[CF]提交文件
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runs/detect/train27/args.yaml
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task: detect
|
||||
mode: train
|
||||
model: C:\workspace\le-yolo\runs\detect\train26\weights\last.pt
|
||||
data: data.yaml
|
||||
epochs: 100
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||||
time: null
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||||
patience: 100
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||||
batch: 8
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||||
imgsz: 640
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||||
save: true
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||||
save_period: -1
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||||
cache: false
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||||
device: cpu
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||||
workers: 8
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||||
project: null
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||||
name: train27
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||||
exist_ok: false
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||||
pretrained: true
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||||
optimizer: auto
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||||
verbose: true
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||||
seed: 0
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||||
deterministic: true
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||||
single_cls: false
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||||
rect: false
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||||
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||||
close_mosaic: 10
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||||
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||||
amp: true
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||||
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||||
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||||
overlap_mask: true
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||||
mask_ratio: 4
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||||
dropout: 0.0
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||||
val: true
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||||
split: val
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||||
save_json: false
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||||
conf: null
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||||
iou: 0.7
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||||
max_det: 300
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||||
half: false
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||||
dnn: false
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||||
plots: true
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||||
source: null
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||||
vid_stride: 1
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stream_buffer: false
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||||
visualize: false
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||||
augment: false
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||||
agnostic_nms: false
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||||
classes: null
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||||
retina_masks: false
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||||
embed: null
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||||
show: false
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||||
save_frames: false
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||||
save_txt: false
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||||
save_conf: false
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||||
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||||
show_labels: true
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||||
show_conf: true
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||||
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||||
line_width: null
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||||
format: torchscript
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||||
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||||
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||||
int8: false
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||||
dynamic: false
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||||
simplify: true
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||||
opset: null
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||||
workspace: null
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||||
nms: false
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||||
lr0: 0.01
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||||
lrf: 0.01
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||||
momentum: 0.937
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||||
weight_decay: 0.0005
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||||
warmup_epochs: 3.0
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||||
warmup_momentum: 0.8
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||||
warmup_bias_lr: 0.1
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||||
box: 7.5
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||||
cls: 0.5
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||||
dfl: 1.5
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||||
pose: 12.0
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||||
kobj: 1.0
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||||
nbs: 64
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||||
hsv_h: 0.015
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||||
hsv_s: 0.7
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||||
hsv_v: 0.4
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||||
degrees: 0.0
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||||
translate: 0.1
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||||
scale: 0.5
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||||
shear: 0.0
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||||
perspective: 0.0
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||||
flipud: 0.0
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||||
fliplr: 0.5
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||||
bgr: 0.0
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||||
mosaic: 1.0
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||||
mixup: 0.0
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||||
cutmix: 0.0
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||||
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||||
copy_paste_mode: flip
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||||
auto_augment: randaugment
|
||||
erasing: 0.4
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||||
cfg: null
|
||||
tracker: botsort.yaml
|
||||
save_dir: C:\workspace\le-yolo\runs\detect\train27
|
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runs/detect/train27/labels.jpg
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55
runs/detect/train27/results.csv
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||||
epoch,time,train/box_loss,train/cls_loss,train/dfl_loss,metrics/precision(B),metrics/recall(B),metrics/mAP50(B),metrics/mAP50-95(B),val/box_loss,val/cls_loss,val/dfl_loss,lr/pg0,lr/pg1,lr/pg2
|
||||
1,13.2669,0.43505,0.52308,0.85326,0.99849,0.97872,0.97506,0.93382,0.32359,0.49773,0.82428,0.00012,0.00012,0.00012
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||||
2,25.801,0.44361,0.44178,0.83589,0.99845,0.97872,0.97506,0.91588,0.33912,0.51548,0.82003,0.000257426,0.000257426,0.000257426
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||||
3,38.2037,0.54109,0.54769,0.9778,0.99827,0.97872,0.97506,0.89371,0.43446,0.53809,0.84371,0.00039208,0.00039208,0.00039208
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4,50.6353,0.66496,0.62828,1.11706,0.99852,0.97872,0.97506,0.9123,0.49509,0.55576,0.89711,0.000523962,0.000523962,0.000523962
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||||
5,62.9126,0.56829,0.64357,0.89467,0.99874,0.97872,0.97506,0.90961,0.45408,0.5561,0.86885,0.000653072,0.000653072,0.000653072
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||||
6,75.3132,0.58491,0.51649,0.87618,0.99878,0.97872,0.97506,0.88318,0.46088,0.62726,0.88711,0.00077941,0.00077941,0.00077941
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7,87.5407,0.54232,0.56334,0.88114,0.99823,0.97872,0.97506,0.86175,0.50212,0.73162,0.90725,0.000902976,0.000902976,0.000902976
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8,100.37,0.61618,0.53237,0.91974,0.99832,0.97872,0.97506,0.85986,0.53545,0.67665,0.93735,0.00102377,0.00102377,0.00102377
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9,112.624,0.5297,0.56286,0.87843,0.99853,0.97872,0.97506,0.87947,0.4903,0.66042,0.93648,0.00114179,0.00114179,0.00114179
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11,137.571,0.65024,0.59284,0.97454,0.99888,0.97872,0.97507,0.85093,0.68737,0.69032,1.09134,0.00136952,0.00136952,0.00136952
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12,150.197,0.62675,0.65343,0.9614,0.99889,0.97872,0.97506,0.85546,0.72943,0.60515,1.11956,0.00147923,0.00147923,0.00147923
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13,162.537,0.56475,0.55125,0.87224,1,0.978,0.97506,0.87919,0.69957,0.56837,1.11947,0.00158616,0.00158616,0.00158616
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14,174.894,0.77236,0.83568,1.16568,1,0.978,0.97506,0.87919,0.69957,0.56837,1.11947,0.00169032,0.00169032,0.00169032
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15,187.211,0.56209,0.59946,0.899,0.99841,0.97872,0.97506,0.85699,0.67707,0.66874,1.05578,0.0017228,0.0017228,0.0017228
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16,199.453,0.50614,0.53907,0.87553,0.99808,0.97872,0.97506,0.84961,0.64327,0.70656,1.03661,0.001703,0.001703,0.001703
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17,211.741,0.58702,0.56443,0.8686,0.9984,0.97872,0.97506,0.86594,0.60795,0.77716,1.0314,0.0016832,0.0016832,0.0016832
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18,223.96,0.58811,0.60501,0.90207,0.99745,0.97872,0.97505,0.86917,0.54344,0.64444,0.96213,0.0016634,0.0016634,0.0016634
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19,236.219,0.61329,0.61213,0.93239,0.99824,0.97872,0.97505,0.87104,0.52549,0.56599,0.95366,0.0016436,0.0016436,0.0016436
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20,248.369,0.52961,0.53808,0.89246,0.99847,0.97872,0.97505,0.87598,0.52387,0.60491,0.95481,0.0016238,0.0016238,0.0016238
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21,260.634,0.55004,0.52542,0.87965,0.99859,0.97872,0.97507,0.87612,0.57552,0.66396,0.98333,0.001604,0.001604,0.001604
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22,272.873,0.58561,0.57592,0.91036,0.99859,0.97872,0.97507,0.87612,0.57552,0.66396,0.98333,0.0015842,0.0015842,0.0015842
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25,311.624,0.60795,0.54674,0.91007,0.99851,0.97872,0.97507,0.8884,0.46811,0.51122,0.91218,0.0015248,0.0015248,0.0015248
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26,323.861,0.56332,0.51842,0.91495,0.99858,0.97872,0.97507,0.88758,0.46055,0.50076,0.90961,0.001505,0.001505,0.001505
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|
||||
46,569.012,0.68981,0.61293,1.02449,0.99808,0.97872,0.97787,0.90369,0.46115,0.44531,0.8902,0.001109,0.001109,0.001109
|
||||
47,581.251,0.57723,0.46172,0.90314,0.9978,0.97872,0.97731,0.88975,0.48675,0.44816,0.89428,0.0010892,0.0010892,0.0010892
|
||||
48,593.483,0.47651,0.44804,0.85403,0.9968,0.97872,0.97655,0.90049,0.47049,0.4396,0.89356,0.0010694,0.0010694,0.0010694
|
||||
49,605.65,0.54616,0.49061,0.92223,0.99662,0.97872,0.97605,0.89475,0.48763,0.43542,0.89251,0.0010496,0.0010496,0.0010496
|
||||
50,617.853,0.52231,0.45301,0.92897,0.99079,0.97872,0.97586,0.90253,0.48184,0.47301,0.88831,0.0010298,0.0010298,0.0010298
|
||||
51,630.223,0.52221,0.44779,0.88502,0.9916,0.97872,0.97581,0.91319,0.48998,0.43281,0.89684,0.00101,0.00101,0.00101
|
||||
52,642.866,0.45736,0.42001,0.86042,0.995,0.97872,0.97579,0.91128,0.44751,0.38538,0.87923,0.0009902,0.0009902,0.0009902
|
||||
53,655.752,0.50949,0.40852,0.84028,0.99695,0.97872,0.97587,0.89758,0.42592,0.394,0.86972,0.0009704,0.0009704,0.0009704
|
||||
54,669.236,0.51675,0.42571,0.90519,0.99695,0.97872,0.97587,0.89758,0.42592,0.394,0.86972,0.0009506,0.0009506,0.0009506
|
|
BIN
runs/detect/train27/train_batch0.jpg
Normal file
After Width: | Height: | Size: 256 KiB |
BIN
runs/detect/train27/train_batch1.jpg
Normal file
After Width: | Height: | Size: 254 KiB |
BIN
runs/detect/train27/train_batch2.jpg
Normal file
After Width: | Height: | Size: 262 KiB |
BIN
runs/detect/train27/weights/best.pt
Normal file
BIN
runs/detect/train27/weights/last.pt
Normal file
@ -1,3 +1,3 @@
|
||||
from ultralytics import YOLO
|
||||
model = YOLO(r"C:\workspace\le-yolo\runs\detect\train26\weights\best.pt")
|
||||
results = model.predict("../res/5.mp4", show=True, save=True)
|
||||
results = model.predict("../res/3.mp4", show=True, save=True)
|
||||
|
@ -1,5 +1,5 @@
|
||||
from ultralytics import YOLO
|
||||
model = YOLO("yolov8n.pt")
|
||||
model = YOLO(r"C:\workspace\le-yolo\runs\detect\train26\weights\last.pt")
|
||||
model.train(data="data.yaml", epochs=100, batch=8, device='cpu', imgsz=640)
|
||||
model.val()
|
||||
print('训练完成')
|
@ -1,13 +1,13 @@
|
||||
import cv2
|
||||
videopath = 'C:/workspace/le-yolo/res/2.mp4'
|
||||
videopath = 'C:/workspace/le-yolo/res/3.mp4'
|
||||
video = cv2.VideoCapture(videopath)
|
||||
num = 0
|
||||
if video.isOpened():
|
||||
ret, frame = video.read()
|
||||
else:
|
||||
ret = False
|
||||
timeF = 8
|
||||
filepath = 'C:/workspace/le-yolo/data/images/train/t2_'
|
||||
timeF = 10
|
||||
filepath = 'C:/workspace/le-yolo/data/images/test/test_'
|
||||
while ret:
|
||||
ret, frame = video.read()
|
||||
if num % timeF == 0:
|
||||
|