Javascript

Search

firebase dynamic Links safari not able to open the link becuse the link is invalid

My problem was that in Xcode in Capabilities Tab in Associated Domains,
in Domains field, I wrote wrong domain, 
instead of appplinks:app_id.app.goo.gl 
I wrote: appplinks:app_id.goo.gl
, so i missed .app, after app_id,
after changing it, 
it starts work correctly!

Comment

PREVIOUS	NEXT

Code Example
Javascript :: convert from python to javascript online
Javascript :: nodejs hpp github
Javascript :: bjsmasth delete
Javascript :: handlebars.registerHelper is not a function
Javascript :: Tims first jsom
Javascript :: exchange array.include(string) in Javascript to array.indexOf(string) == -1 in Typescript
Javascript :: js rgba to hex
Javascript :: 7.3.2. Length or .length
Javascript :: corousal in react
Javascript :: if path name is different but parent nav should be active in jquery
Javascript :: javascript substtgin
Javascript :: strict scalar types
Javascript :: How to update Code Mirror data on modal show
Javascript :: javascript show popup on page refresh unsaved changes
Javascript :: usehistory forceRefresh
Javascript :: sort
Javascript :: send data to user node
Javascript :: t_networkless_options":true,"disable_signout_supex_users":true,"desktop_adjust_touch_target":true,"kevlar picker ajax
Javascript :: preview.cookie-consent.js
Javascript :: vscode autosuggest background
Javascript :: aurelia shadow dom
Javascript :: video playing
Javascript :: go over each line in text nodejs
Javascript :: how to remove tashkeel from arabic charactor
Javascript :: code converter javascript to python
Javascript :: highlight each occurrence of text
Javascript :: remove event ondestroy playcanvas
Javascript :: xslt "node to string"
Javascript :: how to move an array over one
Javascript :: javascript look array

Search

JAVASCRIPT

firebase dynamic Links safari not able to open the link becuse the link is invalid

ADD CONTENT