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notification permission detection
There is a cheap, quiet check that a lot of detection scripts run and almost nobody talks about. It asks the browser the same question twice, through two different APIs, and looks at whether the two answers agree. On a real browser they always do. On many headless or over-patched setups they do not, and the disagreement is the tell.
The two APIs are Notification.permission and
navigator.permissions.query({name: 'notifications'}), part of the Permissions API. This page is what each one
returns, why they can drift apart, why a genuine browser keeps them consistent, and how
to read them yourself. It closes with the honest limit: a coherent permission state is
one signal among many, and on its own it proves very little.
Web notifications expose their permission through two separate surfaces that were added to the platform at different times.
The older one is a plain string:
Notification.permission // "default" | "granted" | "denied"The newer one is the general Permissions API, which returns a status object asynchronously:
const status = await navigator.permissions.query({ name: "notifications" });
status.state // "prompt" | "granted" | "denied"Both are reading the same underlying decision: has the user allowed this origin to show
notifications, refused, or not been asked yet. The vocabularies differ by one word.
Notification.permission calls the never-asked state "default"; the Permissions API
calls it "prompt". That mapping is fixed and known: "default" corresponds to
"prompt", "granted" to "granted", "denied" to "denied".
Because both read one state, a browser that has not been asked reports "default" from
the first and "prompt" from the second, every time, with no contradiction. The pair is
coherent because there is nothing to make it otherwise: there is a single genuine
permission value and both APIs are just formatting it.
A detection script does not need the notification feature at all. It needs the two answers, and it compares them.
async function notificationConsistency() {
const legacy = Notification.permission; // "default" on a fresh origin
const modern = (await navigator.permissions
.query({ name: "notifications" })).state; // "prompt" on a fresh origin
const expected = { default: "prompt", granted: "granted", denied: "denied" };
return {
legacy,
modern,
coherent: expected[legacy] === modern,
};
}On an untouched browser the object comes back { legacy: "default", modern: "prompt", coherent: true }. The interesting outputs are the incoherent ones, and there are a few
recognisable shapes:
-
The two APIs disagree.
Notification.permissionsays"default"while the Permissions API says"denied", or vice versa. That combination cannot happen from a real permission decision; it happens when one API is patched, stubbed or shimmed and the other is not. -
The state is forced to
"denied". Some headless configurations and some privacy layers hard-deny notifications globally, so a brand-new origin that no user ever refused already reports"denied"on both APIs. A real first visit is"default", not"denied", so a universal"denied"on untouched origins is itself unusual. -
One API is missing or throws.
navigator.permissionsabsent, or the query rejecting for thenotificationsname, is an older or stripped environment answering.
The check is popular for exactly the reasons that make good fingerprinting: it is a few lines, it needs no permission grant, it triggers no prompt, and it reads a state that is hard to fake consistently once you have started patching one of the two APIs.
The general lesson is the one that runs through most of these notes. Detectors rarely ask whether a single value is unusual; they ask whether two values that must agree actually do. This is that pattern applied to one small corner of the platform.
The reason a genuine Firefox passes this is boring, which is the point: the permission
state is real. There is one stored decision for the origin, Notification.permission
reads it, the Permissions API reads it, and the browser maps "default" to "prompt"
because the specification says to. Nobody wrote code to keep them in sync; they are in
sync because they are the same fact viewed through two windows.
Drift appears when something sits between the script and that fact. A page-level stealth
plugin that overrides Notification.permission to a friendly "default" but leaves
navigator.permissions.query returning whatever the headless engine underneath actually
holds. A container that globally denies notifications, so the never-asked state is
already "denied". A shim that patches one API and forgets the other exists. Each of
these produces a pair that a real browser cannot produce.
This is the same failure mode as running two disguises at once, and it is worth stating plainly because it changes how you should use a tool like this one. If the engine already answers these questions as a genuine browser, adding a JavaScript layer that also answers them is how you manufacture the contradiction. When the browser is real, the extra spoofing layer is what creates the mismatch, not what hides it. The approach invisible_playwright takes is to make the underlying browser genuine so there is one coherent state to read, rather than to intercept the APIs and try to keep several lies aligned. That is also why a real fingerprint holds together under cross-checks that a property-by-property override does not.
You can measure this directly. The two-line launch below returns a real Playwright
Browser, so page.evaluate and every other method work exactly as they do upstream.
from invisible_playwright import InvisiblePlaywright
with InvisiblePlaywright(seed=42) as browser:
page = browser.new_page()
page.goto("https://example.com") # notifications state is per-origin, so load a real one
result = page.evaluate("""async () => {
const legacy = Notification.permission;
const modern = (await navigator.permissions
.query({ name: 'notifications' })).state;
const expected = { default: 'prompt', granted: 'granted', denied: 'denied' };
return { legacy, modern, coherent: expected[legacy] === modern };
}""")
print(result) # {'legacy': 'default', 'modern': 'prompt', 'coherent': True}Passing seed=42 fixes the whole identity, so if you want to rule this check in or out
while debugging something else, you can replay the exact same browser run after run
rather than chasing a value that moves on its own. Read the result, then read it in a
stock Firefox on the same machine and confirm the two match. Comparing against a real
browser instead of trusting a lone coherent: true is the method the rest of these notes
keep coming back to in how to test whether your browser is detected:
a value that looks right in isolation and disagrees with a reference browser is exactly
what a verdict misses.
One practical note: notification permission is scoped per origin, so run the check against
a page you actually loaded, not about:blank. A fresh origin you have never interacted with
is the case detectors care about, because "default" on a never-asked origin is the
honest answer a real first visit gives.
It would be easy to oversell a check this clean. So, plainly: a coherent notification permission state is one signal among hundreds, and passing it establishes almost nothing by itself. It says the two notification APIs are reading the same genuine state. It says nothing about your address, your pacing, or the several hundred other fields a serious system weighs.
invisible_playwright is built to look like a real Firefox driven by a real person, which is why it passes most in-browser checks of this kind: the fingerprint, the TLS handshake and the driver layer read as a genuine browser rather than a patched one, so there is a single coherent state for a check like this to find. That is a real advantage and it is also a bounded one. It does not fix a datacenter IP with a bad reputation, a proxy address that is already on a blocklist, a per-account quota, a rate limit, or behaviour that moves a pointer in straight lines and types at a metronome. Those you supply: a clean residential exit and human pacing. The browser being genuine is necessary and nowhere near sufficient, and any page that tells you otherwise is selling something.
So treat this the way a good detector treats it: as one coherent reading that removes one reason to distrust the session, not as a pass. The full checklist for a session that gets blocked puts the browser layer where it belongs, several steps below the IP and the behaviour.
The Permissions-API-versus-Notification.permission check is a small, quiet cross-check:
ask the same question through two APIs and see whether the answers agree. A real browser
answers "default" and "prompt" on a never-asked origin, coherently, every time,
because both APIs read one genuine state. Over-patched and headless setups drift, force a
universal "denied", or throw, and the disagreement is the signal. A genuine engine keeps
the pair consistent for free; a page-level layer that patches one API is how you break it.
Measure it against a stock browser, and remember it proves one thing among many.
What state should notifications report on a normal browser? On an origin nobody has
been asked about, Notification.permission is "default" and
navigator.permissions.query({name:'notifications'}).state is "prompt". Those two
correspond, so the pair is coherent.
Why does my automated browser report "denied" for notifications? Some headless
configurations and privacy layers hard-deny notifications globally, so a brand-new origin
shows "denied" before any user ever refused. A real first visit is "default", so a
universal "denied" is itself a mild tell.
How do detectors use notification permission? They read both APIs and check that the answers map to each other. They do not need to show a notification or get a grant; the inconsistency between the two reads is the whole signal.
Does a consistent permission state mean I will not be detected? No. It is one signal among many. It says the two notification APIs agree; it says nothing about your IP, your pacing, or the rest of the fingerprint.
Should I patch Notification.permission to make it look normal? If the browser
underneath is genuine, patching one API is how you create a mismatch with the other. The
consistent state comes from a real permission value, not from an override.
Does invisible_playwright handle this? The underlying Firefox is genuine, so both APIs read one real state and the pair stays coherent without an interception layer. That covers the browser side; the IP and the behaviour are still yours to supply.
- The Notification API and the Permissions API as specified: the
"default"/"granted"/"denied"string and the"prompt"/"granted"/"denied"status, and the mapping between them. - This project's own realness gates, which read permission state as one field among the roughly four hundred cross-checked against a stock Firefox rather than as a standalone pass.
See also: how CreepJS decides you are lying for the same truth-versus-report logic at scale, resist fingerprinting the honest way for why a genuine state beats a patched one, and the checklist for being detected on one site for where the browser layer sits.
Written while maintaining invisible_playwright, a Firefox patched at the C++ level driven by stock Playwright. The consistency this page describes is a byproduct of the browser being real, not a trick layered on top of it.
Documentation
Guides
-
Browser Identity
- navigator.webdriver is not the tell you think it is
- hardwareConcurrency, deviceMemory and storage quota
- Screen size and viewport tells in headless browsers
- Playwright headless vs headed: what detectors see
- Playwright User Agent: Why You Should Not Set It
- Client Hints and Sec-Fetch: headers that must agree
- Codec fingerprinting: canPlayType and MediaCapabilities
- Permissions API: the two answers that must agree
- CSS fingerprinting: what media queries reveal
- What privacy.resistFingerprinting actually does
- speechSynthesis.getVoices() returns an empty array
- Browser extensions are a fingerprint surface
- BFCache and pageshow.persisted under browser automation
- Service workers, storage partitioning and automation
- Web Workers: where page-level fingerprint patches fail
- fake-useragent is archived: what changes and what doesn't
- navigator.buildID and the stale build date tell
- navigator.maxTouchPoints and pointer consistency
- navigator.platform and oscpu on a spoofed OS
- navigator.vendor and productSub: the Firefox tells
- Accept-Language header vs navigator.languages
- window.devicePixelRatio: the pref that spoofs it
- Can you be fingerprinted in incognito mode?
- Is changing the user agent enough to avoid detection?
- Can a website tell you are running on a server?
- Can two devices share a browser fingerprint?
- Does clearing cookies stop fingerprint tracking?
- Color-gamut and HDR media queries as a fingerprint
- Battery API fingerprint: does Firefox expose it?
- Is navigator.connection a fingerprint in Firefox?
- Can the Gamepad API fingerprint or detect a bot?
- Do accelerometer and gyroscope APIs leak on desktop?
- prefers-reduced-motion and other OS-setting tells
- Does storage quota estimate reveal disk size?
- Can scrollbar width reveal my operating system?
-
Canvas, WebGL, Fonts and Audio
- Canvas fingerprint noise: why per-call randomising fails
- Firefox WebGL renderer strings: what ANGLE reports
- WebGL parameters: the numbers are the same on every GPU
- Your renderer string says NVIDIA. Your pixels say software.
- Why headless browsers render different fonts
- How to make Linux and macOS report real Windows fonts
- measureText and TextMetrics as a fingerprinting surface
- AudioContext fingerprinting, and why adding noise backfired
- Canvas and WebGL fingerprints, identical across OSes
- Emoji fingerprinting: why emoji look the same on any OS
- Detecting installed fonts in JavaScript by width
- WebGL shader precision as a fingerprint surface
- AudioContext sampleRate and latency as a fingerprint
- Is WebGPU a browser fingerprint?
-
Network, Proxy and WebRTC
- WebRTC leak with a proxy in Playwright and Selenium
- WebRTC ICE candidate spoofing: the fields that give it away
- Playwright proxy in Python: per-context, and what leaks
- Playwright proxy not working? SOCKS5 auth in Python
- Playwright timezone does not match the proxy IP
- JA3 and JA4: why a TLS fingerprint cannot be patched
- Playwright in Docker: it runs, and still gets blocked
- Web scraping keeps getting blocked with good proxies
- Python web scraping blocked? The TLS fingerprint reason
- SOCKS5 vs HTTP proxy: what each does in the browser
- WebRTC IPv6 leak: why a proxy does not stop it
- HTTP/2 fingerprint: the layer above the TLS handshake
- TLS fingerprint vs User-Agent: the contradiction
- WebRTC has no ICE candidates behind a proxy
- WebRTC IP that matches the proxy exit, by design
- How to check if a proxy leaks your real IP
- about:webrtc: read your real ICE candidates
- Offline timezone resolution from a proxy exit IP
- Residential vs datacenter vs mobile proxies explained
- Sticky vs rotating proxy sessions: which to use
- Does a proxy leak DNS? DoH and DNS leaks explained
- HTTP/3 and QUIC fingerprint: what a site sees
- What is ASN and IP reputation in bot detection?
- What does a mobile carrier IP look like to a site?
- IPv6 vs IPv4: which does your proxy expose?
- Geolocation API vs IP location: keep them consistent
- Does chaining two proxies help avoid detection?
-
The Automation Layer
- Function.prototype.toString and the [native code] check
- The ChromeDriver
cdc_variable, and why renaming it fails - Why an attached debugger makes automation detectable
- Execution context was destroyed, and when it means detection
- Human-like mouse movement: Bezier curves are the easy part
- Why a Playwright upgrade broke 97 of 133 tests overnight
- Playwright persistent profile: what it fixes and breaks
- Why humanized mouse movement can fail on hover()
- Why content_frame() returns None for a cross-origin iframe
- Orphaned Firefox processes on Windows: the killed-runner leak
- Firefox launches but Playwright can't drive it: packaging gap
- Why automating login is riskier than reusing a session
- Playwright new_page vs new_context: the viewport tell
- Playwright dialog and popup handling without a tell
- Playwright download files with Firefox and the tell
- Playwright connect_over_cdp does not work with Firefox
- Playwright mobile emulation on Firefox and isMobile
- Playwright isTrusted: are automated clicks real?
- Playwright set_input_files uploads and the tell
- Can websites detect Playwright? What is actually visible
- Does Playwright Set navigator.webdriver to True?
- Does Playwright Leave Traces a Website Can See?
- Does Playwright Change My Browser Fingerprint?
- Can I Use My Real Browser Profile With Playwright?
- Does Playwright Support Firefox Stealth?
- Is Playwright Firefox Harder to Detect Than Chromium?
- Does Playwright Get Detected on the First Request?
- Why Playwright's bundled Firefox is easy to detect
- ghost-cursor human mouse paths with Playwright
- Stock Playwright, patched Firefox: how they connect
- Intercept and mock network requests with page.route
- Record and replay HTTP traffic with HAR in Playwright
- Record a Playwright trace to debug a failed scrape
- Record a video of a Playwright browser session
- Save and reuse login with storage_state in Playwright
- Read and set cookies in a Playwright context
- Set geolocation and permissions per Playwright context
- Handle HTTP basic auth in Playwright (http_credentials)
- Isolate identities with a browser context per session
- Drag and drop elements in Playwright with drag_to
- When to use an HTTP client vs a real browser
- Migrating from requests + BeautifulSoup to a browser
-
AI Agents and Frameworks
- AI browser agents and stealth: what fits and what does not
- browser-use gets detected: what you can and cannot change
- crawl4ai stealth mode and custom browser engines
- Give a LangChain agent an invisible_playwright browser
- Feed invisible_playwright pages into a RAG index
- Computer-use agents and browser fingerprint detection
- Give an MCP browser server a stealth Firefox engine
- Give each AI agent a reproducible browser identity
- Run parallel browser agents with distinct fingerprints
- Why AI browser agents have their own timing signal
- Running an AI browser agent headless on a server
- Give a browser agent a persistent logged-in session
- smolagents: hand the agent an invisible_playwright tool
- Stagehand and stealth: why a Firefox engine won't drop in
- DOM-reading vs screenshot agents: which stealth helps
- Back a computer-use agent with a real browser engine
- AI agent retry loops trip rate limits, not fingerprints
-
Detectors, Explained
- What bot.sannysoft.com actually checks, row by row
- How CreepJS decides you are lying
- What BotD actually detects, and what it does not
- Why a FingerprintJS visitor ID changes
- reCAPTCHA v3 score: why a fresh browser scores badly
- BrowserLeaks canvas and WebGL hash, explained
- What BrowserLeaks actually tests, surface by surface
- Browser trust scores explained: what the number means
- How do websites detect bots?
- What is a browser fingerprint?
- What data does a website collect about your browser?
- Does a VPN stop browser fingerprinting?
- Do websites know you are using a script?
- How accurate is browser fingerprinting?
- Can a website detect a virtual machine?
- Can websites detect a datacenter or proxy IP?
- getClientRects fingerprinting: subpixel geometry as ID
- Notification.permission as a bot-detection signal
- speechSynthesis voices as a cross-platform fingerprint
- Can a website detect typing by keystroke timing?
- Can a website detect Clipboard API access?
- What are mouse-dynamics behavioural biometrics?
-
Testing and Troubleshooting
- How to test bot detection without a false pass
- Playwright detected as a bot: the checklist to fix it
- Firefox preferences that silently do nothing
- Slow browser launch: a per-request timeout is not a budget
- Playwright screenshot returns noise: readback fix
- Canvas fingerprint changes every run: use a seed
- Playwright TargetClosedError: the causes and the fixes
- Why am I blocked with a clean fingerprint?
- Why Does My Playwright Script Get Blocked?
- Is Playwright headless detectable? What sites check
- Can You Run Playwright Without Being Detected?
- Why Playwright Works Locally but Fails in the Cloud
- Does Playwright Trigger reCAPTCHA More Often?
-
Scraping with Playwright
- How to scrape without getting blocked
- How to scrape a site that blocks headless browsers
- How to scrape infinite scroll pages with Playwright
- How to rotate proxies when scraping with Playwright
- How to scrape data behind a login with Playwright
- How to run Playwright in Docker without getting detected
- How to use invisible_playwright in Docker
- Playwright bot detection: how to avoid it in Python
- How to scrape paginated pages with Playwright
- How to download files with Playwright
- How to upload files with Playwright, and verify it landed
- How to handle cookie consent banners in Playwright
- How to handle popups and modals in Playwright
- How to take full-page screenshots with Playwright
- How to generate a PDF with Playwright and Firefox
- How to wait for content to load in Playwright
- How to retry failed requests when scraping Playwright
- How to scrape pages in parallel with Playwright
- How to rate limit your own Playwright scraper
- How to scrape HTML tables with Playwright
- How to scrape iframe content with Playwright
- How to scrape shadow DOM content with Playwright
- How to capture XHR and API responses in Playwright
- How to scrape geotargeted content with Playwright
- How to scrape real estate listings with Playwright
- How to scrape job postings with Playwright
- How to scrape e-commerce product pages with Playwright
- How to track product prices with Playwright
- How to scrape hotel room prices with Playwright
- How to scrape flight prices with Playwright
- How to scrape classifieds listings with Playwright
- How to scrape vacation rental listings with Playwright
- How to scrape car listings with Playwright
- How to scrape apartment rentals with Playwright
- How to track product stock and restocks with Playwright
- How to scrape location-based store prices with Playwright
- How to scrape flexible-date fare calendars with Playwright
- How to scrape product reviews with Playwright
- How to scrape reviews and ratings with Playwright
- How to scrape news article text with Playwright
- How to scrape business directory listings with Playwright
- How to scrape event and ticket listings with Playwright
- How to scrape restaurant menu data with Playwright
- How to scrape stock and financial data with Playwright
- How to scrape social media profiles with Playwright
- How to scrape forum and community threads with Playwright
- How to scrape image galleries with Playwright
- How to scrape video listings and metadata with Playwright
- How to scrape map-based local results with Playwright
- How to scrape sports scores and stats with Playwright
- How to scrape cryptocurrency prices with Playwright
- How to scrape deals and coupon codes with Playwright
- How to scrape to CSV with Playwright
- How to scrape to JSON Lines with Playwright
- How to scrape into a SQLite database with Playwright
- How to export scraped data to Excel with Playwright
- How to extract JSON-LD structured data with Playwright
- How to extract Open Graph and meta tags with Playwright
- How to extract links and build a crawl frontier in Playwright
- How to scrape RSS and Atom feeds with Playwright
- How to download images in bulk with Playwright
- How to extract clean article text with Playwright
- How to scrape a sitemap.xml with Playwright
- How to scrape into a pandas DataFrame with Playwright
- How to clean scraped prices and dates with Playwright
- Scrape search results by driving a form in Playwright
- Scrape a map-based search with Playwright
- Scrape autocomplete and typeahead inputs with Playwright
- Scrape date-picker calendars with Playwright
- Crawl list pages to detail pages with Playwright
- Scrape lazy-loaded images with Playwright
- Extract data from canvas charts with Playwright
- Scrape a multi-step wizard flow with Playwright
- How to resume an interrupted scrape with Playwright
- Incremental scraping: only new items since last run
- Handle 403 and 429 backoff mid-scrape in Playwright
- Scrape load-more button pages with Playwright
- Scrape nested pagination with Playwright
- Scrape an SPA that changes URL via history API
- Use BeautifulSoup with invisible_playwright
- Run stealth Playwright tests with pytest fixtures
- Run invisible_playwright concurrently with asyncio
- Run invisible_playwright in GitHub Actions CI
- Can you run invisible_playwright serverless?
- Run invisible_playwright in Celery task workers
- Schedule invisible_playwright scrapes with cron
- Run invisible_playwright headful on a server with Xvfb
- Use invisible_playwright in an Airflow DAG
- Combine invisible_playwright with httpx for speed
- Wrap invisible_playwright in a FastAPI service
- Run invisible_playwright in a Jupyter notebook
- Block images to speed up scraping (and when not to)
- Wait for a specific API response in Playwright
Comparisons
- Playwright stealth in Python: three levels that work
- Firefox or Chromium for anti-detect automation
- Chromium is not Chrome, and detectors know the difference
- Playwright stealth vs Camoufox: two patched Firefoxes
- Playwright stealth vs Patchright: driver vs engine
- Playwright stealth vs undetected-chromedriver and nodriver
- playwright-stealth vs a patched engine: page vs browser
- puppeteer-extra-plugin-stealth: unmaintained since 2024
- selenium-stealth hasn't been updated since December 2021
- pyppeteer's own maintainer says to switch to Playwright
- invisible_playwright vs rebrowser-patches: the same CDP fix
- invisible_playwright vs fingerprint-suite: injection vs engine
- invisible_playwright vs playwright-with-fingerprints
- invisible_playwright vs Scrapling
- invisible_playwright vs Ulixee Hero
- invisible_playwright vs SeleniumBase UC Mode
- Splash is unmaintained, and it was never a real browser
- invisible_playwright vs DrissionPage
- WebDriver BiDi vs CDP: does the new protocol hide you
- invisible_playwright vs hrequests
- zendriver vs invisible_playwright: Chrome CDP vs Firefox
- botasaurus vs invisible_playwright: framework vs library
- curl_cffi vs invisible_playwright: TLS client vs browser
- pydoll vs invisible_playwright: CDP without a driver
- selenium-driverless vs invisible_playwright stealth
- puppeteer-real-browser vs invisible_playwright
- Migrating from Selenium to Playwright for stealth
- Migrating from Puppeteer to Playwright for stealth
- undetected-chromedriver vs a patched Firefox browser
- scrapy-playwright vs a patched Firefox for stealth
- playwright-extra stealth plugins vs a patched browser
- tls-client vs a real browser: when TLS is enough
- Anti-detect browser or Playwright stealth: which you need
- undetected-playwright vs a patched Firefox binary
Integrations
- Using invisible_playwright with CodeceptJS
- Using invisible_playwright with Crawlee for Python
- Using invisible_playwright with Crawlee for JavaScript
- Using invisible_playwright with scrapy-playwright
- Using invisible_playwright with Robot Framework Browser
- Cypress, WebdriverIO, TestCafe and Nightwatch integration
- Using invisible_playwright with Microsoft's Playwright MCP
- Using the engine from Go, Java, C#, Ruby and Rust
docs/ source folder