added env variables for server limits
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@@ -38,8 +38,13 @@ IMAGE_SIZE_CNN = 64
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IMAGE_SIZE_YOLO = 64
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# ---- Resource limits (the server is weak, keep everything small and bounded) ----
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TORCH_THREADS = int(os.getenv("TORCH_THREADS", "1"))
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MAX_PENDING_INFERENCES = int(os.getenv("MAX_PENDING_INFERENCES", "2")) # running + waiting
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# Number of predictions (bird or face) that may run at the same time.
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PARALLEL_INFERENCES = max(1, int(os.getenv("PARALLEL_INFERENCES", "1")))
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# Extra requests allowed to wait for a free slot; anything beyond is rejected.
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QUEUED_INFERENCES = max(0, int(os.getenv("QUEUED_INFERENCES", "1")))
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# PyTorch threads used by EACH running prediction. Total CPU use is roughly
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# PARALLEL_INFERENCES * TORCH_THREADS, so keep the product <= your CPU cores.
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TORCH_THREADS = max(1, int(os.getenv("TORCH_THREADS", "1")))
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MAX_UPLOAD_BYTES = 5 * 1024 * 1024
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MAX_FRAME_BYTES = 1 * 1024 * 1024
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MAX_IMAGE_PIXELS = 20_000_000
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@@ -49,7 +54,6 @@ FACE_MAX_FPS = float(os.getenv("FACE_MAX_FPS", "5.5")) # per websocket connecti
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FACE_MIN_INTERVAL = 1 / FACE_MAX_FPS
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DECODE_DRAFT_SIZE = (256, 256) # JPEG decodes at reduced scale, still larger than the 64px model input
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torch.set_num_threads(TORCH_THREADS)
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Image.MAX_IMAGE_PIXELS = MAX_IMAGE_PIXELS
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origins = [
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@@ -166,8 +170,14 @@ class RateLimiter:
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return True
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predict_limiter = RateLimiter(limit=10, window=60)
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review_limiter = RateLimiter(limit=5, window=60)
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predict_limiter = RateLimiter(
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limit=max(1, int(os.getenv("PREDICT_RATE_LIMIT", "10"))),
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window=max(1.0, float(os.getenv("PREDICT_RATE_WINDOW", "60"))),
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)
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review_limiter = RateLimiter(
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limit=max(1, int(os.getenv("REVIEW_RATE_LIMIT", "5"))),
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window=max(1.0, float(os.getenv("REVIEW_RATE_WINDOW", "60"))),
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)
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def rate_limit(limiter: RateLimiter):
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@@ -181,15 +191,28 @@ class Busy(Exception):
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pass
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class InferenceGate:
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"""One worker thread runs all inference. At most `max_pending` jobs
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(running + waiting) are admitted; everything else is rejected at once
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instead of queueing up and eating memory."""
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def init_inference_thread():
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# Must run inside each worker thread: with OpenMP the thread count is a
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# per-thread setting, so setting it once in the main thread is not enough.
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torch.set_num_threads(TORCH_THREADS)
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def __init__(self, max_pending: int):
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self.max_pending = max_pending
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class InferenceGate:
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"""Runs predictions on `parallel` worker threads. At most
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`parallel + queued` jobs (running + waiting) are admitted; everything
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else is rejected at once instead of queueing up and eating memory.
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The models are in eval mode under torch.inference_mode(), so several
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threads can safely run forward passes on the same model object."""
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def __init__(self, parallel: int, queued: int):
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self.max_pending = parallel + queued
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self.pending = 0
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self.executor = ThreadPoolExecutor(max_workers=1, thread_name_prefix="inference")
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self.executor = ThreadPoolExecutor(
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max_workers=parallel,
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thread_name_prefix="inference",
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initializer=init_inference_thread,
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)
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async def run(self, fn, *args):
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if self.pending >= self.max_pending:
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@@ -201,7 +224,7 @@ class InferenceGate:
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self.pending -= 1
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gate = InferenceGate(MAX_PENDING_INFERENCES)
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gate = InferenceGate(PARALLEL_INFERENCES, QUEUED_INFERENCES)
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class InvalidImage(Exception):
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@@ -32,6 +32,15 @@ services:
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- cnn_network
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pull_policy: never
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container_name: cnn_api
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environment:
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- PARALLEL_INFERENCES=4
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- QUEUED_INFERENCES=2
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- TORCH_THREADS=2
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- FACE_MAX_FPS=5.5
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- PREDICT_RATE_LIMIT=10
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- PREDICT_RATE_WINDOW=60
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- REVIEW_RATE_LIMIT=5
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- REVIEW_RATE_WINDOW=60
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cnn_website:
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