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176 lines
5.4 KiB
176 lines
5.4 KiB
#include "AP_Math.h" |
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#include <float.h> |
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template <class FloatOne, class FloatTwo> |
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bool is_equal(const FloatOne v_1, const FloatTwo v_2) |
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{ |
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static_assert(std::is_arithmetic<FloatOne>::value, "template parameter not of type float or int"); |
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static_assert(std::is_arithmetic<FloatTwo>::value, "template parameter not of type float or int"); |
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return fabsf(v_1 - v_2) < std::numeric_limits<decltype(v_1 - v_2)>::epsilon(); |
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} |
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template bool is_equal<int>(const int v_1, const int v_2); |
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template bool is_equal<short>(const short v_1, const short v_2); |
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template bool is_equal<float>(const float v_1, const float v_2); |
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template bool is_equal<double>(const double v_1, const double v_2); |
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template <class T> |
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float safe_asin(const T v) |
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{ |
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if (isnan(static_cast<float>(v))) { |
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return 0.0f; |
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} |
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if (v >= 1.0f) { |
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return static_cast<float>(M_PI_2); |
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} |
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if (v <= -1.0f) { |
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return static_cast<float>(-M_PI_2); |
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} |
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return asinf(static_cast<float>(v)); |
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} |
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template float safe_asin<int>(const int v); |
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template float safe_asin<short>(const short v); |
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template float safe_asin<float>(const float v); |
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template float safe_asin<double>(const double v); |
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template <class T> |
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float safe_sqrt(const T v) |
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{ |
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float ret = sqrtf(static_cast<float>(v)); |
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if (isnan(ret)) { |
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return 0; |
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} |
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return ret; |
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} |
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template float safe_sqrt<int>(const int v); |
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template float safe_sqrt<short>(const short v); |
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template float safe_sqrt<float>(const float v); |
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template float safe_sqrt<double>(const double v); |
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/* |
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linear interpolation based on a variable in a range |
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*/ |
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float linear_interpolate(float low_output, float high_output, |
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float var_value, |
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float var_low, float var_high) |
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{ |
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if (var_value <= var_low) { |
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return low_output; |
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} |
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if (var_value >= var_high) { |
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return high_output; |
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} |
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float p = (var_value - var_low) / (var_high - var_low); |
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return low_output + p * (high_output - low_output); |
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} |
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template <class T> |
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float wrap_180(const T angle, float unit_mod) |
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{ |
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auto res = wrap_360(angle, unit_mod); |
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if (res > 180.f * unit_mod) { |
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res -= 360.f * unit_mod; |
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} |
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return res; |
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} |
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template float wrap_180<int>(const int angle, float unit_mod); |
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template float wrap_180<short>(const short angle, float unit_mod); |
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template float wrap_180<float>(const float angle, float unit_mod); |
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template float wrap_180<double>(const double angle, float unit_mod); |
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template <class T> |
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auto wrap_180_cd(const T angle) -> decltype(wrap_180(angle, 100.f)) |
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{ |
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return wrap_180(angle, 100.f); |
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} |
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template auto wrap_180_cd<float>(const float angle) -> decltype(wrap_180(angle, 100.f)); |
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template auto wrap_180_cd<int>(const int angle) -> decltype(wrap_180(angle, 100.f)); |
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template auto wrap_180_cd<short>(const short angle) -> decltype(wrap_180(angle, 100.f)); |
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template auto wrap_180_cd<double>(const double angle) -> decltype(wrap_360(angle, 100.f)); |
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template <class T> |
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float wrap_360(const T angle, float unit_mod) |
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{ |
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const float ang_360 = 360.f * unit_mod; |
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float res = fmodf(static_cast<float>(angle), ang_360); |
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if (res < 0) { |
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res += ang_360; |
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} |
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return res; |
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} |
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template float wrap_360<int>(const int angle, float unit_mod); |
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template float wrap_360<short>(const short angle, float unit_mod); |
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template float wrap_360<float>(const float angle, float unit_mod); |
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template float wrap_360<double>(const double angle, float unit_mod); |
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template <class T> |
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auto wrap_360_cd(const T angle) -> decltype(wrap_360(angle, 100.f)) |
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{ |
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return wrap_360(angle, 100.f); |
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} |
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template auto wrap_360_cd<float>(const float angle) -> decltype(wrap_360(angle, 100.f)); |
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template auto wrap_360_cd<int>(const int angle) -> decltype(wrap_360(angle, 100.f)); |
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template auto wrap_360_cd<short>(const short angle) -> decltype(wrap_360(angle, 100.f)); |
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template auto wrap_360_cd<double>(const double angle) -> decltype(wrap_360(angle, 100.f)); |
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template <class T> |
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float wrap_PI(const T radian) |
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{ |
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auto res = wrap_2PI(radian); |
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if (res > M_PI) { |
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res -= M_2PI; |
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} |
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return res; |
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} |
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template float wrap_PI<int>(const int radian); |
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template float wrap_PI<short>(const short radian); |
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template float wrap_PI<float>(const float radian); |
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template float wrap_PI<double>(const double radian); |
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template <class T> |
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float wrap_2PI(const T radian) |
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{ |
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float res = fmodf(static_cast<float>(radian), M_2PI); |
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if (res < 0) { |
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res += M_2PI; |
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} |
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return res; |
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} |
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template float wrap_2PI<int>(const int radian); |
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template float wrap_2PI<short>(const short radian); |
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template float wrap_2PI<float>(const float radian); |
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template float wrap_2PI<double>(const double radian); |
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template <class T> |
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T constrain_value(const T amt, const T low, const T high) |
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{ |
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// the check for NaN as a float prevents propagation of floating point |
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// errors through any function that uses constrain_float(). The normal |
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// float semantics already handle -Inf and +Inf |
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if (isnan(amt)) { |
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return (low + high) * 0.5f; |
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} |
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if (amt < low) { |
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return low; |
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} |
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if (amt > high) { |
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return high; |
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} |
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return amt; |
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} |
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template int constrain_value<int>(const int amt, const int low, const int high); |
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template short constrain_value<short>(const short amt, const short low, const short high); |
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template float constrain_value<float>(const float amt, const float low, const float high); |
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template double constrain_value<double>(const double amt, const double low, const double high);
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