Flexible Collision Library
FCL is a library for performing three types of proximity queries on a pair of geometric models composed of triangles.
FCL has the following features
Before compiling FCL, please make sure Eigen and libccd (for collision checking between convex objects and is available here https://github.com/danfis/libccd) are installed. For libccd, make sure to compile from github version instead of the zip file from the webpage, because one bug fixing is not included in the zipped version.
Some optional libraries need to be installed for some optional capability of FCL. For octree collision, please install the octomap library from https://octomap.github.io/.
CMakeLists.txt is used to generate makefiles in Linux or Visual studio projects in windows. In command line, run
mkdir build
cd build
cmake ..
Next, in linux, use make to compile the code.
In windows, there will generate a visual studio project and then you can compile the code.
Before starting the proximity computation, we need first to set the geometry and transform for the objects involving in computation. The geometry of an object is represented as a mesh soup, which can be set as follows:
// set mesh triangles and vertice indices
std::vector<Vector3f> vertices;
std::vector<Triangle> triangles;
// code to set the vertices and triangles
...
// BVHModel is a template class for mesh geometry, for default OBBRSS template
// is used
typedef BVHModel<OBBRSSf> Model;
std::shared_ptr<Model> geom = std::make_shared<Model>();
// add the mesh data into the BVHModel structure
geom->beginModel();
geom->addSubModel(vertices, triangles);
geom->endModel();
The transform of an object includes the rotation and translation:
// R and T are the rotation matrix and translation vector
Matrix3f R;
Vector3f T;
// code for setting R and T
...
// transform is configured according to R and T
Transform3f pose = Transform3f::Identity();
pose.linear() = R;
pose.translation() = T;
Given the geometry and the transform, we can also combine them together to obtain a collision object instance and here is an example:
//geom and tf are the geometry and the transform of the object
std::shared_ptr<BVHModel<OBBRSSf>> geom = ...
Transform3f tf = ...
//Combine them together
CollisionObjectf* obj = new CollisionObjectf(geom, tf);
Once the objects are set, we can perform the proximity computation between them. All the proximity queries in FCL follow a common pipeline: first, set the query request data structure and then run the query function by using request as the input. The result is returned in a query result data structure. For example, for collision checking, we first set the CollisionRequest data structure, and then run the collision function:
// Given two objects o1 and o2
CollisionObjectf* o1 = ...
CollisionObjectf* o2 = ...
// set the collision request structure, here we just use the default setting
CollisionRequest request;
// result will be returned via the collision result structure
CollisionResult result;
// perform collision test
collide(o1, o2, request, result);
By setting the collision request, the user can easily choose whether to return contact information (which is slower) or just return binary collision results (which is faster).
For distance computation, the pipeline is almost the same:
// Given two objects o1 and o2
CollisionObjectf* o1 = ...
CollisionObjectf* o2 = ...
// set the distance request structure, here we just use the default setting
DistanceRequest request;
// result will be returned via the collision result structure
DistanceResult result;
// perform distance test
distance(o1, o2, request, result);
For continuous collision, FCL requires the goal transform to be provided (the initial transform is included in the collision object data structure). Beside that, the pipeline is almost the same as distance/collision:
// Given two objects o1 and o2
CollisionObjectf* o1 = ...
CollisionObjectf* o2 = ...
// The goal transforms for o1 and o2
Transform3f tf_goal_o1 = ...
Transform3f tf_goal_o2 = ...
// set the continuous collision request structure, here we just use the default
// setting
ContinuousCollisionRequest request;
// result will be returned via the continuous collision result structure
ContinuousCollisionResult result;
// perform continuous collision test
continuousCollide(o1, tf_goal_o1, o2, tf_goal_o2, request, result);
FCL supports broadphase collision/distance between two groups of objects and can avoid the n square complexity. For collision, broadphase algorithm can return all the collision pairs. For distance, it can return the pair with the minimum distance. FCL uses a CollisionManager structure to manage all the objects involving the collision or distance operations.
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For more examples, please refer to the test folder:
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