# cMedQA2
This is updated version of the dataset for Chinese community medical question answering. The dataset is in version 2.0 and is available for non-commercial research. We will update and expand the database from time to time. In order to protect the privacy, the data is anonymized and no personal information is included.
The older version of cMedQA is v1.0. You can [click here](https://github.com/zhangsheng93/cMedQA)
# Overview
| DataSet | #Ques | #Ans | Ave. #words per Question | Ave. #words per Answer| Ave. #characters per Question | Ave. #characters per Answer |
| :-: | :-: | :-: | :-: | :-: | :-: | :-: |
|Train|100,000|188,490|-|-|48|101|
|Dev|4,000|7,527|-|-|49|101|
|Test|4,000|7,552|-|-|49|100|
|Total|108,000|203,569|-|-|49|101|
* **questions.csv** All Questions and their content.
* **answers.csv** All Answers and their content.
* **train_candidates.txt** **dev_candidates.txt** **test_candidates.txt** The split of training set, development set and test set respectively.
# Paper
**Multi-Scale Attentive Interaction Networks for Chinese Medical Question Answer Selection.** [link to the paper](https://ieeexplore.ieee.org/abstract/document/8548603)
Please cite our paper when you use the dataset.
```
@ARTICLE{8548603,
author={S. Zhang and X. Zhang and H. Wang and L. Guo and S. Liu},
journal={IEEE Access},
title={Multi-Scale Attentive Interaction Networks for Chinese Medical Question Answer Selection},
year={2018},
volume={6},
number={},
pages={74061-74071},
keywords={Biomedical imaging;Data mining;Semantics;Medical services;Feature extraction;Knowledge discovery;Medical question answering;interactive attention;deep learning;deep neural networks},
doi={10.1109/ACCESS.2018.2883637},
ISSN={2169-3536},
month={},}
```
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基于sqlite数据库以及深度学习lstm实现的检索式聊天机器人python源码+详细注释+数据集.zip基于sqlite数据库以及深度学习lstm实现的检索式聊天机器人python源码+详细注释+数据集.zip基于sqlite数据库以及深度学习lstm实现的检索式聊天机器人python源码+详细注释+数据集.zip基于sqlite数据库以及深度学习lstm实现的检索式聊天机器人python源码+详细注释+数据集.zip 【资源说明】 1、该资源内项目代码都是经过测试运行成功,功能正常的情况下才上传的,请放心下载使用。 2、适用人群:主要针对计算机相关专业(如计科、信息安全、数据科学与大数据技术、人工智能、通信、物联网、数学、电子信息等)的同学或企业员工下载使用,具有较高的学习借鉴价值。 3、不仅适合小白学习实战练习,也可作为大作业、课程设计、毕设项目、初期项目立项演示等,欢迎下载,互相学习,共同进步!
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基于sqlite数据库以及深度学习lstm实现的检索式聊天机器人python源码+详细注释+数据集.zip (40个子文件)
projectcode30312
bp_convert.py 6KB
running
model
bidirectional_lstm
checkpoint 172B
bidirectional_lstm.ckpt-6800.index 2KB
bidirectional_lstm.ckpt-6700.index 2KB
bidirectional_lstm.ckpt-6800.data-00000-of-00001 17.95MB
bidirectional_lstm.ckpt-6700.meta 1.43MB
bidirectional_lstm.ckpt-6800.meta 1.43MB
bidirectional_lstm.ckpt-6700.data-00000-of-00001 17.95MB
graph
bidirectional_lstm
train
events.out.tfevents.1640423321.DESKTOP-MLERUN1 2.61MB
events.out.tfevents.1640424047.DESKTOP-MLERUN1 3.33MB
dev
events.out.tfevents.1640424053.DESKTOP-MLERUN1 2.59MB
events.out.tfevents.1640423325.DESKTOP-MLERUN1 2.59MB
demo
answer_data_sqlite3.py 2KB
answer_data_mysql.py 1KB
chat_robot_wep_api_demo.py 737B
问答对数据转换_数据库.py 696B
sqllite3_demo.py 2KB
utils
__init__.py 0B
data_help.py 10KB
__pycache__
data_help.cpython-37.pyc 7KB
__init__.cpython-37.pyc 194B
net
bidirectional_lstm.py 4KB
__pycache__
text_cnn_lstm.cpython-37.pyc 4KB
bidirectional_lstm.cpython-37.pyc 3KB
bp_demo.py 2KB
similarity_data
dev.csv 715KB
train_1.csv 479B
train.csv 7.02MB
test.csv 718KB
train_similarity_model.py 24KB
que_ans_data
q_a_data.csv 0B
question.csv 17.24MB
answer.csv 68.07MB
README.md 2KB
search_chat_robot.py 24KB
README.md 4B
config
__init__.py 0B
stop_word.txt 5KB
mapping_file.pkl 152KB
bidirectional_lstm.pb 6.11MB
共 40 条
- 1
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