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252 lines (199 loc) · 7.91 KB
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#!/usr/bin/env python3
"""
Inference script for MVTec AD using Anomalib models.
Visualizes heatmap and masks of detected anomalies.
Examples:
python inference.py --image_path path/to/image.png
python inference.py --image_path image.png --model padim
python inference.py --image_path image.png --category cable
"""
import os
import argparse
from pathlib import Path
import numpy as np
import matplotlib.pyplot as plt
from PIL import Image
from anomalib.data import PredictDataset
from anomalib.engine import Engine
from core import (
MVTEC_CATEGORIES,
DIR_RESULTS,
DIR_OUTPUT,
get_available_models,
load_model_config,
load_model,
get_checkpoint_path,
resize_to_match,
scale_efficientad_score,
)
def run_inference(image_path: str, category: str = "bottle", model_name: str = "patchcore", checkpoint_path: str = None) -> dict:
"""
Runs inference on a single image.
Args:
image_path: Path to the image
category: Category for the model
model_name: Name of the model to use
checkpoint_path: Path to checkpoint (optional, uses default if not provided)
Returns:
dict with: anomaly_score, anomaly_map, pred_mask, image_path
"""
ckpt = checkpoint_path or str(get_checkpoint_path(category, model_name))
if not os.path.exists(ckpt):
raise FileNotFoundError(f"Checkpoint not found: {ckpt}")
model = load_model(model_name)
dataset = PredictDataset(path=image_path)
engine = Engine(
default_root_dir="/tmp/anomalib_inference",
callbacks=[],
)
predictions = engine.predict(model=model, dataset=dataset, ckpt_path=ckpt)
results = {"image_path": image_path, "category": category, "model": model_name}
for batch in predictions:
results["anomaly_score"] = batch.pred_score[0].cpu().item() if batch.pred_score is not None else None
results["anomaly_map"] = batch.anomaly_map[0].cpu().numpy() if batch.anomaly_map is not None else None
results["pred_mask"] = batch.pred_mask[0].cpu().numpy() if batch.pred_mask is not None else None
break
return results
def visualize_results(results: dict, output_dir: Path = None) -> str:
"""
Visualizes heatmap and mask overlayed on original image.
Args:
results: Results from run_inference()
output_dir: Output directory (optional)
Returns:
Path of saved image
"""
model_name = results.get("model", "unknown")
base_output_dir = output_dir or DIR_OUTPUT
output_dir = base_output_dir / model_name
output_dir.mkdir(parents=True, exist_ok=True)
image_path = results["image_path"]
anomaly_score = results["anomaly_score"]
anomaly_map = results["anomaly_map"]
pred_mask = results.get("pred_mask")
model_name = results.get("model", "unknown")
original = np.array(Image.open(image_path).convert("RGB"))
if anomaly_map.ndim == 3:
anomaly_map = anomaly_map.squeeze(0)
is_efficientad = model_name.lower() == "efficientad"
amap_min, amap_max = anomaly_map.min(), anomaly_map.max()
amap_range = amap_max - amap_min
if is_efficientad and amap_range < 0.1:
if amap_range > 1e-8:
anomaly_map = (anomaly_map - amap_min) / amap_range
else:
anomaly_map = np.zeros_like(anomaly_map)
print(f"[INFO] Applied image-level normalization (original range: {amap_min:.4f}-{amap_max:.4f})")
else:
anomaly_map = np.clip(anomaly_map, 0, 1)
anomaly_map = resize_to_match(anomaly_map, original.shape[:2])
is_good = anomaly_score is not None and anomaly_score < 0.5
show_mask_contours = True
if is_efficientad and is_good:
anomaly_map = anomaly_map * 0.3
show_mask_contours = False
print(f"[INFO] EfficientAD: Good image detected - scaling heatmap to low values")
if pred_mask is not None:
if pred_mask.ndim == 3:
pred_mask = pred_mask.squeeze(0)
pred_mask = resize_to_match(pred_mask, original.shape[:2])
show_fourth_panel = pred_mask is not None or (is_efficientad and is_good)
num_cols = 4 if show_fourth_panel else 3
fig, axes = plt.subplots(1, num_cols, figsize=(5 * num_cols, 5), facecolor='white')
for ax in axes:
ax.set_facecolor('white')
axes[0].imshow(original)
axes[0].set_title("Original")
axes[0].axis("off")
if is_efficientad:
anomaly_map_masked = np.ma.masked_where(anomaly_map == 0, anomaly_map)
cmap = plt.cm.jet
cmap.set_bad(color='none')
else:
anomaly_map_masked = anomaly_map
cmap = plt.cm.jet
im = axes[1].imshow(anomaly_map_masked, cmap=cmap, vmin=0, vmax=1, aspect='auto')
axes[1].set_title(f"Anomaly Heatmap ({model_name})")
axes[1].axis("off")
plt.colorbar(im, ax=axes[1], fraction=0.046, pad=0.04)
axes[2].imshow(original, aspect='auto')
axes[2].imshow(anomaly_map_masked, cmap=cmap, alpha=0.5, vmin=0, vmax=1, aspect='auto')
axes[2].set_title("Overlay")
axes[2].axis("off")
if show_fourth_panel:
axes[3].imshow(original)
if show_mask_contours and pred_mask is not None:
axes[3].contour(pred_mask, levels=[0.5], colors="red", linewidths=2)
axes[3].set_title("Predicted Mask")
axes[3].axis("off")
if anomaly_score is not None:
if is_efficientad:
scaled_score = scale_efficientad_score(anomaly_score)
score_str = f"{scaled_score:.4f}"
else:
score_str = f"{anomaly_score:.4f}"
else:
score_str = "N/A"
plt.suptitle(f"Model: {model_name} | Anomaly Score: {score_str}", fontsize=14)
plt.tight_layout()
image_name = Path(image_path).stem
output_path = output_dir / f"inference_{image_name}.png"
plt.savefig(output_path, dpi=150, bbox_inches="tight")
plt.show()
plt.close(fig)
return str(output_path)
def parse_args():
"""Parse command line arguments."""
parser = argparse.ArgumentParser(
description="Inference script for MVTec AD",
formatter_class=argparse.RawDescriptionHelpFormatter,
epilog="""
Examples:
python inference.py --image_path test.png
python inference.py --image_path test.png --model padim
python inference.py --image_path test.png --category cable
"""
)
parser.add_argument(
"--image_path", type=str, required=True,
help="Path to image to analyze"
)
parser.add_argument(
"--category", type=str, default="bottle", choices=MVTEC_CATEGORIES,
help="Category of the model (default: bottle)"
)
parser.add_argument(
"--model", type=str, default="patchcore", choices=get_available_models(),
help="Model to use (default: patchcore)"
)
parser.add_argument(
"--checkpoint", type=str, default=None,
help="Checkpoint path (optional, uses default for category/model)"
)
parser.add_argument(
"--output_dir", type=str, default=None,
help="Output directory (optional)"
)
return parser.parse_args()
def main():
args = parse_args()
if not os.path.exists(args.image_path):
raise FileNotFoundError(f"Image not found: {args.image_path}")
print(f"Inference on: {args.image_path}")
print(f"Model: {args.model} | Category: {args.category}")
results = run_inference(
image_path=args.image_path,
category=args.category,
model_name=args.model,
checkpoint_path=args.checkpoint
)
score = results["anomaly_score"]
print(f"\n{'='*50}")
print(f"ANOMALY SCORE: {score:.4f}" if score else "ANOMALY SCORE: N/A")
print(f"{'='*50}\n")
output_dir = Path(args.output_dir) if args.output_dir else None
output_path = visualize_results(results, output_dir)
print(f"Saved: {output_path}")
return results
if __name__ == "__main__":
main()