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17 项检测 · 无需账号 · 自托管

一键测试您的网络

17 款免费网络诊断工具,集成于同一面板。

常见问题

0 跟踪器 · 14 种语言 · 明暗双模式 · 自托管

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Practical guide

Why These Tools Exist: Reading Results, Judging Warnings, and When You Actually Need a VPN

Run a port scan, a header inspector, or a blacklist check against almost any real target and you'll get back a wall of technical detail: open ports, header names, certificate fields, list after list. None of it comes with a verdict attached. A result on its own doesn't tell you whether you're looking at something completely normal or something that needs fixing tonight - that judgment call is a separate skill from running the tool, and it's the one piece most diagnostic sites never actually teach.

This article is that missing layer. It won't turn anyone into a penetration tester, and it's not a substitute for a proper security audit on anything that actually matters - but it covers what each tool in this kit is really answering, how to read a result without swinging between panic and complacency, which warnings deserve a same-day fix versus a shrug, concrete examples of open ports that are fine versus open ports that are a real problem, and when reaching for a VPN is the right move instead of just another thing to configure.

What each tool is actually answering

It helps to sort the sixteen tools in this kit into four questions, because the right way to read a result depends entirely on which question it's answering. Ping and Traceroute answer "can I reach it, and if not, where does the path break" - pure connectivity, nothing about security. DNS Lookup, Whois, and GeoIP answer "who is this, and where does it actually live" - identity and ownership, useful for verifying a target is what it claims to be before trusting it. Port Scan, HTTP Headers, SSL Checker, and Blacklist Check answer "what does this system expose to the outside world, and should it" - this is the group that actually touches security, and the one this article spends the most time on. Subnet Calculator, Speed Test, and the two dictionary lookups answer "how much, or how big" - pure capacity and reference information, no risk judgment involved at all.

Knowing which bucket a tool sits in changes how you should react to its output. A Traceroute showing a hop that times out isn't a security finding - it's usually a router configured to ignore ICMP, completely unrelated to whether anything is actually wrong. A Port Scan showing an open port, on the other hand, is exactly the kind of result that deserves the rest of this article's attention, because it's telling you something real about what's reachable from outside.

Reading a result without over- or under-reacting

The single most useful habit when reading any of these tools' output is comparing the result against what you actually intended to be there - not against some imagined ideal of a perfectly locked-down system, which doesn't exist and isn't the goal. A web server with ports 80 and 443 open is not a finding; it's the entire point of running a web server. The question that actually matters is always "does this match what I meant to expose", not "is anything at all open or configured".

Most of what these tools surface is informational rather than alarming: a missing optional security header, a slightly older TLS cipher still offered alongside modern ones for compatibility, a WHOIS record with privacy redaction enabled - none of these are emergencies, and treating every line of output as equally urgent is how real warnings end up ignored along with the noise. The useful skill is triage: read the whole result once, mentally sort each line into "expected", "worth a closer look", or "reachable from the internet and shouldn't be", and only act urgently on that last category.

Is a warning actually serious? A field guide

A few of the most common warnings, and roughly how urgently each one actually deserves attention. A missing security header (Content-Security-Policy, Strict-Transport-Security) is real but rarely urgent on its own - it's a hardening gap, worth fixing on the next maintenance window, not a five-alarm fire, since it needs to be combined with another vulnerability to actually be exploited. An expired or soon-to-expire TLS certificate is genuinely urgent - it breaks trust for every visitor the moment it lapses, with no gradual warning to end users, so this is one to fix before it happens, not after. A blacklist listing is urgent specifically if the affected system sends email - mail silently stops arriving at major providers within hours, and the fix (identifying and removing the cause, then requesting delisting) can take days, so this is worth checking proactively rather than waiting for a client to notice their emails aren't landing.

An open port is the one that depends most entirely on context, which is exactly why it gets its own section below with concrete examples rather than a single blanket rule. The short version: the same open port can be completely fine on one system and a serious problem on another, purely based on which service it is and who's supposed to be able to reach it.

Open ports: what's normal and what's a real risk

Three rough categories cover almost every real-world case. Ports meant to be public - 443 (HTTPS) and 80 (HTTP) on anything hosting a website - being open is not a finding at all; it's the service working as designed, and a scan confirming they're reachable is exactly what should happen. Administrative ports - 22 (SSH) and 3389 (RDP) are the two seen most often - are fine to have open specifically to the people who need them, but worth reviewing if a scan shows them reachable from the entire internet rather than from a known, restricted set of addresses; the fix here isn't necessarily to close them, it's to restrict who can reach them (a firewall allowlist, key-only SSH authentication with password login disabled, or moving access behind a VPN entirely, covered below). Database and internal-service ports - 3306 (MySQL), 5432 (PostgreSQL), 27017 (MongoDB), and legacy protocols like 23 (Telnet) with no encryption at all - being reachable from the public internet is almost never intentional and almost always a real problem; these are designed to be talked to by an application server sitting next to them on the same private network, not queried directly by anyone on the internet, and a surprising number of real data breaches trace back to exactly this: a database left with its default port open to the world, often because a cloud security group or a home router's port-forwarding rule was set up carelessly and never revisited.

How this actually happens in practice is almost always mundane rather than malicious: a router's UPnP feature auto-opens a port for one application and never closes it again after that device is gone; a cloud security group gets set to "anywhere" during testing because it's faster than configuring the right IP range, and the ticket to fix it later never gets filed; a database gets spun up for a quick prototype with default credentials and default network settings, and the prototype quietly becomes the production system six months later. None of this requires an attacker doing anything clever - it just requires nobody double-checking what's actually reachable, which is precisely the gap a port scan is built to close.

The same scan finding - an open port - lands in a different risk bucket purely based on which port it is and who's supposed to reach it.

When you actually need a VPN (and when you don't)

A VPN is the right tool specifically for one recurring problem: you (or a small, known group of people) need to reach something - an admin panel, an SSH server, an internal dashboard - from outside its own network, without making it reachable by everyone else on the internet too. Rather than port-forwarding SSH or RDP directly to the world and then trying to lock it down with firewall rules and fail2ban, putting it behind a VPN removes it from the public internet's view entirely: nobody can even attempt to connect unless they've already authenticated onto the VPN first, which collapses most of the open-port risk described above before a single login attempt happens. Modern options like WireGuard (covered in "The Rise of the VPN" article on this blog) make this genuinely easy to set up, with a fraction of the configuration and attack surface of older protocols like PPTP or IPsec.

A VPN is equally the right call whenever a device is regularly used on untrusted networks - a coffee shop, a conference, an airport - where anyone else on the same WiFi can potentially observe or intercept unencrypted traffic; routing that traffic through a VPN removes the local network as a point of interception, which is a real and common threat, not a theoretical one. It's also the standard way to connect two private networks together, for example a small business's office and its cloud servers, without exposing either one directly to the internet in between.

Where a VPN is not the fix: a genuinely misconfigured public-facing service - a database with no authentication reachable from anywhere, a web application with a real vulnerability - doesn't get safer by also running a VPN somewhere else on the network. Wrapping a broken lock in another door doesn't fix the lock; the actual exposure needs to be closed at the source (authentication enabled, the port removed from public reach, the vulnerability patched), and a VPN's job is specifically for controlling who can reach something that's intentionally not meant to be fully public - not for papering over something that's leaking regardless.

要点总结

The practical version of everything above: run the relevant tool, compare what it shows against what you actually intended to expose, and treat "reachable from the entire internet, and it shouldn't be" as the one signal worth acting on urgently - everything else is triage, not panic. For anything that genuinely only a specific person or a small team should reach, a VPN removes it from the public internet's view entirely rather than trying to defend a door that's standing wide open; for everything else, the fix is almost always tightening what's already there rather than adding another layer on top of it.

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我的 IP 检测

自动检测您的公网 IP 地址和网络位置。

打开 NetChecks 时自动加载,无需输入。切换网络或重新连接 VPN 后,点击刷新按钮重新检测。

您的浏览器

一键全面扫描

对一个 IP 或主机名一次性运行所有相关检测:DNS、whois、ping、traceroute、知名端口扫描 (1-1024)、HTTP 头信息和 SSL 证书。

输入域名或 IP 地址并运行,一次性检查 DNS、whois、ping、traceroute、常用端口、HTTP 响应头和 SSL 证书。

大多数检查并行执行,通常在约30秒内完成,若目标响应缓慢或无法访问则更久。

只有在上方的同意复选框被勾选后,端口扫描步骤才会执行——其他所有检查照常执行。

Ping

向主机发送 ICMP 回显请求,以检测其可达性和延迟。

输入主机名或 IP 地址,点击 Ping 发送 ICMP 回显请求并测量往返延迟。

You Host ICMP Echo Request (type 8) ICMP Echo Reply (type 0) measures: RTT · TTL · packet loss

      

深入了解 Ping

定义

Ping通过向目标主机发送ICMP回显请求(Echo Request)报文,并测量ICMP回显应答(Echo Reply)返回所需的时间,来完成最基础的网络连通性测试。它只回答一个问题:"这台设备是否可达,响应速度如何?"ICMP协议(RFC 792)早在1981年就被设计用来在IP网络上承载控制与诊断信息,独立于应用层流量之外——Ping正是它最广为人知、也是普及程度最高的实现,几乎所有操作系统和网络设备从最初版本起就自带这一功能。

工作原理

每个ICMP报文都携带一个TTL(生存时间)字段,每经过一台路由器就减1;一旦在到达目标之前减到0,报文就会被丢弃,并向发送方回送一条错误消息。以毫秒为单位测得的往返时延(RTT)反映的是整个往返路径上累积的网络延迟,而不仅仅是目标附近最后一段的延迟——这一点常被误解,因为Ping结果慢的根本原因可能出现在路径上的任意位置,未必靠近被测服务器。Ping通常会连续发送多个报文而不是只发一个,这样就能区分出偶发的延迟毛刺和持续性的问题,并据此计算出这一批样本的丢包率。

结果解读

稳定且较低的RTT——局域网内几毫秒,同一国家内的目的地10到50毫秒,跨洲链路则明显更高——说明连接状况良好。哪怕只是轻微的丢包(超过1%到2%),对VoIP或交互式远程会话这类对延迟敏感的场景也会造成明显影响,每一个丢失的包都会表现为卡顿或断音。相比稳定但数值较高的延迟,包与包之间延迟波动很大(抖动)对这些场景往往是更严重的问题。"请求超时"表示在规定时间内没有收到应答——可能是主机确实宕机,也可能是防火墙悄悄屏蔽了ICMP,或者路径上某处出现了故障;"目标不可达"则不同,信息量更大:它是路径上某台中间路由器主动回送的消息,明确表示自己无法转发该报文,有助于缩小问题定位范围。

常见误区

最常见的误判是一旦Ping失败就断定主机"宕机",而实际上大量服务器和设备——尤其是部署了严格防火墙策略或托管在主流云服务商那里的——出于策略考虑会主动屏蔽入站ICMP,同时它们提供的实际服务(HTTP、数据库等)完全正常可用。因此,没有收到Ping应答只有在结合其他信号(比如应用本身也无响应)时才具有实际意义。反过来,Ping成功也完全不能保证该主机上运行的应用服务本身工作正常——这是网络栈中两个完全独立的层面。

适用场景

在升级工单之前先做的第一项检查:先确认设备是否有响应,再深入排查。在修改防火墙规则或路由表之后确认连通性,确保改动没有破坏访问。在VoIP上线或运营商链路切换之前建立延迟基线,以便后续出现通话质量投诉时有客观的对比依据。作为MSP并行监控多个客户站点时一种轻量、低开销的周期性健康检查手段,但始终应作为更深层应用级监控的补充,而非替代。

Traceroute(路由追踪)

逐跳追踪到目标主机的网络路径。

输入主机名或 IP 地址并运行,查看本服务器到目标之间的每一跳,以及各跳的延迟。

You TTL=1 TTL=2 TTL=3 Host each hop replies "ICMP Time Exceeded" until TTL reaches the host

      

DNS 查询(Nslookup)

查询 DNS 记录:A、AAAA、MX、TXT、NS、CNAME、SOA、PTR、SRV、CAA。

输入域名,选择记录类型(A、AAAA、MX、TXT、NS、CNAME、SOA、PTR、SRV 或 CAA),然后查询。

You Root .com Auth NS ① query root ② referral → TLD ③ referral → auth NS ④ answer

      

Whois 查询

查询域名或 IP 地址的注册信息。

输入域名或 IP 地址,查询其注册信息:注册商、所有者组织及重要日期。

You Registry RDAP / :43 query: domain / IP reply: registrar, dates, name servers

      

黑名单检测

检查某个 IP 地址或域名是否被列入公共垃圾邮件/滥用黑名单(DNSBL)。

输入 IPv4 地址或域名并运行,即可一次查询 7 个公共 DNSBL/RBL 黑名单 - 每个列表会显示已列入、未列入或检测失败。

You zen.spamhaus.org spamcop.net sorbs.net +4 more reverse-IP DNS query to each DNSBL zone, in parallel

      

TCP 端口扫描

检测主机或 IP 上的 TCP 端口是否开放:常用端口、自定义列表,或完整的 1-65535 范围。

输入主机或 IP,选择常用端口、自定义列表或完整范围,然后扫描查看哪些 TCP 端口有响应。

You 22 open 443 open 3389 closed 8080 closed SYN → SYN-ACK = open · SYN → RST = closed

        
      

HTTP 响应头检测

获取某个 URL 的 HTTP 响应状态码和响应头。

输入网址,获取其 HTTP 响应状态码以及服务器返回的所有响应头。

You Server GET / HTTP/1.1 200 OK + headers Content-Type · Strict-Transport-Security · X-Frame-Options …

      

SSL / TLS 证书检测

检测主机的 TLS 证书:颁发机构、有效期以及剩余天数。

输入主机名,检查其 TLS 证书:颁发者、有效期及距过期的剩余天数。

You Host ClientHello → ← ServerHello + Certificate + Finished Root CA Intermediate Leaf (site) certificate chain of trust · validity dates checked

      

IP 地理位置查询

查询某个 IP 地址的地理位置和网络信息。留空则查询您自己的公网 IP。

输入任意 IP 地址,或留空以查询您自己的 IP,查看其大致位置及网络/ISP 信息。

IP address Geo / RIR database City · Country ASN · Org

        
        
      

子网 / CIDR 计算器

完全在您的浏览器中计算 — 不会向服务器发送任何数据。

输入 IP 地址和 CIDR 前缀(例如 192.168.1.0/24),即时计算网络范围、广播地址和可用主机数量。

network bits (prefix) host bits /24 example — split moves with your prefix

      

网速测试

与本服务器之间的基础下载/上传速度测试(准确性取决于服务器自身的网络带宽)。

点击开始,测量与本服务器之间的下载和上传速度。准确度取决于本服务器自身的网络连接。

You Server ↓ download ↑ upload throughput (Mbps)

      

国家代码词典

ISO 3166-1 alpha-2 国家代码 — 完全在您的浏览器中搜索。

搜索或浏览 ISO 3166-1 alpha-2 国家代码列表,完全在您的浏览器中查询。

国家ISO 代码

国际电话区号词典

按国家划分的国际电话区号 — 完全在您的浏览器中搜索。

按国家搜索或浏览国际拨号代码,完全在您的浏览器中查询。

国家区号

世界时钟

选择一个时区查看当前时间 — 拖动地球即可旋转。

从列表中选择一个时区,或拖动地球仪,查看该地的当前时间。

您的时间
--:--:--
—

—

所选时间
--:--:--
—
— UTC±00:00
与您的时差 —

—

拖动以旋转地球。

法国移动网络状态

法国各运营商(Orange、Free、SFR、Bouygues Telecom)故障或维护中的移动基站,数据来自 Arcep 公开数据。每日更新一次快照,非实时数据流。

按法国运营商浏览移动基站和光纤故障数据——无需输入,根据 ARCEP 公开数据自动更新。

来源:Arcep,「Sites indisponibles」数据集,采用 Licence Ouverte / Etalab 2.0 许可发布——明确允许商业性重用,这与此前使用的 IODA/CAIDA 数据不同。正常/关注/警报 徽章是自制估算(今日故障数与前几日中位数比较),并非 Arcep 官方分类。来源链接见下方。

受影响最多的省份

当前故障或维护中的站点数量,按省份统计。点击上方运营商可筛选。

数据来源: Arcep — Sites indisponibles · 官方网络状态地图


固网(光纤)

各运营商光纤(FTTH)网络质量:故障上报率与装机失败率,数据来自 Arcep 公开数据。月度指标,6个月滚动平均——不像移动部分那样为实时数据。

来源:Arcep,「Qualité des réseaux en fibre optique」数据集,采用 Licence Ouverte / Etalab 2.0 许可发布——明确允许商业性重用。来源链接见下方。

按运营商(母公司)

过去 6 个可用月份的平均值,按基础设施运营商母公司分组。

数据来源: Arcep — Qualité des réseaux en fibre optique