DDA: store distance of each movement.
This is required to calculate speeds of individual axes. So far only in dda_find_crossing_speed(), but soon also in dda_join_moves().
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3
dda.c
3
dda.c
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@ -381,7 +381,8 @@ void dda_create(DDA *dda, TARGET *target) {
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dda->rampdown_steps = dda->total_steps - dda->rampup_steps;
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#ifdef LOOKAHEAD
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dda_find_crossing_speed(prev_dda, dda, distance);
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dda->distance = distance;
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dda_find_crossing_speed(prev_dda, dda);
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// TODO: this should become a reverse-stepping through the existing
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// movement queue to allow higher speeds for short moves.
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// dda_find_crossing_speed() is required only once.
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1
dda.h
1
dda.h
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@ -147,6 +147,7 @@ typedef struct {
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// With the look-ahead functionality, it is possible to retain physical
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// movement between G1 moves. These variables keep track of the entry and
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// exit speeds between moves.
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uint32_t distance;
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uint32_t crossF;
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uint32_t F_start;
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uint32_t start_steps; ///< steps to reach F_start
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@ -163,17 +163,14 @@ void dda_emergency_shutdown(PGM_P msg) {
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*
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* \return dda->crossF
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*/
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void dda_find_crossing_speed(DDA *prev, DDA *current, uint32_t curr_distance) {
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static uint32_t prev_distance;
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void dda_find_crossing_speed(DDA *prev, DDA *current) {
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uint32_t F, dv, speed_factor, max_speed_factor;
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int32_t prevFx, prevFy, prevFz, prevFe;
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int32_t currFx, currFy, currFz, currFe;
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// Bail out if there's nothing to join (e.g. G1 F1500).
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if ( ! prev || prev->nullmove) {
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prev_distance = curr_distance;
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if ( ! prev || prev->nullmove)
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return;
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}
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// We always look at the smaller of both combined speeds,
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// else we'd interpret intended speed changes as jerk.
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@ -182,19 +179,20 @@ void dda_find_crossing_speed(DDA *prev, DDA *current, uint32_t curr_distance) {
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F = current->endpoint.F;
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if (DEBUG_DDA && (debug_flags & DEBUG_DDA))
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sersendf_P(PSTR("Distance: %lu, then %lu\n"), prev_distance, curr_distance);
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sersendf_P(PSTR("Distance: %lu, then %lu\n"),
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prev->distance, current->distance);
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// Find individual axis speeds.
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// int32_t muldiv(int32_t multiplicand, uint32_t multiplier, uint32_t divisor)
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prevFx = muldiv(prev->delta_um.X, F, prev_distance);
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prevFy = muldiv(prev->delta_um.Y, F, prev_distance);
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prevFz = muldiv(prev->delta_um.Z, F, prev_distance);
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prevFe = muldiv(prev->delta_um.E, F, prev_distance);
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prevFx = muldiv(prev->delta_um.X, F, prev->distance);
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prevFy = muldiv(prev->delta_um.Y, F, prev->distance);
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prevFz = muldiv(prev->delta_um.Z, F, prev->distance);
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prevFe = muldiv(prev->delta_um.E, F, prev->distance);
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currFx = muldiv(current->delta_um.X, F, curr_distance);
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currFy = muldiv(current->delta_um.Y, F, curr_distance);
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currFz = muldiv(current->delta_um.Z, F, curr_distance);
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currFe = muldiv(current->delta_um.E, F, curr_distance);
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currFx = muldiv(current->delta_um.X, F, current->distance);
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currFy = muldiv(current->delta_um.Y, F, current->distance);
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currFz = muldiv(current->delta_um.Z, F, current->distance);
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currFe = muldiv(current->delta_um.E, F, current->distance);
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if (DEBUG_DDA && (debug_flags & DEBUG_DDA))
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sersendf_P(PSTR("prevF: %ld %ld %ld %ld\ncurrF: %ld %ld %ld %ld\n"),
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@ -272,7 +270,6 @@ void dda_find_crossing_speed(DDA *prev, DDA *current, uint32_t curr_distance) {
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sersendf_P(PSTR("Cross speed reduction from %lu to %lu\n"),
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F, current->crossF);
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prev_distance = curr_distance;
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return;
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}
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@ -43,7 +43,7 @@
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#define MAX(a,b) (((a)>(b))?(a):(b))
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#define MIN(a,b) (((a)<(b))?(a):(b))
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void dda_find_crossing_speed(DDA *prev, DDA *current, uint32_t curr_distance);
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void dda_find_crossing_speed(DDA *prev, DDA *current);
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void dda_join_moves(DDA *prev, DDA *current);
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// Debug counters
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