Page summary

https://erp.hrms.matchbestgroup.com

Tested 2026-08-06 14:44:09 using Chrome 150.0.7871.186 (runtime settings)

SummaryWaterfallMetricsRenderingCoachPageXrayCPUThird party

This page is snappy to interact with and visually stable, but slow to paint, loose on best practices and weak on user privacy.

77 / 100
Coach overall
82 / 100
Performance
82 / 100
Best practice
68 / 100
Privacy

How it loaded →

0 → 4.446 s · median run
Frame at 0 ms
start
Frame at 2100 ms
2.100 s
Frame at 2700 ms
2.700 s
Frame at 3300 ms
3.300 s
Frame at 3900 ms
3.900 s
Frame at 4500 ms
Complete4.500 s
1.170 s
First Visual Change
2.769 s
Speed Index
4.245 s
Visual Complete 85%
4.446 s
Last Visual Change
TTFB751 msLCP4.204 sTBT0 msCLS0.01

What to act on · top recommendations

Have a fast first contentful paint

0 / 100

First contentful paint is poor (4.204 s). It is in the Google Web Vitals poor range, slower than 3 seconds.

Have a fast largest contentful paint

0 / 100

Largest contentful paint is poor 4.204 s. It is in the Google Web Vitals poor range, slower than 4 seconds.

Total JavaScript size shouldn't be too big

0 / 100

The total JavaScript transfer size is 1.3 MB. This is totally crazy! There is really room for improvement here.

Google Web Vitals

min · median · mean · max of 1 run
MetricMinMedianMeanMax
Time To First Byte (TTFB)751 ms751 ms751 ms751 ms
Largest Contentful Paint (LCP)4.204 s4.204 s4.204 s4.204 s
Cumulative Layout Shift (CLS)0.01440.01440.01440.0144

Visual Metrics

min · median · mean · max of 1 run
MetricMinMedianMeanMax
First visual change1.170 s1.170 s1.170 s1.170 s
Last visual change4.446 s4.446 s4.446 s4.446 s
Speed index2.769 s2.769 s2.769 s2.769 s
Visual readiness3.276 s3.276 s3.276 s3.276 s
Visual complete 854.245 s4.245 s4.245 s4.245 s
Visual complete 954.446 s4.446 s4.446 s4.446 s
Visual complete 994.446 s4.446 s4.446 s4.446 s

CPU

min · median · mean · max of 1 run
MetricMinMedianMeanMax
Total Blocking Time0 ms0 ms0 ms0 ms
Max Potential FID0 ms0 ms0 ms0 ms
CPU long tasks 3333
CPU last long task happens at3.672 s3.672 s3.672 s3.672 s

More metrics

min · median · mean · max of 1 run
MetricMinMedianMeanMax
First paint1.688 s1.688 s1.688 s1.688 s
Load event end3.513 s3.513 s3.513 s3.513 s

Waterfall

Run 1 SpeedIndex median

First paintFCPLCPDOMContentLoadedDOM interactiveLoadRender-blockingRedirectError

Rendering

Run 1 · median
0.000 s
0s1s2s3s4s

The red band on the timeline marks when the main thread was busy with long tasks: moments when the page could not paint or respond, however the video looks.

Download video

Filmstrip

31 frames

Use --filmstrip.showAll to show all filmstrips.

Frame at 0 ms
0 ms
0 %
Frame at 1.200 s
1.200 s
3 %
Frame at 1.300 s
1.300 s
3 %
Frame at 1.800 s
1.800 s
58 %
Frame at 1.900 s
1.900 s
58 %
Frame at 2.000 s
2.000 s
58 %
Frame at 2.100 s
2.100 s
58 %
Frame at 2.200 s
2.200 s
58 %
Frame at 2.300 s
2.300 s
58 %
Frame at 2.400 s
2.400 s
58 %
Frame at 2.500 s
2.500 s
58 %
Frame at 2.600 s
2.600 s
58 %
Frame at 2.700 s
2.700 s
58 %
Frame at 2.800 s
2.800 s
58 %
Frame at 2.900 s
2.900 s
58 %
Frame at 3.000 s
3.000 s
58 %
Frame at 3.100 s
3.100 s
58 %
Frame at 3.200 s
3.200 s
58 %
Frame at 3.300 s
3.300 s
58 %
Frame at 3.400 s
3.400 s
58 %
Frame at 3.500 s
3.500 s
58 %
Frame at 3.600 s
3.600 s
58 %
Frame at 3.700 s
3.700 s
58 %
Frame at 3.800 s
3.800 s
58 %
Frame at 3.900 s
3.900 s
58 %
Frame at 4.000 s
4.000 s
58 %
Frame at 4.100 s
4.100 s
58 %
Frame at 4.200 s
4.200 s
58 %
Frame at 4.300 s
4.300 s
93 %
Frame at 4.400 s
4.400 s
93 %
Frame at 4.500 s
4.500 s
100 %

Click a frame to seek the video to that moment. The dot marks frames where the page changed visually.

Why was rendering delayed?

First paint took 4.204 s. First paint landed at 4.204 s on a 751 ms first byte; the 2 render-blocking requests were done by 1.116 s and the remaining ~3.088 s is style, layout and web-font loading.

Want to see how much CSS style-recalculation work delayed FCP and LCP, plus CPU long tasks? Run with --cpu.

Render blocking requests

3 requests · 6.8 KB

Blocking requests delay both paints: the browser renders nothing until they arrive, so they push First Contentful Paint and everything after it, including the largest paint (LCP). Requests that block the parser inside the body stall everything after them in the document. Load JavaScript with defer or async, and keep non-critical CSS off the critical path with media attributes. Bars show when each request loaded on a clock that runs to the last paint; the gap after the bars is style and layout work. Web fonts are context, not blockers: text renders invisible or in a fallback face while they load, so a font finishing after a paint is the classic reason text changed late.

RequestWhen it loadedTransferDownload
document
erp.hrms.matchbestgroup.com · TTFB 751 ms
734 ms
549 B733 ms
css · erp.hrms.matchbestgroup.com
249 ms
5.4 KB249 ms
css2blocking
css · fonts.googleapis.com
90 ms
1.1 KB90 ms
runtime-config.jsblocks parser in body
javascript · erp.hrms.matchbestgroup.com
496 ms
294 B496 ms
web font · fonts.gstatic.com
24 ms
7.7 KB24 ms
web font · fonts.gstatic.com
53 ms
7.6 KB53 ms
web font · fonts.gstatic.com
67 ms
7.8 KB67 ms
01.051 s2.102 sFCP · LCP 4.204 s

Coach

The coach helps you find performance problems on your web page using web performance best practice rules. And gives you advice on privacy and best practices. Tested using Coach-core version 9.2.1.

Performance advice

82
3 errors6 warnings2 info
error(0)Have a fast first contentful paintfirstContentfulPaint

First contentful paint is poor (4.204 s). It is in the Google Web Vitals poor range, slower than 3 seconds.

The First Contentful Paint (FCP) metric measures the time from when the page starts loading to when any part of the page content is rendered on the screen. For this metric, "content" refers to text, images (including background images), <svg> elements, or non-white <canvas> elements.

error(0)Have a fast largest contentful paintlargestContentfulPaint

Largest contentful paint is poor 4.204 s. It is in the Google Web Vitals poor range, slower than 4 seconds.

Largest contentful paint is one of Google Web Vitals and reports the render time of the largest image or text block visible within the viewport, relative to when the page first started loading. To be fast according to Google, it needs to render before 2.5 seconds and results over 4 seconds is poor performance.

Offenders
  • <h2></h2>
warn(0)Total JavaScript size shouldn't be too bigjavascriptSize

The total JavaScript transfer size is 1.3 MB. This is totally crazy! There is really room for improvement here.

A lot of JavaScript often means you are downloading more than you need. How complex is the page and what can the user do on the page? Do you use multiple JavaScript frameworks?

Offenders
URLTransferContent
https://erp.hrms.matchbestgroup.com/assets/index-DaJHUdK7.js1.2 MB1.2 MB
https://erp.hrms.matchbestgroup.com/runtime-config.js52 B52 B
warn(40)Avoid CPU Long TaskslongTasks

The page has 3 CPU long tasks with the total of 473 ms. The total blocking time is 0 ms and 3 long tasks before first contentful paint with total time of 473 ms. However the CPU Long Task is depending on the computer/phones actual CPU speed, so you should measure this on the same type of the device that your user is using. Use Geckoprofiler for Firefox or Chromes tracelog to debug your long tasks.

Long CPU tasks locks the thread. To the user this is commonly visible as a "locked up" page where the browser is unable to respond to user input; this is a major source of bad user experience on the web today. However the CPU Long Task is depending on the computer/phones actual CPU speed, so you should measure this on the same type of the device that your user is using. To debug you should use the Chrome timeline log and drag/drop it into devtools or use Firefox Geckoprofiler.

Offenders
  • self
  • self
  • unknown
warn(50)Avoid extra requests by setting cache headerscacheHeaders

The page has 5 requests that are missing a cache time. Configure a cache time so the browser doesn't need to download them every time. It will save 1.3 MB the next access.

The easiest way to make your page fast is to avoid doing requests to the server. Setting a cache header on your server response will tell the browser that it doesn't need to download the asset again during the configured cache time! Always try to set a cache time if the content doesn't change for every request.

Offenders
infoAvoid too many fontsfewFonts

The page has 3 font requests. Do you really need them? What value does the fonts give the user?

How many fonts do you need on a page for the user to get the message? Fonts can slow down the rendering of content, try to avoid loading too many of them because worst case it can make the text invisible until they are loaded (FOIT—flash of invisible text), best case they will flicker the text content when they arrive.

Offenders
warn(80)Always compress text contentcompressAssets

The page has 2 requests that are served uncompressed. You could save a lot of bytes by sending them compressed instead.

In the early days of the Internet there were browsers that didn't support compressing (gzipping) text content. They do now. Make sure you compress HTML, JSON, JavaScript, CSS and SVG. It will save bytes for the user; making the page load faster and use less bandwith.

Offenders
URLTransferContent
https://erp.hrms.matchbestgroup.com/assets/index-DaJHUdK7.js1.2 MB1.2 MB
https://erp.hrms.matchbestgroup.com/assets/index-xvSE_VCH.css5.2 KB5.2 KB
error(80)Avoid missing and error requestsresponseOk

The page has 2 error responses. The page has 2 responses with code 404.

Your page should never request assets that return a 400 or 500 error. These requests are never cached. If that happens something is broken. Please fix it.

Offenders
warn(90)Inline CSS for faster first renderinlineCss

The page has both inline styles as well as it is requesting 1 CSS file inside of the head. Let's only inline CSS for really fast render.

In the early days of the Internet, inlining CSS was one of the ugliest things you can do. That has changed if you want your page to start rendering fast for your user. Always inline the critical CSS when you use HTTP/1 and HTTP/2 (avoid doing CSS requests that block rendering) and lazy load and cache the rest of the CSS. It is a little more complicated when using HTTP/2. Does your server support HTTP push? Then maybe that can help. Do you have a lot of users on a slow connection and are serving large chunks of HTML? Then it could be better to use the inline technique, becasue some servers always prioritize HTML content over CSS so the user needs to download the HTML first, before the CSS is downloaded.

Offenders
warn(90)Don't use private headers on static contentprivateAssets

The page has 1 request with private headers. Make sure that the assets really should be private and only used by one user. Otherwise, make it cacheable for everyone.

If you set private headers on content, that means that the content are specific for that user. Static content should be able to be cached and used by everyone. Avoid setting the cache header to private.

Offenders
infoLong cache headers is goodcacheHeadersLong

The page has 1 request that have a shorter cache time than one year (but still a cache time).

Setting a cache header is good. Setting a long cache header (a year) is even better because the asset will stay in the browser cache across visits. For content-hashed URLs (e.g. app.4af2.css) you can safely use Cache-Control: max-age=31536000, immutable. For unversioned URLs that may change, use a revalidating strategy instead.

Offenders

Best practice advice

82
1 warning2 info
infoMeta descriptionmetaDescription

The page is missing a meta description.

Use a page description to make the page more relevant to search engines.

warn(50)Avoid too many third party requeststhirdParty

The page do 40% requests to third party domains (4 requests and 24.9 kB). First party is 6 requests and 1.3 MB. The regex .*matchbestgroup.* was used to calculate first/third party requests.

Do not load most of your content from third party URLs.

infoAvoid unnecessary headersunnecessaryHeaders

Privacy advice

68
1 error6 warnings4 info
warn(0)Declare a referrer policy on the documentreferrerPolicy

No <meta name="referrer"> tag was found on the page. Set a Referrer-Policy response header (preferred) or add a meta tag, for example <meta name="referrer" content="strict-origin-when-cross-origin">.

Without an explicit referrer policy the browser falls back to the user-agent default and may leak the full URL of the previous page (including query strings) to every cross-origin request. Set a Referrer-Policy response header (preferred) or a <meta name="referrer"> tag in the document. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Referrer-Policy

warn(0)Use a strict Content-Security-Policy header to mitigate cross-site scripting (XSS) attacks.contentSecurityPolicyHeader

Set a Content-Security-Policy header to mitigate cross-site scripting attacks. You can start with a Content-Security-Policy-Report-Only header, which only reports violations rather than blocking them.

A Content-Security-Policy response header tells the browser which sources of script, style, and other content are allowed. The most effective form is a strict CSP using nonces or hashes together with strict-dynamic; the worst is a missing header, with unsafe-inline and unsafe-eval close behind. https://web.dev/articles/strict-csp

Offenders
infoSet a Cross-Origin-Embedder-Policy header so cross-origin subresources opt in to being embedded.crossOriginEmbedderPolicyHeader

Set a Cross-Origin-Embedder-Policy header (typically require-corp or credentialless) on the document response to control cross-origin embedding.

Cross-Origin-Embedder-Policy (COEP) makes the page refuse to load cross-origin subresources unless they explicitly opt in via CORP or CORS. Together with Cross-Origin-Opener-Policy it puts the page in a cross-origin isolated context, which mitigates cross-window side-channel attacks (Spectre) and unlocks high-resolution timers and SharedArrayBuffer. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Cross-Origin-Embedder-Policy

Offenders
warn(0)Set a Cross-Origin-Opener-Policy header to isolate the page from cross-origin windows.crossOriginOpenerPolicyHeader

Set a Cross-Origin-Opener-Policy header (typically same-origin) on the document response to isolate the page from cross-origin windows.

Cross-Origin-Opener-Policy (COOP) lets a page sever its window-group ties to cross-origin documents that opened it or that it opens. Together with Cross-Origin-Embedder-Policy it puts the page in a cross-origin isolated context, which mitigates cross-window side-channel attacks (Spectre) and unlocks high-resolution timers and SharedArrayBuffer. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Cross-Origin-Opener-Policy

Offenders
infoSet a Cross-Origin-Resource-Policy header to limit who may embed the page.crossOriginResourcePolicyHeader

Set a Cross-Origin-Resource-Policy header (same-origin, same-site or cross-origin) on the document response to limit who may embed it.

Cross-Origin-Resource-Policy (CORP) is a per-response opt-in that tells the browser which origins are allowed to embed the resource. It blocks cross-origin or cross-site no-cors embedding (img, script, iframe, etc.) and is one of the building blocks of cross-origin isolation. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Cross-Origin-Resource-Policy

Offenders
infoSet a NEL header so the browser reports network errors back to you.nelHeader

Set a NEL header (paired with Reporting-Endpoints) to collect connection-level error reports from the field.

The NEL (Network Error Logging) response header tells the browser to record connection-level failures (DNS, TLS, HTTP errors) and ship them to a reporting endpoint. NEL pairs with the Reporting-Endpoints / Report-To header — the page declares the endpoint group and NEL points at it. Together they give you visibility into errors that never reach your origin server. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/NEL

Offenders
warn(0)Set a Permissions-Policy header to control which browser features the page can use.permissionsPolicyHeader

Set a Permissions-Policy header to control which browser features the page can use.

The Permissions-Policy response header (the successor to Feature-Policy) lets a site explicitly opt in or out of powerful browser features such as camera, microphone, geolocation, payment and clipboard. Setting a strict policy reduces the attack surface and limits what embedded third parties can do. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Permissions-Policy

Offenders
warn(0)Set a referrer-policy header to make sure you do not leak user information.referrerPolicyHeader

Set a referrer-policy header to make sure you do not leak user information.

Referrer Policy is a new header that allows a site to control how much information the browser includes with navigations away from a document and should be set by all sites. https://scotthelme.co.uk/a-new-security-header-referrer-policy/.

Offenders
infoDeclare reporting endpoints so the browser can deliver Reporting-API events.reportingEndpointsHeader

Set a Reporting-Endpoints header (or the legacy Report-To header) so CSP reports, NEL data and other Reporting-API events have an endpoint to land at.

The Reporting-Endpoints response header (the successor to Report-To) names the URLs that browsers should POST reports to. Without it, CSP report-to directives, Cross-Origin-Opener-Policy reports, NEL data and other Reporting-API events have nowhere to go. The legacy Report-To header is still accepted for older Chromium versions. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Reporting-Endpoints

Offenders
error(0)Set a strict transport header to make sure the user always use HTTPS.strictTransportSecurityHeader

Set a strict transport header to make sure the user always use HTTPS.

The HTTP Strict-Transport-Security response header (often abbreviated as HSTS) lets a web site tell browsers that it should only be accessed using HTTPS, instead of using HTTP. https://developer.mozilla.org/en-US/docs/Web/HTTP/Headers/Strict-Transport-Security.

Offenders
warn(0)Do not share user data with third parties.thirdPartyPrivacy

The page has 40% requests that are 3rd party (4 requests with a size of 24.9 kB). The page also have request to companies that harvest data from users and do not respect users privacy (see https://en.wikipedia.org/wiki/Surveillance_capitalism). The page do 4 survelliance requests and uses 1 survelliance tool. The page do 4 surveillance requests and uses 1 surveillance tool.

Using third party requests shares user information with that third party. Please avoid that! The project https://github.com/patrickhulce/third-party-web is used to categorize first/third party requests.

Offenders

Page info

A snapshot of what the browser actually built for this page: the document, how big and deep the DOM tree is and what it kept in storage. Big, deep trees are slower to style and lay out, so the counts Chrome warns about carry a flag.

Page info

Document

What the page says it is and how large it rendered.

TitleHRMS Payroll SystemThe document title, shown in the browser tab and used by search results.
Layout viewport1365 × 620 pxThe width the page laid out at, and the full height of the rendered document.

DOM structure

How much markup the browser has to build, style and lay out.

DOM elements60Total HTML elements. Fewer means less for the browser to style, lay out and paint.
Avg DOM depth7How deeply elements are nested on average.
Max DOM depth12The deepest nesting on the page. Deep branches cost more style recalculation.
Iframes0No embedded documents on this page.
Script tags2Number of script elements. More scripts usually means more main-thread work.

Storage and connection

What the page stored on the client, and the network it was tested on.

Local storage0 bData the page saved in localStorage, kept across visits.
Session storage0 bData kept in sessionStorage for this tab session only.
Connection type4GWhat the Network Information API reported for the test connection.

Technologies used to build the page

Data collected using Coach-core version 9.2.1. With updated code from Webappanalyzer 2026-05-04. Use --browsertime.firefox.includeResponseBodies html or --browsertime.chrome.includeResponseBodies html to help Wappalyzer find more information about technologies used.

Detected technologies

4 technologies
  • UbuntuConfidence100
    Operating systems
  • Nginx1.28.3Confidence100
    Web serversReverse proxies
  • HSTSConfidence100
    Security
  • HTTP/3Confidence100
    Miscellaneous

Third-party tools

3 tools

Data collected using Third Party Web version 0.29.2.

Cdn
  • Google Fonts
Survelliance
  • Google Fonts
Surveillance
  • Google Fonts

Data from run 1

Visual Metrics

Visual milestones

all times from navigation start
Speed Index2.77 show quickly the page looked done
First Visual Change1.17 sfirst paint reaches the screen
Last Visual Change4.45 sscreen stops changing · 3.28 s after first
nothing painted yet
First Visual Change1.17 s
Visual Complete 85%4.25 s
Visual Complete 95% · Visual Complete 99% · Last Visual Change4.45 s
Visual Readiness3.28 s· first to last change
01.0 s2.0 s3.0 s4.0 s
Content milestones
Perception index
Visual progress
Visual progress at 0 s0.0s
Visual progress at 1.9 s1.9s
Visual progress at 2.4 s2.4s
Visual progress at 2.8 s2.8s
Visual progress at 3.2 s3.2s
Visual progress at 3.6 s3.6s
Visual progress at 4.1 s4.1s
Visual progress at 4.5 s4.5s
FCP4.20s
LCP4.20s
VC854.25s
Long tasks
0.0s0.9s1.8s2.7s3.6s4.5s

Google Web Vitals

from run 1

Largest Contentful Paint

When the page main content is rendered, collected via the Largest Contentful Paint API. Read more about Largest Contentful Paint.

4.204 sLCP render time

Phase breakdown

  • TTFB751 ms
  • Resource load delay0 ms
  • Resource load duration0 ms
  • Element render delay3.453 s

Element

Element type
<h2>
Size (w × h)
4290
Load time
0 ms

DOM path

body > div#root > div > div:eq(1) > div > h2
LCP

The LCP element is highlighted in the screenshot. If nothing is highlighted the element was removed before the screenshot or the LCP API couldn't find it.

Cumulative Layout Shift

How much the page's content shifts as it loads, collected via the Cumulative Layout Shift API.

0.014cumulative layout shift score

One shift is 100% of your 0.014 CLS. div moved at 4.103 s. Reserve space for whatever renders into that spot, a fixed height or an aspect-ratio box, so later content stops pushing the page around.

Elements that shifted

Worst first, showing shifts of 0.01 and up. Each percentage is that shift's exact share of the score.

  • 0.014
    100% of CLSshifted at 4.103 s
    <div class="login-box">
    body > div#root > div > div:eq(1) > div
    <footer class="main-footer">
    body > div#root > div > footer
Layout shift

Elements that shifted by more than 0.01 are highlighted in the screenshot. If an element shifted outside the viewport, it won't appear here. Check the video or filmstrip to see the shift.

Browser Metrics

Navigation Timing
Extra timings

Custom metrics collected through JavaScript

There are no custom configured scripts.

Extra metrics collected using scripting

There are no custom extra metrics from scripting.

PageXray

How the page is built.

HTTP versionHTTP/1.1
Total requests10
Total domains3
Transfer size1.3 MB
Content size1.3 MB
Missing compression2

Main document

status 200 · 0 redirects

https://erp.hrms.matchbestgroup.com/

HeaderValue
connectionkeep-alive
content-encodinggzip
content-typetext/html; charset=utf-8
dateThu, 06 Aug 2026 14:44:11 GMT
servernginx/1.28.3 (Ubuntu)
transfer-encodingchunked
x-content-type-optionsnosniff

Response codes

200
880.0%
404
220.0%

Requests and sizes per content type

4 types

Transfer size1.3 MB

  • javascript97.7%
  • font1.8%
  • css0.48%
  • html0.02%

Content size1.3 MB

  • javascript97.4%
  • font1.8%
  • css0.84%
  • html0.03%

Requests8

  • font37.5%
  • css25.0%
  • javascript25.0%
  • html12.5%
ContentHeader SizeTransfer SizeContent SizeRequests
html236 B313 B451 B1
css205 B6.3 KB11.0 KB2
javascript464 B1.2 MB1.2 MB2
font0 b23.2 KB23.1 KB3
Total905 B1.3 MB1.3 MB8

Data per domain

3 domains
DomainTotal download timeTransfer SizeContent SizeRequests
erp.hrms.matchbestgroup.com4.706 s1.2 MB1.2 MB6
fonts.googleapis.com97 ms1.1 KB5.9 KB1
fonts.gstatic.com143 ms23.2 KB23.1 KB3

Expires & last-modified statistics

typeminmedianmax
Expires0 seconds0 seconds1 year
Last modified53 minutes46 weeks46 weeks

Requests loaded after onLoad event

5 requests

Includes requests done after load event end.

ContentTransfer SizeRequests
html0 b0
css0 b0
javascript0 b0
image0 b0
font23.2 KB3
favicon0 b0
Total23.2 KB5

Requests loaded after onContentLoad

5 requests

Includes requests done after DOM content loaded.

ContentTransfer SizeRequests
html0 b0
css0 b0
javascript0 b0
image0 b0
font23.2 KB3
favicon0 b0
Total23.2 KB5

CPU

https://erp.hrms.matchbestgroup.com/assets/index-DaJHUdK7.js is responsible for 100% of blocking time
281 ms of 281 ms total. Defer it, replace it with a lighter alternative, or move its work off the main thread to recover most of your TBT.
Get deeper CPU insight with one extra run
Run with --enableProfileRun to see where main-thread time went, blocking time and CPU cost per script, module and function, forced reflows and frame stability. The data is collected in one extra run, so the timing metrics of your measured runs stay untouched.

Long tasks

Tasks ≥ 50 ms blocking the main thread, collected via the Long Task API.

TBT0 ms
Max potential input delay0 ms
Total long tasks3
Total time473 ms
Last task at3.672 s
Before first paint0 ms0 tasks
Before FCP473 ms3 tasks
Before LCP473 ms3 tasks
After load186 ms2 tasks

Long Animation Frames

A long animation frame (LOAF) is a frame that took ≥ 50 ms from input to the next paint. The part beyond the threshold is blocking time, the number that hurts Interaction to Next Paint and Total Blocking Time. Break long tasks up (scheduler.yield(), smaller chunks) or move the work off the main thread. Read more about the Long Animation Frames API.

Long animation frames14showing the 10 with the most blocking time
Blocking time323.6 msacross all long frames — what hurts INP and TBT
Forced style & layout0.1 msscripts reading layout mid-frame
Blocking before LCP323.6 msdelaying the largest paint — fix these first
Blocking after load86.2 msafter the load event — didn't delay page load

What to fix first

ScriptFramesTime runningBlocking (share by run time)Forced style & layoutTriggered by
index-DaJHUdK7.js2382.3 ms281 ms0.1 msmodule script, event handler

A frame's blocking time is split between its scripts by their share of the frame's work, capped at each script's own run time — blocking from work no script owns (HTML parsing, browser internals) stays unattributed. The per-script blocking view below uses the same attribution.

Long animation frame #1 · 287.6 msat 3.226 s · before LCP
blocking 237.4 ms
  • Scripts & other work287.6 ms
  • Animation callbacks0 ms
  • Style & layout0 ms
  • Render0 ms
1 script ran during this frame
Ran for
285.4 ms
How it started
module script
Long animation frame #2 · 100.8 msat 3.517 s · before LCP
blocking 47.2 ms
  • Scripts & other work100.7 ms
  • Animation callbacks0.1 ms
  • Style & layout0 ms
  • Render0 ms
1 script ran during this frame · forced style & layout 0.1 ms
Ran for
96.9 ms
Forced style and layout
0.1 ms
Started by
MessagePort.onmessage
How it started
event handler
Source function
D
Position in source
character 10736 into the file (locate it via DevTools → Performance → the Long Animation Frames track)
Long animation frame #3 · 89 msat 3.669 s · before LCP
blocking 39 ms
  • Scripts & other work3.4 ms
  • Animation callbacks0 ms
  • Style & layout85.6 ms
  • Render0 ms

The browser did not report which script was responsible for this frame — typically its own style/layout work, or a cross-origin script it will not name.

7 more long frames carried no blocking time (nothing ran past the 50 ms threshold) — long, but harmless to INP and TBT.

Blocking time per script (browser-reported)

How much each script blocked the main thread, derived from the Long Animation Frame API. Each frame's blocking time is split between its scripts by their share of the frame's work, capped at each script's own run time — blocking from work no script owns (HTML parsing, browser internals) is not attributed (older data credits the script that started the frame). The closest answer to "which script should I fix to improve TBT" the platform exposes.

Top scripts blocking the main thread

1 of 1 script

Third party

Third party requests categorised by Third party web version 0.29.2.

Third-party requests8
Tools1
Categories2

Categories

2 categories

Requests by category8

  • cdn4 req · 1 tool50.0%
  • survelliance4 req · 1 tool50.0%

First party vs third party

6 first · 4 third party

Transfer size1.3 MB

  • First party1.2 MB98.1%
  • Third party24.3 KB1.9%

Content size1.3 MB

  • First party1.2 MB97.8%
  • Third party28.9 KB2.2%

Requests10

  • First party660.0%
  • Third party440.0%

First party requests and sizes per content type

6 requests

Calculated using .*matchbestgroup.* (use --firstParty to configure).

ContentHeader SizeTransfer SizeContent SizeRequests
html236 B313 B451 B1
css205 B5.2 KB5.2 KB1
javascript464 B1.2 MB1.2 MB2
image0 b0 b0 b0
font0 b0 b0 b0
favicon0 b0 b0 b0
Total1.3 KB1.2 MB1.2 MB6

Third party requests and sizes per content type

4 requests
ContentHeader SizeTransfer SizeContent SizeRequests
html0 b0 b0 b0
css0 b1.1 KB5.9 KB1
javascript0 b0 b0 b0
image0 b0 b0 b0
font0 b23.2 KB23.1 KB3
favicon0 b0 b0 b0
TotalN/A24.3 KB28.9 KB4