001package jmri.jmrit.dispatcher; 002 003import java.beans.PropertyChangeListener; 004import java.beans.PropertyChangeSupport; 005import java.util.ArrayList; 006import java.util.Date; 007import java.util.List; 008 009import javax.annotation.OverridingMethodsMustInvokeSuper; 010import javax.annotation.Nonnull; 011 012import jmri.Block; 013import jmri.InstanceManager; 014import jmri.NamedBeanHandle; 015import jmri.Path; 016import jmri.Section; 017import jmri.Sensor; 018import jmri.Transit; 019import jmri.Transit.TransitType; 020import jmri.TransitSection; 021import jmri.Section.SectionType; 022import jmri.beans.PropertyChangeProvider; 023import jmri.jmrit.display.layoutEditor.LayoutBlock; 024import jmri.jmrit.display.layoutEditor.LayoutBlockManager; 025 026/** 027 * This class holds information and options for an ActiveTrain, that is a train 028 * that has been linked to a Transit and activated for transit around the 029 * layout. 030 * <p> 031 * An ActiveTrain may be assigned one of the following modes, which specify how 032 * the active train will be run through its transit: AUTOMATIC - indicates the 033 * ActiveTrain will be run under automatic control of the computer. (Automatic 034 * Running) MANUAL - indicates an ActiveTrain running in AUTOMATIC mode has 035 * reached a Special Action in its Transit that requires MANUAL operation. When 036 * this happens, the status changes to WORKING, and the mode changes to MANUAL. 037 * The ActiveTrain will be run by an operator using a throttle. AUTOMATIC 038 * running is resumed when the work has been completed. DISPATCHED - indicates 039 * the ActiveTrain will be run by an operator using a throttle. A dispatcher 040 * will allocate Sections to the ActiveTrain as needed, control optional signals 041 * using a CTC panel or computer logic, and arbitrate any conflicts between 042 * ActiveTrains. (Human Dispatcher). 043 * <p> 044 * An ActiveTrain will have one of the following statuses: 045 * <dl> 046 * <dt>RUNNING</dt><dd>Actively running on the layout, according to its mode of 047 * operation.</dd> 048 * <dt>PAUSED</dt><dd>Paused waiting for a user-specified number of fast clock 049 * minutes. The Active Train is expected to move to either RUNNING or WAITING 050 * once the specified number of minutes has elapsed. This is intended for 051 * automatic station stops. (automatic trains only)</dd> 052 * <dt>WAITING</dt><dd>Stopped waiting for a Section allocation. This is the 053 * state the Active Train is in when it is created in Dispatcher.</dd> 054 * <dt>WORKING</dt><dd>Performing work under control of a human engineer. This is 055 * the state an Active Train assumes when an engineer is picking up or setting 056 * out cars at industries. (automatic trains only)</dd> 057 * <dt>READY</dt><dd>Train has completed WORKING, and is awaiting a restart - 058 * dispatcher clearance to resume running. (automatic trains only)</dd> 059 * <dt>STOPPED</dt><dd>Train was stopped by the dispatcher. Dispatcher must 060 * resume. (automatic trains only)</dd> 061 * <dt>DONE</dt><dd>Train has completed its transit of the layout and is ready to 062 * be terminated by the dispatcher, or Restart pressed to repeat the automated 063 * run.</dd> 064 * </dl> 065 * Status is a bound property. 066 * <p> 067 * The ActiveTrain status should maintained (setStatus) by the running class, or 068 * if running in DISPATCHED mode, by Dispatcher. When an ActiveTrain is WAITING, 069 * and the dispatcher allocates a section to it, the status of the ActiveTrain 070 * is automatically set to RUNNING. So an autoRun class can listen to the status 071 * of the ActiveTrain to trigger start up if the train has been waiting for the 072 * dispatcher. Note: There is still more to be programmed here. 073 * <p> 074 * Train information supplied when the ActiveTrain is created can come from any 075 * of the following: 076 * <dl> 077 * <dt>ROSTER</dt><dd>The train was selected from the JMRI roster menu</dd> 078 * <dt>OPERATIONS</dt><dd>The train was selected from trains available from JMRI 079 * operations</dd> 080 * <dt>USER</dt><dd>Neither menu was used--the user entered a name and DCC 081 * address.</dd> 082 * </dl> 083 * Train source information is recorded when an ActiveTrain is created, 084 * and may be referenced by getTrainSource if it is needed by other objects. The 085 * train source should be specified in the Dispatcher Options window prior to 086 * creating an ActiveTrain. 087 * <p> 088 * ActiveTrains are referenced via a list in DispatcherFrame, which serves as a 089 * manager for ActiveTrain objects. 090 * <p> 091 * ActiveTrains are transient, and are not saved to disk. Active Train 092 * information can be saved to disk, making set up with the same options, etc 093 * very easy. 094 * <p> 095 * An ActiveTrain runs through its Transit in the FORWARD direction, until a 096 * Transit Action reverses the direction of travel in the Transit. When running 097 * with its Transit reversed, the Active Train returns to its starting Section. 098 * Upon reaching and stopping in its starting Section, the Transit is 099 * automatically set back to the forward direction. If AutoRestart is set, the 100 * run is repeated. The direction of travel in the Transit is maintained here. 101 * 102 * <p> 103 * This file is part of JMRI. 104 * <p> 105 * JMRI is open source software; you can redistribute it and/or modify it under 106 * the terms of version 2 of the GNU General Public License as published by the 107 * Free Software Foundation. See the "COPYING" file for a copy of this license. 108 * <p> 109 * JMRI is distributed in the hope that it will be useful, but WITHOUT ANY 110 * WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS FOR 111 * A PARTICULAR PURPOSE. See the GNU General Public License for more details. 112 * 113 * @author Dave Duchamp Copyright (C) 2008-2011 114 */ 115public class ActiveTrain implements PropertyChangeProvider { 116 117 private static final jmri.NamedBean.DisplayOptions USERSYS = jmri.NamedBean.DisplayOptions.USERNAME_SYSTEMNAME; 118 119 /** 120 * Create an ActiveTrain. 121 * 122 * @param t the transit linked to this ActiveTrain 123 * @param name the train name 124 * @param trainSource the source for this ActiveTrain 125 */ 126 public ActiveTrain(Transit t, String name, int trainSource) { 127 mTransit = t; 128 mTrainName = name; 129 mTrainSource = trainSource; 130 } 131 132 /** 133 * Constants representing the Status of this ActiveTrain When created, the 134 * Status of an Active Train is always WAITING, 135 */ 136 public static final int RUNNING = 0x01; // running on the layout 137 public static final int PAUSED = 0x02; // paused for a number of fast minutes 138 public static final int WAITING = 0x04; // waiting for a section allocation 139 public static final int WORKING = 0x08; // actively working 140 public static final int READY = 0x10; // completed work, waiting for restart 141 public static final int STOPPED = 0x20; // stopped by the dispatcher (auto trains only) 142 public static final int DONE = 0x40; // completed its transit 143 144 /** 145 * Constants representing Type of ActiveTrains. 146 */ 147 public static final int NONE = 0x00; // no train type defined 148 public static final int LOCAL_PASSENGER = 0x01; // low priority local passenger train 149 public static final int LOCAL_FREIGHT = 0x02; // low priority freight train performing local tasks 150 public static final int THROUGH_PASSENGER = 0x03; // normal priority through passenger train 151 public static final int THROUGH_FREIGHT = 0x04; // normal priority through freight train 152 public static final int EXPRESS_PASSENGER = 0x05; // high priority passenger train 153 public static final int EXPRESS_FREIGHT = 0x06; // high priority freight train 154 public static final int MOW = 0x07; // low priority maintenance of way train 155 156 /** 157 * Constants representing the mode of running of the Active Train The mode 158 * is set when the Active Train is created. The mode may be switched during 159 * a run. 160 */ 161 public static final int AUTOMATIC = 0x02; // requires mAutoRun to be "true" (auto trains only) 162 public static final int MANUAL = 0x04; // requires mAutoRun to be "true" (auto trains only) 163 public static final int DISPATCHED = 0x08; 164 public static final int TERMINATED = 0x10; //terminated 165 166 /** 167 * Constants representing the source of the train information 168 */ 169 public static final int ROSTER = 0x01; 170 public static final int OPERATIONS = 0x02; 171 public static final int USER = 0x04; 172 173 /** 174 * The value of {@link #getAllocateMethod()} if allocating as many sections as are clear. 175 */ 176 public static final int ALLOCATE_AS_FAR_AS_IT_CAN = -1; 177 /** 178 * The value of {@link #getAllocateMethod()} if allocating up until the next safe section 179 */ 180 public static final int ALLOCATE_BY_SAFE_SECTIONS = 0; 181 182 /** 183 * String property constant for status. 184 */ 185 public static final String PROPERTY_STATUS = "status"; 186 187 /** 188 * String property constant for mode. 189 */ 190 public static final String PROPERTY_MODE = "mode"; 191 192 /** 193 * String property constant for signal. 194 */ 195 public static final String PROPERTY_SIGNAL = "signal"; 196 197 /** 198 * String property constant for section allocated. 199 */ 200 public static final String PROPERTY_SECTION_ALLOCATED = "sectionallocated"; 201 202 /** 203 * String property constant for section de-allocated. 204 */ 205 public static final String PROPERTY_SECTION_DEALLOCATED = "sectiondeallocated"; 206 207 /** 208 * How much of the train can be detected 209 */ 210 public enum TrainDetection { 211 TRAINDETECTION_WHOLETRAIN, 212 TRAINDETECTION_HEADONLY, 213 TRAINDETECTION_HEADANDTAIL 214 } 215 216 /** 217 * Scale Length type 218 */ 219 public enum TrainLengthUnits { 220 TRAINLENGTH_SCALEFEET, 221 TRAINLENGTH_SCALEMETERS, 222 TRAINLENGTH_ACTUALINCHS, 223 TRAINLENGTH_ACTUALCM 224 } 225 226 // instance variables 227 private DispatcherFrame mDispatcher = null; 228 private Transit mTransit = null; 229 private String mTrainName = ""; 230 private int mTrainSource = ROSTER; 231 private jmri.jmrit.roster.RosterEntry mRoster = null; 232 private int mStatus = WAITING; 233 private int mMode = DISPATCHED; 234 private boolean mTransitReversed = false; // true if Transit is running in reverse 235 private boolean mAllocationReversed = false; // true if allocating Sections in reverse 236 private AutoActiveTrain mAutoActiveTrain = null; 237 private final List<AllocatedSection> mAllocatedSections = new ArrayList<>(); 238 private Section mLastAllocatedSection = null; 239 private Section mLastAllocOverrideSafe = null; 240 private int mLastAllocatedSectionSeqNumber = 0; 241 private Section mSecondAllocatedSection = null; 242 private int mNextAllocationNumber = 1; 243 private Section mNextSectionToAllocate = null; 244 private int mNextSectionSeqNumber = 0; 245 private int mNextSectionDirection = 0; 246 private Block mStartBlock = null; 247 private int mStartBlockSectionSequenceNumber = 0; 248 private Block mEndBlock = null; 249 private Section mEndBlockSection = null; 250 private int mEndBlockSectionSequenceNumber = 0; 251 private int mPriority = 0; 252 private boolean mAutoRun = false; 253 private String mDccAddress = ""; 254 private boolean mResetWhenDone = true; 255 private boolean mReverseAtEnd = false; 256 private int mAllocateMethod = 3; 257 public static final int NODELAY = 0x00; 258 public static final int TIMEDDELAY = 0x01; 259 public static final int SENSORDELAY = 0x02; 260 private TrainDetection trainDetection = TrainDetection.TRAINDETECTION_HEADONLY; 261 262 private int mDelayedRestart = NODELAY; 263 private int mDelayedStart = NODELAY; 264 private int mDepartureTimeHr = 8; 265 private int mDepartureTimeMin = 0; 266 private int mRestartDelay = 0; 267 private NamedBeanHandle<Sensor> mStartSensor = null; // A Sensor that when changes state to active will trigger the trains start. 268 private boolean resetStartSensor = true; 269 private NamedBeanHandle<Sensor> mRestartSensor = null; // A Sensor that when changes state to active will trigger the trains restart. 270 private boolean resetRestartSensor = true; 271 private NamedBeanHandle<Sensor> mReverseRestartSensor = null; // A Sensor that when changes state to active will trigger the trains restart. 272 private boolean resetReverseRestartSensor = true; 273 private int mDelayReverseRestart = NODELAY; 274 private int mTrainType = LOCAL_FREIGHT; 275 private boolean terminateWhenFinished = false; 276 private String mNextTrain = ""; 277 private int mSignalType; 278 279 // start up instance variables 280 private boolean mStarted = false; 281 282 // 283 // Access methods 284 // 285 public boolean getStarted() { 286 return mStarted; 287 } 288 289 public void setDispatcher(DispatcherFrame df) { 290 mDispatcher = df; 291 mSignalType = df.getSignalType(); 292 if (mTransit.getTransitType() == TransitType.DYNAMICADHOC) { 293 mSignalType = DispatcherFrame.SECTIONSALLOCATED; 294 } 295 } 296 297 public void setStarted() { 298 mStarted = true; 299 mStatus = RUNNING; 300 holdAllocation(false); 301 setStatus(WAITING); 302 if (mAutoActiveTrain != null && mDispatcher.getSignalType() == DispatcherFrame.SIGNALMAST) { 303 mAutoActiveTrain.setupNewCurrentSignal(null,false); 304 } 305 } 306 307 public Transit getTransit() { 308 return mTransit; 309 } 310 311 public String getTransitName() { 312 return mTransit.getDisplayName(); 313 } 314 315 public String getActiveTrainName() { 316 return (mTrainName + " / " + getTransitName()); 317 } 318 319 // Note: Transit and Train may not be changed once an ActiveTrain is created. 320 public String getTrainName() { 321 return mTrainName; 322 } 323 324 public int getTrainSource() { 325 return mTrainSource; 326 } 327 328 public void setRosterEntry(jmri.jmrit.roster.RosterEntry re) { 329 mRoster = re; 330 } 331 332 public jmri.jmrit.roster.RosterEntry getRosterEntry() { 333 if (mRoster == null && getTrainSource() == ROSTER) { 334 //Try to resolve the roster based upon the train name 335 mRoster = jmri.jmrit.roster.Roster.getDefault().getEntryForId(getTrainName()); 336 } else if (getTrainSource() != ROSTER) { 337 mRoster = null; 338 } 339 return mRoster; 340 } 341 342 public int getStatus() { 343 return mStatus; 344 } 345 346 public void setStatus(int status) { 347 if (restartPoint) { 348 return; 349 } 350 if ((status == RUNNING) || (status == PAUSED) || (status == WAITING) || (status == WORKING) 351 || (status == READY) || (status == STOPPED) || (status == DONE)) { 352 if (mStatus != status) { 353 int old = mStatus; 354 mStatus = status; 355 firePropertyChange(PROPERTY_STATUS, old, mStatus); 356 if (mStatus == DONE) { 357 mDispatcher.terminateActiveTrain(this,terminateWhenFinished,true); 358 } 359 } 360 } else { 361 log.error("Invalid ActiveTrain status - {}", status); 362 } 363 } 364 365 public void setControlingSignal(Object oldSignal, Object newSignal) { 366 firePropertyChange(PROPERTY_SIGNAL, oldSignal, newSignal); 367 } 368 369 public String getStatusText() { 370 if (mStatus == RUNNING) { 371 return Bundle.getMessage("RUNNING"); 372 } else if (mStatus == PAUSED) { 373 return Bundle.getMessage("PAUSED"); 374 } else if (mStatus == WAITING) { 375 if (!mStarted) { 376 if (mDelayedStart == TIMEDDELAY) { 377 return jmri.jmrit.beantable.LogixTableAction.formatTime(mDepartureTimeHr, 378 mDepartureTimeMin) + " " + Bundle.getMessage("START"); 379 } else if (mDelayedStart == SENSORDELAY) { 380 return (Bundle.getMessage("BeanNameSensor") + " " + getDelaySensorName()); 381 } 382 } 383 return Bundle.getMessage("WAITING"); 384 } else if (mStatus == WORKING) { 385 return Bundle.getMessage("WORKING"); 386 } else if (mStatus == READY) { 387 if (restartPoint && getDelayedRestart() == TIMEDDELAY) { 388 return jmri.jmrit.beantable.LogixTableAction.formatTime(restartHr, 389 restartMin) + " " + Bundle.getMessage("START"); 390 } else if (restartPoint && getDelayedRestart() == SENSORDELAY) { 391 return (Bundle.getMessage("BeanNameSensor") + " " + getRestartSensorName()); 392 } 393 return Bundle.getMessage("READY"); 394 } else if (mStatus == STOPPED) { 395 return Bundle.getMessage("STOPPED"); 396 } else if (mStatus == DONE) { 397 return Bundle.getMessage("DONE"); 398 } 399 return (""); 400 } 401 402 /** 403 * sets the train detection type 404 * @param value {@link ActiveTrain.TrainDetection} 405 */ 406 public void setTrainDetection(TrainDetection value) { 407 trainDetection = value; 408 } 409 410 /** 411 * Gets the train detection type 412 * @return {@link ActiveTrain.TrainDetection} 413 */ 414 public TrainDetection getTrainDetection() { 415 return trainDetection; 416 } 417 418 public boolean isTransitReversed() { 419 return mTransitReversed; 420 } 421 422 public void setTransitReversed(boolean set) { 423 mTransitReversed = set; 424 } 425 426 public boolean isAllocationReversed() { 427 return mAllocationReversed; 428 } 429 430 public void setAllocationReversed(boolean set) { 431 mAllocationReversed = set; 432 } 433 434 public int getDelayedStart() { 435 return mDelayedStart; 436 } 437 438 public void setNextTrain(String nextTrain) { 439 mNextTrain = nextTrain; 440 } 441 442 public String getNextTrain() { 443 return mNextTrain; 444 } 445 446 public void setDelayedStart(int delay) { 447 mDelayedStart = delay; 448 } 449 450 public int getDelayedRestart() { 451 return mDelayedRestart; 452 } 453 454 public void setDelayedRestart(int delay) { 455 mDelayedRestart = delay; 456 } 457 458 public int getDelayReverseRestart() { 459 return mDelayReverseRestart; 460 } 461 462 public void setReverseDelayRestart(int delay) { 463 mDelayReverseRestart = delay; 464 } 465 466 public int getDepartureTimeHr() { 467 return mDepartureTimeHr; 468 } 469 470 public void setDepartureTimeHr(int hr) { 471 mDepartureTimeHr = hr; 472 } 473 474 public int getDepartureTimeMin() { 475 return mDepartureTimeMin; 476 } 477 478 public void setDepartureTimeMin(int min) { 479 mDepartureTimeMin = min; 480 } 481 482 public void setRestartDelay(int min) { 483 mRestartDelay = min; 484 } 485 486 public int getRestartDelay() { 487 return mRestartDelay; 488 } 489 490 int mReverseRestartDelay; 491 public int getReverseRestartDelay() { 492 return mReverseRestartDelay; 493 } 494 public void setReverseRestartDelay(int min) { 495 mReverseRestartDelay = min; 496 } 497 498 int restartHr = 0; 499 int restartMin = 0; 500 501 public int getRestartDepartHr() { 502 return restartHr; 503 } 504 505 public int getRestartDepartMin() { 506 return restartMin; 507 } 508 509 public void setTerminateWhenDone(boolean boo) { 510 terminateWhenFinished = boo; 511 } 512 513 public Sensor getDelaySensor() { 514 if (mStartSensor == null) { 515 return null; 516 } 517 return mStartSensor.getBean(); 518 } 519 520 public String getDelaySensorName() { 521 if (mStartSensor == null) { 522 return null; 523 } 524 return mStartSensor.getName(); 525 } 526 527 public void setDelaySensor(Sensor s) { 528 if (s == null) { 529 mStartSensor = null; 530 return; 531 } 532 mStartSensor = InstanceManager.getDefault(jmri.NamedBeanHandleManager.class).getNamedBeanHandle(s.getDisplayName(), s); 533 } 534 535 public void setResetStartSensor(boolean b) { 536 resetStartSensor = b; 537 } 538 539 public boolean getResetStartSensor() { 540 return resetStartSensor; 541 } 542 543 public Sensor getReverseRestartSensor() { 544 if (mReverseRestartSensor == null) { 545 return null; 546 } 547 return mReverseRestartSensor.getBean(); 548 } 549 550 public String getReverseRestartSensorName() { 551 if (mReverseRestartSensor == null) { 552 return null; 553 } 554 return mReverseRestartSensor.getName(); 555 } 556 557 public void setReverseDelaySensor(Sensor s) { 558 if (s == null) { 559 mReverseRestartSensor = null; 560 return; 561 } 562 mReverseRestartSensor = InstanceManager.getDefault(jmri.NamedBeanHandleManager.class).getNamedBeanHandle(s.getDisplayName(), s); 563 } 564 565 public void setReverseResetRestartSensor(boolean b) { 566 resetReverseRestartSensor = b; 567 } 568 569 public boolean getResetReverseRestartSensor() { 570 return resetReverseRestartSensor; 571 } 572 573 public Sensor getRestartSensor() { 574 if (mRestartSensor == null) { 575 return null; 576 } 577 return mRestartSensor.getBean(); 578 } 579 580 public String getRestartSensorName() { 581 if (mRestartSensor == null) { 582 return null; 583 } 584 return mRestartSensor.getName(); 585 } 586 587 public void setRestartSensor(Sensor s) { 588 if (s == null) { 589 mRestartSensor = null; 590 return; 591 } 592 mRestartSensor = InstanceManager.getDefault(jmri.NamedBeanHandleManager.class).getNamedBeanHandle(s.getDisplayName(), s); 593 } 594 595 public void setResetRestartSensor(boolean b) { 596 resetRestartSensor = b; 597 } 598 599 public boolean getResetRestartSensor() { 600 return resetRestartSensor; 601 } 602 603 public int getSignalType() { 604 return mSignalType; 605 } 606 607 private java.beans.PropertyChangeListener delaySensorListener = null; 608 private java.beans.PropertyChangeListener restartSensorListener = null; 609 private java.beans.PropertyChangeListener restartAllocationSensorListener = null; 610 611 public void initializeDelaySensor() { 612 if (mStartSensor == null) { 613 log.error("Call to initialise delay on start sensor, but none specified"); 614 return; 615 } 616 if (delaySensorListener == null) { 617 final ActiveTrain at = this; 618 delaySensorListener = e -> { 619 if (Sensor.PROPERTY_KNOWN_STATE.equals(e.getPropertyName()) 620 && ((Integer) e.getNewValue()) == Sensor.ACTIVE) { 621 getDelaySensor().removePropertyChangeListener(delaySensorListener); 622 mDispatcher.removeDelayedTrain(at); 623 setStarted(); 624 mDispatcher.queueScanOfAllocationRequests(); 625 if (resetStartSensor) { 626 try { 627 getDelaySensor().setKnownState(Sensor.INACTIVE); 628 log.debug("Start sensor {} set back to inActive", getDelaySensor().getDisplayName(USERSYS)); 629 } catch (jmri.JmriException ex) { 630 log.error("Error resetting start sensor {} back to inActive", 631 getDelaySensor().getDisplayName(USERSYS)); 632 } 633 } 634 } 635 }; 636 } 637 getDelaySensor().addPropertyChangeListener(delaySensorListener); 638 } 639 640 public void initializeRestartSensor(Sensor restartSensor, boolean resetSensor) { 641 if (restartSensor == null) { 642 log.error("Call to initialise delay on restart sensor, but none specified"); 643 return; 644 } 645 if (restartSensorListener == null) { 646 final ActiveTrain at = this; 647 restartSensorListener = e -> { 648 if (Sensor.PROPERTY_KNOWN_STATE.equals(e.getPropertyName()) 649 && ((Integer) e.getNewValue()) == Sensor.ACTIVE) { 650 restartSensor.removePropertyChangeListener(restartSensorListener); 651 restartSensorListener = null; 652 mDispatcher.removeDelayedTrain(at); 653 restart(); 654 mDispatcher.queueScanOfAllocationRequests(); 655 if (resetSensor) { 656 try { 657 restartSensor.setKnownState(Sensor.INACTIVE); 658 log.debug("Restart sensor {} set back to inActive", 659 getRestartSensor().getDisplayName(USERSYS)); 660 } catch (jmri.JmriException ex) { 661 log.error("Error resetting restart sensor back to inActive"); 662 } 663 } 664 } 665 }; 666 } 667 restartSensor.addPropertyChangeListener(restartSensorListener); 668 } 669 670 public void initializeRestartAllocationSensor(NamedBeanHandle<Sensor> restartAllocationSensor) { 671 if (restartAllocationSensor == null) { 672 log.error("Call to initialise delay on restart allocation sensor, but none specified"); 673 return; 674 } 675 if (restartAllocationSensorListener == null) { 676 restartAllocationSensorListener = e -> { 677 if (Sensor.PROPERTY_KNOWN_STATE.equals(e.getPropertyName()) 678 && (((Integer) e.getNewValue()) == Sensor.INACTIVE)) { 679 restartAllocationSensor.getBean().removePropertyChangeListener(restartAllocationSensorListener); 680 restartAllocationSensorListener = null; 681 mDispatcher.queueScanOfAllocationRequests(); 682 } 683 }; 684 } 685 restartAllocationSensor.getBean().addPropertyChangeListener(restartAllocationSensorListener); 686 } 687 688 public void setTrainType(int type) { 689 mTrainType = type; 690 } 691 692 /** 693 * set train type using localized string name as stored 694 * 695 * @param sType name, such as "LOCAL_PASSENGER" 696 */ 697 public void setTrainType(String sType) { 698 if (sType.equals(Bundle.getMessage("LOCAL_FREIGHT"))) { 699 setTrainType(LOCAL_FREIGHT); 700 } else if (sType.equals(Bundle.getMessage("LOCAL_PASSENGER"))) { 701 setTrainType(LOCAL_PASSENGER); 702 } else if (sType.equals(Bundle.getMessage("THROUGH_FREIGHT"))) { 703 setTrainType(THROUGH_FREIGHT); 704 } else if (sType.equals(Bundle.getMessage("THROUGH_PASSENGER"))) { 705 setTrainType(THROUGH_PASSENGER); 706 } else if (sType.equals(Bundle.getMessage("EXPRESS_FREIGHT"))) { 707 setTrainType(EXPRESS_FREIGHT); 708 } else if (sType.equals(Bundle.getMessage("EXPRESS_PASSENGER"))) { 709 setTrainType(EXPRESS_PASSENGER); 710 } else if (sType.equals(Bundle.getMessage("MOW"))) { 711 setTrainType(MOW); 712 } 713 } 714 715 public int getTrainType() { 716 return mTrainType; 717 } 718 719 public String getTrainTypeText() { 720 if (mTrainType == LOCAL_FREIGHT) { 721 return Bundle.getMessage("LOCAL_FREIGHT"); 722 } else if (mTrainType == LOCAL_PASSENGER) { 723 return Bundle.getMessage("LOCAL_PASSENGER"); 724 } else if (mTrainType == THROUGH_FREIGHT) { 725 return Bundle.getMessage("THROUGH_FREIGHT"); 726 } else if (mTrainType == THROUGH_PASSENGER) { 727 return Bundle.getMessage("THROUGH_PASSENGER"); 728 } else if (mTrainType == EXPRESS_FREIGHT) { 729 return Bundle.getMessage("EXPRESS_FREIGHT"); 730 } else if (mTrainType == EXPRESS_PASSENGER) { 731 return Bundle.getMessage("EXPRESS_PASSENGER"); 732 } else if (mTrainType == MOW) { 733 return Bundle.getMessage("MOW"); 734 } 735 return (""); 736 } 737 738 public int getMode() { 739 return mMode; 740 } 741 742 public void forcePassNextSafeSection() { 743 for (AllocatedSection as: mAllocatedSections) { 744 if (as.getTransitSection().getSection() == mLastAllocatedSection 745 && as.getTransitSection().isSafe() 746 && as.getNextSection().getOccupancy() == Section.UNOCCUPIED) { 747 mLastAllocOverrideSafe = mLastAllocatedSection; 748 } 749 } 750 } 751 752 public void setMode(int mode) { 753 if ((mode == AUTOMATIC) || (mode == MANUAL) 754 || (mode == DISPATCHED || mode == TERMINATED)) { 755 int old = mMode; 756 mMode = mode; 757 firePropertyChange(PROPERTY_MODE, old, mMode); 758 } else { 759 log.error("Attempt to set ActiveTrain mode to illegal value - {}", mode); 760 } 761 } 762 763 @Nonnull 764 public String getModeText() { 765 switch (mMode) { 766 case AUTOMATIC: 767 return Bundle.getMessage("AUTOMATIC"); 768 case MANUAL: 769 return Bundle.getMessage("MANUAL"); 770 case DISPATCHED: 771 return Bundle.getMessage("DISPATCHED"); 772 case TERMINATED: 773 return Bundle.getMessage("TERMINATED"); 774 default: 775 return ""; 776 } 777 } 778 779 public void setAutoActiveTrain(AutoActiveTrain aat) { 780 mAutoActiveTrain = aat; 781 } 782 783 public AutoActiveTrain getAutoActiveTrain() { 784 return mAutoActiveTrain; 785 } 786 787 public int getRunningDirectionFromSectionAndSeq(Section s, int seqNo) { 788 int dir = mTransit.getDirectionFromSectionAndSeq(s, seqNo); 789 if (mTransitReversed) { 790 if (dir == Section.FORWARD) { 791 dir = Section.REVERSE; 792 } else { 793 dir = Section.FORWARD; 794 } 795 } 796 return dir; 797 } 798 799 public int getAllocationDirectionFromSectionAndSeq(Section s, int seqNo) { 800 int dir = mTransit.getDirectionFromSectionAndSeq(s, seqNo); 801 if (mAllocationReversed) { 802 if (dir == Section.FORWARD) { 803 dir = Section.REVERSE; 804 } else { 805 dir = Section.FORWARD; 806 } 807 } 808 return dir; 809 } 810 811 public void addAllocatedSection(AllocatedSection as) { 812 if (as != null) { 813 mAllocatedSections.add(as); 814 if (as.getSection() == mNextSectionToAllocate) { 815 // this is the next Section in the Transit, update pointers 816 mLastAllocatedSection = as.getSection(); 817 mLastAllocOverrideSafe = null; 818 mLastAllocatedSectionSeqNumber = mNextSectionSeqNumber; 819 mNextSectionToAllocate = as.getNextSection(); 820 mNextSectionSeqNumber = as.getNextSectionSequence(); 821 mNextSectionDirection = getAllocationDirectionFromSectionAndSeq( 822 mNextSectionToAllocate, mNextSectionSeqNumber); 823 as.setAllocationNumber(mNextAllocationNumber); 824 mNextAllocationNumber++; 825 } else { 826 // this is an extra allocated Section 827 as.setAllocationNumber(-1); 828 } 829 if ((mStatus == WAITING) && mStarted) { 830 setStatus(RUNNING); 831 } 832 if (as.getSequence() == 2) { 833 mSecondAllocatedSection = as.getSection(); 834 } 835 if (mDispatcher.getNameInAllocatedBlock()) { 836 if (mDispatcher.getRosterEntryInBlock() && getRosterEntry() != null) { 837 as.getSection().setNameFromActiveBlock(getRosterEntry()); 838 } else { 839 as.getSection().setNameInBlocks(mTrainName); 840 } 841 as.getSection().suppressNameUpdate(true); 842 } 843 if (mDispatcher.getExtraColorForAllocated()) { 844 as.getSection().setAlternateColorFromActiveBlock(true); 845 } 846 // notify anyone interested 847 firePropertyChange(PROPERTY_SECTION_ALLOCATED,as , null); 848 refreshPanel(); 849 } else { 850 log.error("Null Allocated Section reference in addAllocatedSection of ActiveTrain"); 851 } 852 } 853 854 private void refreshPanel() { 855 var editorManager = InstanceManager.getDefault(jmri.jmrit.display.EditorManager.class); 856 for (var panel : editorManager.getAll(jmri.jmrit.display.layoutEditor.LayoutEditor.class)) { 857 panel.redrawPanel(); 858 } 859 } 860 861 public void removeAllocatedSection(AllocatedSection as) { 862 if (as == null) { 863 log.error("Null AllocatedSection reference in removeAllocatedSection of ActiveTrain"); 864 return; 865 } 866 int index = -1; 867 for (int i = 0; i < mAllocatedSections.size(); i++) { 868 if (as == mAllocatedSections.get(i)) { 869 index = i; 870 } 871 } 872 if (index < 0) { 873 log.error("Attempt to remove an unallocated Section {}", as.getSection().getDisplayName(USERSYS)); 874 return; 875 } 876 mAllocatedSections.remove(index); 877 if (mDispatcher.getNameInAllocatedBlock()) { 878 as.getSection().clearNameInUnoccupiedBlocks(); 879 as.getSection().suppressNameUpdate(false); 880 } 881 for (Block b: as.getSection().getBlockList()) { 882 if (!mDispatcher.checkForBlockInAllocatedSection(b, as.getSection())) { 883 String userName = b.getUserName(); 884 if (userName != null) { 885 LayoutBlock lb = InstanceManager.getDefault(LayoutBlockManager.class).getByUserName(userName); 886 if (lb != null) { 887 lb.setUseExtraColor(false); 888 } 889 } 890 } 891 } 892 // notify anyone interested 893 firePropertyChange(PROPERTY_SECTION_DEALLOCATED,as , null); 894 refreshPanel(); 895 if (as.getSection() == mLastAllocatedSection) { 896 mLastAllocatedSection = null; 897 mLastAllocOverrideSafe = null; 898 if (!mAllocatedSections.isEmpty()) { 899 mLastAllocatedSection = mAllocatedSections.get( 900 mAllocatedSections.size() - 1).getSection(); 901 mLastAllocatedSectionSeqNumber = mAllocatedSections.size() - 1; 902 } 903 } 904 } 905 906 /** 907 * This resets the state of the ActiveTrain so that it can be reallocated. 908 */ 909 public void allocateAFresh() { 910 setStatus(WAITING); 911 holdAllocation = false; 912 setTransitReversed(false); 913 List<AllocatedSection> sectionsToRelease = new ArrayList<>(); 914 for (AllocatedSection as : mDispatcher.getAllocatedSectionsList()) { 915 if (as.getActiveTrain() == this) { 916 sectionsToRelease.add(as); 917 } 918 } 919 for (AllocatedSection as : sectionsToRelease) { 920 mDispatcher.releaseAllocatedSection(as, true); // need to find Allocated Section 921 mDispatcher.queueWaitForEmpty(); //ensure release processed before proceding. 922 as.getSection().setState(Section.FREE); 923 } 924 if (mLastAllocatedSection != null) { 925 mLastAllocatedSection.setState(Section.FREE); 926 } 927 resetAllAllocatedSections(); 928 clearAllocations(); 929 setAllocationReversed(false); 930 // wait for AutoAllocate to do complete. 931 mDispatcher.queueWaitForEmpty(); 932 if (mAutoRun) { 933 mAutoActiveTrain.allocateAFresh(); 934 } 935 mDispatcher.allocateNewActiveTrain(this); 936 } 937 938 public void clearAllocations() { 939 for (AllocatedSection as : getAllocatedSectionList()) { 940 removeAllocatedSection(as); 941 } 942 } 943 944 public List<AllocatedSection> getAllocatedSectionList() { 945 List<AllocatedSection> list = new ArrayList<>(); 946 for (int i = 0; i < mAllocatedSections.size(); i++) { 947 list.add(mAllocatedSections.get(i)); 948 } 949 return list; 950 } 951 952 /** 953 * Returns list of all Blocks occupied by or allocated to this train. They 954 * are in order from the tail of the train to the head of the train then on 955 * to the forward-most allocated block. Note that unoccupied blocks can 956 * exist before and after the occupied blocks. 957 * 958 * TODO: doesn't handle reversing of adjacent multi-block sections well 959 * 960 * @return the list of blocks order of occupation 961 */ 962 public List<Block> getBlockList() { 963 List<Block> list = new ArrayList<>(); 964 for (int i = 0; i < mAllocatedSections.size(); i++) { // loop thru allocated sections, then all blocks for each section 965 Section s = mAllocatedSections.get(i).getSection(); 966 List<Block> bl = s.getBlockList(); 967 if (bl.size() > 1) { //sections with multiple blocks need extra logic 968 969 boolean blocksConnected = true; 970 //determine if blocks should be added in forward or reverse order based on connectivity 971 if (i == 0) { //for first section, compare last block to first of next section 972 if (mAllocatedSections.size() > 1 973 && //only one section, assume forward 974 !connected(bl.get(bl.size() - 1), mAllocatedSections.get(i + 1).getSection().getBlockList().get(0))) { 975 blocksConnected = false; 976 } 977 } else { //not first section, check for connectivity between last block in list, and first block in this section 978 if (!connected(list.get(list.size() - 1), bl.get(0))) { //last block is not connected to first block, add reverse 979 blocksConnected = false; 980 } 981 } 982 if (blocksConnected) { //blocks were connected, so add to outgoing in forward order 983 for (int j = 0; j < bl.size(); j++) { 984 Block b = bl.get(j); 985 list.add(b); 986 log.trace("block {} ({}) added to list for Section {} (fwd)", b.getDisplayName(USERSYS), 987 (b.getState() == Block.OCCUPIED ? "OCCUPIED" : "UNOCCUPIED"), 988 s.getDisplayName(USERSYS)); 989 } 990 } else { //not connected, add in reverse order 991 for (int j = bl.size() - 1; j >= 0; j--) { 992 Block b = bl.get(j); 993 list.add(b); 994 log.trace("block {} ({}) added to list for Section {} (rev)", b.getDisplayName(USERSYS), 995 (b.getState() == Block.OCCUPIED ? "OCCUPIED" : "UNOCCUPIED"), 996 s.getDisplayName(USERSYS)); 997 } 998 } 999 1000 } else { //single block sections are simply added to the outgoing list 1001 Block b = bl.get(0); 1002 list.add(b); 1003 log.trace("block {} ({}) added to list for Section {} (one)", b.getDisplayName(USERSYS), 1004 (b.getState() == Block.OCCUPIED ? "OCCUPIED" : "UNOCCUPIED"), 1005 s.getDisplayName(USERSYS)); 1006 } 1007 } 1008 return list; 1009 } 1010 1011 /* copied from Section.java */ 1012 private boolean connected(Block b1, Block b2) { 1013 if ((b1 != null) && (b2 != null)) { 1014 List<Path> paths = b1.getPaths(); 1015 for (int i = 0; i < paths.size(); i++) { 1016 if (paths.get(i).getBlock() == b2) { 1017 return true; 1018 } 1019 } 1020 } 1021 return false; 1022 } 1023 1024 public Section getLastAllocatedSection() { 1025 return mLastAllocatedSection; 1026 } 1027 1028 public Section getLastAllocOverrideSafe() { 1029 return mLastAllocOverrideSafe; 1030 } 1031 1032 public int getLastAllocatedSectionSeqNumber() { 1033 return mLastAllocatedSectionSeqNumber; 1034 } 1035 1036 public String getLastAllocatedSectionName() { 1037 if (mLastAllocatedSection == null) { 1038 return "<" + Bundle.getMessage("None").toLowerCase() + ">"; // <none> 1039 } 1040 return getSectionName(mLastAllocatedSection); 1041 } 1042 1043 public Section getNextSectionToAllocate() { 1044 return mNextSectionToAllocate; 1045 } 1046 1047 public int getNextSectionSeqNumber() { 1048 return mNextSectionSeqNumber; 1049 } 1050 1051 public String getNextSectionToAllocateName() { 1052 if (mNextSectionToAllocate == null) { 1053 return "<" + Bundle.getMessage("None").toLowerCase() + ">"; // <none> 1054 } 1055 return getSectionName(mNextSectionToAllocate); 1056 } 1057 1058 private String getSectionName(@Nonnull Section sc) { 1059 return sc.getDisplayName(); 1060 } 1061 1062 public Block getStartBlock() { 1063 return mStartBlock; 1064 } 1065 1066 public void setStartBlock(Block sBlock) { 1067 mStartBlock = sBlock; 1068 } 1069 1070 public int getStartBlockSectionSequenceNumber() { 1071 return mStartBlockSectionSequenceNumber; 1072 } 1073 1074 public void setStartBlockSectionSequenceNumber(int sBlockSeqNum) { 1075 mStartBlockSectionSequenceNumber = sBlockSeqNum; 1076 } 1077 1078 public Block getEndBlock() { 1079 return mEndBlock; 1080 } 1081 1082 public void setEndBlock(Block eBlock) { 1083 mEndBlock = eBlock; 1084 } 1085 1086 public Section getEndBlockSection() { 1087 return mEndBlockSection; 1088 } 1089 1090 public void setEndBlockSection(Section eSection) { 1091 mEndBlockSection = eSection; 1092 } 1093 1094 public int getEndBlockSectionSequenceNumber() { 1095 return mEndBlockSectionSequenceNumber; 1096 } 1097 1098 public void setEndBlockSectionSequenceNumber(int eBlockSeqNum) { 1099 mEndBlockSectionSequenceNumber = eBlockSeqNum; 1100 } 1101 1102 public int getPriority() { 1103 return mPriority; 1104 } 1105 1106 public void setPriority(int priority) { 1107 mPriority = priority; 1108 } 1109 1110 public boolean getAutoRun() { 1111 return mAutoRun; 1112 } 1113 1114 public void setAutoRun(boolean autoRun) { 1115 mAutoRun = autoRun; 1116 } 1117 1118 public String getDccAddress() { 1119 return mDccAddress; 1120 } 1121 1122 public void setDccAddress(String dccAddress) { 1123 mDccAddress = dccAddress; 1124 } 1125 1126 public boolean getResetWhenDone() { 1127 return mResetWhenDone; 1128 } 1129 1130 public void setResetWhenDone(boolean s) { 1131 mResetWhenDone = s; 1132 } 1133 1134 public boolean getReverseAtEnd() { 1135 return mReverseAtEnd; 1136 } 1137 1138 public void setReverseAtEnd(boolean s) { 1139 mReverseAtEnd = s; 1140 } 1141 1142 protected Section getSecondAllocatedSection() { 1143 return mSecondAllocatedSection; 1144 } 1145 1146 /** 1147 * Returns the AllocateM Method to be used by autoAllocate 1148 * 1149 * @return The number of Blocks ahead to be allocated or 0 = Allocate By Safe 1150 * sections or -1 - Allocate All The Way. 1151 */ 1152 public int getAllocateMethod() { 1153 return mAllocateMethod; 1154 } 1155 1156 /** 1157 * Sets the Allocation Method to be used bu autoAllocate 1158 * @param i The number of Blocks ahead to be allocated or 0 = Allocate By Safe 1159 * sections or -1 - Allocate All The Way. 1160 */ 1161 public void setAllocateMethod(int i) { 1162 mAllocateMethod = i; 1163 } 1164 1165 // 1166 // Operating methods 1167 // 1168 public AllocationRequest initializeFirstAllocation() { 1169 if (!mAllocatedSections.isEmpty()) { 1170 log.error("ERROR - Request to initialize first allocation, when allocations already present"); 1171 return null; 1172 } 1173 if ((mStartBlockSectionSequenceNumber > 0) && (mStartBlock != null)) { 1174 mNextSectionToAllocate = mTransit.getSectionFromBlockAndSeq(mStartBlock, 1175 mStartBlockSectionSequenceNumber); 1176 if (mNextSectionToAllocate == null) { 1177 mNextSectionToAllocate = mTransit.getSectionFromConnectedBlockAndSeq(mStartBlock, 1178 mStartBlockSectionSequenceNumber); 1179 if (mNextSectionToAllocate == null) { 1180 log.error("ERROR - Cannot find Section for first allocation of ActiveTrain{}", getActiveTrainName()); 1181 return null; 1182 } 1183 } 1184 mNextSectionSeqNumber = mStartBlockSectionSequenceNumber; 1185 mNextSectionDirection = getAllocationDirectionFromSectionAndSeq(mNextSectionToAllocate, 1186 mNextSectionSeqNumber); 1187 } else { 1188 log.error("ERROR - Insufficient information to initialize first allocation"); 1189 return null; 1190 } 1191 if (!mDispatcher.requestAllocation(this, 1192 mNextSectionToAllocate, mNextSectionDirection, mNextSectionSeqNumber, true, null, true)) { 1193 log.error("Allocation request failed for first allocation of {}", getActiveTrainName()); 1194 } 1195 if (mDispatcher.getRosterEntryInBlock() && getRosterEntry() != null) { 1196 mStartBlock.setValue(getRosterEntry()); 1197 } else if (mDispatcher.getShortNameInBlock()) { 1198 mStartBlock.setValue(mTrainName); 1199 } 1200 AllocationRequest ar = mDispatcher.findAllocationRequestInQueue(mNextSectionToAllocate, 1201 mNextSectionSeqNumber, mNextSectionDirection, this); 1202 return ar; 1203 } 1204 1205 protected boolean addEndSection(Section s, int seq) { 1206 AllocatedSection as = mAllocatedSections.get(mAllocatedSections.size() - 1); 1207 if (!as.setNextSection(s, seq)) { 1208 return false; 1209 } 1210 setEndBlockSection(s); 1211 setEndBlockSectionSequenceNumber(seq); 1212 //At this stage the section direction hasn't been set, by default the exit block returned is the reverse if the section is free 1213 setEndBlock(s.getExitBlock()); 1214 mNextSectionSeqNumber = seq; 1215 mNextSectionToAllocate = s; 1216 return true; 1217 } 1218 1219 /*This is for use where the transit has been extended, then the last section has been cancelled no 1220 checks are performed, these should be done by a higher level code*/ 1221 protected void removeLastAllocatedSection() { 1222 AllocatedSection as = mAllocatedSections.get(mAllocatedSections.size() - 1); 1223 //Set the end block using the AllocatedSections exit block before clearing the next section in the allocatedsection 1224 setEndBlock(as.getExitBlock()); 1225 1226 as.setNextSection(null, 0); 1227 setEndBlockSection(as.getSection()); 1228 1229 setEndBlockSectionSequenceNumber(getEndBlockSectionSequenceNumber() - 1); 1230 // In theory the following values should have already been set if there are no more sections to allocate. 1231 mNextSectionSeqNumber = 0; 1232 mNextSectionToAllocate = null; 1233 } 1234 1235 protected AllocatedSection reverseAllAllocatedSections() { 1236 AllocatedSection aSec = null; 1237 for (int i = 0; i < mAllocatedSections.size(); i++) { 1238 aSec = mAllocatedSections.get(i); 1239 int dir = mTransit.getDirectionFromSectionAndSeq(aSec.getSection(), aSec.getSequence()); 1240 if (dir == Section.FORWARD) { 1241 aSec.getSection().setState(Section.REVERSE); 1242 } else { 1243 aSec.getSection().setState(Section.FORWARD); 1244 } 1245 aSec.setStoppingSensors(); 1246 } 1247 return aSec; 1248 } 1249 1250 protected void resetAllAllocatedSections() { 1251 for (int i = 0; i < mAllocatedSections.size(); i++) { 1252 AllocatedSection aSec = mAllocatedSections.get(i); 1253 int dir = mTransit.getDirectionFromSectionAndSeq(aSec.getSection(), aSec.getSequence()); 1254 aSec.getSection().setState(dir); 1255 aSec.setStoppingSensors(); 1256 } 1257 } 1258 1259 protected void setRestart(int delayType, int restartDelay, Sensor delaySensor, boolean resetSensorAfter) { 1260 if (delayType == NODELAY) { 1261 holdAllocation(false); 1262 return; 1263 } 1264 1265 setStatus(READY); 1266 restartPoint = true; 1267 if (delayType == TIMEDDELAY) { 1268 Date now = InstanceManager.getDefault(jmri.Timebase.class).getTime(); 1269 @SuppressWarnings("deprecation") // Date.getHours 1270 int nowHours = now.getHours(); 1271 @SuppressWarnings("deprecation") // Date.getMinutes 1272 int nowMinutes = now.getMinutes(); 1273 int hours = restartDelay / 60; 1274 int minutes = restartDelay % 60; 1275 restartHr = nowHours + hours + ((nowMinutes + minutes) / 60); 1276 restartMin = ((nowMinutes + minutes) % 60); 1277 if (restartHr>23){ 1278 restartHr=restartHr-24; 1279 } 1280 } 1281 mDispatcher.addDelayedTrain(this, delayType, delaySensor, resetSensorAfter ); 1282 } 1283 1284 protected boolean isInAllocatedList(AllocatedSection as) { 1285 for (int i = 0; i < mAllocatedSections.size(); i++) { 1286 if (mAllocatedSections.get(i) == as) { 1287 return true; 1288 } 1289 } 1290 return false; 1291 } 1292 1293 protected boolean isInAllocatedList(Section s) { 1294 for (int i = 0; i < mAllocatedSections.size(); i++) { 1295 if ((mAllocatedSections.get(i)).getSection() == s) { 1296 return true; 1297 } 1298 } 1299 return false; 1300 } 1301 1302 1303 boolean restartPoint = false; 1304 1305 private boolean holdAllocation = false; 1306 1307 protected void holdAllocation(boolean boo) { 1308 holdAllocation = boo; 1309 } 1310 1311 protected boolean holdAllocation() { 1312 return holdAllocation; 1313 } 1314 1315 protected boolean reachedRestartPoint() { 1316 return restartPoint; 1317 } 1318 1319 protected void restart() { 1320 log.debug("{}: restarting", getTrainName()); 1321 restartPoint = false; 1322 holdAllocation(false); 1323 setStatus(WAITING); 1324 if (mAutoActiveTrain != null) { 1325 mAutoActiveTrain.setupNewCurrentSignal(null,true); 1326 } 1327 } 1328 1329 public void terminate() { 1330 mDispatcher.removeDelayedTrain(this); 1331 if (getDelaySensor() != null && delaySensorListener != null) { 1332 getDelaySensor().removePropertyChangeListener(delaySensorListener); 1333 } 1334 if (getRestartSensor() != null && restartSensorListener != null) { 1335 getRestartSensor().removePropertyChangeListener(restartSensorListener); 1336 } 1337 setMode(TERMINATED); 1338 mTransit.setState(Transit.IDLE); 1339 deleteAdHocTransit(mTransit); 1340 } 1341 1342 private void deleteAdHocTransit(Transit sysname) { 1343 Transit adht = sysname; 1344 if (adht != null && adht.getTransitType() == TransitType.DYNAMICADHOC) { 1345 List<Section> tmpSecs = new ArrayList<>(); 1346 for (TransitSection ts : adht.getTransitSectionList()) { 1347 if (ts.getSection().getSectionType() == SectionType.DYNAMICADHOC) { 1348 tmpSecs.add(ts.getSection()); 1349 } 1350 } 1351 InstanceManager.getDefault(jmri.TransitManager.class).deleteTransit(adht); 1352 for (Section ts : tmpSecs) { 1353 InstanceManager.getDefault(jmri.SectionManager.class).deleteSection(ts); 1354 } 1355 } 1356 } 1357 1358 public void dispose() { 1359 if (getTransit()!=null) { 1360 getTransit().removeTemporarySections(); 1361 } 1362 } 1363 1364 // Property Change Support 1365 private final PropertyChangeSupport pcs = new PropertyChangeSupport(this); 1366 1367 @OverridingMethodsMustInvokeSuper 1368 protected void firePropertyChange(String p, Object old, Object n) { 1369 pcs.firePropertyChange(p, old, n); 1370 } 1371 1372 @Override 1373 public void addPropertyChangeListener(PropertyChangeListener listener) { 1374 pcs.addPropertyChangeListener(listener); 1375 } 1376 1377 @Override 1378 public void addPropertyChangeListener(String propertyName, PropertyChangeListener listener) { 1379 pcs.addPropertyChangeListener(propertyName, listener); 1380 } 1381 1382 @Override 1383 public PropertyChangeListener[] getPropertyChangeListeners() { 1384 return pcs.getPropertyChangeListeners(); 1385 } 1386 1387 @Override 1388 public PropertyChangeListener[] getPropertyChangeListeners(String propertyName) { 1389 return pcs.getPropertyChangeListeners(propertyName); 1390 } 1391 1392 @Override 1393 public void removePropertyChangeListener(PropertyChangeListener listener) { 1394 pcs.removePropertyChangeListener(listener); 1395 } 1396 1397 @Override 1398 public void removePropertyChangeListener(String propertyName, PropertyChangeListener listener) { 1399 pcs.removePropertyChangeListener(propertyName, listener); 1400 } 1401 1402 private static final org.slf4j.Logger log = org.slf4j.LoggerFactory.getLogger(ActiveTrain.class); 1403 1404}