250 lines
8.3 KiB
Markdown
250 lines
8.3 KiB
Markdown
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---
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tags: [计算机网络, tcpdump, tshark, curl, dig, iptables, Wireshark]
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create time: 2026-05-18 04:50
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---
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# 抓包、HTTP 调试与 DNS 诊断工具
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## 概述
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在前一章完成了"通不通"的判断之后,本章深入"报文到了没"和"内容对不对"。涵盖 tcpdump 抓包分析、curl HTTP 调试、dig DNS 诊断以及 iptables 规则排查。
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## tcpdump —— 命令行抓包神器
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### 基础语法与 BPF 过滤器精选
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```bash
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sudo tcpdump -i eth0 # 抓取 eth0 所有流量
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sudo tcpdump -nn # -n: 不解析域名, -n: 不解析端口名
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sudo tcpdump -c 100 # 抓 100 个包后停止
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sudo tcpdump -w capture.pcap # 写入 pcap 文件(Wireshark 打开)
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sudo tcpdump -A 'port 80' # ASCII 模式打印 HTTP 内容
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sudo tcpdump -X 'port 80' # HEX + ASCII 双列输出
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```
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### BPF (Berkeley Packet Filter) 表达式
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```bash
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# 按 IP 过滤
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sudo tcpdump 'host 93.184.216.34' # 只看这个 IP
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# 按端口过滤
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sudo tcpdump 'port 80' # HTTP
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sudo tcpdump 'port 443' # HTTPS
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sudo tcpdump 'port range 8000-9000' # 端口范围
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# 组合过滤
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sudo tcpdump 'src host 10.0.0.1 and dst port 443' # 源 → 目标端口
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sudo tcpdump '(src net 192.168.1.0/24) or (dst net 10.0.0.0/8)' # 多网段
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# 匹配 TCP 标志位(非常强大!)
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sudo tcpdump 'tcp[tcpflags] & (tcp-syn|tcp-ack) != 0' # SYN+ACK
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sudo tcpdump 'tcp[tcpflags] & tcp-syn != 0' # SYN 包(新连接)
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sudo tcpdump 'tcp[13] & 0x04 != 0' # 同样匹配 SYN
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sudo tcpdump 'tcp[13] & 0x10 != 0' # ACK 标志位
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sudo tcpdump 'tcp[tcpflags] & tcp-rst != 0' # RST 包(异常断开)
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sudo tcpdump 'tcp[tcpflags] & tcp-fin != 0' # FIN 包(正常关闭)
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# 排除法
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sudo tcpdump 'not host 192.168.1.1 and not port 22' # 排除网关和 SSH
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```
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### SYN 包实时观察
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```bash
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# 实时监控新连接建立
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sudo tcpdump -nn 'tcp[tcpflags] & tcp-syn != 0'
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08:23:45.123456 IP 192.168.1.100:54321 > 10.0.0.1:8080: S 12345678:12345678(...)
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08:23:45.123789 IP 10.0.0.1:8080 > 192.168.1.100:54321: S 87654321:87654321(...)
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# ↑ 这就是三次握手的前两个包(SYN 和 SYN-ACK)
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# 监控 RST(异常断开)
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sudo tcpdump -nn 'tcp[tcpflags] & (tcp-rst) != 0'
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```
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> [!tip] tcpdump → Wireshark 工作流
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> ```bash
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> # 1. tcpdump 后台抓包
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> sudo tcpdump -w /tmp/app.pcap 'host 10.0.0.1 and port 8080' &
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> # 2. 复现问题
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> # 3. Ctrl+C 停止抓包
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> # 4. Wireshark 打开分析
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> wireshark /tmp/app.pcap
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> # 5. Wireshark 支持深度解码 HTTP/gRPC/TLS 等协议
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> ```
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## tshark —— CLI 版 Wireshark
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```bash
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# 实时过滤 HTTP 请求
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$ tshark -i eth0 -Y 'http.request'
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No. Time Source Destination Protocol Length Info
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12 0.123456 10.0.0.1 93.184.xxx HTTP 450 GET /api/users HTTP/1.1
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# 导出字段(CSV 风格)
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tshark -r capture.pcap -Y 'http' \
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-T fields -e ip.src -e http.host -e http.request.uri
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# 只追踪 TLS 握手的 ClientHello
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tshark -Y 'tls.handshake.type == 1'
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# 1 = ClientHello, 11 = ServerHello, 12 = Certificate, etc.
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```
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## curl —— HTTP 调试利器
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### 详细输出与计时分解
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```bash
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# -v: verbose 模式,看到完整的握手过程和头部交换
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curl -v https://example.com
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* Trying 93.184.216.34:443...
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* Connected to example.com (93.184.216.34) port 443
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* ALPN, offering h2
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* ALPN, offering http/1.1
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* TLSv1.3, TLS handshake, Client hello (1):
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* TLSv1.3, TLS handshake, Server hello (2):
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* TLSv1.3, Encrypted Extensions (8):
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* TLSv1.3, Certificate (11):
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* TLSv1.3, TLS handshake, Finished (5):
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* TLSv1.3, Encrypted Change Cipher (1):
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* ... SSL connection using TLSv1.3 / TLS_AES_256_GCM_SHA384
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# -w: custom output 精确测量各阶段耗时 💡
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curl -w '\nDNS Resolve: %{time_namelookup}s\nTCP Connect: %{time_connect}s\nTLS Handshake: %{time_appconnect}s\nFirst Byte: %{time_starttransfer}s\nTotal: %{time_total}s\n' \
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-o /dev/null -s https://example.com
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# 输出示例:
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# DNS Resolve: 0.01234s
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# TCP Connect: 0.01567s
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# TLS Handshake: 0.04567s
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# First Byte: 0.15678s
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# Total: 0.23456s
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```
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```
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耗时瓶颈分析:
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├─ time_namelookup > 0.1s → DNS 慢 → 考虑 DNS 缓存
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├─ time_connect - time_namelookup > 0.1s → TCP 连接慢 → 距离远/NAT 问题
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├─ time_appconnect - time_connect > 0.2s → TLS 握手慢 → 证书链长/无 session resumption
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└─ time_starttransfer - time_appconnect > 0.5s → 服务端处理慢 → 查应用日志
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```
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### curl 实战用法
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```bash
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# 自定义 Header 和认证
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curl -H 'Authorization: Bearer token' \
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-H 'Content-Type: application/json' \
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-X POST -d '{"name":"alice"}' \
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https://api.example.com/users
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# 跟踪重定向(最多 5 层)
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curl -L --max-redirs 5 https://short.link
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# 查看响应头(快速判断 CDN/缓存状态)
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curl -I https://cdn.example.com/style.css
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HTTP/2 200
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cache-control: public, max-age=86400
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age: 1234
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x-cache: HIT # ← CDN 命中
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cf-cache-status: HIT # ← Cloudflare 标记
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content-encoding: br # ← Brotli 压缩
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# SSL 证书检查
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openssl s_client -connect example.com:443 -servername example.com
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# 关注:
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# Verify return code: 0 (ok) ✅
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# Verify return code: 20 (unable to get local issuer certificate) ❌
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# JSON 美化输出
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curl https://jsonplaceholder.typicode.com/users/1 | python3 -m json.tool
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```
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## dig —— DNS 诊断最强工具
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### 常用查询模式
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```bash
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# A 记录简洁输出
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$ dig example.com +short
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93.184.216.34
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# AAAA 记录(IPv6)
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$ dig example.com AAAA +short
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2606:2800:220:1:248:1893:25c8:1946
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# 权威追踪(从根域名开始逐级查询)
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$ dig example.com +trace
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;; ->>HEADER<<- opcode: QUERY, status: NOERROR
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;; QUESTION SECTION: ;example.com. IN A
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;; ANSWER SECTION: example.com. 300 IN A 93.184.216.34
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# 指定 DNS 服务器对比
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$ dig @8.8.8.8 example.com # Google DNS
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$ dig @1.1.1.1 example.com # Cloudflare DNS
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$ dig @local_dns_server example.com # 本地 DNS(可能被污染)
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# TXT 记录(SPF / DKIM 验证邮件配置)
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$ dig example.com TXT +short
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"v=spf1 include:_spf.google.com ~all"
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# MX 记录(邮件服务器)
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$ dig example.com MX +short
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10 mail.example.com.
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20 mail2.example.com.
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# SRV 记录(服务发现,gRPC/Kafka 常用)
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$ dig _grpc._tcp.service.consul SRV +short
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0 100 8080 api.service.consul.
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# 查看 CNAME 链全貌
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$ dig www.example.com +multiline
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```
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### dig 高级用法
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```bash
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# 区域传输(AXFR,通常被禁止)
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$ dig @ns1.example.com example.com axfr
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# EDNS Client Subnet(CDN 优化用户体验的关键)
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$ dig +ecs=203.0.113.0/24 example.com @1.1.1.1
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# DNS resolver 把自己的子网发给 authoritative server
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# → authoritative server 返回离用户最近的 CDN 节点 IP
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# DoH(DNS over HTTPS)检测
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$ curl https://dns.google/resolve?name=example.com&type=A
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{"Status":0,"Answer":[{"name":"example.com","type":5,"data":"93.184.216.34",...}]}
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```
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## iptables / nftables 规则排查
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```bash
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# iptables 规则排查步骤
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sudo iptables -L -n -v # 列出 FILTER 表所有规则及计数器
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sudo iptables -t nat -L -n -v # 查看 NAT 表(SNAT/DNAT/MASQUERADE)
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sudo iptables -t mangle -L -n -v # 查看 MANGLE 表(TOS/TTL 修改)
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# 关键排查命令
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sudo iptables-save | grep -A 5 INPUT # 只看 INPUT chain 的上下文
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sudo iptables -L FORWARD -n -v --line-numbers # 转发规则(容器/代理场景必查)
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# 常见规则导致的"假故障"
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# ❌ 忘记放行容器的桥接流量
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iptables -I FORWARD -i docker0 -j ACCEPT
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# ❌ 没有启用 IP forwarding
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sysctl net.ipv4.ip_forward=1
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# nftables(iptables 的现代替代品)
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sudo nft list ruleset # 列出所有 nft 规则
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sudo nft add rule inet filter input tcp dport 22 accept
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```
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## 关联笔记
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- [[hhs/NETWORK/连通性与状态探测工具]] — 先看 ping/ss/telnet 再决定要不要抓包
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- [[hhs/NETWORK/ICMP与Ping-Traceroute]] — ping/traceroute 协议原理
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- [[hhs/NETWORK/DNS与DHCP与WebSocket]] — DNS 递归查询流程补充 dig 实操
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- [[hhs/NETWORK/TCP三次握手与四次挥手]] — tcpdump 中观察 SYN/ACK 交互细节
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