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Englishcoursewareforautonomousdriving目錄IntroductiontoAutonomousDrivingKeyTechnologiesofAutonomousDrivingThechallengesfacedbyautonomousdriving目錄TheDevelopmentProspectsofAutonomousDrivingPracticalCasesofAutonomousDrivingEnglishvocabularyandexpressionIntroductiontoAutonomousDriving01Autonomousdrivingreferstotheuseoftechnologytoenablevehiclestonavigatewithouthumanintervention,typicallythroughtheuseofsensors,cameras,andadvancedalgorithmsItrangesfrompartialautomation,wherethehumandriverstillhasinsightofthedrivingtask,tofullautomation,wherethevehiclecanperformthedrivingtaskwithoutanyhumaninputThedefinitionofautonomousdrivingTheearlystagesofautonomousdrivingresearchdatebacktothe1980s,withtheDARPAGrandChallenge,araceforselfdrivingvehiclesintheUnitedStatesSincethen,significantprogresshasbeenmadeinthefield,withmanycompaniesinvestinginautonomousdrivingtechnologyandconductingroadtestsThepastfewyearshaveseenarapidaccelerationinthedevelopmentanddeploymentofautonomousvehicles,withsomecompaniesalreadyofferingcommercialservicesTheDevelopmentHistoryofAutonomousDrivingAutonomousdrivinghasthepotentialtorevolutionizetransportation,particularlyinurbanareaswheretrafficcongestionandpollutionaremajorissuesItcanalsoimproveroadsafetybyreducinghumanerrors,whichisaleadingcauseofaccidentsOtherpotentialapplicationsincludelonghaultrucking,publictransportation,andevenselfdrivingtaxisorsharedmobilityservicesApplicationscenariosforautonomousdrivingKeyTechnologiesofAutonomousDriving02Theabilitytoidentifyandlocateobjectsinthevehicle'senvironment,suchasothervehicles,pedestrians,androadsignsObjectDetectionTheprocessofassigningsemanticlabels,orcategories,toeachpixelinanimage,enablingthecartounderstandthesceneingreaterdetailSemanticSegmentationThecreationofa3Dmodeloftheenvironmentfromsensordatatoprovidemoreaccuraterepresentationofthescene3DReconstructionEnvironmentalperceptiontechnologyPathPlanningTheprocessofdeterminingtheoptimalpathforthevehicletotakefromitscurrentpositiontoitsdestination,consideringfactorsliketrafficconditions,roadgeometry,andsafetyMotionPlanningThedetailedcalculationofthevehicle'svelocity,acceleration,andsteeringanglenecessarytotraversetheplannedpathCollisionAvoidanceTechniquesusedtoensurethatthevehicleavoidscollisionswithotherobjectsorvehiclesinitsenvironmentPathplanningtechnology010203TheprocessofselectingtheappropriateactionforthevehicletotakeinresponsetochangesinitsenvironmentorinitsinternalstateDecisionMakingTechniquesusedtoregulatethevehicle'svelocity,acceleration,andsteelangletoachievedesiredperformanceandsafetystandardsControlStrategiesTheevaluationofpotentialhazardsandtheirassociatedriskstoinformdecisionmakingprocessesRiskAssessmentDecisionandControlTechnology要點三HighPrecisionMapsDetailedmapsthatprovideinformationabouttheroadnetwork,lanegeometry,trafficsigns,andotherrelevantfeaturesnecessaryforaccuratenavigationanddecisionmaking要點一要點二LocalizationTheprocessofdeterminingthevehicle'sprecisionlocationontheroadnetworkusingGPS,internalmeasurementunits,wheelsensors,andothersensorsMapMatchingTheprocessofaligningthevehicle'spositiononthehighprecisionmaptoensureaccuraterepresentationofitscurrentlocation要點三HighprecisionmapandpositioningtechnologyThechallengesfacedbyautonomousdriving03TheaccurateperceptionoftheenvironmentiscriticalforsafeautonomousdrivingEnglishcoursewareshouldcoverthelatesttechniquesinsensorfusionandperceptionalgorithmstoensurethatautonomousvehiclescaninterprettheirfindingsaccuratelyTeachingmaterialsshouldalsoaddressthecomplexityofmotionplanningandcontrol,includingpathplanning,conflictavoidance,anddecisionmakingunderuncertaintyEnglishcoursewareshouldprovideanindepthunderstandingofthedevelopmentprocessforautonomousdrivingsoftware,includingtestingandvalidationtechniquesPerceptionandSensorFusionMotionPlanningandControlSoftwareDevelopmentandTestingTechnicalchallengesAbilityandInsuranceCourseshouldexplorethelegalframeworksandinsuranceimplicationssurroundingautonomousdriving,includingwhoisresponsibleincaseofaccidentsandhowinsurancecompanieshandleclaimsEthicalDiplomasTeachingmaterialsshouldaddressethicalconsiderationsinautonomousdriving,soaswhoshouldbeprioritizedinlifethreadingsituationsandhowtobalancesafetywithotherroadusers'rightsRegulationandComplianceEnglishcoursewareshouldprovideanoverviewofthelegalrequirementsandregulationsforthedevelopment,testing,anddeploymentofautonomousvehiclesLegalandEthicalChallengesV2XCommunication01Courseshouldcovertheimportanceofvehicletoeverything(V2X)communicationinenablingautonomousvehiclestointeractwithotherroadusersandinfrastructureHighResolutionMaps02Englishcoursewareshouldexploretheroleofhighresolutionmapsinsupportingautonomousdriving,includingmapaccuracy,dataupdates,andprivacyconcernsDeploymentandScalability03Teachingmaterialsshouldaddressthechallengesofdeploymentandscalingupautonomousdrivingtechnology,includingtheneedforwidespadinfrastructureupgradesInfrastructurechallengesTheDevelopmentProspectsofAutonomousDriving04SensorsareessentialforautonomousvehiclestoperceivetheirsurroundingsAdvancementsinsensortechnology,suchasLiDARandradar,havesignificantlyimprovedtheaccuracyandreliabilityofenvironmentalperceptionTherapiddevelopmentofAIandhighperformancecomputinghasenabledautonomousvehiclestoprocessandanalyzelargeamountsofdatainrealtime,enablingmoreaccuratedecisionmakingThedeploymentof5GandVehicletoEverything(V2X)technologywillgreatlyenhancethecommunicationcapabilitiesofautonomousvehicles,enablingthemtoshareinformationwithothervehiclesandroadinfrastructureRapidprogressinsensortechnologyIncreasingcomputingpowerDeploymentof5GandV2XtechnologyTechnicaldevelopmenttrendsIncreaseddeploymentinpublictransportationAutonomousvehiclesareexpectedtosignificantlytransformpublictransportation,reducingthecostofoperationandprovidingmoreeffectiveandconvenientservicesEmergencyofnewbusinessmodelsAutonomousvehiclesareexpectedtodrivetheemergencyofnewtransportationbusinessmodels,suchasondemandridehailingservicesandsharedflightsIntegrationwithsmartcitiesAutonomousvehiclesareexpectedtointegratewithothersmartcitycomponents,suchasintelligenttrafficlightsandsmartparkingsystems,tocreateamoreeffectiveandsustainabletransportationsystemIndustrialapplicationprospectsImprovedroadsafetyAutonomousvehicleshavethepotentialtosignificantlyreduceaccidentscausedbyhumanerror,therebyimprovingroadsafetyIncreasedsocialefficiencyAutonomousvehiclesareexpectedtoreducecommissiontimeandtrafficcongestion,enablingamoreefficiencyuseofroadinfrastructureImpactonemploymentThedeploymentofautonomousvehiclesisexpectedtohaveasignificantimpactonthetransportationindustry,potentiallyleadingtochangesinemploymentpatternsandjobrolesSocialImpactandChangePracticalCasesofAutonomousDriving05ProjectOverview:Google'sWaymoistheworld'sleadingautonomousdrivingcompany,withafocusonfullyselfdrivingvehiclesKeyFeaturesStateoftheartLiDARtechnologyforobjectdetectionandmappingAdvancedmachinelearningalgorithmsforpathplanninganddecisionmaking24/7remotehumanmonitoringforsafety0102030405GoogleWaymo'sAutonomousDrivingProjectProjectOverview:Tesla'sAutopilotisasemiautonomousdrivingsystemdesignedtoassistthedriverinvariousdrivingscenariosKeyFeaturesIntegratedhardwareandsoftwareforseamlessoperationTrafficAwareCruiseControlandAutosterforhighwaydrivingSummerfeatureforremoteparkingassistance0102030405TeslaAutopilotprojectProjectOverview:Baidu'sApolloPlanisacomprehensiveopensourceplatformforautonomousdrivinginChina,aimedatenablingsafetyandeffectiveautonomousdrivingcapabilitiesBaiduApolloPlaninChinaKeyFeaturesAdvancedalgorithmsforobjectdetection,tracking,andavoidanceCompatiblewithmultiplevehicleplatformsandsensorconfigurationsIntegrationwithBaidu'sAIcapabilitiesforvoicecontrolandnaturallanguageunderstandingBaiduApolloPlaninChinaEnglishvocabularyandexpression06AutonomousdrivingTheabilityofavehicletooperatewithouthumanintervention,includingtheabilitytosensetheenvironment,makedecisions,andcontrolthevehicle'smovementSensorDevicesthatcollectinformationabouttheenvironmentsurrounding

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