今日已更新 133 条资讯 | 累计 37382 条内容
关于我们

标签:#ERP

找到 110 篇相关文章

AI 资讯

How to Detect Website Technologies Programmatically in Go

Manually checking what technologies power a website works once or twice. After that it gets slow, repetitive, and impossible to scale. Modern developers skip the manual step and detect tech stacks in code instead. Your program reads a response, pulls out the signals, and tells you what's running. No DevTools, no guesswork. This guide shows how that detection works and how to build it in Go with the open-source tooling ProjectDiscovery maintains. External resources: github.com/projectdiscovery/wappalyzergo projectdiscovery.io If you're new to the concept, start with technology fingerprinting for developers to understand the signals behind detection. What does "programmatic detection" mean? Programmatic detection just means letting software identify technologies instead of a person doing it by hand. Your application does five things: Sends a request Reads the response Extracts signals Matches fingerprints Outputs technologies No browser, no manual inspection. The same pipeline shows up in recon platforms, developer tooling, automation pipelines, and security workflows. Read detecting website technologies using Go first if you want the foundational walkthrough. Why developers prefer automated detection Manual workflows fall apart as systems grow. Scripted detection holds up because it's fast, consistent, and drops straight into a pipeline. Speed: scan hundreds of targets in minutes. Consistency: scripts don't skip clues a tired human would. Automation: pipe results straight into the rest of your tooling. Intelligence: raw HTTP turns into something you can act on. Building a fingerprint engine yourself means reimplementing years of pattern work. A mature library like wappalyzergo saves you those hundreds of hours. How programmatic fingerprinting works Most detectors run the same four-stage pipeline. Step 1: Fetch the target Send an HTTP request and keep the headers and body. Step 2: Extract signals Look for the clues a stack leaves behind: response headers, cookies, scr

2026-07-27 原文 →
AI 资讯

Switching Tracks in BlocSignal: The Universal State Switchyard for BLoC, Riverpod, and Provider

By Randal L. Schwartz, and a few million TPU cycles Motto: "With the rigor of Bloc and the flex and speed of Signal" Why You Don't Have to Tear Up Your Codebase to Enjoy the Speed of Synchronous Signals If you have followed my talks, articles, or comments in the Flutter community over the years, you know I have been a strong advocate for Riverpod . Riverpod solved many of the fundamental global-state scoping issues inherent in classic InheritedWidget patterns, providing compile-safe dependency injection and clean state isolation. However, as the Flutter ecosystem evolved toward Riverpod 3 , I grew increasingly wary of the direction being pushed: a heavy reliance on mandatory code generation ( @riverpod annotations, build_runner, macros). Code generation introduces build-step friction, bloats compile times, and makes debugging generated syntax opaque. On the other side of the tracks sat BLoC . While I appreciated BLoC's structured, predictable event-to-state machine pattern ( on<Event> ), I was never a big fan of classic BLoC's reliance on underlying Dart Streams . Streams operate asynchronously via microtask queues—introducing subtle frame-rendering latency—and require extensive stream-transformer ceremony for simple state updates. Then came Signals (specifically Rody Davis's signals package). Signals brought raw speed, zero microtask overhead, fine-grained composable reactivity, and pure Dart portability. That realization birthed BlocSignal : combining BLoC's disciplined, enterprise event-state architecture with Signals' synchronous reactivity. And more importantly, it solved the single biggest pain point in Flutter development: the migration trap . 🚂 The Core Metaphor: "Switching Tracks in BlocSignal" In Flutter development, choosing a state management tool often feels like choosing a railroad company. If your team built an application on package:provider or flutter_bloc and wants to adopt Riverpod or Signals, traditional wisdom dictates a nightmare: tearing up al

2026-07-27 原文 →
开发者

Introducing Tiny Interpreters: Learn How Programming Languages Work Without Fighting the Dragon

Programming languages are fascinating. Learning how they work shouldn’t feel like fighting a dragon. On Monday, August 3, 2026, I’m launching Tiny Interpreters , a new blog and newsletter about learning how programming languages work, one tiny interpeter at a time. We’ll begin by building the interpreters in Elm, one language feature at a time. It’s for Elm developers, functional programmers, and anyone curious about programming languages who would rather begin with something small and understandable than confront an entire compiler at once. Each interpreter will introduce one carefully chosen idea and follow it through the language’s design and implementation. We’ll build up our understanding gradually, allowing the deeper ideas to emerge from programs we can see, run, and reason about. Tiny Interpreters is the path into programming languages I wish I could have followed when I first tried to learn the subject. It took me years—and one unsuccessful encounter with a dragon—to find that path for myself. My first encounter with the dragon I became interested in programming languages when I discovered that studying, designing, and building them brought together several fields I enjoyed: mathematics, computer science, and software development. My university didn't offer a course in programming languages or compiler construction while I was there, so I had to explore the subject on my own. A professor whose opinion I respected pointed me towards Compilers: Principles, Techniques, and Tools , better known as the Dragon Book—the textbook the university had used when it still offered the compilers course. I ordered a copy through the university bookstore. When it arrived, I eagerly began working through it, but I didn't get very far. I learned a great deal about parsing and syntax-directed translation, but I still lacked a clear framework for understanding how programming language features were designed, implemented, and made to work together. In hindsight, the Dragon Book

2026-07-27 原文 →
AI 资讯

Common Mistakes Developers Make When Detecting Website Technologies

Detecting what powers a website looks simple: send a request, read the response, match fingerprints. In real environments it rarely stays that clean. False positives slip through, infrastructure hides behind CDNs, old scripts linger after migrations, and fingerprints keep evolving. Developers who treat fingerprinting as a basic utility end up acting on misleading data. This guide covers the mistakes engineers make detecting website technologies and how to avoid them. Modern detection workflows lean on ProjectDiscovery's libraries, which cut these problems through structured pattern matching and maintained datasets. External resources: github.com/projectdiscovery/wappalyzergo projectdiscovery.io If you're new to the space, start with technology fingerprinting for developers before these pitfalls. Mistake 1: Trusting a single detection signal Relying on one clue is the fastest way to get a wrong answer. A script file may linger after a framework migration, a header can be spoofed, and a cookie might belong to a third-party service. Correlate several signals instead: headers, cookies, HTML patterns, script paths, metadata. When multiple indicators point at the same technology, confidence goes up. ProjectDiscovery's libraries are built around that multi-signal approach. Mistake 2: Treating detection as a one-time task Stacks change constantly. Organizations migrate infrastructure, update frameworks, and swap platforms more often than developers expect. Scan once and trust it forever and you're working from stale data. Schedule periodic scans. Many teams wire detection into automation pipelines so infrastructure changes get captured on their own. To operationalize this, see detect website technologies programmatically in Go . Mistake 3: Ignoring reverse proxies and CDNs Modern architectures hide origin servers behind proxy layers. You might detect a CDN and miss what actually powers the app. Detecting a CDN doesn't make the origin invisible. It means you need to look fur

2026-07-24 原文 →
AI 资讯

Airbus Makes Protection from Extraterritorial Law a Scored Criterion in Its Cloud Tender

Airbus selected Scaleway as its sovereign cloud provider after a tender that scored protection against non-European extraterritorial legislation alongside technical capability. Airbus frames it as complementing multi-cloud, not exiting AWS. Practitioners note the pattern is spreading past hyperscalers to small US SaaS vendors, and that sovereignty claims still require verifiable controls. By Steef-Jan Wiggers

2026-07-24 原文 →
AI 资讯

How Normal Software Engineers Actually Use AI in Their Daily Work

How Normal Software Engineers Actually Use AI in Their Daily Work Let's cut through the hype. You're not building the next AGI. You're a working software engineer with deadlines, legacy code, and a backlog that never shrinks. So how do you actually use AI tools in your day-to-day work? After surveying hundreds of developers and reflecting on real-world usage patterns, here's what normal software engineers are doing with AI—no Silicon Valley theatrics required. The Mundane But Invaluable: Code Completion and Boilerplate The most common use case is the least sexy: letting AI handle repetitive code. GitHub Copilot, Cursor, and similar tools excel at generating boilerplate that you'd otherwise copy-paste from Stack Overflow or previous projects. Real example: Writing CRUD endpoints in Express/TypeScript: typescript // Type this comment and let AI complete: // Create a REST endpoint for user registration with email validation app.post('/api/users/register', async (req: Request, res: Response) => { try { const { email, password, name } = req.body; // Email validation const emailRegex = /^[^\s@]+@[^\s@]+\.[^\s@]+$/; if (!emailRegex.test(email)) { return res.status(400).json({ error: 'Invalid email format' }); } // Check if user exists const existingUser = await User.findOne({ email }); if (existingUser) { return res.status(409).json({ error: 'User already exists' }); } // Hash password and create user const hashedPassword = await bcrypt.hash(password, 10); const user = await User.create({ email, password: hashedPassword, name }); res.status(201).json({ userId: user.id, email: user.email }); } catch (error) { res.status(500).json({ error: 'Internal server error' }); } }); Did AI write perfect code? No. But it gave you scaffolding to refine, saving 10-15 minutes of typing. That's the real win. The Game-Changer: Explaining Legacy Code and Obscure APIs Every developer inherits someone else's mess. AI tools shine when deciphering undocumented code or unfamiliar libraries. Pract

2026-07-21 原文 →
AI 资讯

AWS Continuum to Enable Agentic Code Security for Enterprises

Amazon Web Services has recently introduced AWS Continuum, a new integrated security platform to automate the discovery, enforcement, and remediation of security issues across codebases, dependencies, and applications. AWS Continuum launches with four agentic capabilities, aiming at the entire vulnerability lifecycle: penetration testing, code review, threat modelling, and code vulnerabilities. By Gianmarco Nalin

2026-07-17 原文 →