ObjectRecognitionGuiAction.h
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00001 /* Auto-generated by genmsg_cpp for file /home/rosbuild/hudson/workspace/doc-groovy-pr2_object_manipulation/doc_stacks/2014-10-06_11-30-38.833395/pr2_object_manipulation/perception/interactive_perception_msgs/msg/ObjectRecognitionGuiAction.msg */
00002 #ifndef INTERACTIVE_PERCEPTION_MSGS_MESSAGE_OBJECTRECOGNITIONGUIACTION_H
00003 #define INTERACTIVE_PERCEPTION_MSGS_MESSAGE_OBJECTRECOGNITIONGUIACTION_H
00004 #include <string>
00005 #include <vector>
00006 #include <map>
00007 #include <ostream>
00008 #include "ros/serialization.h"
00009 #include "ros/builtin_message_traits.h"
00010 #include "ros/message_operations.h"
00011 #include "ros/time.h"
00012 
00013 #include "ros/macros.h"
00014 
00015 #include "ros/assert.h"
00016 
00017 #include "interactive_perception_msgs/ObjectRecognitionGuiActionGoal.h"
00018 #include "interactive_perception_msgs/ObjectRecognitionGuiActionResult.h"
00019 #include "interactive_perception_msgs/ObjectRecognitionGuiActionFeedback.h"
00020 
00021 namespace interactive_perception_msgs
00022 {
00023 template <class ContainerAllocator>
00024 struct ObjectRecognitionGuiAction_ {
00025   typedef ObjectRecognitionGuiAction_<ContainerAllocator> Type;
00026 
00027   ObjectRecognitionGuiAction_()
00028   : action_goal()
00029   , action_result()
00030   , action_feedback()
00031   {
00032   }
00033 
00034   ObjectRecognitionGuiAction_(const ContainerAllocator& _alloc)
00035   : action_goal(_alloc)
00036   , action_result(_alloc)
00037   , action_feedback(_alloc)
00038   {
00039   }
00040 
00041   typedef  ::interactive_perception_msgs::ObjectRecognitionGuiActionGoal_<ContainerAllocator>  _action_goal_type;
00042    ::interactive_perception_msgs::ObjectRecognitionGuiActionGoal_<ContainerAllocator>  action_goal;
00043 
00044   typedef  ::interactive_perception_msgs::ObjectRecognitionGuiActionResult_<ContainerAllocator>  _action_result_type;
00045    ::interactive_perception_msgs::ObjectRecognitionGuiActionResult_<ContainerAllocator>  action_result;
00046 
00047   typedef  ::interactive_perception_msgs::ObjectRecognitionGuiActionFeedback_<ContainerAllocator>  _action_feedback_type;
00048    ::interactive_perception_msgs::ObjectRecognitionGuiActionFeedback_<ContainerAllocator>  action_feedback;
00049 
00050 
00051   typedef boost::shared_ptr< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> > Ptr;
00052   typedef boost::shared_ptr< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator>  const> ConstPtr;
00053   boost::shared_ptr<std::map<std::string, std::string> > __connection_header;
00054 }; // struct ObjectRecognitionGuiAction
00055 typedef  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<std::allocator<void> > ObjectRecognitionGuiAction;
00056 
00057 typedef boost::shared_ptr< ::interactive_perception_msgs::ObjectRecognitionGuiAction> ObjectRecognitionGuiActionPtr;
00058 typedef boost::shared_ptr< ::interactive_perception_msgs::ObjectRecognitionGuiAction const> ObjectRecognitionGuiActionConstPtr;
00059 
00060 
00061 template<typename ContainerAllocator>
00062 std::ostream& operator<<(std::ostream& s, const  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> & v)
00063 {
00064   ros::message_operations::Printer< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> >::stream(s, "", v);
00065   return s;}
00066 
00067 } // namespace interactive_perception_msgs
00068 
00069 namespace ros
00070 {
00071 namespace message_traits
00072 {
00073 template<class ContainerAllocator> struct IsMessage< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> > : public TrueType {};
00074 template<class ContainerAllocator> struct IsMessage< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator>  const> : public TrueType {};
00075 template<class ContainerAllocator>
00076 struct MD5Sum< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> > {
00077   static const char* value() 
00078   {
00079     return "47f7f67cd27eb64111c1ce53f5ab94a7";
00080   }
00081 
00082   static const char* value(const  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> &) { return value(); } 
00083   static const uint64_t static_value1 = 0x47f7f67cd27eb641ULL;
00084   static const uint64_t static_value2 = 0x11c1ce53f5ab94a7ULL;
00085 };
00086 
00087 template<class ContainerAllocator>
00088 struct DataType< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> > {
00089   static const char* value() 
00090   {
00091     return "interactive_perception_msgs/ObjectRecognitionGuiAction";
00092   }
00093 
00094   static const char* value(const  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> &) { return value(); } 
00095 };
00096 
00097 template<class ContainerAllocator>
00098 struct Definition< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> > {
00099   static const char* value() 
00100   {
00101     return "# ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00102 \n\
00103 ObjectRecognitionGuiActionGoal action_goal\n\
00104 ObjectRecognitionGuiActionResult action_result\n\
00105 ObjectRecognitionGuiActionFeedback action_feedback\n\
00106 \n\
00107 ================================================================================\n\
00108 MSG: interactive_perception_msgs/ObjectRecognitionGuiActionGoal\n\
00109 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00110 \n\
00111 Header header\n\
00112 actionlib_msgs/GoalID goal_id\n\
00113 ObjectRecognitionGuiGoal goal\n\
00114 \n\
00115 ================================================================================\n\
00116 MSG: std_msgs/Header\n\
00117 # Standard metadata for higher-level stamped data types.\n\
00118 # This is generally used to communicate timestamped data \n\
00119 # in a particular coordinate frame.\n\
00120 # \n\
00121 # sequence ID: consecutively increasing ID \n\
00122 uint32 seq\n\
00123 #Two-integer timestamp that is expressed as:\n\
00124 # * stamp.secs: seconds (stamp_secs) since epoch\n\
00125 # * stamp.nsecs: nanoseconds since stamp_secs\n\
00126 # time-handling sugar is provided by the client library\n\
00127 time stamp\n\
00128 #Frame this data is associated with\n\
00129 # 0: no frame\n\
00130 # 1: global frame\n\
00131 string frame_id\n\
00132 \n\
00133 ================================================================================\n\
00134 MSG: actionlib_msgs/GoalID\n\
00135 # The stamp should store the time at which this goal was requested.\n\
00136 # It is used by an action server when it tries to preempt all\n\
00137 # goals that were requested before a certain time\n\
00138 time stamp\n\
00139 \n\
00140 # The id provides a way to associate feedback and\n\
00141 # result message with specific goal requests. The id\n\
00142 # specified must be unique.\n\
00143 string id\n\
00144 \n\
00145 \n\
00146 ================================================================================\n\
00147 MSG: interactive_perception_msgs/ObjectRecognitionGuiGoal\n\
00148 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00149 \n\
00150 #the original sensor data (depth/disparity image)\n\
00151 sensor_msgs/Image image\n\
00152 sensor_msgs/CameraInfo camera_info\n\
00153 \n\
00154 #list of mesh/pose hypotheses for each recognized point cluster\n\
00155 ModelHypothesisList[] model_hypotheses\n\
00156 \n\
00157 ================================================================================\n\
00158 MSG: sensor_msgs/Image\n\
00159 # This message contains an uncompressed image\n\
00160 # (0, 0) is at top-left corner of image\n\
00161 #\n\
00162 \n\
00163 Header header        # Header timestamp should be acquisition time of image\n\
00164                      # Header frame_id should be optical frame of camera\n\
00165                      # origin of frame should be optical center of cameara\n\
00166                      # +x should point to the right in the image\n\
00167                      # +y should point down in the image\n\
00168                      # +z should point into to plane of the image\n\
00169                      # If the frame_id here and the frame_id of the CameraInfo\n\
00170                      # message associated with the image conflict\n\
00171                      # the behavior is undefined\n\
00172 \n\
00173 uint32 height         # image height, that is, number of rows\n\
00174 uint32 width          # image width, that is, number of columns\n\
00175 \n\
00176 # The legal values for encoding are in file src/image_encodings.cpp\n\
00177 # If you want to standardize a new string format, join\n\
00178 # ros-users@lists.sourceforge.net and send an email proposing a new encoding.\n\
00179 \n\
00180 string encoding       # Encoding of pixels -- channel meaning, ordering, size\n\
00181                       # taken from the list of strings in include/sensor_msgs/image_encodings.h\n\
00182 \n\
00183 uint8 is_bigendian    # is this data bigendian?\n\
00184 uint32 step           # Full row length in bytes\n\
00185 uint8[] data          # actual matrix data, size is (step * rows)\n\
00186 \n\
00187 ================================================================================\n\
00188 MSG: sensor_msgs/CameraInfo\n\
00189 # This message defines meta information for a camera. It should be in a\n\
00190 # camera namespace on topic \"camera_info\" and accompanied by up to five\n\
00191 # image topics named:\n\
00192 #\n\
00193 #   image_raw - raw data from the camera driver, possibly Bayer encoded\n\
00194 #   image            - monochrome, distorted\n\
00195 #   image_color      - color, distorted\n\
00196 #   image_rect       - monochrome, rectified\n\
00197 #   image_rect_color - color, rectified\n\
00198 #\n\
00199 # The image_pipeline contains packages (image_proc, stereo_image_proc)\n\
00200 # for producing the four processed image topics from image_raw and\n\
00201 # camera_info. The meaning of the camera parameters are described in\n\
00202 # detail at http://www.ros.org/wiki/image_pipeline/CameraInfo.\n\
00203 #\n\
00204 # The image_geometry package provides a user-friendly interface to\n\
00205 # common operations using this meta information. If you want to, e.g.,\n\
00206 # project a 3d point into image coordinates, we strongly recommend\n\
00207 # using image_geometry.\n\
00208 #\n\
00209 # If the camera is uncalibrated, the matrices D, K, R, P should be left\n\
00210 # zeroed out. In particular, clients may assume that K[0] == 0.0\n\
00211 # indicates an uncalibrated camera.\n\
00212 \n\
00213 #######################################################################\n\
00214 #                     Image acquisition info                          #\n\
00215 #######################################################################\n\
00216 \n\
00217 # Time of image acquisition, camera coordinate frame ID\n\
00218 Header header    # Header timestamp should be acquisition time of image\n\
00219                  # Header frame_id should be optical frame of camera\n\
00220                  # origin of frame should be optical center of camera\n\
00221                  # +x should point to the right in the image\n\
00222                  # +y should point down in the image\n\
00223                  # +z should point into the plane of the image\n\
00224 \n\
00225 \n\
00226 #######################################################################\n\
00227 #                      Calibration Parameters                         #\n\
00228 #######################################################################\n\
00229 # These are fixed during camera calibration. Their values will be the #\n\
00230 # same in all messages until the camera is recalibrated. Note that    #\n\
00231 # self-calibrating systems may \"recalibrate\" frequently.              #\n\
00232 #                                                                     #\n\
00233 # The internal parameters can be used to warp a raw (distorted) image #\n\
00234 # to:                                                                 #\n\
00235 #   1. An undistorted image (requires D and K)                        #\n\
00236 #   2. A rectified image (requires D, K, R)                           #\n\
00237 # The projection matrix P projects 3D points into the rectified image.#\n\
00238 #######################################################################\n\
00239 \n\
00240 # The image dimensions with which the camera was calibrated. Normally\n\
00241 # this will be the full camera resolution in pixels.\n\
00242 uint32 height\n\
00243 uint32 width\n\
00244 \n\
00245 # The distortion model used. Supported models are listed in\n\
00246 # sensor_msgs/distortion_models.h. For most cameras, \"plumb_bob\" - a\n\
00247 # simple model of radial and tangential distortion - is sufficent.\n\
00248 string distortion_model\n\
00249 \n\
00250 # The distortion parameters, size depending on the distortion model.\n\
00251 # For \"plumb_bob\", the 5 parameters are: (k1, k2, t1, t2, k3).\n\
00252 float64[] D\n\
00253 \n\
00254 # Intrinsic camera matrix for the raw (distorted) images.\n\
00255 #     [fx  0 cx]\n\
00256 # K = [ 0 fy cy]\n\
00257 #     [ 0  0  1]\n\
00258 # Projects 3D points in the camera coordinate frame to 2D pixel\n\
00259 # coordinates using the focal lengths (fx, fy) and principal point\n\
00260 # (cx, cy).\n\
00261 float64[9]  K # 3x3 row-major matrix\n\
00262 \n\
00263 # Rectification matrix (stereo cameras only)\n\
00264 # A rotation matrix aligning the camera coordinate system to the ideal\n\
00265 # stereo image plane so that epipolar lines in both stereo images are\n\
00266 # parallel.\n\
00267 float64[9]  R # 3x3 row-major matrix\n\
00268 \n\
00269 # Projection/camera matrix\n\
00270 #     [fx'  0  cx' Tx]\n\
00271 # P = [ 0  fy' cy' Ty]\n\
00272 #     [ 0   0   1   0]\n\
00273 # By convention, this matrix specifies the intrinsic (camera) matrix\n\
00274 #  of the processed (rectified) image. That is, the left 3x3 portion\n\
00275 #  is the normal camera intrinsic matrix for the rectified image.\n\
00276 # It projects 3D points in the camera coordinate frame to 2D pixel\n\
00277 #  coordinates using the focal lengths (fx', fy') and principal point\n\
00278 #  (cx', cy') - these may differ from the values in K.\n\
00279 # For monocular cameras, Tx = Ty = 0. Normally, monocular cameras will\n\
00280 #  also have R = the identity and P[1:3,1:3] = K.\n\
00281 # For a stereo pair, the fourth column [Tx Ty 0]' is related to the\n\
00282 #  position of the optical center of the second camera in the first\n\
00283 #  camera's frame. We assume Tz = 0 so both cameras are in the same\n\
00284 #  stereo image plane. The first camera always has Tx = Ty = 0. For\n\
00285 #  the right (second) camera of a horizontal stereo pair, Ty = 0 and\n\
00286 #  Tx = -fx' * B, where B is the baseline between the cameras.\n\
00287 # Given a 3D point [X Y Z]', the projection (x, y) of the point onto\n\
00288 #  the rectified image is given by:\n\
00289 #  [u v w]' = P * [X Y Z 1]'\n\
00290 #         x = u / w\n\
00291 #         y = v / w\n\
00292 #  This holds for both images of a stereo pair.\n\
00293 float64[12] P # 3x4 row-major matrix\n\
00294 \n\
00295 \n\
00296 #######################################################################\n\
00297 #                      Operational Parameters                         #\n\
00298 #######################################################################\n\
00299 # These define the image region actually captured by the camera       #\n\
00300 # driver. Although they affect the geometry of the output image, they #\n\
00301 # may be changed freely without recalibrating the camera.             #\n\
00302 #######################################################################\n\
00303 \n\
00304 # Binning refers here to any camera setting which combines rectangular\n\
00305 #  neighborhoods of pixels into larger \"super-pixels.\" It reduces the\n\
00306 #  resolution of the output image to\n\
00307 #  (width / binning_x) x (height / binning_y).\n\
00308 # The default values binning_x = binning_y = 0 is considered the same\n\
00309 #  as binning_x = binning_y = 1 (no subsampling).\n\
00310 uint32 binning_x\n\
00311 uint32 binning_y\n\
00312 \n\
00313 # Region of interest (subwindow of full camera resolution), given in\n\
00314 #  full resolution (unbinned) image coordinates. A particular ROI\n\
00315 #  always denotes the same window of pixels on the camera sensor,\n\
00316 #  regardless of binning settings.\n\
00317 # The default setting of roi (all values 0) is considered the same as\n\
00318 #  full resolution (roi.width = width, roi.height = height).\n\
00319 RegionOfInterest roi\n\
00320 \n\
00321 ================================================================================\n\
00322 MSG: sensor_msgs/RegionOfInterest\n\
00323 # This message is used to specify a region of interest within an image.\n\
00324 #\n\
00325 # When used to specify the ROI setting of the camera when the image was\n\
00326 # taken, the height and width fields should either match the height and\n\
00327 # width fields for the associated image; or height = width = 0\n\
00328 # indicates that the full resolution image was captured.\n\
00329 \n\
00330 uint32 x_offset  # Leftmost pixel of the ROI\n\
00331                  # (0 if the ROI includes the left edge of the image)\n\
00332 uint32 y_offset  # Topmost pixel of the ROI\n\
00333                  # (0 if the ROI includes the top edge of the image)\n\
00334 uint32 height    # Height of ROI\n\
00335 uint32 width     # Width of ROI\n\
00336 \n\
00337 # True if a distinct rectified ROI should be calculated from the \"raw\"\n\
00338 # ROI in this message. Typically this should be False if the full image\n\
00339 # is captured (ROI not used), and True if a subwindow is captured (ROI\n\
00340 # used).\n\
00341 bool do_rectify\n\
00342 \n\
00343 ================================================================================\n\
00344 MSG: interactive_perception_msgs/ModelHypothesisList\n\
00345 ModelHypothesis[] hypotheses\n\
00346 \n\
00347 #initial guess if this can be a correct recognition result at all\n\
00348 bool accept\n\
00349 ================================================================================\n\
00350 MSG: interactive_perception_msgs/ModelHypothesis\n\
00351 #describes a hypothesis about a recognized object (mesh+pose)\n\
00352 \n\
00353 shape_msgs/Mesh mesh\n\
00354 geometry_msgs/PoseStamped pose\n\
00355 \n\
00356 ================================================================================\n\
00357 MSG: shape_msgs/Mesh\n\
00358 # Definition of a mesh\n\
00359 \n\
00360 # list of triangles; the index values refer to positions in vertices[]\n\
00361 MeshTriangle[] triangles\n\
00362 \n\
00363 # the actual vertices that make up the mesh\n\
00364 geometry_msgs/Point[] vertices\n\
00365 \n\
00366 ================================================================================\n\
00367 MSG: shape_msgs/MeshTriangle\n\
00368 # Definition of a triangle's vertices\n\
00369 uint32[3] vertex_indices\n\
00370 \n\
00371 ================================================================================\n\
00372 MSG: geometry_msgs/Point\n\
00373 # This contains the position of a point in free space\n\
00374 float64 x\n\
00375 float64 y\n\
00376 float64 z\n\
00377 \n\
00378 ================================================================================\n\
00379 MSG: geometry_msgs/PoseStamped\n\
00380 # A Pose with reference coordinate frame and timestamp\n\
00381 Header header\n\
00382 Pose pose\n\
00383 \n\
00384 ================================================================================\n\
00385 MSG: geometry_msgs/Pose\n\
00386 # A representation of pose in free space, composed of postion and orientation. \n\
00387 Point position\n\
00388 Quaternion orientation\n\
00389 \n\
00390 ================================================================================\n\
00391 MSG: geometry_msgs/Quaternion\n\
00392 # This represents an orientation in free space in quaternion form.\n\
00393 \n\
00394 float64 x\n\
00395 float64 y\n\
00396 float64 z\n\
00397 float64 w\n\
00398 \n\
00399 ================================================================================\n\
00400 MSG: interactive_perception_msgs/ObjectRecognitionGuiActionResult\n\
00401 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00402 \n\
00403 Header header\n\
00404 actionlib_msgs/GoalStatus status\n\
00405 ObjectRecognitionGuiResult result\n\
00406 \n\
00407 ================================================================================\n\
00408 MSG: actionlib_msgs/GoalStatus\n\
00409 GoalID goal_id\n\
00410 uint8 status\n\
00411 uint8 PENDING         = 0   # The goal has yet to be processed by the action server\n\
00412 uint8 ACTIVE          = 1   # The goal is currently being processed by the action server\n\
00413 uint8 PREEMPTED       = 2   # The goal received a cancel request after it started executing\n\
00414                             #   and has since completed its execution (Terminal State)\n\
00415 uint8 SUCCEEDED       = 3   # The goal was achieved successfully by the action server (Terminal State)\n\
00416 uint8 ABORTED         = 4   # The goal was aborted during execution by the action server due\n\
00417                             #    to some failure (Terminal State)\n\
00418 uint8 REJECTED        = 5   # The goal was rejected by the action server without being processed,\n\
00419                             #    because the goal was unattainable or invalid (Terminal State)\n\
00420 uint8 PREEMPTING      = 6   # The goal received a cancel request after it started executing\n\
00421                             #    and has not yet completed execution\n\
00422 uint8 RECALLING       = 7   # The goal received a cancel request before it started executing,\n\
00423                             #    but the action server has not yet confirmed that the goal is canceled\n\
00424 uint8 RECALLED        = 8   # The goal received a cancel request before it started executing\n\
00425                             #    and was successfully cancelled (Terminal State)\n\
00426 uint8 LOST            = 9   # An action client can determine that a goal is LOST. This should not be\n\
00427                             #    sent over the wire by an action server\n\
00428 \n\
00429 #Allow for the user to associate a string with GoalStatus for debugging\n\
00430 string text\n\
00431 \n\
00432 \n\
00433 ================================================================================\n\
00434 MSG: interactive_perception_msgs/ObjectRecognitionGuiResult\n\
00435 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00436 \n\
00437 #the index of the model hypothesis that the user has selected for each cluster\n\
00438 #values below 0 mean 'reject all hypotheses'\n\
00439 int32[] selected_hypothesis_indices\n\
00440 \n\
00441 ================================================================================\n\
00442 MSG: interactive_perception_msgs/ObjectRecognitionGuiActionFeedback\n\
00443 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00444 \n\
00445 Header header\n\
00446 actionlib_msgs/GoalStatus status\n\
00447 ObjectRecognitionGuiFeedback feedback\n\
00448 \n\
00449 ================================================================================\n\
00450 MSG: interactive_perception_msgs/ObjectRecognitionGuiFeedback\n\
00451 # ====== DO NOT MODIFY! AUTOGENERATED FROM AN ACTION DEFINITION ======\n\
00452 \n\
00453 \n\
00454 ";
00455   }
00456 
00457   static const char* value(const  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> &) { return value(); } 
00458 };
00459 
00460 } // namespace message_traits
00461 } // namespace ros
00462 
00463 namespace ros
00464 {
00465 namespace serialization
00466 {
00467 
00468 template<class ContainerAllocator> struct Serializer< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> >
00469 {
00470   template<typename Stream, typename T> inline static void allInOne(Stream& stream, T m)
00471   {
00472     stream.next(m.action_goal);
00473     stream.next(m.action_result);
00474     stream.next(m.action_feedback);
00475   }
00476 
00477   ROS_DECLARE_ALLINONE_SERIALIZER;
00478 }; // struct ObjectRecognitionGuiAction_
00479 } // namespace serialization
00480 } // namespace ros
00481 
00482 namespace ros
00483 {
00484 namespace message_operations
00485 {
00486 
00487 template<class ContainerAllocator>
00488 struct Printer< ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> >
00489 {
00490   template<typename Stream> static void stream(Stream& s, const std::string& indent, const  ::interactive_perception_msgs::ObjectRecognitionGuiAction_<ContainerAllocator> & v) 
00491   {
00492     s << indent << "action_goal: ";
00493 s << std::endl;
00494     Printer< ::interactive_perception_msgs::ObjectRecognitionGuiActionGoal_<ContainerAllocator> >::stream(s, indent + "  ", v.action_goal);
00495     s << indent << "action_result: ";
00496 s << std::endl;
00497     Printer< ::interactive_perception_msgs::ObjectRecognitionGuiActionResult_<ContainerAllocator> >::stream(s, indent + "  ", v.action_result);
00498     s << indent << "action_feedback: ";
00499 s << std::endl;
00500     Printer< ::interactive_perception_msgs::ObjectRecognitionGuiActionFeedback_<ContainerAllocator> >::stream(s, indent + "  ", v.action_feedback);
00501   }
00502 };
00503 
00504 
00505 } // namespace message_operations
00506 } // namespace ros
00507 
00508 #endif // INTERACTIVE_PERCEPTION_MSGS_MESSAGE_OBJECTRECOGNITIONGUIACTION_H
00509 


interactive_perception_msgs
Author(s): jbinney
autogenerated on Mon Oct 6 2014 11:51:21