Merge branch 'main' of https://github.com/ltcptgeneral/ece45-project
This commit is contained in:
commit
5276156f18
@ -1,4 +1,4 @@
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function output_x = AnuragDampenTarget(x, Fs,TARGET, AreaPercentage)
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function output_x = AnuragDampenTarget(x, Fs,LOW, MID, HIGH)
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%Dampen a range of frequencies a percentage around the target frequency
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%Dampen a range of frequencies a percentage around the target frequency
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%Also maintain the other frequencies so that the target is muted
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%Also maintain the other frequencies so that the target is muted
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%percentage is expressed as a number between 0 and 1.
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%percentage is expressed as a number between 0 and 1.
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@ -8,6 +8,8 @@ function output_x = AnuragDampenTarget(x, Fs,TARGET, AreaPercentage)
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% Anurag Jadhav: function creator
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% Anurag Jadhav: function creator
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% Detailed explanation goes here
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% Detailed explanation goes here
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TARGET = MID;
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AreaPercentage = 0.15;
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[dim,len] = size(x); %get length of the input
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[dim,len] = size(x); %get length of the input
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F = Fs * ((-len/2) : ((len/2) - 1)) / len;
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F = Fs * ((-len/2) : ((len/2) - 1)) / len;
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lenf = length(F);
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lenf = length(F);
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@ -1,4 +1,4 @@
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function output_x = AnuragEnchanceTarget(x, Fs,TARGET, AreaPercentage)
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function output_x = AnuragEnchanceTarget(x, Fs,LOW, MID, HIGH)
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%Amplify a range of frequencies a percentage around the target frequency
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%Amplify a range of frequencies a percentage around the target frequency
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%Also damnpen the other frequencies so that the target is easier to hear
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%Also damnpen the other frequencies so that the target is easier to hear
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%percentage is expressed as a number between 0 and 1.
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%percentage is expressed as a number between 0 and 1.
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@ -8,6 +8,8 @@ function output_x = AnuragEnchanceTarget(x, Fs,TARGET, AreaPercentage)
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% Anurag Jadhav: function creator
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% Anurag Jadhav: function creator
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% Detailed explanation goes here
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% Detailed explanation goes here
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TARGET = MID;
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AreaPercentage = 0.15;
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[dim,len] = size(x); %get length of the input
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[dim,len] = size(x); %get length of the input
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F = Fs * ((-len/2) : ((len/2) - 1)) / len;
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F = Fs * ((-len/2) : ((len/2) - 1)) / len;
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lenf = length(F);
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lenf = length(F);
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@ -1,4 +1,4 @@
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function output_y = bandreject_filter(Input, Fs, Low, High)
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function Output = bandreject_filter(Input, Fs, Low, High)
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% A filter that lets through most frequencies unaltered
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% A filter that lets through most frequencies unaltered
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% but attentuates the frequencies in the specified range to
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% but attentuates the frequencies in the specified range to
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% very low levels
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% very low levels
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25
src/NotWorking/generate_cosine.m
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25
src/NotWorking/generate_cosine.m
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function x = generate_cosine(amplitude, frequency, phase, fs, duration, duty)
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% GENERATE_WAVENAME: returns a matrix of sampled WAVENAME wave
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% CONTRIBUTORS:
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% Mekhi Ellington: Original Creator
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% DOCUMENTATION:
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% phase shift is in number of periods
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% fs is the sampling frequency: how many sample points per second
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% duration is time in seconds
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% duty is a number between 0 and 1
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% initialize local variables from input arguments
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n = fs * duration; % number of samples (length of matrix)
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dt = 1 / fs; % sampling period: time between two sample points
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% initialize a one dimensional zero matrix to be populated
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x = zeros(1, n);
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% populate the matrix
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for i = 1:n
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t = i * dt;
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x(i) = amplitude * cos(2*pi*frequency*t-phase);
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end
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end
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33
src/NotWorking/generate_pulse.m
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33
src/NotWorking/generate_pulse.m
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function x = generate_pulse(amplitude, frequency, phase, fs, duration, duty)
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% GENERATE_puse: returns a matrix of sampled pulse wave
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% CONTRIBUTORS:
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% Brian Tran: Created the wave
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% DOCUMENTATION:
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% phase shift is in number of periods
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% fs is the sampling frequency: how many sample points per second
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% duration is time in seconds
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% duty is a number between 0 and 1
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% initialize local variables from input arguments
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n = fs * duration; % number of samples (length of matrix)
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dt = 1 / fs; % sampling period: time between two sample points
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% initialize a one dimensional zero matrix to be populated
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x = zeros(1, n);
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f0=1e+6; % 1MHz
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Fs=3e+6;
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Tf=0.001; % 1 millisecond
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t=0:1/Fs:Tf-1/Fs;
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td=0.1; % duty cycle
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A0=10; % 10 Volts
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F=0;
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N=1000; % Number of points
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% populate the matrix
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for n = 1:N
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F=F+(1/n)*cos(n*2*pi*f0*t).*sin(n*pi*td);
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end
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F=F*(2*A0/pi);
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F=F+A0*td;
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end
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55
src/NotWorking/generate_trapezoid.m
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55
src/NotWorking/generate_trapezoid.m
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function x = generate_trapezoid(amplitude, frequency, phase, fs, duration, duty)
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% GENERATE_TRAPEZOID: returns a matrix of sampled square wave
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% CONTRIBUTORS:
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% Daniel Doan: Author
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% DOCUMENTATION:
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% phase shift is in number of periods
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% fs is the sampling frequency: how many sample points per second
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% duration is time in seconds
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% duty cycle should be a number between 0 and 1.
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% duty of 0.5 would have 2 trapezoids in first half of each cycle
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% example of wave with duty of 0.5, where the peaks are amplitude/2:
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%
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% ____
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% / \
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% / \ ________________
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% \ /
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% \____/
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%
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% initialize local variables from input arguments
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n = fs * duration; % number of samples (length of matrix)
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dt = 1 / fs; % sampling period: time between two sample points
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% initialize a one dimensional zero matrix to be populated
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x = zeros(1, n);
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% populate the matrix
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for i = 1:n
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t = i * dt;
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% periodic ramp from 0 to 1
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% progression through a cycle
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st = mod(frequency * t - phase, 1);
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slope = (amplitude/2) / (duty/8);
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if(st < duty)
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if(st < duty/8 || st > 7*duty/8)
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x(i) = slope * st;
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else
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if(st < 5*duty/8)
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x(i) = amplitude/2 - slope * (st-(3*duty/8));
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end
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if(st < 3*duty/8)
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x(i) = amplitude/2;
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end
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if(st > 5*duty/8)
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x(i) = -amplitude/2;
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end
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end
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end
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end
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end
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@ -19,6 +19,10 @@ function output = FilterSelect(input,Fs,LOW,MED,HIGH,number)
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output = seperate_prevalent_schluep(input, Fs, LOW, MED, HIGH);
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output = seperate_prevalent_schluep(input, Fs, LOW, MED, HIGH);
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elseif(number == "Option 6")
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elseif(number == "Option 6")
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output = bandreject_filter(input, Fs, LOW, HIGH);
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output = bandreject_filter(input, Fs, LOW, HIGH);
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elseif(number == "Option 7")
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output = AnuragEnhanceTarget(input, Fs, LOW,MID, HIGH);
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elseif(number == "Option 8")
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output = AnuragDampenTarget(input, Fs, LOW,MID, HIGH);
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else
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else
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output = input;
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output = input;
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end
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end
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