提交 acc4304c 编写于 作者: G guru4elephant

add gpu web service scripts

上级 4969600f
wget https://paddle-serving.bj.bcebos.com/imagenet-example/conf_and_model.tar.gz wget --no-check-certificate https://paddle-serving.bj.bcebos.com/imagenet-example/conf_and_model.tar.gz
tar -xzvf conf_and_model.tar.gz tar -xzvf conf_and_model.tar.gz
# Copyright (c) 2020 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
from paddle_serving_server_gpu.web_service import WebService
import sys
import os
import base64
from image_reader import ImageReader
class ImageService(WebService):
def preprocess(self, feed={}, fetch=[]):
reader = ImageReader()
if "image" not in feed:
raise ("feed data error!")
sample = base64.b64decode(feed["image"])
img = reader.process_image(sample)
res_feed = {}
res_feed["image"] = img.reshape(-1)
return res_feed, fetch
image_service = ImageService(name="image")
image_service.load_model_config(sys.argv[1])
gpu_ids = os.environ["CUDA_VISIBLE_DEVICES"]
gpus = [int(x) for x in gpu_ids.split(",")]
image_service.set_gpus(gpus)
image_service.prepare_server(
workdir=sys.argv[2], port=int(sys.argv[3]), device="gpu")
image_service.run_server()
...@@ -15,17 +15,22 @@ ...@@ -15,17 +15,22 @@
import requests import requests
import base64 import base64
import json import json
import time
def predict(image_path, server): def predict(image_path, server):
image = base64.b64encode(open(image_path).read()) image = base64.b64encode(open(image_path).read())
req = json.dumps({"image": image, "fetch": ["score"]}) req = json.dumps({"image": image, "fetch": ["score"]})
r = requests.post( r = requests.post(
server, data=req, headers={"Content-Type": "application/json"}) server, data=req, headers={"Content-Type": "application/json"})
print(r.json()["score"]) #print(r.json()["score"])
if __name__ == "__main__": if __name__ == "__main__":
server = "http://127.0.0.1:9393/image/prediction" server = "http://127.0.0.1:9292/image/prediction"
image_path = "./data/n01440764_10026.JPEG" image_path = "./data/n01440764_10026.JPEG"
predict(image_path, server) start = time.time()
for i in range(1000):
predict(image_path, server)
print(i)
end = time.time()
print(end - start)
...@@ -15,15 +15,21 @@ ...@@ -15,15 +15,21 @@
import sys import sys
from image_reader import ImageReader from image_reader import ImageReader
from paddle_serving_client import Client from paddle_serving_client import Client
import time
client = Client() client = Client()
client.load_client_config(sys.argv[1]) client.load_client_config(sys.argv[1])
client.connect(["127.0.0.1:9393"]) client.connect(["127.0.0.1:9292"])
reader = ImageReader() reader = ImageReader()
with open("./data/n01440764_10026.JPEG") as f:
img = f.read()
img = reader.process_image(img).reshape(-1) start = time.time()
fetch_map = client.predict(feed={"image": img}, fetch=["score"]) for i in range(1000):
with open("./data/n01440764_10026.JPEG") as f:
img = f.read()
img = reader.process_image(img).reshape(-1)
fetch_map = client.predict(feed={"image": img}, fetch=["score"])
print(i)
end = time.time()
print(end - start)
print(fetch_map["score"]) #print(fetch_map["score"])
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