Python 实现快递查询
2021-07-04 05:07
标签:src \n break 快递 amp class width img pytho 实现效果: 源代码: ----------------------- 无聊............ Python 实现快递查询 标签:src \n break 快递 amp class width img pytho 原文地址:https://www.cnblogs.com/jxxclj/p/9614408.html
import urllib.request
import json
import msvcrt
kd_dict = {1:‘shentong‘,2:‘youzhengguonei‘,3:‘yuantong‘,4:‘shunfeng‘,5:‘yunda‘,6:‘zhongtong‘,7:"tiantian",8:"debang"}
def Check():
while True:
print("仅支持以下快递公司查询:")
print("1.申通 ")
print("2.EMS邮政 ")
print("3.圆通 ")
print("4.顺风 ")
print("5.韵达 ")
print("6.中通 ")
print("7.天天 ")
print("8.德邦 ")
print("0.退出\n")
choose = int(input("请选择您的快递公司:"))
while choose not in range(0,6):
choose = int(input("抱歉暂不支持此公司请重新选择:"))
if choose == 0:
print("感谢使用!\n")
break
kd_num = input("请输入快递单号:")
url = "http://www.kuaidi100.com/query?type=%s&postid=%s" % (kd_dict[choose], kd_num)
response = urllib.request.urlopen(url)
html = response.read().decode(‘utf-8‘)
target = json.loads(html)
#print(target)
status = target[‘status‘]
if status == ‘200‘:
data = target[‘data‘]
#print(data)
data_len = len(data)
#print(data_len)
#print("\n")
for i in range(data_len):
print("\n时间: " + data[i][‘time‘])
print("状态: " + data[i][‘context‘] + "")
print("\n感谢使用!\n")
break
else:
print("输入有误请重新输入!\n")
#print("按任意键结束......")
if __name__ == ‘__main__‘:
while True:
Check()
out = input("按任意数字退出(其他键继续).........")
if out >= ‘0‘ and out ‘9‘:
break
else:
print("\n")
continue