rtabmapviz: fixed processOdometry slot not found error (API change from 0.11.8)

This commit is contained in:
matlabbe
2016-06-17 15:01:30 -04:00
parent 4842070cee
commit 9724c40876
+193 -175
View File
@@ -529,70 +529,74 @@ void GuiWrapper::commonDepthCallback(
const sensor_msgs::PointCloud2ConstPtr& scan3dMsg,
const rtabmap_ros::OdomInfoConstPtr& odomInfoMsg)
{
UASSERT(imageMsgs.size()>0 &&
imageMsgs.size() == depthMsgs.size() &&
imageMsgs.size() == cameraInfoMsgs.size());
std_msgs::Header odomHeader;
if(odomMsg.get())
{
odomHeader = odomMsg->header;
}
else
{
if(scan2dMsg.get())
{
odomHeader = scan2dMsg->header;
}
else if(scan3dMsg.get())
{
odomHeader = scan3dMsg->header;
}
else if(cameraInfoMsgs.size() && cameraInfoMsgs[0].get())
{
odomHeader = cameraInfoMsgs[0]->header;
}
else if(depthMsgs.size() && depthMsgs[0].get())
{
odomHeader = depthMsgs[0]->header;
}
else if(imageMsgs.size() && imageMsgs[0].get())
{
odomHeader = imageMsgs[0]->header;
}
odomHeader.frame_id = odomFrameId_;
}
Transform odomT = getTransform(odomHeader.frame_id, frameId_, odomHeader.stamp);
cv::Mat covariance = cv::Mat::eye(6,6,CV_64FC1);
if(odomMsg.get())
{
UASSERT(odomMsg->pose.covariance.size() == 36);
if(!(odomMsg->pose.covariance[0] == 0 &&
odomMsg->pose.covariance[7] == 0 &&
odomMsg->pose.covariance[14] == 0 &&
odomMsg->pose.covariance[21] == 0 &&
odomMsg->pose.covariance[28] == 0 &&
odomMsg->pose.covariance[35] == 0))
{
covariance = cv::Mat(6,6,CV_64FC1,(void*)odomMsg->pose.covariance.data()).clone();
}
}
if(odomHeader.frame_id.empty())
{
ROS_ERROR("Odometry frame not set!?");
return;
}
cv::Mat rgb;
cv::Mat depth;
std::vector<CameraModel> cameraModels;
cv::Mat scan;
rtabmap::OdometryInfo info;
bool ignoreData = false;
if(UTimer::now() - lastOdomInfoUpdateTime_ > 0.1 &&
!mainWindow_->isProcessingOdometry() &&
!mainWindow_->isProcessingStatistics())
{
lastOdomInfoUpdateTime_ = UTimer::now();
UASSERT(imageMsgs.size()>0 &&
imageMsgs.size() == depthMsgs.size() &&
imageMsgs.size() == cameraInfoMsgs.size());
std_msgs::Header odomHeader;
if(odomMsg.get())
{
odomHeader = odomMsg->header;
}
else
{
if(scan2dMsg.get())
{
odomHeader = scan2dMsg->header;
}
else if(scan3dMsg.get())
{
odomHeader = scan3dMsg->header;
}
else if(cameraInfoMsgs.size() && cameraInfoMsgs[0].get())
{
odomHeader = cameraInfoMsgs[0]->header;
}
else if(depthMsgs.size() && depthMsgs[0].get())
{
odomHeader = depthMsgs[0]->header;
}
else if(imageMsgs.size() && imageMsgs[0].get())
{
odomHeader = imageMsgs[0]->header;
}
odomHeader.frame_id = odomFrameId_;
}
Transform odomT = getTransform(odomHeader.frame_id, frameId_, odomHeader.stamp);
cv::Mat covariance = cv::Mat::eye(6,6,CV_64FC1);
if(odomMsg.get())
{
UASSERT(odomMsg->pose.covariance.size() == 36);
if(!(odomMsg->pose.covariance[0] == 0 &&
odomMsg->pose.covariance[7] == 0 &&
odomMsg->pose.covariance[14] == 0 &&
odomMsg->pose.covariance[21] == 0 &&
odomMsg->pose.covariance[28] == 0 &&
odomMsg->pose.covariance[35] == 0))
{
covariance = cv::Mat(6,6,CV_64FC1,(void*)odomMsg->pose.covariance.data()).clone();
}
}
if(odomHeader.frame_id.empty())
{
ROS_ERROR("Odometry frame not set!?");
return;
}
cv::Mat rgb;
cv::Mat depth;
std::vector<CameraModel> cameraModels;
if(imageMsgs[0].get() && depthMsgs[0].get())
{
int imageWidth = imageMsgs[0]->width;
@@ -686,7 +690,6 @@ void GuiWrapper::commonDepthCallback(
}
}
cv::Mat scan;
if(scan2dMsg.get() != 0)
{
// make sure the frame of the laser is updated too
@@ -726,28 +729,33 @@ void GuiWrapper::commonDepthCallback(
scan = util3d::laserScanFromPointCloud(*pclScan);
}
rtabmap::OdometryInfo info;
if(odomInfoMsg.get())
{
info = rtabmap_ros::odomInfoFromROS(*odomInfoMsg);
}
rtabmap::OdometryEvent odomEvent(
rtabmap::SensorData(
scan,
scan2dMsg.get()?(int)scan2dMsg->ranges.size():0,
scan2dMsg.get()?(int)scan2dMsg->range_max:0,
rgb,
depth,
cameraModels,
odomHeader.seq,
rtabmap_ros::timestampFromROS(odomHeader.stamp)),
odomMsg.get()?rtabmap_ros::transformFromPoseMsg(odomMsg->pose.pose):odomT,
covariance,
info);
QMetaObject::invokeMethod(mainWindow_, "processOdometry", Q_ARG(rtabmap::OdometryEvent, odomEvent));
ignoreData = false;
}
else
{
info = rtabmap_ros::odomInfoFromROS(*odomInfoMsg).copyWithoutData();
ignoreData = true;
}
rtabmap::OdometryEvent odomEvent(
rtabmap::SensorData(
scan,
scan2dMsg.get()?(int)scan2dMsg->ranges.size():0,
scan2dMsg.get()?(int)scan2dMsg->range_max:0,
rgb,
depth,
cameraModels,
odomHeader.seq,
rtabmap_ros::timestampFromROS(odomHeader.stamp)),
odomMsg.get()?rtabmap_ros::transformFromPoseMsg(odomMsg->pose.pose):odomT,
covariance,
info);
QMetaObject::invokeMethod(mainWindow_, "processOdometry", Q_ARG(rtabmap::OdometryEvent, odomEvent), Q_ARG(bool, ignoreData));
}
void GuiWrapper::commonStereoCallback(
@@ -760,6 +768,91 @@ void GuiWrapper::commonStereoCallback(
const sensor_msgs::PointCloud2ConstPtr& scan3dMsg,
const rtabmap_ros::OdomInfoConstPtr& odomInfoMsg)
{
UASSERT(leftImageMsg.get() && rightImageMsg.get());
UASSERT(leftCamInfoMsg.get() && rightCamInfoMsg.get());
if(!(leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO8) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO16) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::BGR8) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::RGB8) == 0) ||
!(rightImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO8) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO16) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::BGR8) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::RGB8) == 0))
{
ROS_ERROR("Input type must be image=mono8,mono16,rgb8,bgr8");
return;
}
std_msgs::Header odomHeader;
if(odomMsg.get())
{
odomHeader = odomMsg->header;
}
else
{
if(scan2dMsg.get())
{
odomHeader = scan2dMsg->header;
}
else if(scan3dMsg.get())
{
odomHeader = scan3dMsg->header;
}
else
{
odomHeader = leftCamInfoMsg->header;
}
odomHeader.frame_id = odomFrameId_;
}
Transform odomT = getTransform(odomHeader.frame_id, frameId_, odomHeader.stamp);
cv::Mat covariance = cv::Mat::eye(6,6,CV_64FC1);
if(odomMsg.get())
{
UASSERT(odomMsg->pose.covariance.size() == 36);
if(!(odomMsg->pose.covariance[0] == 0 &&
odomMsg->pose.covariance[7] == 0 &&
odomMsg->pose.covariance[14] == 0 &&
odomMsg->pose.covariance[21] == 0 &&
odomMsg->pose.covariance[28] == 0 &&
odomMsg->pose.covariance[35] == 0))
{
covariance = cv::Mat(6,6,CV_64FC1,(void*)odomMsg->pose.covariance.data()).clone();
}
}
if(odomHeader.frame_id.empty())
{
ROS_ERROR("Odometry frame not set!?");
return;
}
Transform localTransform = getTransform(frameId_, leftCamInfoMsg->header.frame_id, leftCamInfoMsg->header.stamp);
if(localTransform.isNull())
{
return;
}
// sync with odometry stamp
if(odomHeader.stamp != leftCamInfoMsg->header.stamp)
{
if(!odomT.isNull())
{
Transform sensorT = getTransform(odomHeader.frame_id, frameId_, leftCamInfoMsg->header.stamp);
if(sensorT.isNull())
{
return;
}
localTransform = odomT.inverse() * sensorT * localTransform;
}
}
cv::Mat left;
cv::Mat right;
cv::Mat scan;
rtabmap::StereoCameraModel stereoModel;
rtabmap::OdometryInfo info;
bool ignoreData = false;
// limit 10 Hz max
if(UTimer::now() - lastOdomInfoUpdateTime_ > 0.1 &&
!mainWindow_->isProcessingOdometry() &&
@@ -767,85 +860,7 @@ void GuiWrapper::commonStereoCallback(
{
lastOdomInfoUpdateTime_ = UTimer::now();
UASSERT(leftImageMsg.get() && rightImageMsg.get());
UASSERT(leftCamInfoMsg.get() && rightCamInfoMsg.get());
if(!(leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO8) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO16) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::BGR8) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::RGB8) == 0) ||
!(rightImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO8) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO16) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::BGR8) == 0 ||
rightImageMsg->encoding.compare(sensor_msgs::image_encodings::RGB8) == 0))
{
ROS_ERROR("Input type must be image=mono8,mono16,rgb8,bgr8");
return;
}
std_msgs::Header odomHeader;
if(odomMsg.get())
{
odomHeader = odomMsg->header;
}
else
{
if(scan2dMsg.get())
{
odomHeader = scan2dMsg->header;
}
else if(scan3dMsg.get())
{
odomHeader = scan3dMsg->header;
}
else
{
odomHeader = leftCamInfoMsg->header;
}
odomHeader.frame_id = odomFrameId_;
}
Transform odomT = getTransform(odomHeader.frame_id, frameId_, odomHeader.stamp);
cv::Mat covariance = cv::Mat::eye(6,6,CV_64FC1);
if(odomMsg.get())
{
UASSERT(odomMsg->pose.covariance.size() == 36);
if(!(odomMsg->pose.covariance[0] == 0 &&
odomMsg->pose.covariance[7] == 0 &&
odomMsg->pose.covariance[14] == 0 &&
odomMsg->pose.covariance[21] == 0 &&
odomMsg->pose.covariance[28] == 0 &&
odomMsg->pose.covariance[35] == 0))
{
covariance = cv::Mat(6,6,CV_64FC1,(void*)odomMsg->pose.covariance.data()).clone();
}
}
if(odomHeader.frame_id.empty())
{
ROS_ERROR("Odometry frame not set!?");
return;
}
Transform localTransform = getTransform(frameId_, leftCamInfoMsg->header.frame_id, leftCamInfoMsg->header.stamp);
if(localTransform.isNull())
{
return;
}
// sync with odometry stamp
if(odomHeader.stamp != leftCamInfoMsg->header.stamp)
{
if(!odomT.isNull())
{
Transform sensorT = getTransform(odomHeader.frame_id, frameId_, leftCamInfoMsg->header.stamp);
if(sensorT.isNull())
{
return;
}
localTransform = odomT.inverse() * sensorT * localTransform;
}
}
rtabmap::StereoCameraModel stereoModel = rtabmap_ros::stereoCameraModelFromROS(*leftCamInfoMsg, *rightCamInfoMsg, localTransform);
stereoModel = rtabmap_ros::stereoCameraModelFromROS(*leftCamInfoMsg, *rightCamInfoMsg, localTransform);
if(stereoModel.baseline() > 10.0)
{
@@ -862,7 +877,6 @@ void GuiWrapper::commonStereoCallback(
// left
cv_bridge::CvImageConstPtr ptrImage;
cv::Mat left;
if(leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO8) == 0 ||
leftImageMsg->encoding.compare(sensor_msgs::image_encodings::MONO16) == 0)
{
@@ -874,9 +888,8 @@ void GuiWrapper::commonStereoCallback(
}
// right
cv::Mat right = cv_bridge::toCvCopy(rightImageMsg, "mono8")->image;
right = cv_bridge::toCvCopy(rightImageMsg, "mono8")->image;
cv::Mat scan;
if(scan2dMsg.get() != 0)
{
// make sure the frame of the laser is updated too
@@ -916,28 +929,33 @@ void GuiWrapper::commonStereoCallback(
scan = util3d::laserScanFromPointCloud(*pclScan);
}
rtabmap::OdometryInfo info;
if(odomInfoMsg.get())
{
info = rtabmap_ros::odomInfoFromROS(*odomInfoMsg);
}
rtabmap::OdometryEvent odomEvent(
rtabmap::SensorData(
scan,
scan2dMsg.get()?(int)scan2dMsg->ranges.size():0,
scan2dMsg.get()?(int)scan2dMsg->range_max:0,
left,
right,
stereoModel,
odomHeader.seq,
rtabmap_ros::timestampFromROS(odomHeader.stamp)),
odomMsg.get()?rtabmap_ros::transformFromPoseMsg(odomMsg->pose.pose):odomT,
covariance,
info);
QMetaObject::invokeMethod(mainWindow_, "processOdometry", Q_ARG(rtabmap::OdometryEvent, odomEvent));
ignoreData = false;
}
else
{
info = rtabmap_ros::odomInfoFromROS(*odomInfoMsg).copyWithoutData();
ignoreData = true;
}
rtabmap::OdometryEvent odomEvent(
rtabmap::SensorData(
scan,
scan2dMsg.get()?(int)scan2dMsg->ranges.size():0,
scan2dMsg.get()?(int)scan2dMsg->range_max:0,
left,
right,
stereoModel,
odomHeader.seq,
rtabmap_ros::timestampFromROS(odomHeader.stamp)),
odomMsg.get()?rtabmap_ros::transformFromPoseMsg(odomMsg->pose.pose):odomT,
covariance,
info);
QMetaObject::invokeMethod(mainWindow_, "processOdometry", Q_ARG(rtabmap::OdometryEvent, odomEvent), Q_ARG(bool, ignoreData));
}
// With odom msg