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Cannot run with different cfg file #14
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Did you change the class labels on line 31 in yolo_ros.cpp? |
Yes, I'm just using a single class so I changed that accordingly. |
Hmm, that should be all that you need to change. you can try testing it with the single_image_test node if you have an image that you know should pick up a detection |
I'm still not getting any detection. However in this case it is running the network. When I run with video the camera's also never open and the network never initializes. For clarity the network I'm using is this https://github.com/AlexeyAB/Yolo_mark/blob/master/x64/Release/yolo-obj.cfg . Is there anything that needs to be changed in that file? Additionally I'm trying to make this run on six different camera's and I've managed to get everything running with them except the bounding boxes. This is all done with the yolo-voc configuation and I've simply remapped arguments in the launch file under 6 different nodes, one for each camera: the remapped arguments are CAMERA_TOPIC_NAME /found_object and /YOLO_boxes. |
@rongfeng-china if you are using a yolov3 cfg, then it won't work as this repo only has compatibility up to yolov2. @anthcolange Is that yolo-obj.cfg based off of yolov3? If so, it probably won't work. I'm not sure about the 6 camera set up. Are you saying that you have a single yolo node that subscribes to 6 different camera topics or are you running the yolo node 6 different times for each camera separately? I wonder if bounding boxes are getting mixed up with different camera frames since the code isn't really meant to handle multiple cameras at once. |
Same issue here, I have tried with yolo 2 config [yolo_2class_box11.cfg] and yolo 2 weights: yolo_2class_box11_3000.weights from http://guanghan.info/blog/en/my-works/train-yolo/ but I was not able to detect anything. (now I have doubts if on that testing I changed the classes in the yolo_ros.cpp file With char *cfg = "/home/catkin_ws/src/darknet_ros/cfg/yolo-voc.cfg"; it works perfect, if I change the weights I have had a case in which it detectted too much. I guess if you or anybody can share his/her experience on testing the model with different config and weights. My purpose is to use it with my own trained data, one of them would be: yolo_2class_box11.cfg Thanks so much in advance for your help, David |
I will keep testing during this weekend, keep you informed if I am able to make it work, David |
Hello again, I was able to train my own weights with my own data based on yolo2 based on this git git clone https://github.com/AlexeyAB/darknet.git Got less than 0,06 loss average I tested the detection directly by executing ./darknet detector test cfg/obj.data cfg/yolov2-voc.cfg yolov2-voc_2300.weights data/myownimages.jpg And the detection was positive 93% I tested again on your yolo ros *after changing const std::string class_labels[] = { "stopsign", "yieldsign" }; I have started a new training with yolo-voc.cfg and darknet19_448.conv.23 to see if that way I can detect something. I do not see big deferences between yolo-voc.cfg and yolov2-voc.cfg. I have to add that if I use the weights you have in yolo_ros.cpp in combination with yolov2-voc.cfg the results are like a chaos. Can you help me with these? I have been stucked for the last week and got no advances. In this we transfer you can download my the weights I used to train, the cfg I used to train and the weights I obtained *tested and worked with the command I refer to above. Thanks so much in advance for your help, David |
Hi, so I've been trying to run with a different weight and cfg file than voc, and have gotten it to run but no detection occurs. I've simply changed the two parameters in yolo_ros.cpp. Is there anything else that needs to be changed in order to run with a different network such as yolo-obj.cfg?
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