mirror of https://github.com/immich-app/immich.git
added locustfile (#2926)
parent
9dd1d81536
commit
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export MACHINE_LEARNING_CACHE_FOLDER=/tmp/model_cache
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export MACHINE_LEARNING_MIN_FACE_SCORE=0.034 # returns 1 face per request; setting this to 0 blows up the number of faces to the thousands
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export MACHINE_LEARNING_MIN_TAG_SCORE=0.0
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export PID_FILE=/tmp/locust_pid
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export LOG_FILE=/tmp/gunicorn.log
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export HEADLESS=false
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export HOST=127.0.0.1:3003
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export CONCURRENCY=4
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export NUM_ENDPOINTS=3
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export PYTHONPATH=app
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gunicorn app.main:app --worker-class uvicorn.workers.UvicornWorker \
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--bind $HOST --daemon --error-logfile $LOG_FILE --pid $PID_FILE
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while true ; do
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echo "Loading models..."
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sleep 5
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if cat $LOG_FILE | grep -q -E "startup complete"; then break; fi
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done
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# "users" are assigned only one task, so multiply concurrency by the number of tasks
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locust --host http://$HOST --web-host 127.0.0.1 \
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--run-time 120s --users $(($CONCURRENCY * $NUM_ENDPOINTS)) $(if $HEADLESS; then echo "--headless"; fi)
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if [[ -e $PID_FILE ]]; then kill $(cat $PID_FILE); fi
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from io import BytesIO
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from locust import HttpUser, events, task
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from PIL import Image
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@events.test_start.add_listener
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def on_test_start(environment, **kwargs):
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global byte_image
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image = Image.new("RGB", (1000, 1000))
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byte_image = BytesIO()
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image.save(byte_image, format="jpeg")
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class InferenceLoadTest(HttpUser):
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abstract: bool = True
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host = "http://127.0.0.1:3003"
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data: bytes
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headers: dict[str, str] = {"Content-Type": "image/jpg"}
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# re-use the image across all instances in a process
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def on_start(self):
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global byte_image
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self.data = byte_image.getvalue()
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class ClassificationLoadTest(InferenceLoadTest):
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@task
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def classify(self):
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self.client.post(
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"/image-classifier/tag-image", data=self.data, headers=self.headers
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)
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class CLIPLoadTest(InferenceLoadTest):
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@task
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def encode_image(self):
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self.client.post(
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"/sentence-transformer/encode-image",
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data=self.data,
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headers=self.headers,
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)
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class RecognitionLoadTest(InferenceLoadTest):
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@task
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def recognize(self):
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self.client.post(
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"/facial-recognition/detect-faces",
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data=self.data,
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headers=self.headers,
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)
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