🐛 Fixes for G2/G3 arcs (#26170)
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@ -82,14 +82,17 @@ void plan_arc(
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rt_X = cart[axis_p] - center_P,
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rt_Y = cart[axis_q] - center_Q;
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ARC_LIJKUVW_CODE(
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const float start_L = current_position[axis_l],
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const float start_I = current_position.i,
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const float start_J = current_position.j,
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const float start_K = current_position.k,
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const float start_U = current_position.u,
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const float start_V = current_position.v,
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const float start_W = current_position.w
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// Starting position of the move for all non-arc axes
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// i.e., only one of X, Y, or Z, plus the rest.
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ARC_LIJKUVWE_CODE(
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float start_L = current_position[axis_l],
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float start_I = current_position.i,
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float start_J = current_position.j,
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float start_K = current_position.k,
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float start_U = current_position.u,
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float start_V = current_position.v,
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float start_W = current_position.w,
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float start_E = current_position.e
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);
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// Angle of rotation between position and target from the circle center.
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@ -125,6 +128,7 @@ void plan_arc(
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min_segments = CEIL((MIN_CIRCLE_SEGMENTS) * portion_of_circle); // Minimum segments for the arc
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}
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// Total travel on all the non-arc axes
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ARC_LIJKUVWE_CODE(
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float travel_L = cart[axis_l] - start_L,
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float travel_I = cart.i - start_I,
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@ -133,7 +137,7 @@ void plan_arc(
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float travel_U = cart.u - start_U,
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float travel_V = cart.v - start_V,
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float travel_W = cart.w - start_W,
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float travel_E = cart.e - current_position.e
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float travel_E = cart.e - start_E
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);
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// If "P" specified circles, call plan_arc recursively then continue with the rest of the arc
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@ -166,15 +170,29 @@ void plan_arc(
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);
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plan_arc(temp_position, offset, clockwise, 0); // Plan a single whole circle
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}
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// Get starting coordinates for the remainder from the current position
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ARC_LIJKUVWE_CODE(
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travel_L = cart[axis_l] - current_position[axis_l], // Linear X, Y, or Z
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travel_I = cart.i - current_position.i, // The rest are also non-arc
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travel_J = cart.j - current_position.j,
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travel_K = cart.k - current_position.k,
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travel_U = cart.u - current_position.u,
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travel_V = cart.v - current_position.v,
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travel_W = cart.w - current_position.w,
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travel_E = cart.e - current_position.e
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start_L = current_position[axis_l],
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start_I = current_position.i,
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start_J = current_position.j,
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start_K = current_position.k,
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start_U = current_position.u,
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start_V = current_position.v,
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start_W = current_position.w,
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start_E = current_position.e
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);
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// Update travel distance for the remainder
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ARC_LIJKUVWE_CODE(
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travel_L = cart[axis_l] - start_L, // Linear X, Y, or Z
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travel_I = cart.i - start_I, // The rest are also non-arc
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travel_J = cart.j - start_J,
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travel_K = cart.k - start_K,
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travel_U = cart.u - start_U,
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travel_V = cart.v - start_V,
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travel_W = cart.w - start_W,
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travel_E = cart.e - start_E
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);
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}
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@ -256,7 +274,7 @@ void plan_arc(
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xyze_pos_t raw;
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// do not calculate rotation parameters for trivial single-segment arcs
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// Don't calculate rotation parameters for trivial single-segment arcs
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if (segments > 1) {
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// Vector rotation matrix values
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const float theta_per_segment = angular_travel / segments,
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@ -264,30 +282,27 @@ void plan_arc(
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sin_T = theta_per_segment - sq_theta_per_segment * theta_per_segment / 6,
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cos_T = 1 - 0.5f * sq_theta_per_segment; // Small angle approximation
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#if DISABLED(AUTO_BED_LEVELING_UBL)
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ARC_LIJKUVW_CODE(
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const float per_segment_L = travel_L / segments,
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const float per_segment_I = travel_I / segments,
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const float per_segment_J = travel_J / segments,
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const float per_segment_K = travel_K / segments,
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const float per_segment_U = travel_U / segments,
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const float per_segment_V = travel_V / segments,
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const float per_segment_W = travel_W / segments
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);
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#endif
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CODE_ITEM_E(const float extruder_per_segment = travel_E / segments);
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ARC_LIJKUVWE_CODE(
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const float per_segment_L = travel_L / segments,
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const float per_segment_I = travel_I / segments,
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const float per_segment_J = travel_J / segments,
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const float per_segment_K = travel_K / segments,
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const float per_segment_U = travel_U / segments,
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const float per_segment_V = travel_V / segments,
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const float per_segment_W = travel_W / segments,
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const float per_segment_E = travel_E / segments
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);
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// Initialize all linear axes and E
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ARC_LIJKUVWE_CODE(
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raw[axis_l] = current_position[axis_l],
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raw.i = current_position.i,
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raw.j = current_position.j,
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raw.k = current_position.k,
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raw.u = current_position.u,
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raw.v = current_position.v,
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raw.w = current_position.w,
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raw.e = current_position.e
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raw[axis_l] = start_L,
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raw.i = start_I,
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raw.j = start_J,
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raw.k = start_K,
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raw.u = start_U,
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raw.v = start_V,
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raw.w = start_W,
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raw.e = start_E
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);
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millis_t next_idle_ms = millis() + 200UL;
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@ -305,7 +320,6 @@ void plan_arc(
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const float limiting_accel = _MIN(planner.settings.max_acceleration_mm_per_s2[axis_p], planner.settings.max_acceleration_mm_per_s2[axis_q]),
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limiting_speed = _MIN(planner.settings.max_feedrate_mm_s[axis_p], planner.settings.max_feedrate_mm_s[axis_q]),
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limiting_speed_sqr = _MIN(sq(limiting_speed), limiting_accel * radius, sq(scaled_fr_mm_s));
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float arc_mm_remaining = flat_mm;
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for (uint16_t i = 1; i < segments; i++) { // Iterate (segments-1) times
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@ -343,16 +357,14 @@ void plan_arc(
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raw[axis_p] = center_P + rvec.a;
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raw[axis_q] = center_Q + rvec.b;
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ARC_LIJKUVWE_CODE(
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#if ENABLED(AUTO_BED_LEVELING_UBL)
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raw[axis_l] = start_L,
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raw.i = start_I, raw.j = start_J, raw.k = start_K,
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raw.u = start_U, raw.v = start_V, raw.w = start_V
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#else
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raw[axis_l] += per_segment_L,
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raw.i += per_segment_I, raw.j += per_segment_J, raw.k += per_segment_K,
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raw.u += per_segment_U, raw.v += per_segment_V, raw.w += per_segment_W
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#endif
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, raw.e += extruder_per_segment
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raw[axis_l] = start_L + per_segment_L * i,
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raw.i = start_I + per_segment_I * i,
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raw.j = start_J + per_segment_J * i,
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raw.k = start_K + per_segment_K * i,
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raw.u = start_U + per_segment_U * i,
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raw.v = start_V + per_segment_V * i,
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raw.w = start_W + per_segment_W * i,
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raw.e = start_E + per_segment_E * i
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);
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apply_motion_limits(raw);
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@ -362,7 +374,7 @@ void plan_arc(
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#endif
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// calculate safe speed for stopping by the end of the arc
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arc_mm_remaining -= segment_mm;
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const float arc_mm_remaining = flat_mm - segment_mm * i;
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hints.safe_exit_speed_sqr = _MIN(limiting_speed_sqr, 2 * limiting_accel * arc_mm_remaining);
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if (!planner.buffer_line(raw, scaled_fr_mm_s, active_extruder, hints))
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@ -374,13 +386,6 @@ void plan_arc(
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// Ensure last segment arrives at target location.
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raw = cart;
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#if ENABLED(AUTO_BED_LEVELING_UBL)
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ARC_LIJKUVW_CODE(
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raw[axis_l] = start_L,
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raw.i = start_I, raw.j = start_J, raw.k = start_K,
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raw.u = start_U, raw.v = start_V, raw.w = start_W
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);
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#endif
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apply_motion_limits(raw);
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@ -392,14 +397,7 @@ void plan_arc(
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hints.safe_exit_speed_sqr = 0.0f;
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planner.buffer_line(raw, scaled_fr_mm_s, active_extruder, hints);
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#if ENABLED(AUTO_BED_LEVELING_UBL)
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ARC_LIJKUVW_CODE(
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raw[axis_l] = start_L,
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raw.i = start_I, raw.j = start_J, raw.k = start_K,
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raw.u = start_U, raw.v = start_V, raw.w = start_W
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);
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#endif
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current_position = raw;
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current_position = cart;
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} // plan_arc
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