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VDES_Backend/code/vdes_utils/vdes_demod_data.py

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2026-07-13 15:37:05 +08:00
import struct
import time
import os
from datetime import datetime
from django.core.cache import cache
class VdesDemodData:
def __init__(self):
self.hello = "VDES/AIS解调数据解析工具类"
# 存储会话数据key是 (source_id, satellite_id, session_id, dest_id)
# value = {"fragments": [...], "total": N}
self.sessions = {}
self.payload_fragments = [] # 用于存储长消息分片数据的数组
def main(self, demod_data, file_name=None):
self.file_name = file_name
demod_data_type = self.get_data_type(demod_data)
print('demod_data_type:', demod_data_type)
# 判断解调数据是什么类型,类型有卫星公告牌、消息片段等
if demod_data_type == 30 or demod_data_type == 31 or demod_data_type == 32:
# 解析出消息片段中的字段
message_fragment = self.get_message_demod_data(demod_data)
print(message_fragment)
# 处理消息片段
# self.message_fragment_processing(message_fragment)
elif demod_data_type == 1:
sbb1 = self.get_sbb_fragment_data_1(demod_data)
print(sbb1)
cache.set("sbb1", sbb1, timeout=None) #存入redis缓存中让另一个进程能获取
elif demod_data_type == 2:
sbb2 = self.get_sbb_fragment_data_2(demod_data)
print(sbb2)
cache.set("sbb2", sbb2, timeout=None)
elif demod_data_type == 3:
sbb3 = self.get_sbb_fragment_data_3(demod_data)
print(sbb3)
cache.set("sbb3", sbb3, timeout=None)
elif demod_data_type == 4:
sbb4 = self.get_sbb_fragment_data_4(demod_data)
print(sbb4)
cache.set("sbb4", sbb4, timeout=None)
elif demod_data_type == 5:
sbb5 = self.get_sbb_fragment_data_5(demod_data)
print(sbb5)
cache.set("sbb5", sbb5, timeout=None)
elif demod_data_type == 6:
sbb6 = self.get_sbb_fragment_data_6(demod_data)
print(sbb6)
cache.set("sbb6", sbb6, timeout=None)
elif demod_data_type == 10:
sbb10 = self.get_sbb_fragment_data_10(demod_data)
print(sbb10)
elif demod_data_type == 11:
sbb11 = self.get_sbb_fragment_data_11(demod_data)
print(sbb11)
elif demod_data_type == 12:
sbb12 = self.get_sbb_fragment_data_12(demod_data)
print(sbb12)
elif demod_data_type == 18:
sbb18 = self.get_sbb_fragment_data_18(demod_data)
print(sbb18)
elif demod_data_type == 20:
sbb20 = self.get_sbb_fragment_data_20(demod_data)
print(sbb20)
def get_data_type(self, demod_data):
"""从二进制数据中提取第一个字节作为类型字段"""
if demod_data:
data_type = struct.unpack('>B', demod_data[:1])[0]
return data_type
else:
return None
def get_message_demod_data(self, packed_data):
"""解码VDES解调信息字段并分类存储"""
header_size = struct.calcsize('>B H I B B I H')
header = packed_data[:header_size]
Type, payload_size, source_id, satellite_id, session_id, dest_id, remainder_fragment_num = \
struct.unpack('>B H I B B I H', header)
# 提取payload减去12字节帧尾
payload = packed_data[header_size:header_size + payload_size - 12]
# 尝试解码为字符串,否则保留二进制
# try:
# decoded_payload = payload.decode('utf-8')
# except UnicodeDecodeError:
# decoded_payload = payload
session_key = (source_id, satellite_id, session_id, dest_id)
# ---------- Type = 30 会话开始 ----------
if Type == 30:
total_fragments = remainder_fragment_num + 1
self.sessions[session_key] = {
"fragments": [None] * total_fragments,
"total": total_fragments,
"end_flag": False,
"end_time": None
}
# 起始片段必然是索引 0
self.sessions[session_key]["fragments"][0] = payload
# 如果 remainder_fragment_num=0说明只有这一个片段
if remainder_fragment_num == 0:
return self.finalize_session(session_key)
# ---------- Type = 31 会话延续 ----------
elif Type == 31:
if session_key not in self.sessions:
raise ValueError(f"收到延续片段但会话未初始化: {session_key}")
session = self.sessions[session_key]
index = remainder_fragment_num # 延续片段索引 = remainder_fragment_num
session["fragments"][index] = payload
# ---------- Type = 32 会话结束 ----------
elif Type == 32:
if session_key not in self.sessions:
raise ValueError(f"收到结束片段但会话未初始化: {session_key}")
session = self.sessions[session_key]
index = remainder_fragment_num # 结束片段索引 = remainder_fragment_num
session["fragments"][index] = payload
session["end_flag"] = True
session["end_time"] = time.time()
# 如果所有片段收齐,立刻完成
if all(frag is not None for frag in session["fragments"]):
return self.finalize_session(session_key, force=True)
# 检查超时的会话
self.check_timeouts()
return {
'Type': Type,
'Payload_size': payload_size,
'Source_id': source_id,
'Satellite_id': satellite_id,
'Session_id': session_id,
'Dest_id': dest_id,
'Remainder_Fragment_num': remainder_fragment_num,
'Payload': payload
}
def check_timeouts(self):
"""检查会话是否超时 40 秒"""
now = time.time()
to_release = []
for key, session in self.sessions.items():
if session["end_flag"] and session["end_time"]:
if now - session["end_time"] > 40:
to_release.append(key)
for key in to_release:
print(f"会话 {key} 超时未收齐,强制释放")
self.finalize_session(key, force=True)
def finalize_session(self, session_key, force=False):
"""拼接并释放一个会话"""
session = self.sessions[session_key]
full_data = b""
mmsi = session_key[0] #source_id为MMSI号
for frag in session["fragments"]:
if frag is None and not force:
# 不完整且不强制 → 暂不释放
return None
if frag:
full_data += frag
# if isinstance(frag, str):
# full_data += frag.encode("utf-8")
# elif isinstance(frag, bytes):
# full_data += frag
if full_data is not None:
# 保存为图片文件
self.message_fragment_processing(full_data, mmsi)
del self.sessions[session_key]
print(f"✅ 会话 {session_key} 完成, 数据长度={len(full_data)}")
return {"Session_key": session_key, "Full_data": full_data}
def message_fragment_processing(self, message, mmsi):
from system.models import HistorySession, Contacts, Content, MessageFlag
# 此处需要判断接收的消息数据格式----------------------------------------
if message is not None:
print('-------------------------------------------')
# print("完整消息:", combined_data)
# 创建保存目录(如果不存在) - 使用Django静态资源路径
save_dir = os.path.join(os.path.dirname(os.path.dirname(os.path.abspath(__file__))), 'static', 'vdes_data')
os.makedirs(save_dir, exist_ok=True)
# 生成文件名(带时间戳) - 使用self.file_name作为后缀名
timestamp = datetime.now().strftime('%Y%m%d_%H%M%S')
file_extension = getattr(self, 'file_name', 'jpg') # 默认使用txt作为后缀名
if file_extension is None:
file_extension = 'jpg'
print(f"文件后缀名: {file_extension}")
# 根据文件后缀判断文件类型
file_type = self.get_file_type(file_extension)
if file_type == 0:
try:
# 直接解码消息内容
if isinstance(message, bytes):
content_text = message.decode('utf-8')
else:
content_text = str(message)
except Exception as e:
print(f"保存数据库记录时出错: {e}")
content_text = '无法解码的文本内容'
content = "<p>"+content_text+"</p>"
else:
filename = os.path.join(save_dir, f'received_file_{timestamp}.{file_extension}')
# 写入文件
with open(filename, 'wb') as f:
f.write(message)
print(f"文件已保存到: {filename}")
print(f"发送者MMSI: {mmsi}")
# 构建文件的相对URL路径相对于Django服务器
content = f"/static/vdes_data/received_file_{timestamp}.{file_extension}"
# 将文件路径存入数据库------------------------------------------------------
try:
# 查询或创建通讯录记录
contact, created = Contacts.objects.get_or_create(MMSI=mmsi)
Id = contact.Id
contact, created = HistorySession.objects.get_or_create(FormId=Id, MMSI=mmsi)
# 将文件路径保存到Content表中
content = Content.objects.create(
SendId=Id,
ReciverId=1,
Content=content, # 保存文件路径或文本内容
Type=file_type, # 2=文件类型
State=1, # 已发送
NoCode=str(int(time.time())), # 时间戳
CreateDateUtc=datetime.now().strftime('%Y-%m-%d %H:%M:%S'),
ReadFlag=0,
SoundStatus=0
)
# 设置新消息标志,用于前端右上角新消息提示
flag = MessageFlag.objects.first()
if flag:
flag.has_new_message = True
flag.save()
print(f"文件路径已保存到数据库: {filename}")
except Exception as e:
print(f"保存数据库记录时出错: {e}")
return
if combined_data is not None:
MMSI = demod_data['Dest_id']
print(f"发送者MMSI: {MMSI}")
print(f"消息: {combined_data}")
# 查询或创建通讯录记录
contact, created = Contacts.objects.get_or_create(MMSI=MMSI)
Id = contact.Id
contact, created = HistorySession.objects.get_or_create(FormId=Id, MMSI=MMSI)
content = Content.objects.create(
SendId=Id,
ReciverId=1,
Content="<p>"+combined_data+"</p>",
Type=0, # 0=html文本
State=1, # 已发送
NoCode=str(int(time.time())) , # 你可以放时间戳
CreateDateUtc=datetime.now().strftime('%Y-%m-%d %H:%M:%S'),
ReadFlag=0,
SoundStatus=0
)
flag = MessageFlag.objects.first()
if flag:
flag.has_new_message = True
flag.save()
def get_file_type(self, file_extension):
"""
根据文件后缀判断文件类型
:param file_extension: 文件后缀
:return: 文件类型 (0: txt, 1: 图片, 2: 视频)
"""
# 文本文件
if file_extension.lower() in ['txt']:
return 0
# 图片文件
if file_extension.lower() in ['jpg', 'jpeg', 'png', 'gif', 'bmp', 'webp']:
return 1
# 视频文件
if file_extension.lower() in ['mp4', 'avi', 'mov', 'wmv', 'flv', 'mkv']:
return 2
# 默认返回二进制文件类型
return 0
def message_fragment_splicing(self, demod_data):
"""拼接消息分片数据"""
fragment_num = demod_data['Fragment_num']
# print(self.payload_fragments)
if demod_data['Type'] == 30: # 开始分片
print("------------------开始——————————————————————————————————————————————")
self.payload_fragments = [] # 清空数组
self.payload_fragments.append(demod_data['Payload'])
elif demod_data['Type'] == 31: # 数据分片
self.payload_fragments.append(demod_data['Payload'])
elif demod_data['Type'] == 32: # 结束分片
# 拼接所有有效分片
print("------------------结束——————————————————————————————————————————————")
self.payload_fragments.append(demod_data['Payload'])
combined_payload = b''.join([p for p in self.payload_fragments if p is not None])
print(len(self.payload_fragments))
return combined_payload
return None # 如果不是结束分片返回None
def get_sbb_fragment_data_1(self, demod_data):
"""解析类型为1的公告牌起始片段数据"""
format_str = '>B B B B H I H B H H B H' # 总共20字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:20])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['satellite_id'] = fields[1] # 卫星ID
res['primary_network_id'] = fields[2] # 主网络ID
res['roaming_network_id'] = fields[3] # 漫游网络ID
res['sbb_version'] = fields[4] # SBB版本
res['start_time'] = fields[5] # 开始时间
res['validity_period'] = fields[6] # 可用期限
# 解析服务能力字段
capability_field = fields[7] #服务能力
res['itu_compatibility'] = (capability_field >> 4) & 0x0F # ITU-R M.2092建议书版兼容
res['reserved_bits'] = capability_field & 0x0F # 4个LSB保留位
res['sbb_spare_frequency'] = fields[8] # SBB备用频率
res['uplink_max_length'] = fields[9] # 上行链路消息最大长度
res['reserved'] = fields[10] # 保留字段
res['total_message_length'] = fields[11] # 消息总长度
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_2(self, demod_data):
"""解析类型为2的公告牌片段数据"""
format_str = '>B H H B 6B 6B H H B 6B 6B' # 总共35字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:35])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['downlink_frequency_a'] = fields[1] # 下行链路中心频率A
res['uplink_frequency_a'] = fields[2] # 上行链路中心频率A
# 解析带宽A字段
bandwidth_a = fields[3]
res['downlink_bandwidth_a'] = (bandwidth_a >> 4) & 0x0F # 下行链路带宽A
res['uplink_bandwidth_a'] = bandwidth_a & 0x0F # 上行链路带宽A
channel_slot_lengths_a = []
for i in range(4, 10): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_a.extend([high_nibble, low_nibble])
res['channel_slot_lengths_a'] = channel_slot_lengths_a
# 解析逻辑信道功能A (6字节表示12个信道每个信道4比特)
channel_functions_a = []
for i in range(10, 16): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_a.extend([high_nibble, low_nibble])
res['channel_functions_a'] = channel_functions_a
res['downlink_frequency_b'] = fields[16] # 下行链路中心频率B
res['uplink_frequency_b'] = fields[17] # 上行链路中心频率B
# 解析带宽B字段
bandwidth_b = fields[18]
res['downlink_bandwidth_b'] = (bandwidth_b >> 4) & 0x0F # 下行链路带宽B
res['uplink_bandwidth_b'] = bandwidth_b & 0x0F # 上行链路带宽B
# 解析逻辑信道时隙长度B (6字节表示12个信道每个信道4比特)
channel_slot_lengths_b = []
for i in range(19, 25): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_b.extend([high_nibble, low_nibble])
res['channel_slot_lengths_b'] = channel_slot_lengths_b
# 解析逻辑信道功能B (6字节表示12个信道每个信道4比特)
channel_functions_b = []
for i in range(25, 31): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_b.extend([high_nibble, low_nibble])
res['channel_functions_b'] = channel_functions_b
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_3(self, demod_data):
"""解析类型为3的公告牌片段数据逻辑信道24-47定义频率对C和D"""
format_str = '>B H H B 6B 6B H H B 6B 6B' # 总共35字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:35])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['downlink_frequency_c'] = fields[1] # 下行链路中心频率C
res['uplink_frequency_c'] = fields[2] # 上行链路中心频率C
# 解析带宽C字段
bandwidth_c = fields[3]
res['downlink_bandwidth_c'] = (bandwidth_c >> 4) & 0x0F # 下行链路带宽C
res['uplink_bandwidth_c'] = bandwidth_c & 0x0F # 上行链路带宽C
# 解析逻辑信道时隙长度C (6字节表示12个信道每个信道4比特)
channel_slot_lengths_c = []
for i in range(4, 10): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_c.extend([high_nibble, low_nibble])
res['channel_slot_lengths_c'] = channel_slot_lengths_c
# 解析逻辑信道功能C (6字节表示12个信道每个信道4比特)
channel_functions_c = []
for i in range(10, 16): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_c.extend([high_nibble, low_nibble])
res['channel_functions_c'] = channel_functions_c
res['downlink_frequency_d'] = fields[16] # 下行链路中心频率D
res['uplink_frequency_d'] = fields[17] # 上行链路中心频率D
# 解析带宽D字段
bandwidth_d = fields[18]
res['downlink_bandwidth_d'] = (bandwidth_d >> 4) & 0x0F # 下行链路带宽D
res['uplink_bandwidth_d'] = bandwidth_d & 0x0F # 上行链路带宽D
# 解析逻辑信道时隙长度D (6字节表示12个信道每个信道4比特)
channel_slot_lengths_d = []
for i in range(19, 25): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_d.extend([high_nibble, low_nibble])
res['channel_slot_lengths_d'] = channel_slot_lengths_d
# 解析逻辑信道功能D (6字节表示12个信道每个信道4比特)
channel_functions_d = []
for i in range(25, 31): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_d.extend([high_nibble, low_nibble])
res['channel_functions_d'] = channel_functions_d
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_4(self, demod_data):
"""解析类型为4的公告牌片段数据逻辑信道48-71定义频率对E和F"""
format_str = '>B H H B 6B 6B H H B 6B 6B' # 总共35字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:35])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['downlink_frequency_e'] = fields[1] # 下行链路中心频率E
res['uplink_frequency_e'] = fields[2] # 上行链路中心频率E
# 解析带宽E字段
bandwidth_e = fields[3]
res['downlink_bandwidth_e'] = (bandwidth_e >> 4) & 0x0F # 下行链路带宽E
res['uplink_bandwidth_e'] = bandwidth_e & 0x0F # 上行链路带宽E
# 解析逻辑信道时隙长度E (6字节表示12个信道每个信道4比特)
channel_slot_lengths_e = []
for i in range(4, 10): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_e.extend([high_nibble, low_nibble])
res['channel_slot_lengths_e'] = channel_slot_lengths_e
# 解析逻辑信道功能E (6字节表示12个信道每个信道4比特)
channel_functions_e = []
for i in range(10, 16): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_e.extend([high_nibble, low_nibble])
res['channel_functions_e'] = channel_functions_e
res['downlink_frequency_f'] = fields[16] # 下行链路中心频率F
res['uplink_frequency_f'] = fields[17] # 上行链路中心频率F
# 解析带宽F字段
bandwidth_f = fields[18]
res['downlink_bandwidth_f'] = (bandwidth_f >> 4) & 0x0F # 下行链路带宽F
res['uplink_bandwidth_f'] = bandwidth_f & 0x0F # 上行链路带宽F
# 解析逻辑信道时隙长度F (6字节表示12个信道每个信道4比特)
channel_slot_lengths_f = []
for i in range(19, 25): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的时隙长度
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_slot_lengths_f.extend([high_nibble, low_nibble])
res['channel_slot_lengths_f'] = channel_slot_lengths_f
# 解析逻辑信道功能F (6字节表示12个信道每个信道4比特)
channel_functions_f = []
for i in range(25, 31): # 6个字节
byte_val = fields[i]
# 高4位和低4位分别代表两个信道的功能
high_nibble = (byte_val >> 4) & 0x0F
low_nibble = byte_val & 0x0F
channel_functions_f.extend([high_nibble, low_nibble])
res['channel_functions_f'] = channel_functions_f
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_5(self, demod_data):
"""解析类型为5的公告牌片段数据SBB数字签名第1部分"""
format_str = '>B 32s' # 总共33字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:33])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['digital_signature_part1'] = fields[1].hex() # 数字签名第1部分16进制字符串格式
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_6(self, demod_data):
"""解析类型为6的公告牌片段数据SBB数字签名第2部分"""
format_str = '>B 32s' # 总共33字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:33])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['digital_signature_part1'] = fields[1].hex() # 数字签名第2部分16进制字符串格式
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_10(self, demod_data):
"""解析类型为10的媒体访问控制数据"""
format_str = '>B H B B B B B B B B H' # 总共13字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:13])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['payload_size'] = fields[1] # 载荷大小
res['satellite_id'] = fields[2] # 卫星ID
res['primary_network_id'] = fields[3] # 主网络ID
res['roaming_network_id'] = fields[4] # 漫游网络ID
res['media_access_priority'] = fields[5] # 媒体接入优先级
res['random_selection_interval'] = fields[6] # 随机选择间隔
res['rac_message_access_limit'] = fields[7] # RAC消息接入限制
res['network_status'] = fields[8] # 网络状态
# 解析自动重复请求/超时限制字段
arq_timeout_field = fields[9]
res['fragment_retry_count'] = (arq_timeout_field >> 4) & 0x0F # 4个MSB片段重试次数
res['timeout_timer_setting'] = arq_timeout_field & 0x0F # 4个LSB超时定时器设置
res['announcement_version_number'] = fields[10] # 公告版本号
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_11(self, demod_data):
"""解析寻呼数据类型11"""
# 总共35字节 (1+2+4+4+4+4+4+4+4+4)
format_str = '>B H I I I I I I I I'
# 解包数据
fields = struct.unpack(format_str, demod_data[:35])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['payload_size'] = fields[1] # 载荷大小
res['vessel_station_id_1'] = fields[2] # 1号船舶电台ID
res['vessel_station_id_2'] = fields[3] # 2号船舶电台ID
res['vessel_station_id_3'] = fields[4] # 3号船舶电台ID
res['vessel_station_id_4'] = fields[5] # 4号船舶电台ID
res['vessel_station_id_5'] = fields[6] # 5号船舶电台ID
res['vessel_station_id_6'] = fields[7] # 6号船舶电台ID
res['vessel_station_id_7'] = fields[8] # 7号船舶电台ID
res['vessel_station_id_8'] = fields[9] # 8号船舶电台ID
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_12(self, demod_data):
"""解析资源分配数据类型12"""
# 总共37字节 (1+2+4+1+1+1+1 + 4+1+1+1+1 + 4+1+1+1+1 + 4+1+1+1+1)
format_str = '>B H I B B B B I B B B B I B B B B I B B B B'
# 解包数据
fields = struct.unpack(format_str, demod_data[:35])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['payload_size'] = fields[1] # 载荷大小
res['vessel_station_id_1'] = fields[2] # 船舶电台ID 1
res['logical_channel_1'] = fields[3] # 逻辑信道1
res['link_id_1'] = fields[4] # 链路ID 1
res['session_id_1'] = fields[5] # 会话ID 1
res['uplink_cqi_1'] = fields[6] # 上行链路链路CQI 1
res['vessel_station_id_2'] = fields[7] # 船舶电台ID 2
res['logical_channel_2'] = fields[8] # 逻辑信道2
res['link_id_2'] = fields[9] # 链路ID 2
res['session_id_2'] = fields[10] # 会话ID 2
res['uplink_cqi_2'] = fields[11] # 上行链路链路CQI 2
res['vessel_station_id_3'] = fields[12] # 船舶电台ID 3
res['logical_channel_3'] = fields[13] # 逻辑信道3
res['link_id_3'] = fields[14] # 链路ID 3
res['session_id_3'] = fields[15] # 会话ID 3
res['uplink_cqi_3'] = fields[16] # 上行链路链路CQI 3
res['vessel_station_id_4'] = fields[17] # 船舶电台ID 4
res['logical_channel_4'] = fields[18] # 逻辑信道4
res['link_id_4'] = fields[19] # 链路ID 4
res['session_id_4'] = fields[20] # 会话ID 4
res['uplink_cqi_4'] = fields[21] # 上行链路链路CQI 4
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_18(self, demod_data):
"""解析送达通知数据类型18"""
# 总共34字节 (1+2+1+4+1+4+1+4+1+4+1+4+1+4+1)
format_str = '>B H B I B I B I B I B I B I B'
# 解包数据
fields = struct.unpack(format_str, demod_data[:34])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['payload_size'] = fields[1] # 载荷大小
res['satellite_id'] = fields[2] # 卫星ID
res['vessel_station_id_1'] = fields[3] # 1号船舶电台ID
res['session_id_1'] = fields[4] # 1号船舶会话ID
res['vessel_station_id_2'] = fields[5] # 2号船舶电台ID
res['session_id_2'] = fields[6] # 2号船舶会话ID
res['vessel_station_id_3'] = fields[7] # 3号船舶电台ID
res['session_id_3'] = fields[8] # 3号船舶会话ID
res['vessel_station_id_4'] = fields[9] # 4号船舶电台ID
res['session_id_4'] = fields[10] # 4号船舶会话ID
res['vessel_station_id_5'] = fields[11] # 5号船舶电台ID
res['session_id_5'] = fields[12] # 5号船舶会话ID
res['vessel_station_id_6'] = fields[13] # 6号船舶电台ID
res['session_id_6'] = fields[14] # 6号船舶会话ID
# 去除帧尾数据,只返回解析后的数据
return res
def get_sbb_fragment_data_20(self, demod_data):
"""解析资源请求数据类型20"""
format_str = '>B I B B B B B' # 总共10字节
# 解包数据
fields = struct.unpack(format_str, demod_data[:10])
# 创建结果字典
res = {}
res['type'] = fields[0] # 类型
res['vessel_station_id'] = fields[1] # 船舶电台ID
res['satellite_id'] = fields[2] # 卫星ID
# 解析优先级和消息长度字段
priority_length_field = fields[3]
res['priority'] = (priority_length_field >> 4) & 0x0F # 比特7-4优先级
res['message_length'] = priority_length_field & 0x0F # 比特3-0消息长度
res['terminal_capability'] = fields[4] # 终端能力
res['downlink_asc_cqi'] = fields[5] # 下行链路ASC CQI
res['tbd'] = fields[6] # TBD
# 去除帧尾数据,只返回解析后的数据
return res