提交 de6637f9 编写于 作者: M MRXLT

fix senta

上级 cd827361
......@@ -12,5 +12,5 @@ In the Chinese sentiment classification task, the Chinese word segmentation need
In this demo, the LAC task is placed in the preprocessing part of the HTTP prediction service of the sentiment classification task. The LAC prediction service is deployed on the CPU, and the sentiment classification task is deployed on the GPU, which can be changed according to the actual situation.
## Client prediction
```
curl -H "Content-Type:application/json" -X POST -d '{"words": "天气不错 | 0", "fetch":["sentence_feature"]}' http://127.0.0.1:9292/senta/prediction
curl -H "Content-Type:application/json" -X POST -d '{"feed":[{"words": "天气不错"}], "fetch":["class_probs"]}' http://127.0.0.1:9292/senta/prediction
```
......@@ -13,5 +13,5 @@ python senta_web_service.py senta_bilstm_model/ workdir 9292
## 客户端预测
```
curl -H "Content-Type:application/json" -X POST -d '{"words": "天气不错 | 0", "fetch":["sentence_feature"]}' http://127.0.0.1:9292/senta/prediction
curl -H "Content-Type:application/json" -X POST -d '{"feed":[{"words": "天气不错"}], "fetch":["class_probs"]}' http://127.0.0.1:9292/senta/prediction
```
#wget https://paddle-serving.bj.bcebos.com/paddle_hub_models/text/SentimentAnalysis/senta_bilstm.tar.gz --no-check-certificate
#tar -xzvf senta_bilstm.tar.gz
wget https://paddle-serving.bj.bcebos.com/paddle_hub_models/text/SentimentAnalysis/senta_bilstm.tar.gz --no-check-certificate
tar -xzvf senta_bilstm.tar.gz
wget https://paddle-serving.bj.bcebos.com/paddle_hub_models/text/LexicalAnalysis/lac_model.tar.gz --no-check-certificate
tar -xzvf lac_model.tar.gz
wget https://paddle-serving.bj.bcebos.com/reader/lac/lac_dict.tar.gz --no-check-certificate
......
......@@ -70,9 +70,7 @@ class SentaService(WebService):
self.senta_reader = SentaReader(vocab_path=self.senta_dict_path)
def preprocess(self, feed={}, fetch={}):
if "words" not in feed:
raise ("feed data error!")
feed_data = self.lac_reader.process(feed["words"])
feed_data = self.lac_reader.process(feed[0]["words"])
fetch = ["crf_decode"]
if self.show:
print("---- lac reader ----")
......@@ -81,7 +79,7 @@ class SentaService(WebService):
if self.show:
print("---- lac out ----")
print(lac_result)
segs = self.lac_reader.parse_result(feed["words"],
segs = self.lac_reader.parse_result(feed[0]["words"],
lac_result["crf_decode"])
if self.show:
print("---- lac parse ----")
......@@ -107,31 +105,4 @@ senta_service.init_lac_reader()
senta_service.init_senta_reader()
senta_service.init_lac_service()
senta_service.run_server()
#senta_service.run_flask()
from flask import Flask, request
app_instance = Flask(__name__)
@app_instance.before_first_request
def init():
global uci_service
senta_service._launch_web_service()
service_name = "/" + senta_service.name + "/prediction"
@app_instance.route(service_name, methods=["POST"])
def run():
print("---- run ----")
print(request.json)
return senta_service.get_prediction(request)
if __name__ == "__main__":
app_instance.run(host="0.0.0.0",
port=senta_service.port,
threaded=False,
processes=4)
senta_service.run_flask()
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