Camera: Cinemachine-based rig with an anchor, a state director, point-of- interest framing, pan input, and dialogue framing volumes. Player: click-to-move over the NavMesh, a pointer input layer, and a motion arbiter that reconciles direct stick input with navigation-driven movement. The pure math is isolated in NightclubArcadia.Locomotion.Math with an EditMode suite, so the arbitration rules are testable without a scene. Interaction: IClickInteractable plus a bridge that routes pointer clicks to it. Supporting project settings: adds the Cinemachine package, the Interactable and Ground tags the raycasts depend on, and NavMesh agent dimensions matched to the player capsule (radius 0.3, height 1.8, climb 0.25). Co-Authored-By: Claude Opus 5 <[email protected]>
235 lines
6.5 KiB
C#
235 lines
6.5 KiB
C#
using System;
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using NightclubArcadia.Interaction;
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using NightclubArcadia.Player.Math;
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using StarterAssets;
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using UnityEngine;
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using UnityEngine.AI;
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namespace NightclubArcadia.Player
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{
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/// <summary>
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/// NavMeshAgent in oracle mode: computes desired move input for the arbiter
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/// without moving the CharacterController directly.
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/// </summary>
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[DefaultExecutionOrder(-60)]
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[RequireComponent(typeof(NavMeshAgent))]
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public sealed class ClickToMoveController : MonoBehaviour
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{
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const float SampleRadius = 1.5f;
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const float StallWindow = 0.4f;
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const float StallDistance = 0.05f;
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[SerializeField] Camera brainCamera;
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NavMeshAgent agent;
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ThirdPersonController locomotion;
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IClickInteractable pendingInteractable;
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bool forceRunForPath;
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[SerializeField] float runDistanceThreshold = 6f;
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Vector3 lastPosition;
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float stallTimer;
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bool hasPath;
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public bool HasPath => hasPath;
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public Vector3 Destination { get; private set; }
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public Vector2 DesiredMoveInput { get; private set; }
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public float RemainingDistance => agent != null ? agent.remainingDistance : 0f;
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public bool WantsSprint => hasPath && (forceRunForPath || agent.remainingDistance > runDistanceThreshold);
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public event Action<bool> PathFinished;
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public event Action RunRequested;
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void Awake()
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{
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agent = GetComponent<NavMeshAgent>();
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locomotion = GetComponent<ThirdPersonController>();
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agent.updatePosition = false;
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agent.updateRotation = false;
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agent.updateUpAxis = false;
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agent.angularSpeed = 0f;
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agent.acceleration = 1000f;
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agent.autoBraking = true;
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agent.stoppingDistance = 0.15f;
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agent.radius = 0.3f;
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agent.height = 1.8f;
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if (brainCamera == null)
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{
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brainCamera = Camera.main;
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}
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SyncAgentSpeed(false);
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}
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void Update()
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{
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if (!hasPath)
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{
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DesiredMoveInput = Vector2.zero;
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return;
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}
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SyncAgentSpeed(forceRunForPath || agent.remainingDistance > runDistanceThreshold);
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if (brainCamera == null)
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{
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brainCamera = Camera.main;
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}
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var cameraYaw = brainCamera != null ? brainCamera.transform.eulerAngles.y : 0f;
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DesiredMoveInput = MotionInputMath.WorldToCameraRelativeInput(
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agent.desiredVelocity,
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agent.speed,
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cameraYaw);
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CheckStall();
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CheckArrival();
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}
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void LateUpdate()
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{
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if (agent != null)
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{
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agent.nextPosition = transform.position;
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}
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}
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public void RequestRun()
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{
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forceRunForPath = true;
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RunRequested?.Invoke();
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}
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public bool SetDestination(Vector3 worldPoint)
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{
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pendingInteractable = null;
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if (!TrySampleNavMesh(worldPoint, out var hit))
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{
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return false;
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}
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agent.stoppingDistance = 0.15f;
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agent.isStopped = false;
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agent.SetDestination(hit.position);
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Destination = hit.position;
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hasPath = true;
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ResetStallTracking();
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return true;
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}
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public bool SetInteractionTarget(IClickInteractable interactable)
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{
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if (interactable == null || interactable.ApproachPoint == null)
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{
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return false;
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}
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pendingInteractable = interactable;
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var approach = interactable.ApproachPoint.position;
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if (!TrySampleNavMesh(approach, out var hit))
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{
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pendingInteractable = null;
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return false;
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}
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agent.stoppingDistance = Mathf.Max(0.15f, interactable.ApproachRadius);
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agent.isStopped = false;
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agent.SetDestination(hit.position);
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Destination = hit.position;
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hasPath = true;
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ResetStallTracking();
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return true;
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}
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public void Cancel()
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{
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if (agent != null)
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{
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agent.ResetPath();
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agent.isStopped = true;
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}
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hasPath = false;
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forceRunForPath = false;
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pendingInteractable = null;
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DesiredMoveInput = Vector2.zero;
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ResetStallTracking();
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}
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bool TrySampleNavMesh(Vector3 point, out NavMeshHit hit)
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{
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return NavMesh.SamplePosition(point, out hit, SampleRadius, NavMesh.AllAreas);
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}
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void CheckArrival()
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{
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if (!hasPath || agent.pathPending)
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{
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return;
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}
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if (agent.remainingDistance > agent.stoppingDistance)
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{
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return;
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}
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var success = agent.pathStatus != NavMeshPathStatus.PathInvalid;
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hasPath = false;
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agent.ResetPath();
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var interactable = pendingInteractable;
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pendingInteractable = null;
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PathFinished?.Invoke(success);
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if (success && interactable != null)
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{
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interactable.OnApproached();
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}
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}
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void CheckStall()
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{
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var displacement = Vector3.Distance(
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new Vector3(transform.position.x, 0f, transform.position.z),
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new Vector3(lastPosition.x, 0f, lastPosition.z));
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if (displacement < StallDistance)
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{
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stallTimer += Time.deltaTime;
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}
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else
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{
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stallTimer = 0f;
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lastPosition = transform.position;
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}
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if (stallTimer >= StallWindow && agent.remainingDistance > agent.stoppingDistance)
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{
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Cancel();
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PathFinished?.Invoke(false);
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}
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}
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void ResetStallTracking()
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{
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lastPosition = transform.position;
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stallTimer = 0f;
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}
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void SyncAgentSpeed(bool sprint)
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{
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if (locomotion == null)
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{
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return;
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}
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agent.speed = sprint ? locomotion.SprintSpeed : locomotion.MoveSpeed;
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}
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}
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}
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