
"(bk) [1, 0, 0, 1, 0, 0, 1, 1]\n",
"\n",
"(bk_not) [0, 1, 1, 0, 1, 1, 0, 0]\n",
"\n",
"Differentially encoded sequence (dk)\n",
"1 \t0 \t1 \t1 \t0 \t1 \t1 \t1 \t\n",
"\n",
"Transmitted phase in radians\n",
"0 \t3.14159265359 \t0 \t0 \t3.14159265359 \t0 \t0 \t0 \t\n",
"\n",
"_____________________________________________________\n"
]
}
],
"source": [
"from __future__ import division\n",
"from math import pi\n",
"\n",
"\n",
"bk = [1,0,0,1,0,0,1,1]##input digital sequence\n",
"bk_not=[]\n",
"for i in range(0,len(bk)):\n",
" if(bk[i]==1):\n",
" bk_not.append(0)\n",
" else:\n",
" bk_not.append(1)\n",
" \n",
"dk_1 = [ 1 and bk[0]]# #initial value of differential encoded sequence\n",
"dk_1_not =[ 0 and bk_not[0]]\n",
"dk = [dk_1[0]^dk_1_not[0]] #first bit of dpsk encoder\n",
"for i in range(1,len(bk)):\n",
" dk_1.append(dk[(i-1)])\n",
" if dk[(i-1)]==1:\n",
" xxx=0\n",
" else:\n",
" xxx=1\n",
" dk_1_not.append(xxx)\n",
" dk.append(((dk_1[i] and bk[i])^(dk_1_not[i] and bk_not[i])))\n",
"dk_radians=[]\n",
"for i in range(0,len(dk)):\n",
" if(dk[i]==1):\n",
" dk_radians.append(0)\n",
" elif(dk[i]==0):\n",
" dk_radians.append(pi)\n",
" \n",
"print 'Table 7.3 Illustrating the Generation of DPSK Signal'\n",
"print '_____________________________________________________'\n",
"print '\\n(bk)',bk\n",
"print '\\n(bk_not)',bk_not\n",
"print '\\nDifferentially encoded sequence (dk)'\n",
"for dd in dk:\n",
" print dd,'\\t',\n",
"print '\\n\\nTransmitted phase in radians'\n",
"for ddd in dk_radians:\n",
" print ddd,'\\t',\n",
"print '\\n\\n_____________________________________________________'"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.4 page 314"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"coordinates of message points\n",
"[[1, 0], [0, 1]]\n",
"[[1, 0], [0, 1]]\n",
"Message points ['0b1', '0b0']\n"
]
},
{
"data": {
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8X79+vbu7FxYW+r333uvu7rNmzfL999/f77nnHt+zZ49Pnz7dW7duHd5PZNmq9OrVy++/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\nAAAAAElFTkSuQmCC\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7fa400160c50>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show,legend,grid\n",
"\n",
"M =2#\n",
"y = [[1,0],[0,1]]\n",
"annot = [bin(xx) for xx in (arange(M-1,-1,-1))]\n",
"print 'coordinates of message points'\n",
"for yy in y:\n",
" print y\n",
"\n",
"print 'Message points',annot\n",
"\n",
"plot(y[0])\n",
"plot(y[1])\n",
"xlabel(' In-Phase')#\n",
"ylabel(' Quadrature')#\n",
"title('Constellation for BFSK')\n",
"legend(['message point 1 (binary 1)','message point 2 (binary 0)'])\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.4. page 320"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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xxx8Z4ZdeekkrVKigmzZtyt9KXgY4e74IQC/aXYCCQG6GxZKAGiISLSIFgd7A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\naYPAq666it69e2eylOvQoQO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1ttm2X467p2+Gt28fvPCCr6XJFX7ZngGKacvgxR3DhMeA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\nngAAAABJRU5ErkJggg==\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7f9fcb8b6d50>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show,legend,grid\n",
"from scipy.special import erfc\n",
"from math import log10,sqrt,exp\n",
"from __future__ import division\n",
"#Comparison of Symbol Error Probability\n",
"#of Different Digital Transmission System\n",
"#Eb = Energy of the bit No = Noise Spectral Density\n",
"Eb_No =[18,0.3162278]\n",
"x = arange(Eb_No[1],1/100+Eb_No[0],1./100)\n",
"x_dB = [10*log10(xx) for xx in x]\n",
"Pe_BPSK=ones(len(x))\n",
"Pe_BFSK=ones(len(x))\n",
"Pe_DPSK=ones(len(x))\n",
"Pe_NFSK=ones(len(x))\n",
"Pe_QPSK_MSK=ones(len(x))\n",
"for i in range(0,len(x)):\n",
" #Error Probability of Coherent BPSK \n",
" Pe_BPSK[i]= (1/2)*erfc(sqrt(x[i]))#\n",
" #Error Probability of Coherent BFSK\n",
" Pe_BFSK[i]= (1/2)*erfc(sqrt(x[i]/2))#\n",
" #Error Probability Non-Coherent PSK = DPSK \n",
" Pe_DPSK[i]= (1/2)*exp(-x[i])#\n",
" #Error Probability Non-Coherent FSK\n",
" Pe_NFSK[i]= (1/2)*exp(-(x[i]/2))#\n",
" #Error Probability of QPSK & MSK\n",
" Pe_QPSK_MSK[i]= erfc(sqrt(x[i]))-((1/4)*(erfc(sqrt(x[i]))**2))\n",
"\n",
"plot(x_dB,Pe_BPSK)\n",
"plot(x_dB,Pe_BFSK)\n",
"plot(x_dB,Pe_NFSK)\n",
"plot(x_dB,Pe_QPSK_MSK)\n",
"xlabel('Eb/No in dB ---->')\n",
"ylabel('Probability of Error Pe--->')\n",
"title('Comparison of Noise Performance of different PSK & FSK Scheme')\n",
"legend(['BPSK','BFSK','DPSK','Non-Coherent FSK','QPSK & MSK'])\n",
"grid()\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.06 page 324"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"Table 7.7 Bandwidth Efficiency of M-ary PSK signals\n",
"______________________________________________________\n",
"M\n",
"[2, 4, 8, 16, 32, 64]\n",
"______________________________________________________\n",
"r in bits/s/Hz\n",
"[0.5, 1.0, 1.5, 2.0, 2.5, 3.0]\n",
"______________________________________________________\n"
]
}
],
"source": [
"from math import log\n",
"\n",
"#Bandwidth Efficiency of M-ary PSK signals\n",
"M = [2,4,8,16,32,64]##M-ary\n",
"Ruo = [log(MM,2)/2 for MM in M]# #Bandwidth efficiency in bits/s/Hz\n",
"print 'Table 7.7 Bandwidth Efficiency of M-ary PSK signals'\n",
"print '______________________________________________________'\n",
"print 'M\\n',M\n",
"print '______________________________________________________'\n",
"print 'r in bits/s/Hz\\n',Ruo\n",
"print '______________________________________________________'"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.6 page 326"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"coordinates of message points\n",
"\n",
"(0.707106781187+0.707106781187j)\n",
"(0.707106781187-0.707106781187j)\n",
"(-0.707106781187-0.707106781187j)\n",
"(-0.707106781187+0.707106781187j)\n",
"dibits value ['0', '1', '10', '11']\n"
]
},
{
"data": {
"image/png": 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N398v+jHOprLnA2/sxxiB9zacg07px++SosV2afnv8lbgqOHqzAWAERFRyVjt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\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7fb8900e9cd0>"
]
},
"metadata": {},
"output_type": "display_data"
},
{
"name": "stdout",
"output_type": "stream",
"text": [
"0.707106781187\n",
"0.707106781187\n"
]
}
],
"source": [
"from numpy import ones,arange,cos,sin,pi\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,subplot,title,xlabel,ylabel,show\n",
"\n",
"\n",
"#Figure7.6 Signal Space Diagram for coherent QPSK system\n",
"M =4#\n",
"i = range(0,M)\n",
"y = [cos((2*ii-1)*pi/4)-sin((2*ii-1)*pi/4)*1J for ii in i]\n",
"annot = [bin(xx)[2:] for xx in range(0,M)]\n",
"print 'coordinates of message points\\n'\n",
"for yyy in y:\n",
" print yyy\n",
"\n",
"print 'dibits value',annot\n",
"plot([y[0].real,y[1].real,y[2].real,y[3].real],[y[0].imag,y[1].imag,y[2].imag,y[3].imag])\n",
"xlabel(' In-Phase')#\n",
"ylabel(' Quadrature')#\n",
"title('Constellation for QPSK')\n",
"show()\n",
"print y[0].imag\n",
"print y[0].real\n"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example 7.7 page 329"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"Table 7.7 Bandwidth Efficiency of M-ary FSK signals\n",
"______________________________________________________\n",
"M = \n",
"[2, 4, 8, 16, 32, 64]\n",
"______________________________________________________\n",
"r in bits/s/Hz=\n",
"[1.0, 1.0, 0.75, 0.5, 0.3125, 0.1875]\n",
"______________________________________________________\n"
]
}
],
"source": [
"from math import log\n",
"# Bandwidth Efficiency of M-ary FSK\n",
"M = [2,4,8,16,32,64]##M-ary\n",
"Ruo = [2*log(MM,2)/MM for MM in M]# #Bandwidth efficiency in bits/s/Hz\n",
"#M = M'#\n",
"#Ruo = Ruo'#\n",
"print 'Table 7.7 Bandwidth Efficiency of M-ary FSK signals'\n",
"print '______________________________________________________'\n",
"print 'M = \\n',M\n",
"print '______________________________________________________'\n",
"print 'r in bits/s/Hz=\\n',Ruo\n",
"print '______________________________________________________'"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.12.7.2 page 332"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"name": "stdout",
"output_type": "stream",
"text": [
"coordinates of message points\n",
"\n",
"[1.0, -1.0]\n",
"[-1.0, 1.0]\n",
"[-1.0, 1.0]\n",
"[1.0, 1.0]\n"
]
},
{
"data": {
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TXJY0TLEsdRhjQsWSRpyLxdRhScOY4LKkYRyz1GHCLdLlXouaOHEif/rTnxy1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\nuAZ4r0ib94AbwTPI7Ck6YBg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"text/plain": [
"<matplotlib.figure.Figure at 0x7f16dcd88a50>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from __future__ import division\n",
"from numpy import pi,sin,cos,arange,ones,sinc\n",
"from math import log\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,show,legend,grid\n",
"\n",
"M =2#\n",
"teta_0 = [0,pi]#\n",
"teta_tb = [pi/2,-pi/2]#\n",
"s1=[]\n",
"s2=[]\n",
"for i in range(0,M):\n",
" s1.append(cos(teta_0[i]))\n",
" s2.append(-sin(teta_tb[i]))\n",
"y = [[s1[0],s2[0]],[s1[1],s2[1]],[s1[1],s2[1]],[s1[0],s2[1]]]\n",
"print 'coordinates of message points\\n'\n",
"for xx in y:\n",
" print xx\n",
"plot(y[0])\n",
"plot(y[1])\n",
"plot(y[2])\n",
"plot(y[3])\n",
"xlabel(' In-Phase')#\n",
"ylabel(' Quadrature')#\n",
"title('Constellation for MSK')\n",
"legend(['message point 1 (0, pi/2)','message point 2 (pi, pi/2)','message point 3 (pi, - pi/2)','message point 4(0, - pi/2)'])\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.29 page 334"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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mf//+QMFLhBZGx44dOeeccyKy5GaojqNmzZpMnz6d2bNnc+WVVwJuLeyyZcuy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\nIEnqWBgkSR0LgySpY2GQJHUsDJKkzhcmetvb0a16tgAAAABJRU5ErkJggg==\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7fcadd25bb90>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from __future__ import division\n",
"from numpy import arange,ones,sinc,pi,sin,cos\n",
"from math import log\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,show,legend,grid\n",
"\n",
"rb = 2 # the bit rate in bits per second\n",
"Eb = 1 # the Energy of bit\n",
"\n",
"f = arange(0,1/100+8/rb,8/rb)\n",
"Tb = 1/rb# #Bit duration\n",
"SB_PSK=ones(len(f))\n",
"SB_FSK=ones(len(f))\n",
"for i in range(0,len(f)):\n",
" if(f[i]==(1/(2*Tb))):\n",
" SB_FSK[i]=Eb/(2*Tb)\n",
" else:\n",
" SB_FSK[i]= (8*Eb*(cos(pi*f[i]*Tb)**2))/((pi**2)*(((4*(Tb**2)*(f[i]**2))-1)**2))\n",
" \n",
" SB_PSK[i]=2*Eb*(sinc(f[i]*Tb)**2)\n",
"\n",
"plot([ff*Tb for ff in f],[yy/(2*Eb) for yy in SB_FSK]) \n",
"plot([ff*Tb for ff in f],[yy/(2*Eb) for yy in SB_PSK]) \n",
"xlabel('Normalized Frequency ---->')\n",
"ylabel('Normalized Power Spectral Density--->')\n",
"title('PSK Vs FSK Power Spectra Comparison')\n",
"legend(['Frequency Shift Keying','Phase Shift Keying'])\n",
"grid() \n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.30 page 336"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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e2wwBcqrq0yJS2N2+iKpeiJeW9uun5M4NkZFQqhSULg1lykDRopDM2OMB9/e/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\ncIbB4XA4HAE4w+BwOByOAP4fUhmKkZYfxo4AAAAASUVORK5CYII=\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7faefe72dc10>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from __future__ import division\n",
"from numpy import arange,ones,sinc,pi,cos\n",
"from math import log\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,show,legend,grid\n",
"\n",
"rb = 2 # the bit rate in bits per second\n",
"Eb = 1 # the Energy of bit\n",
"f = arange(0,1/(100*rb)+(4/rb),1/(100*rb))\n",
"Tb = 1/rb# #bit duration in seconds\n",
"SB_MSK=ones(len(f))\n",
"SB_QPSK=ones(len(f))\n",
"for i in range(0,len(f)):\n",
" if(f[i]==0.5):\n",
" SB_MSK[i]= 4*Eb*f[i]\n",
" else:\n",
" SB_MSK[i]=(32*Eb/(pi**2))*(cos(2*pi*Tb*f[i])/((4*Tb*f[i])**2-1))**2\n",
" \n",
" SB_QPSK[i]=4*Eb*sinc((2*Tb*f[i]))**2\n",
"\n",
"plot([ff*Tb for ff in f],[yy/(4*Eb) for yy in SB_MSK])\n",
"plot([ff*Tb for ff in f],[yy/(4*Eb) for yy in SB_QPSK])\n",
"xlabel('Normalized Frequency ---->')\n",
"ylabel('Normalized Power Spectral Density--->')\n",
"title('QPSK Vs MSK Power Spectra Comparison')\n",
"legend(['Minimum Shift Keying','QPSK'])\n",
"grid()\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.31 page 338"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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J5/awYcNo2rRpwsgTy+3U1FRGjhwJQHJyMnkhuyGp2ab4UdWt2R332igGfAxM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\n+OU+2isiZwV10oZArmYjWnT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00+liS/0Wnlj/BM9tfo72k+18ceYXWTpjKQsm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\n",
"text/plain": [
"<matplotlib.figure.Figure at 0x7f18572c4a10>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from __future__ import division\n",
"from numpy import arange,ones,sinc\n",
"from math import log\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,show,legend,grid\n",
"\n",
"rb = 2 # the bit rate\n",
"Eb = 1 # the energy of the bit\n",
"f = arange(0,1.0/100+rb,1./100)\n",
"Tb = 1/rb# #Bit duration\n",
"M = [2,4,8]#\n",
"SB_PSK=ones([len(M),len(f)])\n",
"for j in range(0,len(M)):\n",
" for i in range(0,len(f)):\n",
" SB_PSK[j,i]=2*Eb*(sinc(f[i]*Tb*log(M[j],2))**2)*log(M[j],2)\n",
" \n",
"plot([ff*Tb for ff in f],[xx/(2*Eb) for xx in SB_PSK[0,:]])\n",
"plot([ff*Tb for ff in f],[xx/(2*Eb) for xx in SB_PSK[1,:]])\n",
"plot([ff*Tb for ff in f],[xx/(2*Eb) for xx in SB_PSK[2,:]])\n",
"xlabel('Normalized Frequency ---->')\n",
"ylabel('Normalized Power Spectral Density--->')\n",
"title('Power Spectra of M-ary signals for M =2,4,8')\n",
"legend(['M=2','M=4','M=8'])\n",
"grid()\n",
"show()"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"## Example7.41 page 340"
]
},
{
"cell_type": "code",
"execution_count": 1,
"metadata": {
"collapsed": false
},
"outputs": [
{
"data": {
"image/png": 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"text/plain": [
"<matplotlib.figure.Figure at 0x7f8cd9bd9710>"
]
},
"metadata": {},
"output_type": "display_data"
},
{
"data": {
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"text/plain": [
"<matplotlib.figure.Figure at 0x7f8cd98532d0>"
]
},
"metadata": {},
"output_type": "display_data"
}
],
"source": [
"from numpy import ones,convolve as convol\n",
"%matplotlib inline\n",
"from matplotlib.pyplot import plot,xlabel,ylabel,title,show\n",
"#Matched Filter Output\n",
"T =4#\n",
"a =2#\n",
"t = range(0,T+1)\n",
"g = [2*xx for xx in ones([1,T+1])][0]\n",
"h =[abs(x) for x in (convol(g,g))]\n",
"for i in range(0,len(h)):\n",
" if(h[i]<0.01):\n",
" h[i]=0\n",
" \n",
"h = [hh-T for hh in h]\n",
"t1 = range(0,len(h))\n",
"plot(t,g)\n",
"xlabel('t--->')\n",
"ylabel('g(t)---->')\n",
"title('Rectangular pulse duration T = 4, a =2')\n",
"show()\n",
"plot(t1,h)\n",
"xlabel('t--->')\n",
"ylabel('Matched Filter output')\n",
"title('Output of filter matched to rectangular pulse g(t)')\n",
"show()\n"
]
}
],
"metadata": {
"kernelspec": {
"display_name": "Python 2",
"language": "python",
"name": "python2"
},
"language_info": {
"codemirror_mode": {
"name": "ipython",
"version": 2
},
"file_extension": ".py",
"mimetype": "text/x-python",
"name": "python",
"nbconvert_exporter": "python",
"pygments_lexer": "ipython2",
"version": "2.7.9"
}
},
"nbformat": 4,
"nbformat_minor": 0
}
|