Move the turbulence "airmass" according to the local wind.
Clean up and better document the magic numbers in Turbulence.cpp
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3150506b26
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3 changed files with 44 additions and 12 deletions
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@ -97,6 +97,13 @@ void Model::initIteration()
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t->getGyro(v);
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Math::add3(v, _gyro, _gyro);
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}
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// Displace the turbulence coordinates according to the local wind.
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if(_turb) {
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float toff[3];
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Math::mul3(_integrator.getInterval(), _wind, toff);
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_turb->offset(toff);
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}
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}
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// FIXME: This method looks to me like it's doing *integration*, not
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@ -8,10 +8,24 @@ namespace yasim {
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// generated turbulence fields top out at about 70% of this number.
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const float MAX_TURBULENCE = 20;
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// Rate, in "meters" per second, of the default time axis motion.
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// This will be multiplied by the rate-hz property to get the actual
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// time axis offset. A setting of 2.0 causes the maximum frequency
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// component to arrive at 1 Hz.
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const float BASE_RATE = 2.0;
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// Power to which the input magnitude (always in the range [0:1]) is
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// raised to get a coefficient for the turbulence velocity. Setting
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// this to 1.0 makes the scale linear. Increasing it makes it
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// curvier, with a sharp increase at the high end of the scale.
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const double MAGNITUDE_EXP = 2.0;
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// How many generations are "meaningful" (i.e., not part of the normal
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// wind computation). Decreasing this number will reallocate
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// bandwidth to the higher frequency components.
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const int MEANINGFUL_GENS = 9;
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// bandwidth to the higher frequency components. A turbulence field
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// will swing between maximal values over a distance of approximately
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// 2^(MEANINGFUL_GENS-1).
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const int MEANINGFUL_GENS = 8;
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static const float FT2M = 0.3048;
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@ -100,19 +114,27 @@ inline void Turbulence::turblut(int x, int y, float* out)
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out[2] = c2fu(turb[2]) * (_z1 - _z0) + _z0;
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}
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void Turbulence::setMagnitude(double mag)
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{
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_mag = Math::pow(mag, MAGNITUDE_EXP);
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}
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void Turbulence::update(double dt, double rate)
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{
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// Assume a normal rate is 2 unit/sec. This will cause the
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// highest frequency turbulence component to arrive at 1 Hz.
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_currTime += 2 * dt * rate;
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if(_currTime > _sz) _currTime -= _sz;
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_timeOff += BASE_RATE * dt * rate;
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}
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void Turbulence::offset(float* offset)
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{
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for(int i=0; i<3; i++)
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_off[i] += offset[i];
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}
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void Turbulence::getTurbulence(double* loc, float* turbOut)
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{
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// Convert to integer 2D coordinates; wrap to [0:_sz].
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double a = loc[0] + loc[2];
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double b = loc[1] + _currTime;
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double a = (loc[0] + _off[0]) + (loc[2] + _off[2]);
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double b = (loc[1] + _off[1]) + _timeOff;
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a -= _sz * Math::floor(a * (1.0/_sz));
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b -= _sz * Math::floor(b * (1.0/_sz));
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int x = (int)Math::floor(a);
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@ -130,7 +152,7 @@ void Turbulence::getTurbulence(double* loc, float* turbOut)
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turblut(x+1, y+1, turb11);
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// Interpolate, add in units
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float mag = _mag * _mag * MAX_TURBULENCE;
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float mag = _mag * MAX_TURBULENCE;
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for(int i=0; i<3; i++) {
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float avg0 = (1-a)*turb00[i] + a*turb01[i];
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float avg1 = (1-a)*turb10[i] + a*turb11[i];
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@ -170,7 +192,8 @@ Turbulence::Turbulence(int gens, int seed)
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_seed = seed;
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_mag = 1;
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_x0 = _x1 = _y0 = _y1 = _z0 = _z1 = 0;
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_currTime = 0;
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_timeOff = 0;
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_off[0] = _off[1] = _off[2] = 0;
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float* xbuf = new float[_sz*_sz];
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float* ybuf = new float[_sz*_sz];
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@ -5,8 +5,9 @@ public:
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Turbulence(int gens, int seed);
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~Turbulence();
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void update(double dt, double rate);
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void setMagnitude(double mag) { _mag = mag; }
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void setMagnitude(double mag);
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void getTurbulence(double* loc, float* turbOut);
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void offset(float* dist);
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private:
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unsigned int hashrand(unsigned int i);
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@ -21,7 +22,8 @@ private:
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int _sz;
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int _seed;
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double _currTime;
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double _off[3];
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double _timeOff;
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double _mag;
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float _x0, _x1, _y0, _y1, _z0, _z1;
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unsigned char* _data;
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