C++ API 参考文档
计量单位
Zivid Motion API 中的所有单位均为 SI 单位,即长度和位置以米为单位,角度以弧度为单位。
顶层类
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class Application
Manager class for Zivid Motion.
The Application class manages resources used by the Zivid Motion. It is required to have one instance of this class alive while using Zivid Motion. Using any part of Zivid Motion without a live Application is undefined behavior.
It is not possible to have more than one Application instance at a time. Creating a second Application instance before the first Application instance has been destroyed will trigger an exception.
Public Functions
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Planner createPlanner(PlannerSettings plannerSettings) const
Initializes a Planner instance from planner settings.
Throws if the cell does not exist, or if its planning data for the selected profile is missing or was generated from a different version of the cell's configuration. Run generate() to create or update the data.
- 参数:
plannerSettings -- Planner settings
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std::string toString() const
Get string representation of the Application.
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Planner createPlanner(PlannerSettings plannerSettings) const
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class Planner
Plans collision-free robot paths in a cell.
Create a Planner with Application::createPlanner().
Public Functions
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ConfigurationGoals computeInverseKinematics(const PoseGoals &poses, const Configuration &referenceConfiguration)
Computes the robot's joint configurations corresponding to the given pose goals.
This method performs inverse kinematics to find joint configurations. There are possibly multiple joint configurations that correspond to the same TCP pose, denoted by different robot postures. The reference configuration is used to select which posture the solution should be computed for.
- 参数:
poses -- The poses for which the corresponding configurations will be computed
referenceConfiguration -- A reference configuration used to preserve the robot’s posture
- 返回:
An object containing one IK result per input pose. The result is the configuration that represents the desired pose with the same posture as the reference configuration, or
std::nulloptif no such solution is found.
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PathResult path(const InitialState &initialState, const PathRequest &request)
Calculates a path to one of multiple goal configurations from the initial state.
If the planner does not find a path, PathResult::error is set, and PathResult::diagnostics explains why when the request asks for it. Throws on invalid input, for example a request description that is set but empty.
- 参数:
initialState -- The initial state for the path
request -- Request for the path call
- 返回:
The path to the selected goal, or the error that prevented planning one
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void setObstacles(const std::vector<Obstacle> &obstacles)
Register objects in the environment for collision avoidance.
Obstacles are unique by name, if you set a new obstacle with the same name as an existing obstacle, the existing one will be replaced. When possible, it is preferred to set all obstacles at once with a single call, rather than iterative calls to this method which will be slower.
For colored obstacles, the alpha value is ignored. Note that adding color also has some overhead and is therefore not recommended in performance-critical code.
Throws if the vector is empty, if an obstacle has an empty name, if a point cloud obstacle has no points, or if a colored point cloud obstacle has a different number of points and colors.
- 参数:
obstacles -- Obstacles
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void clearObstacles()
Clears all registered obstacles from the planner's collision model.
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void setCarriedObject(const Mesh &carriedObject)
Updates the robot's collision model with the carried object it's now holding.
The carried object geometry is defined in the robot TCP frame.
- 参数:
carriedObject -- The mesh of the carried object to be set
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void clearCarriedObject()
Clears the carried object from the robot's collision model.
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void setReplaceableTool(const ReplaceableTool &replaceableTool)
Updates the robot's collision model with the current configuration of a modifiable or exchangeable end-effector tool.
The replaceable tool geometry is defined in the robot flange frame.
- 参数:
replaceableTool -- The replaceable tool parameters
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void clearReplaceableTool()
Clears the replaceable tool from the robot's collision model.
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void setAttachments(const std::vector<std::string> &attachments)
Sets the active attachments connected to the last link of the robot in the robot's collision model.
Multiple attachments can be added. Only attachments defined in the configuration file can be added.
- 参数:
attachments -- Specifies the name of the attachments to be set. Only attachments defined in the configuration file can be set. If an empty vector is provided, all attachments are removed.
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void setTcp(const Tcp &tcp)
Updates the current Tool Center Point of the robot.
The new TCP frame is used for path planning to goal poses, and it is the reference frame for setting carried objects.
- 参数:
tcp -- The TCP to be set
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void clipPointCloudWithBox(const BottomCenteredTransformedBox &box)
Updates the environment point cloud by removing all points inside the specified box.
This is useful when picking up objects from the scene in e.g. de-palletizing applications, where the object being picked up should no longer be considered part of the environment.
- 参数:
box -- The box volume where points should be removed. The transform is relative to the cell base frame.
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void clipPointCloudWithMesh(const Pose &transform, const Mesh &mesh)
Updates the environment point cloud by removing all points inside the specified mesh.
This is useful when picking up objects from the scene in e.g. de-palletizing applications, where the object being picked up should no longer be considered part of the environment.
- 参数:
transform -- The transformation from the cell base frame to the mesh.
mesh -- The mesh to clip with. Note: The mesh must be closed. Using a mesh that is not closed is currently undefined behavior.
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std::filesystem::path exportApiLog(const std::optional<std::filesystem::path> &outputDirectory = std::nullopt)
Exports and saves the API log to file.
- 参数:
outputDirectory -- If specified, overrides the default output directory specified in RuntimeConfiguration.yaml.
- 返回:
The path to the stored API log file.
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void replayApiLog(const std::filesystem::path &path)
Replays a previously exported API log file.
Restores the environment state (obstacles, TCP, carried object, replaceable tool, attachments) from the log, then replays all recorded API calls.
- 参数:
path -- The path to the API log file to replay.
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ConfigurationGoals computeInverseKinematics(const PoseGoals &poses, const Configuration &referenceConfiguration)
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class Visualizer
Visualizer for viewing a robot cell.
The Visualizer opens a window that displays a robot cell. The window remains open until the user closes it or the Visualizer is destroyed. The destructor will immediately close the window if it is still open.
Only one Visualizer can exist at a time. Opening a new one while another exists throws an exception.
Public Functions
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void setRobotConfiguration(const Configuration &configuration)
Sets the robot configuration displayed by the Visualizer.
This only changes what the Visualizer displays. It does not affect the state of the Planner or any path planning.
- 参数:
configuration -- The robot configuration to display
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void wait()
Blocks until the user closes the visualization window.
If the window has already been closed, this method returns immediately.
Public Static Functions
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static Visualizer viewPlanner(Planner &planner)
Opens a visualization window for a running Planner.
Use this function to visualize a planner during path planning. To visualize a cell before generation, use Visualizer::viewCell() instead. The planner must remain alive for the lifetime of the Visualizer.
- 参数:
planner -- The Planner instance to visualize
- 返回:
A Visualizer instance that manages the visualization window
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static Visualizer viewCell(const Application &application, const std::string &cellName)
Opens a visualization window for the given cell.
Use this function to visualize a cell before generation. To visualize a cell while planning, use Visualizer::viewPlanner() instead.
- 参数:
application -- The Zivid Motion Application instance
cellName -- The name of the cell to visualize
- 返回:
A Visualizer instance that manages the visualization window
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void setRobotConfiguration(const Configuration &configuration)
辅助类和结构体
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class InitialState
Represents the context required for path planning.
It is used as an argument to the Planner.path() method.
The InitialState class encapsulates the start configuration or the result of a path planning operation. It is used to provide the necessary context for planning paths to goal configurations.
Public Functions
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InitialState(const Configuration &startConfiguration)
Initializes the InitialState from a start Configuration.
This should only be utilized when a previous path result is not available. For consecutive motions, it is recommended to use the PathResult constructor.
- 参数:
startConfiguration -- The robot's start configuration for the path planning
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InitialState(const PathResult &previousResult)
Initializes the InitialState from a PathResult.
This overload is intended for consecutive robot motions. Throws if the provided PathResult has an error set.
- 参数:
previousResult -- A previous successful PathResult
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std::string toString() const
Get string representation of the InitialState.
Public Static Functions
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static InitialState FromTouch(const Configuration &startConfiguration)
Initializes the InitialState from a start Configuration in touch.
In contrast to the regular constructor, this function is used when the robot is in a touch state.
This should only be utilized when a previous path result is not available. For consecutive motions, it is recommended to use the PathResult constructor.
- 参数:
startConfiguration -- The robot's start configuration for the path planning in touch
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InitialState(const Configuration &startConfiguration)
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struct PathRequest
Request to pass to a path call.
Public Types
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enum class Type
Used to specify the motion type.
Values:
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enumerator free
For moving in free space.
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enumerator touch
For interacting with the environment, like gripping or placing an object.
A touch call will include a linear motion at the end of the trajectory to approach the object safely. If the InitialState for the path call is constructed from a touch result, then the next trajectory will also start with a linear retraction.
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enumerator free
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enum class GoalPrioritizationMethod
Used to specify the goal prioritization method.
Values:
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enumerator listOrder
Among the reachable goals, the one that appears first in the list of goals is selected.
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enumerator shortestPath
Among the reachable goals, the one that gives the shortest trajectory is selected.
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enumerator listOrder
Public Functions
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std::string toString() const
Get string representation of the PathRequest.
Public Members
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ConfigurationGoals goals
The goals to plan to.
The path will be planned according to the selected goal prioritization method.
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GoalPrioritizationMethod goalPrioritizationMethod = GoalPrioritizationMethod::shortestPath
Decides which goal is used when multiple reachable goals are provided to the path call.
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std::optional<Vector3f> retractDirection = {}
Optional retract direction when retracting from a Touch configuration.
When retracting from Touch, this field can be used to specify the desired retraction direction when clearing the surrounding objects. If not provided, the retract direction will be calculated based on the Runtime/RegionsOfInterest entry for the region of interest in the user configuration. The direction should be given in the cell base frame.
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std::optional<std::string> description = {}
Description can be used to easily distinguish between path calls in the visualizer.
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std::optional<float> maxCarriedObjectCompressionDistance = {}
Optional parameter for specifying the maximum compression distance, beyond initial contact, for the carried object along the Touch approach.
In meters. If not provided, no compression is allowed.
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bool diagnoseFailures = {false}
Ask the path call to explain a failure.
When set, a path call that fails to find a path returns the collisions and joint limit violations found for the start configuration and every goal configuration in PathResult::diagnostics. A successful path call never returns diagnostics. Finding the explanation takes additional time, so leave this off unless the explanation is used.
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enum class Type
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struct BlendRadius
Represents a blend radius for a given waypoint.
The unit can depend on the robot brand. For most off-the-shelf robots, the entry and exit are always equal and expressed in meters.
See Blending parameters for how to interpret these values for a particular robot type.
Public Functions
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std::string toString() const
Get string representation of the BlendRadius.
Public Members
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float entry
Entry is the distance from the waypoint to the point along the trajectory from the previous waypoint to the current one where safe blending can start.
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float exit
Exit is the distance from the waypoint to the point along the trajectory from the current waypoint to the next one where safe blending must end.
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std::string toString() const
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struct Waypoint
A waypoint in joint space, describing where and how the robot should move as part of a path.
Public Types
Public Members
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Configuration configuration
The joint configuration of the waypoint.
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Movement movement
Describes with what movement type the robot should move to this waypoint.
Note that this can affect how the BlendRadius should be interpreted for both this and the previous waypoint in the path.
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BlendRadius blendRadius
The blend radius for this waypoint guaranteed to give a collision-free blending motion.
Do not use a smaller non-zero blend radius than what is reported. Either use the value(s) provided or zero. Smaller non-zero values are not guaranteed to give collision-free blending motions in all scenarios.
Note that the blend radius will never be more than half the distance between consecutive waypoints.
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Configuration configuration
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class Path
An ordered sequence of waypoints describing how the robot should move.
Public Types
Public Functions
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const_iterator begin() const
Iterator to the beginning of the waypoints.
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const_iterator end() const
Iterator to the end of the waypoints.
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const_iterator cbegin() const
Iterator to the beginning of the waypoints.
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const_iterator cend() const
Iterator to the end of the waypoints.
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std::size_t size() const
The number of waypoints in the path.
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bool empty() const
Check whether the path contains no waypoints.
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const_iterator begin() const
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class PathResult
PathResult is the result of calculating a path to a set of potential goals.
It's the return value from Planner.path().
Public Types
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enum class Error
Enum describing why the planner did not find a path to any goal.
Values:
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enumerator blockedStart
The start configuration is blocked.
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enumerator blockedEnd
All the valid goal configurations are blocked.
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enumerator blockedPath
The start configuration and at least one goal configuration are not blocked, but the planner failed to connect them with a collision-free path.
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enumerator kinematicViolation
All the goal configurations are outside the robot's joint limits.
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enumerator blockedStart
Public Functions
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Path path() const
Returns the computed path, as a list of waypoints.
The path does not include the start configuration provided to the Planner.path() call. And the final waypoint in the path is the joint configuration of the selected goal, i.e.:
pathResult.finalConfiguration() == goals[pathResult.selectedGoalIdx].configuration.If there is a planning error, the list is empty.
- 返回:
A list of waypoints
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Configuration finalConfiguration() const
Returns the final configuration of the robot in the computed path.
This is the same as the selected goal and performs the same operation as calling
.path().back().configuration. This throws if the path planning failed.- 返回:
The final configuration of the path
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explicit operator bool() const
Returns true if there is no planning error, false otherwise.
Makes it convenient to do
if(pathResult) { ... }
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std::string toString() const
Get string representation of the PathResult.
Public Members
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std::optional<Error> error
The PathResult will have an error set if the planner did not find a collision-free path to any of the goals.
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std::optional<uint32_t> selectedGoalIdx
If there is a planning error, this is std::nullopt.
Otherwise, this is the index to the selected goal in the goals vector.
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Tcp tcp
The TCP when the PathResult was computed.
If there is a planning error, this value is not meaningful. Use Planner::getTcp() to get the current TCP.
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std::optional<Diagnostics::PathDiagnostics> diagnostics
The collisions and joint limit violations that explain why the path call failed.
This holds a value only when the path request had diagnoseFailures set and the path call failed. A successful path call never carries diagnostics. The findings and what they mean are documented on the types in Zivid::Motion::Diagnostics.
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enum class Error
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class Obstacle
Represents an obstacle in the robot environment, to be used with Planner::setObstacles().
The obstacle coordinates must be expressed in the cell base frame.
Public Types
Public Static Functions
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static Obstacle fromPointCloud(std::string name, PointCloud pointCloud)
Initializes an Obstacle instance from a point cloud.
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static Obstacle fromColoredPointCloud(std::string name, PointCloud pointCloud, Colors colors)
Initializes a colored Obstacle instance from a point cloud.
The number of points and colors must be the same. Planner::setObstacles() throws if they differ. Note that adding color has some overhead and is therefore not recommended in performance-critical code.
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static Obstacle fromPointCloud(std::string name, PointCloud pointCloud)
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class Mesh
A triangle mesh.
Public Functions
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Triangles toTriangles() const
Converts the mesh to a vector of triangles.
This method is effectively the inverse of Mesh::fromTriangles.
- 返回:
A vector of triangles representing the contents of the mesh.
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std::size_t triangleCount() const
Returns the number of triangles in the mesh.
- 返回:
The number of triangles.
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Mesh transform(const Pose &pose) const
Applies the given transform to the vertices of this mesh.
This method creates a copy of the mesh and leaves the original unchanged.
- 参数:
pose -- The transform to apply to the mesh vertices.
- 返回:
A copy of this mesh which is transformed by the given pose.
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Mesh bottomCenterTransform() const
Transforms this mesh such that its bottom center is at the origin.
This method can be used in conjunction with e.g. Planner::setReplaceableTool where the attachment point for the mesh is usually at the bottom. This method creates a copy of the mesh and leaves the original unchanged.
- 返回:
A copy of this mesh which is transformed such that its bottom center is at the origin.
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Mesh withColor(const ColorRGBA &color) const
Sets a uniform color on all vertices of the mesh, replacing any existing color.
This method creates a copy of the mesh and leaves the original unchanged.
- 参数:
color -- The color to apply to the mesh. The alpha component is ignored.
- 返回:
A copy of this mesh which now has the given uniform color.
Public Static Functions
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static Mesh fromTriangles(const Triangles &triangles)
Creates a Mesh from a vector of triangles.
Throws if there are no triangles, or if the triangles form invalid geometry, such as a degenerate (zero-area) triangle.
- 参数:
triangles -- The triangles to construct the mesh out of.
- 返回:
A mesh consisting of the given triangles.
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static Mesh createBox(const Vector3f &extents)
Creates a box-shaped mesh with the given extents.
The created mesh is centered on the origin, with its edges along the x, y and z axes.
Throws if any extent is not positive.
- 参数:
extents -- The dimensions of the box along x, y and z, in meters.
- 返回:
A box-shaped mesh.
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static Mesh createCylinder(float radius, float height, unsigned resolution = 64)
Creates a cylinder-shaped mesh.
The created mesh is centered on the origin, with its axis along z. The side of the cylinder is constructed from rectangular segments that approximate the circular surface at the provided angular resolution. I.e., the side of the cylinder is made up of 'resolution' rectangular segments, each covering an angle of (360 / resolution) degrees.
Throws if the radius or height is not positive, or if the resolution is less than 4.
- 参数:
radius -- The radius of the cylinder, in meters.
height -- The full height of the cylinder along z, in meters.
resolution -- The number of rectangular segments approximating the side of the cylinder. (Default: 64)
- 返回:
A cylinder-shaped mesh.
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static Mesh createSphere(float radius, unsigned resolution = 64)
Creates a sphere-shaped mesh.
The created mesh is centered on the origin. The surface of the sphere is constructed from square segments that approximate the circular surface at the provided angular resolution.
Throws if the radius is not positive, or if the resolution is less than 4.
- 参数:
radius -- The radius of the sphere, in meters.
resolution -- The number of square segments along each axis used to cover 180 degrees along the sphere, from pole to pole. (Default: 64)
- 返回:
A sphere-shaped mesh.
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Triangles toTriangles() const
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struct ToolGeometry
Geometry for a tool element, defined in the robot flange frame.
Public Members
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std::optional<Mesh> compliantSection = std::nullopt
Optional mesh representing the compliant geometry of the tool element during Touch motions.
This could represent the deformable part of a suction tool. Environment contact will be allowed for the specified geometry during Touch motions, while it will be considered rigid all other times.
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std::optional<Mesh> compliantSection = std::nullopt
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class ReplaceableTool
Replaceable tool defined in the robot flange frame.
Public Functions
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ReplaceableTool(std::string name, ToolGeometry geometry)
Constructs a replaceable tool with the given name and geometry.
- 参数:
name -- The name of the replaceable tool.
geometry -- The geometry of the replaceable tool.
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std::string toString() const
Get string representation of the ReplaceableTool.
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ReplaceableTool(std::string name, ToolGeometry geometry)
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struct Tcp
Represents a tool center point (TCP) of the robot.
It contains the transform and tool direction.
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struct ConfigurationGoal
A path-planning goal, consisting of a joint configuration.
Public Functions
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std::string toString() const
Get string representation of the Goal.
Public Members
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Configuration configuration
The configuration to attempt to plan to
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std::string toString() const
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class ConfigurationGoals
A collection of path-planning goals.
Public Functions
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ConfigurationGoals(const std::vector<Configuration> &jointConfigurations)
Initializes a ConfigurationGoals instance directly from a vector of configurations.
- 参数:
jointConfigurations -- The joint configurations
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ConfigurationGoals(const std::vector<ConfigurationGoal> &goals)
Initializes a ConfigurationGoals instance from a vector of goals.
- 参数:
goals -- The goals
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const std::vector<std::optional<ConfigurationGoal>> &goals() const
Returns the stored goals
- 返回:
Optional goals, to preserve the mapping to the input poses when calling Planner::computeInverseKinematics().
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bool noneValid() const
A utility method to check if all the joint configurations are
std::nulloptor not.
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std::string toString() const
Get a string representation of the object.
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ConfigurationGoals(const std::vector<Configuration> &jointConfigurations)
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struct PoseGoal
A goal given as a TCP pose.
Public Functions
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std::string toString() const
Get a string representation of the object.
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std::string toString() const
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class PoseGoals
A collection of pose goals.
Public Functions
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PoseGoals(const std::vector<Pose> &poses)
Initializes a PoseGoals instance directly from a vector of poses.
- 参数:
poses -- The poses
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PoseGoals(const std::vector<PoseGoal> &goals)
Initializes a PoseGoals instance from a vector of goals.
- 参数:
goals -- The goals
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std::string toString() const
Get a string representation of the object.
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PoseGoals(const std::vector<Pose> &poses)
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class Pose
Describes a rigid transform (rotation+translation), such as a robot pose.
The translation part of the transform is expressed in meters.
Public Functions
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Pose(const Matrix4x4 &transform)
Pose constructor taking a 4x4 transform.
Throws if the matrix is not a rigid transform, i.e. a rotation plus a translation.
- 参数:
transform -- Provides orientation (rotation) and location (translation) for the pose.
Public Static Functions
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static Pose fromXyzRpy(const Vector3f &translation, float roll, float pitch, float yaw)
Constructs a Pose from a translation and roll, pitch and yaw angles.
The rotation is composed as R = Rz(yaw) * Ry(pitch) * Rx(roll).
- 参数:
translation -- Translation part of the transform, in meters.
roll -- Rotation about the X axis, in radians.
pitch -- Rotation about the Y axis, in radians.
yaw -- Rotation about the Z axis, in radians.
- 返回:
Pose with the given translation and orientation.
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Pose(const Matrix4x4 &transform)
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class Matrix4x4
A fixed size 4x4 matrix of floats in row major order.
Public Types
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using ValueType = float
The type stored in the matrix.
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using Iterator = std::array<float, 16>::iterator
Iterator type for mutable access, iterating over elements in row major order.
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using ConstIterator = std::array<float, 16>::const_iterator
Iterator type for immutable access, iterating over elements in row major order.
Public Functions
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Matrix4x4() = default
Default-constructs a zero-initialized matrix.
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explicit Matrix4x4(const std::array<float, rows * cols> &data)
Constructs a Matrix4x4 from a flat array of elements in row major order.
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explicit Matrix4x4(std::initializer_list<float> values)
Constructs a Matrix4x4 from a flat initializer list of elements in row major order.
Throws if the list does not have 16 elements.
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explicit Matrix4x4(std::initializer_list<std::initializer_list<float>> values)
Constructs a Matrix4x4 from a nested initializer list.
Each inner list is a row.
Throws if there are not 4 rows of 4 elements.
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ConstIterator begin() const
Iterator to the beginning of the matrix.
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ConstIterator end() const
Iterator to the end of the matrix.
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ConstIterator cbegin() const
Iterator to the beginning of the matrix.
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ConstIterator cend() const
Iterator to the end of the matrix.
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float &at(std::size_t row, std::size_t col)
Access specified element with bounds checking.
Throws if the row or column is out of range.
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const float &at(std::size_t row, std::size_t col) const
Access specified element with bounds checking.
Throws if the row or column is out of range.
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float &operator()(std::size_t row, std::size_t col)
Access specified element without bounds checking.
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const float &operator()(std::size_t row, std::size_t col) const
Access specified element without bounds checking.
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float *data()
Pointer to the underlying row major data.
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const float *data() const
Pointer to the underlying row major data.
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using ValueType = float
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enum class Profile
Selects which of a cell's two sets of planning data to generate and plan with.
Each profile has its own generation settings in the cell configuration and its own generated data, so both can be generated for the same cell.
Values:
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enumerator testing
Planning data for development and testing, typically configured to be coarser and quick to generate.
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enumerator production
Planning data for deployment, typically configured to be finer and slower to generate.
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enumerator testing
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struct PlannerSettings
Settings to instantiate the Planner.
Public Functions
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PlannerSettings(std::string cellName_, Profile profile_)
Initializes the settings for a cell and profile.
- 参数:
cellName_ -- The name of the cell
profile_ -- The profile to plan with
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std::string toString() const
Get string representation of the PlannerSettings.
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PlannerSettings(std::string cellName_, Profile profile_)
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struct BottomCenteredTransformedBox
Represents a box whose transform points to the box's bottom center.
Public Functions
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std::string toString() const
Get string representation of the BottomCenteredTransformedBox.
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std::string toString() const
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struct ColorRGBA
Color with red, green, blue and alpha channels.
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struct Vector3f
Vector of three coordinates as float, expressed in meters.
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class Configuration
Joint angles of the robot, expressed in radians.
Public Types
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using value_type = float
The type stored in the configuration.
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using const_iterator = Storage::const_iterator
Iterator type for immutable access to the joint angles.
Public Functions
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Configuration() = default
Default-constructs an empty configuration.
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explicit Configuration(std::initializer_list<float> values)
Constructs a Configuration from a list of joint angles.
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template<typename Iterator>
inline Configuration(const Iterator beginIt, const Iterator endIt) Constructs a Configuration from the joint angles in the range [beginIt, endIt).
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const_iterator begin() const
Iterator to the beginning of the joint angles.
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const_iterator end() const
Iterator to the end of the joint angles.
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const_iterator cbegin() const
Iterator to the beginning of the joint angles.
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const_iterator cend() const
Iterator to the end of the joint angles.
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std::size_t size() const
The number of joint angles.
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const float &operator[](std::size_t index) const
Access the specified joint angle.
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const float *data() const
Pointer to the underlying joint angle data.
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bool operator==(const Configuration &other) const
Check if two configurations have equal joint angles.
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std::string toString() const
Get string representation of the Configuration.
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using value_type = float
Diagnostics
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struct PathDiagnostics
The collisions and joint limit violations found for a failed path call.
The start configuration and every goal configuration are checked, regardless of which error the path call reported. A blockedPath failure concerns the space between configurations, so it typically yields no findings.
Public Functions
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std::string toString() const
Get string representation of the PathDiagnostics.
Public Members
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ConfigurationDiagnostics start
The diagnostics for the start configuration.
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std::vector<std::optional<ConfigurationDiagnostics>> goals
The diagnostics for each requested goal, index-aligned with the request, including goals path() did not plan to.
A goal that had no configuration to check, because no inverse kinematics solution was found for its pose, holds no value.
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std::string toString() const
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struct ConfigurationDiagnostics
The collisions and joint limit violations found for a single configuration.
Public Members
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std::vector<ObstacleCollision> obstacleCollisions
All collisions between the robot and an obstacle found for the configuration.
Empty for a configuration outside its joint limits, which is never collision-checked.
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std::optional<SelfCollision> selfCollision
The self-collision found for the configuration, if the robot collided with itself.
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std::vector<JointLimitViolation> jointLimitViolations
All joint limit violations found for the configuration.
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std::vector<ObstacleCollision> obstacleCollisions
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struct ObstacleCollision
Describes a single collision between the robot and an obstacle.
Public Members
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std::vector<RobotPart> robotParts
The colliding robot parts, such as links, a carried object, replaceable tool or attachment.
Empty when the overlap cannot be attributed to a specific part.
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ObstacleType obstacleType = {}
The kind of object the robot collided with.
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std::string obstacleName
The name of the obstacle.
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std::vector<RobotPart> robotParts
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enum class ObstacleType
The kind of object the robot collided with.
Values:
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enumerator cellMesh
A static mesh belonging to the cell.
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enumerator userMesh
A user-provided mesh obstacle.
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enumerator userPointCloud
A user-provided point cloud obstacle.
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enumerator cellMesh
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struct SelfCollision
Describes the robot colliding with itself.
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struct JointLimitViolation
Describes a single joint that is outside its limits.
The values are in the same unit as Configuration.
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struct Link
A robot link.
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struct Attachment
An attachment mounted on the last link.
Public Members
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uint32_t index = {}
The index of the attachment, in the order the attachments were configured.
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uint32_t index = {}
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struct CarriedObject
The carried object held at the TCP.
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struct ReplaceableTool
The replaceable tool, reported as one part.
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using RobotPart = std::variant<Link, Attachment, CarriedObject, ReplaceableTool>
A single robot part involved in a collision.
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std::string toString(const RobotPart &robotPart)
Get string representation of a robot part, such as "link_3" or "carried object".
类型定义
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using ProgressCallback = std::function<void(double, const std::string&)>
A progress callback function type.
generate() calls it periodically during each stage. The percentage is the progress of the current stage.
- Param progressPercentage:
The progress completion percentage (0 - 100%).
- Param updateStageDescription:
A textual description of the progress stage.
自由函数
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void generate(const Application &application, const PlannerSettings &plannerSettings, const ProgressCallback &progressCallback = {})
Generate the planning data for a cell and profile.
A Planner needs this data. Generate again after changing the cell's configuration files: creating a Planner from data generated for an earlier version of the configuration throws.
Throws if the cell does not exist.
- 参数:
application -- Motion application
plannerSettings -- Settings for generation
progressCallback -- An optional progress callback function
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void packageCell(const Application &application, const std::string &cellName, const std::filesystem::path &outputPath, const std::vector<Profile> &includeGeneratedData)
Packages a cell into a zip archive.
This function collects all files required to run the motion planner with the specified cell and packages them into a zip file at the given output path.
Throws if the specified cell does not exist or its dependencies cannot be loaded, if the output file already exists, or if the parent folder of the output path does not exist.
- 参数:
application -- Motion application
cellName -- The name of the cell to package.
outputPath -- The destination path for the generated zip archive, including the filename with ".zip" extension.
includeGeneratedData -- What generated data to include.
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std::filesystem::path packageApiLog(const Application &application, const std::filesystem::path &apiLogPath)
Packages an API log and the data required to replay it into a zip archive.
This function collects the API log and the files required to replay it, and packages them into a zip file next to the API log, with the same name but the
.zipextension instead of.json. This archive is all Zivid needs to reproduce the logged session.- 参数:
application -- Motion application
apiLogPath -- The path to the API log
- 返回:
The path to the created zip archive.
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void installPackage(const Application &application, const std::filesystem::path &packagePath)
Installs a packaged cell to be used by the motion planner.
This function extracts the contents of a packaged cell (zip archive) and installs them into the appropriate directory so they can be used by the motion planner.
- 参数:
application -- Motion application
packagePath -- The path to the cell package (zip archive) to install.
实验性
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Mesh loadMesh(const std::string &filename)
Loads a mesh from a file on disk.
This is an experimental feature. It may be changed or removed without notice in a future release.
- 参数:
filename -- Path to the mesh file. A "package://" prefixed path is resolved against the Motion package directory; any other path is used as-is.
- 返回:
The mesh loaded from the file.
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Mesh merge(const MeshReferences &meshes)
Merges several meshes into a single mesh.
This function creates a new Mesh instance and leaves the input meshes unchanged.
This is an experimental feature. It may be changed or removed without notice in a future release.
- 参数:
meshes -- A vector of references to the meshes to merge.
- 返回:
The merged Mesh instance.
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std::vector<bool> checkMeshCollisions(const Planner &planner, const std::vector<Configuration> &configurations, unsigned numIgnoredLinksFromTip)
Checks if the robot is in collision with any environment meshes for the given joint configurations
This is an experimental feature. It may be changed or removed without notice in a future release.
Also checks for self-collision. Any environment point clouds are ignored.
Use numIgnoredLinksFromTip to disregard links of the robot from collision checking, counting from the tip of your robot model. Use the value zero to include the whole robot model. Note that if you have a tool modeled as part of the last link, then setting this to 1 ignores the tool as well. Any carried objects or replaceable tools are also ignored when numIgnoredLinksFromTip > 0.
Also note that including multiple configurations in the same call is faster than iterative calls to this function.
- 参数:
planner -- The planner holding the robot model and environment
configurations -- Configurations
numIgnoredLinksFromTip -- Number of ignored links from tip
- 返回:
One bool per input configuration. True if the configuration is in collision, False otherwise.