fix: smooth HOLD→HEAT power transition (bumpless transfer + cascade timing)
Two root causes for the visible power dip at every ramp-to-ramp step boundary: 1. One-tick cascade delay: heatrate_soll was computed from pid_hold.get_y() before pid_hold.process() ran in that tick, so the first tick of a new ramp used the stale hold-phase output (≈0) as the rate setpoint, driving pid_heat to near zero. Fix: move heatrate_soll computation inside process_pid(), after pid_hold.process(). 2. Cold-start reset: pid_heat.reset() at HOLD→HEAT discarded the hold-phase integral, so pid_heat had to ramp up from zero on every new step. Fix: remove the reset (bumpless transfer) — the hold-phase integral is a warm starting point that carries the baseline hold power into the new ramp. Together these eliminate the ~1s dip to near-zero and replace the slow 20–30s integral ramp-up with an immediate start at roughly hold-level power, climbing monotonically to the target. Co-Authored-By: Claude Sonnet 4.6 <noreply@anthropic.com>
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@@ -16,10 +16,7 @@ class TempController(TempControllerBase):
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# Compensate for max heat rate to reduce overshoot
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hold_scale = 1.0/self.heatrate_soll_set if self.heatrate_soll_set > 0 else 1.0
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self.heatrate_soll = self.heatrate_soll_set * self.pid_hold.get_y()
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theta_err = self.theta_soll_set - self.theta_ist
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heatrate_err = self.heatrate_soll - self.heatrate_ist
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diff = self.theta_soll_set - self.theta_ist
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self.process_fsm(diff)
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self.process_pid(theta_err, heatrate_err, hold_scale)
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self.process_pid(theta_err, hold_scale)
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@@ -130,8 +130,14 @@ class TempControllerBase(TempControllerFsm, APid):
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def get_heatrate_soll_set(self):
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return self.heatrate_soll_set
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def process_pid(self, theta_err, heatrate_err, hold_scale=1.0):
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def process_pid(self, theta_err, hold_scale=1.0):
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self.pid_hold.process(theta_err, -self.theta_ist, hold_scale)
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# Compute heatrate_soll HERE, after pid_hold ticks, so it uses
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# this tick's output rather than last tick's — eliminates the
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# one-tick cascade delay that caused p_set to dip near zero on
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# the first tick of a new ramp (HOLD→HEAT transition).
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self.heatrate_soll = self.heatrate_soll_set * self.pid_hold.get_y()
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heatrate_err = self.heatrate_soll - self.heatrate_ist
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# Only the PID actually driving y is advanced - otherwise the
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# inactive one (e.g. pid_heat while COOL has pid_cool driving)
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@@ -96,7 +96,9 @@ class TempControllerFsm:
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elif self.state == States.HOLD:
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if diff >= self.thresholds['HoldHeat']:
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state_next = States.HEAT
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self.pid_heat.reset()
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# No pid_heat.reset() here — bumpless transfer: carry the
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# hold-phase integral into the new ramp so power doesn't
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# drop to near-zero and crawl back up from scratch.
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elif diff <= -self.thresholds['HoldCool']:
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state_next = States.COOL
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self.pid_cool.reset()
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@@ -64,10 +64,7 @@ class TempController(TempControllerBase):
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# Compensate for max heat rate to reduce overshoot
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hold_scale = 1.0/self.heatrate_soll_set if self.heatrate_soll_set > 0 else 1.0
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self.heatrate_soll = self.heatrate_soll_set * self.pid_hold.get_y()
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theta_err = self.theta_soll_set - self.theta_ist
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heatrate_err = self.heatrate_soll - self.heatrate_ist
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diff = self.theta_soll_set - self.theta_ist
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self.process_fsm(diff)
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self.process_pid(theta_err, heatrate_err, hold_scale)
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self.process_pid(theta_err, hold_scale)
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