c57a588ab5
PiperOrigin-RevId: 515515875 Change-Id: I743a0409eb9b867249a90d5c1cb4d77bacade4dc
491 lines
24 KiB
ReStructuredText
491 lines
24 KiB
ReStructuredText
=======
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Globals
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=======
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Global variable and constant definitions can be classified as:
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- Callbacks:
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- :ref:`glError`.
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- :ref:`glMemory`.
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- :ref:`glPhysics`.
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- The :ref:`collision table<glCollision>` containing narrow-phase collision functions.
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- :ref:`String constants<glString>`.
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- :ref:`Numeric constants<glNumeric>`.
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- :ref:`X Macros<tyXMacro>`.
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.. _glError:
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Error callbacks
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^^^^^^^^^^^^^^^
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All user callbacks (i.e., global function pointers whose name starts with 'mjcb') are initially set to NULL, which
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disables them and allows the default processing to take place. To install a callback, simply set the corresponding
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global pointer to a user function of the correct type. Keep in mind that these are global and not model-specific. So if
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you are simulating multiple models in parallel, they use the same set of callbacks.
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.. _mju_user_error:
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mju_user_error
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~~~~~~~~~~~~~~
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This is called from within the main error function :ref:`mju_error`. When installed, this function overrides the default
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error processing. Once it prints error messages (or whatever else the user wants to do), it must **exit** the program.
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MuJoCo is written with the assumption that mju_error will not return. If it does, the behavior of the software is
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undefined.
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.. code-block:: C
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extern void (*mju_user_error)(const char*);
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.. _mju_user_warning:
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mju_user_warning
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~~~~~~~~~~~~~~~~
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This is called from within the main warning function :ref:`mju_warning`. It is similar to the error handler, but instead
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it must return without exiting the program.
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.. code-block:: C
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extern void (*mju_user_warning)(const char*);
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.. _glMemory:
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Memory callbacks
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^^^^^^^^^^^^^^^^
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The purpose of the memory callbacks is to allow the user to install custom memory allocation and deallocation
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mechanisms. One example where we have found this to be useful is a MATLAB wrapper for MuJoCo, where mex files are
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expected to use MATLAB's memory mechanism for permanent memory allocation.
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.. _mju_user_malloc:
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mju_user_malloc
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~~~~~~~~~~~~~~~
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If this is installed, the MuJoCo runtime will use it to allocate all heap memory it needs (instead of using aligned
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malloc). The user allocator must allocate memory aligned on 8-byte boundaries. Note that the parser and compiler are
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written in C++ and sometimes allocate memory with the "new" operator which bypasses this mechanism.
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.. code-block:: C
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extern void* (*mju_user_malloc)(size_t);
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.. _mju_user_free:
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mju_user_free
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~~~~~~~~~~~~~
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If this is installed, MuJoCo will free any heap memory it allocated by calling this function (instead of using aligned
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free).
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.. code-block:: C
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extern void (*mju_user_free)(void*);
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.. _glPhysics:
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Physics callbacks
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^^^^^^^^^^^^^^^^^
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The physics callbacks are the main mechanism for modifying the behavior of the simulator, beyond setting various
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options. The options control the operation of the default pipeline, while callbacks extend the pipeline at
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well-defined places. This enables advanced users to implement many interesting functions which we have not thought of,
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while still taking advantage of the default pipeline. As with all other callbacks, there is no automated error
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checking - instead we assume that the authors of callback functions know what they are doing.
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Custom physics callbacks will often need parameters that are not standard in MJCF. This is largely why we have
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provided custom fields as well as user data arrays in MJCF. The idea is to "instrument" the MJCF model by entering the
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necessary user parameters, and then write callbacks that look for those parameters and perform the corresponding
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computations. We strongly encourage users to write callbacks that check the model for the presence of user parameters
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before accessing them - so that when a regular model is loaded, the callback disables itself automatically instead of
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causing the software to crash.
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.. _mjcb_passive:
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mjcb_passive
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~~~~~~~~~~~~
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This is used to implement a custom passive force in joint space; if the force is more naturally defined in Cartesian
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space, use the end-effector Jacobian to map it to joint space. By "passive" we do not mean a force that does no positive
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work (as in physics), but simply a force that depends only on position and velocity but not on control. There are
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standard passive forces in MuJoCo arising from springs, dampers, viscosity and density of the medium. They are computed
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in ``mjData.qfrc_passive`` before mjcb_passive is called. The user callback should add to this vector instead of
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overwriting it (otherwise the standard passive forces will be lost).
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.. code-block:: C
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extern mjfGeneric mjcb_passive;
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.. _mjcb_control:
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mjcb_control
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~~~~~~~~~~~~
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This is the most commonly used callback. It implements a control law, by writing in the vector of controls
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``mjData.ctrl``. It can also write in ``mjData.qfrc_applied`` and ``mjData.xfrc_applied``. The values written in these
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vectors can depend on position, velocity and all other quantities derived from them, but cannot depend on contact forces
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and other quantities that are computed after the control is specified. If the callback accesses the latter fields, their
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values do not correspond to the current time step.
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The control callback is called from within :ref:`mj_forward` and :ref:`mj_step`, just before the controls and applied
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forces are needed. When using the RK integrator, it will be called 4 times per step. The alternative way of specifying
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controls and applied forces is to set them before ``mj_step``, or use ``mj_step1`` and ``mj_step2``. The latter approach
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allows setting the controls after the position and velocity computations have been performed by ``mj_step1``, allowing
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these results to be utilized in computing the control (similar to using mjcb_control). However, the only way to change
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the controls between sub-steps of the RK integrator is to define the control callback.
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.. code-block:: C
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extern mjfGeneric mjcb_control;
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.. _mjcb_contactfilter:
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mjcb_contactfilter
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~~~~~~~~~~~~~~~~~~
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This callback can be used to replace MuJoCo's default collision filtering. When installed, this function is called for
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each pair of geoms that have passed the broad-phase test (or are predefined geom pairs in the MJCF) and are candidates
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for near-phase collision. The default processing uses the contype and conaffinity masks, the parent-child filter and
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some other considerations related to welded bodies to decide if collision should be allowed. This callback replaces the
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default processing, but keep in mind that the entire mechanism is being replaced. So for example if you still want to
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take advantage of contype/conaffinity, you have to re-implement it in the callback.
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.. code-block:: C
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extern mjfConFilt mjcb_contactfilter;
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.. _mjcb_sensor:
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mjcb_sensor
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~~~~~~~~~~~
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This callback populates fields of ``mjData.sensordata`` corresponding to user-defined sensors. It is called if it is
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installed and the model contains user-defined sensors. It is called once per compute stage (mjSTAGE_POS, mjSTAGE_VEL,
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mjSTAGE_ACC) and must fill in all user sensor values for that stage. The user-defined sensors have dimensionality and
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data types defined in the MJCF model which must be respected by the callback.
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.. code-block:: C
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extern mjfSensor mjcb_sensor;
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.. _mjcb_time:
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mjcb_time
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~~~~~~~~~
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Installing this callback enables the built-in profiler, and keeps timing statistics in ``mjData.timer``. The return type
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is mjtNum, while the time units are up to the user. :ref:`simulate.cc <saSimulate>` assumes the unit is 1 millisecond.
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In order to be useful, the callback should use high-resolution timers with at least microsecond precision. This is
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because the computations being timed are very fast.
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.. code-block:: C
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extern mjfTime mjcb_time;
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.. _mjcb_act_dyn:
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mjcb_act_dyn
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~~~~~~~~~~~~
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This callback implements custom activation dynamics: it must return the value of ``mjData.act_dot`` for the specified
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actuator. This is the time-derivative of the activation state vector ``mjData.act``. It is called for model actuators
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with user dynamics (mjDYN_USER). If such actuators exist in the model but the callback is not installed, their
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time-derivative is set to 0.
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.. code-block:: C
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extern mjfAct mjcb_act_dyn;
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.. _mjcb_act_gain:
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mjcb_act_gain
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~~~~~~~~~~~~~
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This callback implements custom actuator gains: it must return the gain for the specified actuator with
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``mjModel.actuator_gaintype`` set to mjGAIN_USER. If such actuators exist in the model and this callback is not
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installed, their gains are set to 1.
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.. code-block:: C
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extern mjfAct mjcb_act_gain;
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.. _mjcb_act_bias:
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mjcb_act_bias
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~~~~~~~~~~~~~
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This callback implements custom actuator biases: it must return the bias for the specified actuator with
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``mjModel.actuator_biastype`` set to mjBIAS_USER. If such actuators exist in the model and this callback is not
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installed, their biases are set to 0.
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.. code-block:: C
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extern mjfAct mjcb_act_bias;
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.. _glCollision:
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Collision table
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^^^^^^^^^^^^^^^
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.. _mjCOLLISIONFUNC:
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mjCOLLISIONFUNC
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~~~~~~~~~~~~~~~
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Table of pairwise collision functions indexed by geom types. Only the upper-right triangle is used. The user can replace
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these function pointers with custom routines, replacing MuJoCo's collision mechanism. If a given entry is NULL, the
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corresponding pair of geom types cannot be collided. Note that these functions apply only to near-phase collisions. The
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broadphase mechanism is built-in and cannot be modified.
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.. code-block:: C
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extern mjfCollision mjCOLLISIONFUNC[mjNGEOMTYPES][mjNGEOMTYPES];
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.. _glString:
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String constants
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^^^^^^^^^^^^^^^^
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The string constants described here are provided for user convenience. They correspond to the English names of lists of
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options, and can be displayed in menus or dialogs in a GUI. The code sample :ref:`simulate.cc <saSimulate>` illustrates
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how they can be used.
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.. _mjDISABLESTRING:
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mjDISABLESTRING
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~~~~~~~~~~~~~~~
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Names of the disable bits defined by :ref:`mjtDisableBit`.
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.. code-block:: C
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extern const char* mjDISABLESTRING[mjNDISABLE];
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.. _mjENABLESTRING:
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mjENABLESTRING
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~~~~~~~~~~~~~~
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Names of the enable bits defined by :ref:`mjtEnableBit`.
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.. code-block:: C
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extern const char* mjENABLESTRING[mjNENABLE];
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.. _mjTIMERSTRING:
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mjTIMERSTRING
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~~~~~~~~~~~~~
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Names of the mjData timers defined by :ref:`mjtTimer`.
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.. code-block:: C
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extern const char* mjTIMERSTRING[mjNTIMER];
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.. _mjLABELSTRING:
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mjLABELSTRING
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~~~~~~~~~~~~~
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Names of the visual labeling modes defined by :ref:`mjtLabel`.
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.. code-block:: C
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extern const char* mjLABELSTRING[mjNLABEL];
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.. _mjFRAMESTRING:
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mjFRAMESTRING
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~~~~~~~~~~~~~
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Names of the frame visualization modes defined by :ref:`mjtFrame`.
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.. code-block:: C
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extern const char* mjFRAMESTRING[mjNFRAME];
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.. _mjVISSTRING:
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mjVISSTRING
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~~~~~~~~~~~
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Descriptions of the abstract visualization flags defined by :ref:`mjtVisFlag`. For each flag there are three strings,
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with the following meaning:
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[0]: flag name;
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[1]: the string "0" or "1" indicating if the flag is on or off by default, as set by
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:ref:`mjv_defaultOption`;
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[2]: one-character string with a suggested keyboard shortcut, used in :ref:`simulate.cc <saSimulate>`.
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.. code-block:: C
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extern const char* mjVISSTRING[mjNVISFLAG][3];
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.. _mjRNDSTRING:
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mjRNDSTRING
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~~~~~~~~~~~
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Descriptions of the OpenGL rendering flags defined by :ref:`mjtRndFlag`. The three strings for each flag have the same
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format as above, except the defaults here are set by :ref:`mjv_makeScene`.
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.. code-block:: C
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extern const char* mjRNDSTRING[mjNRNDFLAG][3];
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.. _glNumeric:
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Numeric constants
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^^^^^^^^^^^^^^^^^
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Many integer constants were already documented in the primitive types above. In addition, the header files define
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several other constants documented here. Unless indicated otherwise, each entry in the table below is defined in
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mjmodel.h. Note that some extended key codes are defined in mjui.h which are not shown in the table below. Their names
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are in the format mjKEY_XXX. They correspond to GLFW key codes.
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+------------------+--------+----------------------------------------------------------------------------------------+
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| symbol | value | description |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMINVAL | 1E-15 | The minimal value allowed in any denominator, and in general any mathematical |
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| | | operation where 0 is not allowed. In almost all cases, MuJoCo silently clamps smaller |
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| | | values to mjMINVAL. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjPI | pi | The value of pi. This is used in various trigonometric functions, and also for |
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| | | conversion from degrees to radians in the compiler. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXVAL | 1E+10 | The maximal absolute value allowed in mjData.qpos, mjData.qvel, mjData.qacc. The API |
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| | | functions :ref:`mj_checkPos`, :ref:`mj_checkVel`, :ref:`mj_checkAcc` use this constant |
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| | | to detect instability. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMINMU | 1E-5 | The minimal value allowed in any friction coefficient. Recall that MuJoCo's contact |
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| | | model allows different number of friction dimensions to be included, as specified by |
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| | | the :at:`condim` attribute. If however a given friction dimension is included, its |
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| | | friction is not allowed to be smaller than this constant. Smaller values are |
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| | | automatically clamped to this constant. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMINIMP | 0.0001 | The minimal value allowed in any constraint impedance. Smaller values are |
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| | | automatically clamped to this constant. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXIMP | 0.9999 | The maximal value allowed in any constraint impedance. Larger values are automatically |
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| | | clamped to this constant. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXCONPAIR | 50 | The maximal number of contacts points that can be generated per geom pair. MuJoCo's |
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| | | built-in collision functions respect this limit, and user-defined functions should |
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| | | also respect it. Such functions are called with a return buffer of size mjMAXCONPAIR; |
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| | | attempting to write more contacts in the buffer can cause unpredictable behavior. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXVFS | 200 | The maximal number of files in the virtual file system. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXVFSNAME | 100 | The maximal number of characters in the name of each file in the virtual file system. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNEQDATA | 11 | The maximal number of real-valued parameters used to define each equality constraint. |
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| | | Determines the size of mjModel.eq_data. This and the next five constants correspond to |
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| | | array sizes which we have not fully settled. There may be reasons to increase them in |
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| | | the future, so as to accommodate extra parameters needed for more elaborate |
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| | | computations. This is why we maintain them as symbolic constants that can be easily |
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| | | changed, as opposed to the array size for representing quaternions for example - which |
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| | | has no reason to change. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNDYN | 10 | The maximal number of real-valued parameters used to define the activation dynamics of |
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| | | each actuator. Determines the size of mjModel.actuator_dynprm. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNGAIN | 10 | The maximal number of real-valued parameters used to define the gain of each actuator. |
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| | | Determines the size of mjModel.actuator_gainprm. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNBIAS | 10 | The maximal number of real-valued parameters used to define the bias of each actuator. |
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| | | Determines the size of mjModel.actuator_biasprm. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNFLUID | 12 | The number of per-geom fluid interaction parameters required by the ellipsoidal model. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNREF | 2 | The maximal number of real-valued parameters used to define the reference acceleration |
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| | | of each scalar constraint. Determines the size of all mjModel.XXX_solref fields. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNIMP | 5 | The maximal number of real-valued parameters used to define the impedance of each |
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| | | scalar constraint. Determines the size of all mjModel.XXX_solimp fields. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNSOLVER | 1000 | The size of the preallocated array ``mjData.solver``. This is used to store diagnostic |
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| | | information about each iteration of the constraint solver. The actual number of |
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| | | iterations is given by ``mjData.solver_iter``. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNGROUP | 6 | The number of geom, site, joint, tendon and actuator groups whose rendering can be |
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| | | enabled and disabled via mjvOption. Defined in mjvisualize.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXOVERLAY | 500 | The maximal number of characters in overlay text for rendering. Defined in |
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| | | mjvisualize.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXLINE | 100 | The maximal number of lines per 2D figure (mjvFigure). Defined in mjvisualize.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXLINEPNT | 1000 | The maximal number of points in each line in a 2D figure. Note that the buffer |
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| | | mjvFigure.linepnt has length 2*mjMAXLINEPNT because each point has X and Y |
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| | | coordinates. Defined in mjvisualize.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXPLANEGRID | 200 | The maximal number of grid lines in each dimension for rendering planes. Defined in |
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| | | mjvisualize.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjNAUX | 10 | Number of auxiliary buffers that can be allocated in mjrContext. Defined in |
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| | | mjrender.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXTEXTURE | 1000 | Maximum number of textures allowed. Defined in mjrender.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUISECT | 10 | Maximum number of UI sections. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUIITEM | 80 | Maximum number of items per UI section. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUITEXT | 500 | Maximum number of characters in UI fields 'edittext' and 'other'. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUINAME | 40 | Maximum number of characters in any UI name. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUIMULTI | 20 | Maximum number of radio and select items in UI group. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUIEDIT | 5 | Maximum number of elements in UI edit list. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjMAXUIRECT | 15 | Maximum number of UI rectangles. Defined in mjui.h. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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| mjVERSION_HEADER | 211 | The version of the MuJoCo headers; changes with every release. This is an integer |
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| | | equal to 100x the software version, so 210 corresponds to version 2.1. Defined in |
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| | | mujoco.h. The API function :ref:`mj_version` returns a number with the same meaning |
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| | | but for the compiled library. |
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+------------------+--------+----------------------------------------------------------------------------------------+
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.. _tyXMacro:
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X Macros
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^^^^^^^^
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The X Macros are not needed in most user projects. They are used internally to allocate the model, and are also
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available for users who know how to use this programming technique. See the header file `mjxmacro.h
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<https://github.com/deepmind/mujoco/blob/main/include/mujoco/mjxmacro.h>`_ for the actual definitions. They are
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particularly useful in writing MuJoCo wrappers for scripting languages, where dynamic structures matching the MuJoCo
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data structures need to be constructed programmatically.
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