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Ryanflash/herislab-ca-training-data

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Hugging Face2026-04-01 更新2026-04-12 收录
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资源简介:
--- language: - en license: mit task_categories: - image-classification tags: - thermal-imaging - anomaly-detection - autoencoder - electrical-fault-detection - infrared size_categories: - 10K<n<100K --- # CA_Training_Data -- Convolutional Autoencoder (Track A) Curated dataset for training and evaluating the Convolutional Autoencoder anomaly detection model. ## Approach The autoencoder is trained **only on normal (no-fault) images**. At inference, high reconstruction error indicates an anomaly/fault. ## Structure ``` train/normal/ -- Normal images for autoencoder training electric_motor/ -- 168 PNG (Electric Motor Thermal Fault Diagnosis, no_fault class) induction_motor/ -- 20 BMP (Thermal Images of Induction Motor, Noload class) pv_om_inspection/ -- 7,836 TIFF (PV System O&M Inspection, double-row + single-row) pv_thermal_inspection/ -- 1,075 TIFF (PV System Thermal Inspection) solar_modules/ -- 2,302 JPG (Infrared Solar Modules, No-Anomaly class) test/normal/ -- Held-out normal images for threshold calibration electric_motor/ -- 28 PNG induction_motor/ -- 5 BMP test/fault/ -- Fault images for evaluating anomaly detection electric_motor/ -- 173 PNG (Electric Motor Thermal Fault Diagnosis, fault class) induction_motor/ -- 344 BMP (Thermal Images of Induction Motor, 10 fault conditions) ``` ## Total Counts | Split | Normal | Fault | Total | |-------|--------|-------|-------| | Train | 11,401 | 0 | 11,401 | | Test | 33 | 517 | 550 | ## Source Datasets | Directory | Source Dataset | Domain | |-----------|--------------|--------| | electric_motor | Electric Motor Thermal image Fault Diagnosis DATASET | Electrical (primary) | | induction_motor | Thermal Images of Induction Motor Dataset | Electrical (primary) | | pv_om_inspection | Photovoltaic System O&M inspection | Solar PV (adjacent) | | pv_thermal_inspection | Photovoltaic system thermal inspection | Solar PV (adjacent) | | solar_modules | Infrared Solar Modules (No-Anomaly only) | Solar PV (adjacent) | ## Notes - PV O&M files are prefixed `dr_` (double-row) and `sr_` (single-row) to avoid filename collisions - Solar module images were filtered from module_metadata.json (anomaly_class == "No-Anomaly") - Test/normal hold-out is ~14-20% of electrical equipment normal images - Image formats are mixed (PNG, BMP, TIFF, JPG) -- preprocessing/normalization is required before training
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