filters.h
Arduino/CCIT4080_CL05_PKPD_Group2/src/Test_components/ppg_test/filters.h
#ifndef FILTERS_H
#define FILTERS_H
/**
* @brief Statistic block for min/nax/avg
*/
class MinMaxAvgStatistic {
float min_;
float max_;
float sum_;
int count_;
public:
/**
* @brief Initialize the Statistic block
*/
MinMaxAvgStatistic() :
min_(NAN),
max_(NAN),
sum_(0),
count_(0){}
/**
* @brief Add value to the statistic
*/
void process(float value) {
min_ = isnan(min_) ? value : min(min_, value);
max_ = isnan(max_) ? value : max(max_, value);
sum_ += value;
count_++;
}
/**
* @brief Resets the stored values
*/
void reset() {
min_ = NAN;
max_ = NAN;
sum_ = 0;
count_ = 0;
}
/**
* @brief Get Minimum
* @return Minimum Value
*/
float minimum() const {
return min_;
}
/**
* @brief Get Maximum
* @return Maximum Value
*/
float maximum() const {
return max_;
}
/**
* @brief Get Average
* @return Average Value
*/
float average() const {
return sum_/count_;
}
};
/**
* @brief High Pass Filter
*/
class HighPassFilter {
const float kX;
const float kA0;
const float kA1;
const float kB1;
float last_filter_value_;
float last_raw_value_;
public:
/**
* @brief Initialize the High Pass Filter
* @param samples Number of samples until decay to 36.8 %
* @remark Sample number is an RC time-constant equivalent
*/
HighPassFilter(float samples) :
kX(exp(-1/samples)),
kA0((1+kX)/2),
kA1(-kA0),
kB1(kX),
last_filter_value_(NAN),
last_raw_value_(NAN){}
/**
* @brief Initialize the High Pass Filter
* @param cutoff Cutoff frequency
* @pram sampling_frequency Sampling frequency
*/
HighPassFilter(float cutoff, float sampling_frequency) :
HighPassFilter(sampling_frequency/(cutoff*2*PI)){}
/**
* @brief Applies the high pass filter
*/
float process(float value) {
if(isnan(last_filter_value_) || isnan(last_raw_value_)) {
last_filter_value_ = 0.0;
}
else {
last_filter_value_ =
kA0 * value
+ kA1 * last_raw_value_
+ kB1 * last_filter_value_;
}
last_raw_value_ = value;
return last_filter_value_;
}
/**
* @brief Resets the stored values
*/
void reset() {
last_raw_value_ = NAN;
last_filter_value_ = NAN;
}
};
/**
* @brief Low Pass Filter
*/
class LowPassFilter {
const float kX;
const float kA0;
const float kB1;
float last_value_;
public:
/**
* @brief Initialize the Low Pass Filter
* @param samples Number of samples until decay to 36.8 %
* @remark Sample number is an RC time-constant equivalent
*/
LowPassFilter(float samples) :
kX(exp(-1/samples)),
kA0(1-kX),
kB1(kX),
last_value_(NAN){}
/**
* @brief Initialize the Low Pass Filter
* @param cutoff Cutoff frequency
* @pram sampling_frequency Sampling frequency
*/
LowPassFilter(float cutoff, float sampling_frequency) :
LowPassFilter(sampling_frequency/(cutoff*2*PI)){}
/**
* @brief Applies the low pass filter
*/
float process(float value) {
if(isnan(last_value_)) {
last_value_ = value;
}
else {
last_value_ = kA0 * value + kB1 * last_value_;
}
return last_value_;
}
/**
* @brief Resets the stored values
*/
void reset() {
last_value_ = NAN;
}
};
/**
* @brief Differentiator
*/
class Differentiator {
const float kSamplingFrequency;
float last_value_;
public:
/**
* @brief Initializes the differentiator
*/
Differentiator(float sampling_frequency) :
kSamplingFrequency(sampling_frequency),
last_value_(NAN){}
/**
* @brief Applies the differentiator
*/
float process(float value) {
float diff = (value-last_value_)*kSamplingFrequency;
last_value_ = value;
return diff;
}
/**
* @brief Resets the stored values
*/
void reset() {
last_value_ = NAN;
}
};
/**
* @brief MovingAverageFilter
* @tparam buffer_size Number of samples to average over
*/
template<int kBufferSize> class MovingAverageFilter {
int index_;
int count_;
float values_[kBufferSize];
public:
/**
* @brief Initalize moving average filter
*/
MovingAverageFilter() :
index_(0),
count_(0){}
/**
* @brief Applies the moving average filter
*/
float process(float value) {
// Add value
values_[index_] = value;
// Increase index and count
index_ = (index_ + 1) % kBufferSize;
if(count_ < kBufferSize) {
count_++;
}
// Calculate sum
float sum = 0.0;
for(int i = 0; i < count_; i++) {
sum += values_[i];
}
// Calculate average
return sum/count_;
}
/**
* @brief Resets the stored values
*/
void reset() {
index_ = 0;
count_ = 0;
}
/**
* @brief Get number of samples
* @return Number of stored samples
*/
int count() const {
return count_;
}
};
#endif // FILTERS_H
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