[CF]提交文件
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data/labels/test.cache
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runs/detect/predict37/3.avi
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runs/detect/predict38/2.avi
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runs/detect/predict39/5.avi
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runs/detect/predict40/4.avi
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runs/detect/predict41/4.avi
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runs/detect/train27/F1_curve.png
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runs/detect/train27/PR_curve.png
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runs/detect/train27/P_curve.png
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runs/detect/train27/R_curve.png
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runs/detect/train27/confusion_matrix.png
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runs/detect/train27/confusion_matrix_normalized.png
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@ -53,3 +53,49 @@ epoch,time,train/box_loss,train/cls_loss,train/dfl_loss,metrics/precision(B),met
|
||||
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
|
||||
55,684.522,0.51549,0.44171,0.86596,0.99772,0.97872,0.97602,0.90772,0.4241,0.4243,0.87173,0.0009308,0.0009308,0.0009308
|
||||
56,699.009,0.43566,0.45707,0.77815,0.99802,0.97872,0.97618,0.91811,0.47426,0.4429,0.90565,0.000911,0.000911,0.000911
|
||||
57,711.707,0.44331,0.38959,0.87796,0.99802,0.97872,0.97645,0.91774,0.53877,0.50974,0.98151,0.0008912,0.0008912,0.0008912
|
||||
58,724.385,0.52104,0.41772,0.89773,0.99807,0.97872,0.97681,0.90763,0.57093,0.47406,1.03008,0.0008714,0.0008714,0.0008714
|
||||
59,736.77,0.45971,0.39982,0.90185,0.99865,0.97872,0.97715,0.89895,0.53644,0.47611,0.97104,0.0008516,0.0008516,0.0008516
|
||||
60,748.907,0.4667,0.40731,0.8844,0.99859,0.97872,0.97724,0.91679,0.51662,0.47041,0.92538,0.0008318,0.0008318,0.0008318
|
||||
61,761.053,0.48002,0.37858,0.89243,0.99837,0.97872,0.97717,0.91843,0.46335,0.442,0.88409,0.000812,0.000812,0.000812
|
||||
62,773.145,0.43463,0.36283,0.88207,0.99837,0.97872,0.97717,0.91843,0.46335,0.442,0.88409,0.0007922,0.0007922,0.0007922
|
||||
63,785.412,0.43289,0.39154,0.84871,0.99813,0.97872,0.97739,0.9354,0.40914,0.40732,0.86189,0.0007724,0.0007724,0.0007724
|
||||
64,797.744,0.43502,0.38236,0.91039,0.99827,0.97872,0.97784,0.93752,0.37865,0.37176,0.85167,0.0007526,0.0007526,0.0007526
|
||||
65,810.068,0.43921,0.41188,0.86485,0.99846,0.97872,0.97884,0.9381,0.35086,0.3462,0.83593,0.0007328,0.0007328,0.0007328
|
||||
66,822.284,0.44575,0.3927,0.86253,0.99864,0.97872,0.97944,0.93368,0.32992,0.32072,0.82701,0.000713,0.000713,0.000713
|
||||
67,834.473,0.46097,0.41194,0.89441,0.99872,0.97872,0.9798,0.94983,0.31568,0.32609,0.82776,0.0006932,0.0006932,0.0006932
|
||||
68,846.959,0.40676,0.3752,0.84464,0.99868,0.97872,0.97935,0.93999,0.31936,0.34046,0.83023,0.0006734,0.0006734,0.0006734
|
||||
69,859.17,0.47302,0.4116,0.89503,0.9987,0.97872,0.97938,0.93014,0.32576,0.34619,0.82973,0.0006536,0.0006536,0.0006536
|
||||
70,871.788,0.52011,0.39728,0.85958,0.9987,0.97872,0.97938,0.93014,0.32576,0.34619,0.82973,0.0006338,0.0006338,0.0006338
|
||||
71,884.043,0.58306,0.41963,0.95591,0.99873,0.97872,0.97854,0.92242,0.32627,0.33877,0.83329,0.000614,0.000614,0.000614
|
||||
72,896.191,0.44905,0.40614,0.83903,0.99844,0.97872,0.97813,0.92729,0.34406,0.34312,0.83949,0.0005942,0.0005942,0.0005942
|
||||
73,908.587,0.50462,0.45495,0.92286,0.99833,0.97872,0.97786,0.93191,0.35212,0.34966,0.84209,0.0005744,0.0005744,0.0005744
|
||||
74,920.956,0.49598,0.4015,0.91827,0.99864,0.97872,0.97752,0.93552,0.34121,0.34949,0.83354,0.0005546,0.0005546,0.0005546
|
||||
75,933.127,0.43941,0.35474,0.85717,0.99888,0.97872,0.97728,0.94156,0.32274,0.33697,0.83019,0.0005348,0.0005348,0.0005348
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||||
76,945.319,0.33304,0.35789,0.75322,0.99887,0.97872,0.97697,0.94246,0.31782,0.30712,0.82927,0.000515,0.000515,0.000515
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77,957.422,0.42698,0.36528,0.87527,0.99887,0.97872,0.97668,0.93877,0.31583,0.29704,0.82583,0.0004952,0.0004952,0.0004952
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||||
78,969.506,0.41869,0.35186,0.85568,0.99887,0.97872,0.97668,0.93877,0.31583,0.29704,0.82583,0.0004754,0.0004754,0.0004754
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||||
79,981.665,0.52069,0.44429,0.93525,0.99886,0.97872,0.97674,0.93952,0.30169,0.28544,0.8193,0.0004556,0.0004556,0.0004556
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||||
80,993.91,0.49789,0.39059,0.87927,0.99887,0.97872,0.97674,0.94902,0.31148,0.29732,0.81772,0.0004358,0.0004358,0.0004358
|
||||
81,1006.02,0.31553,0.48867,0.72427,0.99888,0.97872,0.97694,0.93883,0.3188,0.31809,0.81523,0.000416,0.000416,0.000416
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||||
82,1018.11,0.40259,0.32382,0.80621,0.99889,0.97872,0.97754,0.94697,0.32522,0.3372,0.81375,0.0003962,0.0003962,0.0003962
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||||
83,1030.39,0.38935,0.33893,0.85587,0.99891,0.97872,0.97806,0.95306,0.32833,0.3454,0.81443,0.0003764,0.0003764,0.0003764
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||||
84,1042.67,0.40809,0.33476,0.86239,0.99892,0.97872,0.97833,0.95458,0.33555,0.34576,0.81603,0.0003566,0.0003566,0.0003566
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||||
85,1055.11,0.37372,0.32195,0.87594,0.99893,0.97872,0.97864,0.95668,0.33034,0.34069,0.81314,0.0003368,0.0003368,0.0003368
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||||
86,1067.38,0.34389,0.35748,0.71996,0.99893,0.97872,0.97864,0.95668,0.33034,0.34069,0.81314,0.000317,0.000317,0.000317
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||||
87,1079.54,0.42785,0.34565,0.86451,0.99893,0.97872,0.97898,0.96041,0.32701,0.33851,0.81154,0.0002972,0.0002972,0.0002972
|
||||
88,1091.67,0.42802,0.39065,0.84544,0.99894,0.97872,0.97973,0.95603,0.33187,0.33307,0.81161,0.0002774,0.0002774,0.0002774
|
||||
89,1103.77,0.34123,0.3423,0.73218,0.99893,0.97872,0.9809,0.95938,0.32137,0.32051,0.80593,0.0002576,0.0002576,0.0002576
|
||||
90,1116.04,0.44599,0.36038,0.85304,0.99892,0.97872,0.98183,0.96393,0.30159,0.31016,0.79929,0.0002378,0.0002378,0.0002378
|
||||
91,1128.28,0.33562,0.32043,0.8962,0.9989,0.97872,0.98176,0.96518,0.28064,0.30545,0.79248,0.000218,0.000218,0.000218
|
||||
92,1140.55,0.29044,0.29998,0.82584,0.99888,0.97872,0.98136,0.96358,0.26929,0.29644,0.78901,0.0001982,0.0001982,0.0001982
|
||||
93,1152.73,0.37089,0.34126,0.84921,0.99886,0.97872,0.9805,0.95585,0.26883,0.29813,0.78796,0.0001784,0.0001784,0.0001784
|
||||
94,1164.71,0.3162,0.30507,0.83164,0.99886,0.97872,0.9805,0.95585,0.26883,0.29813,0.78796,0.0001586,0.0001586,0.0001586
|
||||
95,1177.4,0.33659,0.29096,0.81282,0.99881,0.97872,0.98023,0.95581,0.26573,0.29376,0.78614,0.0001388,0.0001388,0.0001388
|
||||
96,1189.79,0.33457,0.31,0.85468,0.9988,0.97872,0.98019,0.95007,0.25759,0.28612,0.78493,0.000119,0.000119,0.000119
|
||||
97,1201.95,0.31452,0.29857,0.78745,0.99877,0.97872,0.98015,0.95625,0.24977,0.27814,0.78481,9.92e-05,9.92e-05,9.92e-05
|
||||
98,1214.46,0.28257,0.30092,0.73517,0.99877,0.97872,0.97991,0.95591,0.24404,0.27119,0.78563,7.94e-05,7.94e-05,7.94e-05
|
||||
99,1226.52,0.3032,0.30324,0.79579,0.99876,0.97872,0.9795,0.95321,0.24443,0.26892,0.78643,5.96e-05,5.96e-05,5.96e-05
|
||||
100,1238.62,0.28926,0.29137,0.84311,0.99876,0.97872,0.97947,0.95331,0.24457,0.27006,0.78689,3.98e-05,3.98e-05,3.98e-05
|
||||
|
|
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runs/detect/train28/F1_curve.png
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105
runs/detect/train28/args.yaml
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@ -0,0 +1,105 @@
|
||||
task: detect
|
||||
mode: train
|
||||
model: C:\workspace\le-yolo\runs\detect\train27\weights\last.pt
|
||||
data: data.yaml
|
||||
epochs: 100
|
||||
time: null
|
||||
patience: 100
|
||||
batch: 8
|
||||
imgsz: 640
|
||||
save: true
|
||||
save_period: -1
|
||||
cache: false
|
||||
device: cpu
|
||||
workers: 8
|
||||
project: null
|
||||
name: train28
|
||||
exist_ok: false
|
||||
pretrained: true
|
||||
optimizer: auto
|
||||
verbose: true
|
||||
seed: 0
|
||||
deterministic: true
|
||||
single_cls: false
|
||||
rect: false
|
||||
cos_lr: false
|
||||
close_mosaic: 10
|
||||
resume: false
|
||||
amp: true
|
||||
fraction: 1.0
|
||||
profile: false
|
||||
freeze: null
|
||||
multi_scale: false
|
||||
overlap_mask: true
|
||||
mask_ratio: 4
|
||||
dropout: 0.0
|
||||
val: true
|
||||
split: val
|
||||
save_json: false
|
||||
conf: null
|
||||
iou: 0.7
|
||||
max_det: 300
|
||||
half: false
|
||||
dnn: false
|
||||
plots: true
|
||||
source: null
|
||||
vid_stride: 1
|
||||
stream_buffer: false
|
||||
visualize: false
|
||||
augment: false
|
||||
agnostic_nms: false
|
||||
classes: null
|
||||
retina_masks: false
|
||||
embed: null
|
||||
show: false
|
||||
save_frames: false
|
||||
save_txt: false
|
||||
save_conf: false
|
||||
save_crop: false
|
||||
show_labels: true
|
||||
show_conf: true
|
||||
show_boxes: true
|
||||
line_width: null
|
||||
format: torchscript
|
||||
keras: false
|
||||
optimize: false
|
||||
int8: false
|
||||
dynamic: false
|
||||
simplify: true
|
||||
opset: null
|
||||
workspace: null
|
||||
nms: false
|
||||
lr0: 0.01
|
||||
lrf: 0.01
|
||||
momentum: 0.937
|
||||
weight_decay: 0.0005
|
||||
warmup_epochs: 3.0
|
||||
warmup_momentum: 0.8
|
||||
warmup_bias_lr: 0.1
|
||||
box: 7.5
|
||||
cls: 0.5
|
||||
dfl: 1.5
|
||||
pose: 12.0
|
||||
kobj: 1.0
|
||||
nbs: 64
|
||||
hsv_h: 0.015
|
||||
hsv_s: 0.7
|
||||
hsv_v: 0.4
|
||||
degrees: 0.0
|
||||
translate: 0.1
|
||||
scale: 0.5
|
||||
shear: 0.0
|
||||
perspective: 0.0
|
||||
flipud: 0.0
|
||||
fliplr: 0.5
|
||||
bgr: 0.0
|
||||
mosaic: 1.0
|
||||
mixup: 0.0
|
||||
cutmix: 0.0
|
||||
copy_paste: 0.0
|
||||
copy_paste_mode: flip
|
||||
auto_augment: randaugment
|
||||
erasing: 0.4
|
||||
cfg: null
|
||||
tracker: botsort.yaml
|
||||
save_dir: C:\workspace\le-yolo\runs\detect\train28
|
BIN
runs/detect/train28/confusion_matrix.png
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runs/detect/train28/confusion_matrix_normalized.png
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runs/detect/train28/labels.jpg
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After Width: | Height: | Size: 88 KiB |
101
runs/detect/train28/results.csv
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@ -0,0 +1,101 @@
|
||||
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
|
||||
1,12.8898,0.42045,0.35811,0.83878,0.99888,0.97872,0.98045,0.94717,0.25909,0.25594,0.79012,0.00012,0.00012,0.00012
|
||||
2,25.2346,0.35106,0.32729,0.81189,0.9987,0.97872,0.97796,0.94786,0.28372,0.28065,0.79161,0.000257426,0.000257426,0.000257426
|
||||
3,37.509,0.42684,0.36561,0.92835,0.99873,0.97872,0.97651,0.91721,0.36242,0.36029,0.82176,0.00039208,0.00039208,0.00039208
|
||||
4,49.7907,0.48991,0.42391,0.97558,0.9987,0.97872,0.97668,0.9092,0.48784,0.3597,0.88719,0.000523962,0.000523962,0.000523962
|
||||
5,62,0.4171,0.36673,0.84649,0.99866,0.97872,0.97694,0.90723,0.41375,0.31067,0.83483,0.000653072,0.000653072,0.000653072
|
||||
6,74.5189,0.46492,0.36189,0.86238,0.99874,0.97872,0.97706,0.90584,0.36981,0.33527,0.81853,0.00077941,0.00077941,0.00077941
|
||||
7,87.0543,0.45367,0.35448,0.85598,0.99877,0.97872,0.9774,0.9174,0.36202,0.35508,0.81799,0.000902976,0.000902976,0.000902976
|
||||
8,99.7457,0.468,0.35802,0.88222,0.99868,0.97872,0.97886,0.89385,0.40219,0.34555,0.81661,0.00102377,0.00102377,0.00102377
|
||||
9,112.075,0.42675,0.34936,0.83937,0.99867,0.97872,0.97908,0.89783,0.39352,0.3544,0.81836,0.00114179,0.00114179,0.00114179
|
||||
10,124.251,0.46832,0.39023,0.87854,0.99857,0.97872,0.97852,0.9185,0.40772,0.35783,0.83179,0.00125704,0.00125704,0.00125704
|
||||
11,136.43,0.49747,0.39796,0.92529,0.99838,0.97872,0.97724,0.90424,0.46589,0.37978,0.85472,0.00136952,0.00136952,0.00136952
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78,1002.92,0.39178,0.29779,0.84488,0.99862,0.97872,0.98074,0.94518,0.26936,0.23827,0.77974,0.0004754,0.0004754,0.0004754
|
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79,1015.02,0.47965,0.3819,0.93702,0.99867,0.97872,0.98112,0.94772,0.27123,0.22973,0.78087,0.0004556,0.0004556,0.0004556
|
||||
80,1027.32,0.45112,0.3419,0.86119,0.99872,0.97872,0.98213,0.94717,0.29609,0.24435,0.78522,0.0004358,0.0004358,0.0004358
|
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81,1039.86,0.3028,0.33919,0.71928,0.99876,0.97872,0.98281,0.94487,0.3121,0.24699,0.79206,0.000416,0.000416,0.000416
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82,1052.41,0.35602,0.28423,0.79771,0.99878,0.97872,0.98342,0.94624,0.31603,0.24031,0.79987,0.0003962,0.0003962,0.0003962
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83,1064.77,0.35567,0.27337,0.84639,0.99882,0.97872,0.98332,0.94743,0.32053,0.23592,0.80526,0.0003764,0.0003764,0.0003764
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85,1089.26,0.37428,0.28026,0.87265,0.99886,0.97872,0.98221,0.94908,0.31776,0.25241,0.805,0.0003368,0.0003368,0.0003368
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86,1101.59,0.31867,0.25367,0.71689,0.99886,0.97872,0.98221,0.94908,0.31776,0.25241,0.805,0.000317,0.000317,0.000317
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87,1114.06,0.38496,0.30786,0.84856,0.99886,0.97872,0.98229,0.94861,0.31084,0.25736,0.80439,0.0002972,0.0002972,0.0002972
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88,1126.85,0.39607,0.33479,0.83886,0.99887,0.97872,0.98263,0.94704,0.30677,0.26994,0.80285,0.0002774,0.0002774,0.0002774
|
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89,1139.04,0.32131,0.26493,0.72703,0.99886,0.97872,0.98301,0.95294,0.29747,0.26916,0.79741,0.0002576,0.0002576,0.0002576
|
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90,1151.37,0.44532,0.33387,0.85804,0.99888,0.97872,0.98272,0.95811,0.28496,0.26672,0.79204,0.0002378,0.0002378,0.0002378
|
||||
91,1163.63,0.33359,0.28629,0.88836,0.99889,0.97872,0.98169,0.9563,0.26795,0.25706,0.78541,0.000218,0.000218,0.000218
|
||||
92,1175.9,0.29363,0.26195,0.82068,0.99889,0.97872,0.98032,0.95598,0.25763,0.24138,0.78058,0.0001982,0.0001982,0.0001982
|
||||
93,1188.46,0.31758,0.24923,0.82758,0.99888,0.97872,0.9795,0.95798,0.25853,0.22807,0.77924,0.0001784,0.0001784,0.0001784
|
||||
94,1200.73,0.2941,0.25918,0.82094,0.99888,0.97872,0.9795,0.95798,0.25853,0.22807,0.77924,0.0001586,0.0001586,0.0001586
|
||||
95,1213.1,0.31419,0.22755,0.79767,0.99885,0.97872,0.97911,0.95684,0.25964,0.23219,0.77761,0.0001388,0.0001388,0.0001388
|
||||
96,1225.2,0.33218,0.27002,0.84346,0.99884,0.97872,0.97918,0.95929,0.2589,0.23171,0.77632,0.000119,0.000119,0.000119
|
||||
97,1237.39,0.30554,0.2535,0.77551,0.99884,0.97872,0.97924,0.95676,0.25592,0.23301,0.77527,9.92e-05,9.92e-05,9.92e-05
|
||||
98,1249.55,0.26152,0.23051,0.71792,0.99883,0.97872,0.97935,0.957,0.25389,0.23283,0.77503,7.94e-05,7.94e-05,7.94e-05
|
||||
99,1262.09,0.28429,0.24512,0.77567,0.99882,0.97872,0.97927,0.95995,0.25514,0.23616,0.77588,5.96e-05,5.96e-05,5.96e-05
|
||||
100,1274.2,0.30278,0.25123,0.83641,0.99881,0.97872,0.97921,0.95976,0.25783,0.23404,0.77676,3.98e-05,3.98e-05,3.98e-05
|
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After Width: | Height: | Size: 199 KiB |
BIN
runs/detect/train282/val_batch2_labels.jpg
Normal file
After Width: | Height: | Size: 192 KiB |
BIN
runs/detect/train282/val_batch2_pred.jpg
Normal file
After Width: | Height: | Size: 197 KiB |
105
runs/detect/train29/args.yaml
Normal file
@ -0,0 +1,105 @@
|
||||
task: detect
|
||||
mode: train
|
||||
model: C:\workspace\le-yolo\runs\detect\train28\weights\last.pt
|
||||
data: data.yaml
|
||||
epochs: 100
|
||||
time: null
|
||||
patience: 100
|
||||
batch: 8
|
||||
imgsz: 640
|
||||
save: true
|
||||
save_period: -1
|
||||
cache: false
|
||||
device: cpu
|
||||
workers: 8
|
||||
project: null
|
||||
name: train29
|
||||
exist_ok: false
|
||||
pretrained: true
|
||||
optimizer: auto
|
||||
verbose: true
|
||||
seed: 0
|
||||
deterministic: true
|
||||
single_cls: false
|
||||
rect: false
|
||||
cos_lr: false
|
||||
close_mosaic: 10
|
||||
resume: false
|
||||
amp: true
|
||||
fraction: 1.0
|
||||
profile: false
|
||||
freeze: null
|
||||
multi_scale: false
|
||||
overlap_mask: true
|
||||
mask_ratio: 4
|
||||
dropout: 0.0
|
||||
val: true
|
||||
split: val
|
||||
save_json: false
|
||||
conf: null
|
||||
iou: 0.7
|
||||
max_det: 300
|
||||
half: false
|
||||
dnn: false
|
||||
plots: true
|
||||
source: null
|
||||
vid_stride: 1
|
||||
stream_buffer: false
|
||||
visualize: false
|
||||
augment: false
|
||||
agnostic_nms: false
|
||||
classes: null
|
||||
retina_masks: false
|
||||
embed: null
|
||||
show: false
|
||||
save_frames: false
|
||||
save_txt: false
|
||||
save_conf: false
|
||||
save_crop: false
|
||||
show_labels: true
|
||||
show_conf: true
|
||||
show_boxes: true
|
||||
line_width: null
|
||||
format: torchscript
|
||||
keras: false
|
||||
optimize: false
|
||||
int8: false
|
||||
dynamic: false
|
||||
simplify: true
|
||||
opset: null
|
||||
workspace: null
|
||||
nms: false
|
||||
lr0: 0.01
|
||||
lrf: 0.01
|
||||
momentum: 0.937
|
||||
weight_decay: 0.0005
|
||||
warmup_epochs: 3.0
|
||||
warmup_momentum: 0.8
|
||||
warmup_bias_lr: 0.1
|
||||
box: 7.5
|
||||
cls: 0.5
|
||||
dfl: 1.5
|
||||
pose: 12.0
|
||||
kobj: 1.0
|
||||
nbs: 64
|
||||
hsv_h: 0.015
|
||||
hsv_s: 0.7
|
||||
hsv_v: 0.4
|
||||
degrees: 0.0
|
||||
translate: 0.1
|
||||
scale: 0.5
|
||||
shear: 0.0
|
||||
perspective: 0.0
|
||||
flipud: 0.0
|
||||
fliplr: 0.5
|
||||
bgr: 0.0
|
||||
mosaic: 1.0
|
||||
mixup: 0.0
|
||||
cutmix: 0.0
|
||||
copy_paste: 0.0
|
||||
copy_paste_mode: flip
|
||||
auto_augment: randaugment
|
||||
erasing: 0.4
|
||||
cfg: null
|
||||
tracker: botsort.yaml
|
||||
save_dir: C:\workspace\le-yolo\runs\detect\train29
|
BIN
runs/detect/train29/labels.jpg
Normal file
After Width: | Height: | Size: 88 KiB |
6
runs/detect/train29/results.csv
Normal file
@ -0,0 +1,6 @@
|
||||
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
|
||||
1,10.9915,0.32252,0.30008,0.82477,0.70044,0.61111,0.70693,0.40802,1.4156,1.82764,1.29528,0.00012,0.00012,0.00012
|
||||
2,21.3682,0.53183,0.3616,0.91691,0.72802,0.59561,0.70432,0.41349,1.33528,1.92446,1.26227,0.000257426,0.000257426,0.000257426
|
||||
3,31.8168,0.42738,0.31044,0.85128,0.82643,0.61111,0.66695,0.40551,1.29937,1.92941,1.24453,0.00039208,0.00039208,0.00039208
|
||||
4,42.1957,0.37061,0.29492,0.73008,0.77904,0.61111,0.64413,0.38489,1.31936,1.98984,1.23691,0.000523962,0.000523962,0.000523962
|
||||
5,52.9546,0.41831,0.31655,0.84052,0.85674,0.66465,0.68326,0.41733,1.30685,2.14326,1.23156,0.000653072,0.000653072,0.000653072
|
|
BIN
runs/detect/train29/train_batch0.jpg
Normal file
After Width: | Height: | Size: 256 KiB |
BIN
runs/detect/train29/train_batch1.jpg
Normal file
After Width: | Height: | Size: 254 KiB |
BIN
runs/detect/train29/train_batch2.jpg
Normal file
After Width: | Height: | Size: 262 KiB |
BIN
runs/detect/train29/weights/best.pt
Normal file
BIN
runs/detect/train29/weights/last.pt
Normal file
105
runs/detect/train30/args.yaml
Normal file
@ -0,0 +1,105 @@
|
||||
task: detect
|
||||
mode: train
|
||||
model: C:\workspace\le-yolo\runs\detect\train28\weights\last.pt
|
||||
data: data.yaml
|
||||
epochs: 500
|
||||
time: null
|
||||
patience: 100
|
||||
batch: 8
|
||||
imgsz: 640
|
||||
save: true
|
||||
save_period: -1
|
||||
cache: false
|
||||
device: cpu
|
||||
workers: 8
|
||||
project: null
|
||||
name: train30
|
||||
exist_ok: false
|
||||
pretrained: true
|
||||
optimizer: auto
|
||||
verbose: true
|
||||
seed: 0
|
||||
deterministic: true
|
||||
single_cls: false
|
||||
rect: false
|
||||
cos_lr: false
|
||||
close_mosaic: 10
|
||||
resume: false
|
||||
amp: true
|
||||
fraction: 1.0
|
||||
profile: false
|
||||
freeze: null
|
||||
multi_scale: false
|
||||
overlap_mask: true
|
||||
mask_ratio: 4
|
||||
dropout: 0.0
|
||||
val: true
|
||||
split: val
|
||||
save_json: false
|
||||
conf: null
|
||||
iou: 0.7
|
||||
max_det: 300
|
||||
half: false
|
||||
dnn: false
|
||||
plots: true
|
||||
source: null
|
||||
vid_stride: 1
|
||||
stream_buffer: false
|
||||
visualize: false
|
||||
augment: false
|
||||
agnostic_nms: false
|
||||
classes: null
|
||||
retina_masks: false
|
||||
embed: null
|
||||
show: false
|
||||
save_frames: false
|
||||
save_txt: false
|
||||
save_conf: false
|
||||
save_crop: false
|
||||
show_labels: true
|
||||
show_conf: true
|
||||
show_boxes: true
|
||||
line_width: null
|
||||
format: torchscript
|
||||
keras: false
|
||||
optimize: false
|
||||
int8: false
|
||||
dynamic: false
|
||||
simplify: true
|
||||
opset: null
|
||||
workspace: null
|
||||
nms: false
|
||||
lr0: 0.01
|
||||
lrf: 0.01
|
||||
momentum: 0.937
|
||||
weight_decay: 0.0005
|
||||
warmup_epochs: 3.0
|
||||
warmup_momentum: 0.8
|
||||
warmup_bias_lr: 0.1
|
||||
box: 7.5
|
||||
cls: 0.5
|
||||
dfl: 1.5
|
||||
pose: 12.0
|
||||
kobj: 1.0
|
||||
nbs: 64
|
||||
hsv_h: 0.015
|
||||
hsv_s: 0.7
|
||||
hsv_v: 0.4
|
||||
degrees: 0.0
|
||||
translate: 0.1
|
||||
scale: 0.5
|
||||
shear: 0.0
|
||||
perspective: 0.0
|
||||
flipud: 0.0
|
||||
fliplr: 0.5
|
||||
bgr: 0.0
|
||||
mosaic: 1.0
|
||||
mixup: 0.0
|
||||
cutmix: 0.0
|
||||
copy_paste: 0.0
|
||||
copy_paste_mode: flip
|
||||
auto_augment: randaugment
|
||||
erasing: 0.4
|
||||
cfg: null
|
||||
tracker: botsort.yaml
|
||||
save_dir: C:\workspace\le-yolo\runs\detect\train30
|
BIN
runs/detect/train30/labels.jpg
Normal file
After Width: | Height: | Size: 88 KiB |
3
runs/detect/train30/results.csv
Normal file
@ -0,0 +1,3 @@
|
||||
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
|
||||
1,11.1511,0.32252,0.30008,0.82477,0.70044,0.61111,0.70693,0.40802,1.4156,1.82764,1.29528,0.00012,0.00012,0.00012
|
||||
2,22.5621,0.53184,0.36156,0.91688,0.72808,0.5958,0.70432,0.41349,1.33491,1.92438,1.2624,0.000259485,0.000259485,0.000259485
|
|
BIN
runs/detect/train30/train_batch0.jpg
Normal file
After Width: | Height: | Size: 256 KiB |
BIN
runs/detect/train30/train_batch1.jpg
Normal file
After Width: | Height: | Size: 254 KiB |
BIN
runs/detect/train30/train_batch2.jpg
Normal file
After Width: | Height: | Size: 262 KiB |
BIN
runs/detect/train30/weights/best.pt
Normal file
BIN
runs/detect/train30/weights/last.pt
Normal file
21
src/data.py
@ -2,5 +2,26 @@ import cv2
|
||||
import numpy as np
|
||||
import os
|
||||
from PIL import Image,ImageEnhance
|
||||
from PIL import Image
|
||||
import os
|
||||
|
||||
# 指定文件夹路径
|
||||
folder_path = 'your_folder_path'
|
||||
|
||||
# 遍历文件夹中的所有文件
|
||||
for filename in os.listdir(folder_path):
|
||||
# 检查文件是否是图片(这里以常见的图片格式为例)
|
||||
if filename.lower().endswith(('.png', '.jpg', '.jpeg', '.bmp', '.gif')):
|
||||
# 打开图片
|
||||
img_path = os.path.join(folder_path, filename)
|
||||
img = Image.open(img_path)
|
||||
|
||||
# 转换为灰度图像
|
||||
gray_img = img.convert('L')
|
||||
|
||||
# 保存灰度图像(可以保存到原文件夹或指定的新文件夹)
|
||||
# 这里以在原文件夹保存为例,文件名不变,只是修改了内容
|
||||
gray_img.save(img_path)
|
||||
|
||||
print(f"已将 {filename} 转换为灰度图像并保存")
|
||||
|
||||
|
@ -1,6 +1,6 @@
|
||||
path: C:\workspace\le-yolo\data
|
||||
train: images/train
|
||||
val: images/val
|
||||
test: images/test
|
||||
val: images/test
|
||||
test: images/val
|
||||
nc: 1
|
||||
names: [ 'person' ]
|
@ -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/3.mp4", show=True, save=True)
|
||||
model = YOLO(r"C:\workspace\le-yolo\runs\detect\train28\weights\best.pt")
|
||||
results = model.predict("../res/4.mp4", show=True, save=True)
|
||||
|
@ -1,5 +1,5 @@
|
||||
from ultralytics import YOLO
|
||||
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 = YOLO(r"C:\workspace\le-yolo\runs\detect\train28\weights\last.pt")
|
||||
model.train(data="data.yaml", epochs=500, batch=8, device='cpu', imgsz=640)
|
||||
model.val()
|
||||
print('训练完成')
|