4

I want my react-native app to share a photo with Instagram. I know it's possible when writing in native code to open up Instagram's filter screen with a specified photo. A restriction is that I'm using the Expo SDK, which doesn't allow 'npm link' for native dependencies.

When this function is called, it will open Instagram:

  _handlePress = () => {
    Linking.openURL('instagram://app');
  }

This is the Button:

   <Button 
      onPress={this._handlePress}
      title='Open Instagram'
    />

The image is stored in the state:

  state = {
    image: null,
    uploading: false
  }

I can display the image in an Image tag just fine:

<Image
  source={{uri: image}}
  style={{width: 300, height: 300}}
 />

But, I have no way passing the image along to Instagram. Here is some failed research: Third party libraries: react-native-instagram-share: https://www.instagram.com/developer/mobile-sharing/iphone-hooks/

Because I can’t use ‘link’ to use native dependencies. I am using the Expo SDK which doesn’t allow the ‘link’ for native dependencies.

The Instagram docs explain how to open Instagram, and that passing the image along can be done with native code. Which, is to use “UIDocumentInteractionController”, which isn’t available in JavaScript.
https://www.instagram.com/developer/mobile-sharing/iphone-hooks/

There aren't any other Stackoverflow answers to my question.

1
  • I don't think the Share API is able to target Instagram specifically.
    – whs.bsmith
    Jun 17, 2017 at 4:31

4 Answers 4

16

I put together an example that you can run on iOS here: https://snack.expo.io/rkbW-EG7-

Full code below:

import React, { Component } from 'react';
import { Linking, Button, View, StyleSheet } from 'react-native';
import { ImagePicker } from 'expo';

export default class App extends Component {
  render() {
    return (
      <View style={styles.container}>
        <Button title="Open camera roll" onPress={this._openCameraRoll} />
      </View>
    );
  }

  _openCameraRoll = async () => {
    let image = await ImagePicker.launchImageLibraryAsync();
    let { origURL } = image;
    let encodedURL = encodeURIComponent(origURL);
    let instagramURL = `instagram://library?AssetPath=${encodedURL}`;
    Linking.openURL(instagramURL);
  }
}

const styles = StyleSheet.create({
  container: {
    flex: 1,
    alignItems: 'center',
    justifyContent: 'center',
    backgroundColor: '#ecf0f1',
  },
});

This will let you open up your camera roll and pick an image, then open the Instagram app with that image selected. If the image isn't already on the camera roll, then you can use CameraRoll.saveToCameraRoll on the image (link to React Native documentation) to get it there.

The approach used in this example will only work if you are OK with sharing from the camera roll, however, and I am unsure about how to do this on Android. I made an issue on Expo's feature request board to make sure that Instagram sharing works great out of the box.

6
  • This is exactly what I needed. I actually added the CameraRoll.saveToCameraRoll and it works great. I need to come up with an Android solution since you have to use a local file.
    – whs.bsmith
    Jun 17, 2017 at 5:11
  • Could docs.expo.io/versions/latest/sdk/intent-launcher.html be used for Android, @brentvatne ?
    – jhm
    Jan 10, 2018 at 13:53
  • 2
    How did you get that URL to Instagram, @brentvatne? It's not documented here: instagram.com/developer/mobile-sharing/iphone-hooks . Also, any tips on how to do this on Android would also be much appreciated
    – jhm
    Feb 8, 2018 at 16:18
  • Worked For Me :) onClick = () => { ImagePicker.launchImageLibrary(options, response =>{ console.log(response); let instagramURL = instagram://library?LocalIdentifier=+response.origURL; Linking.openURL(instagramURL); }) Oct 20, 2019 at 19:23
  • 1
    Any idea how to achieve this for android? Jul 13, 2020 at 17:32
5

Here is how to share a file from a remote url: download it first! :)

  const downloadPath = FileSystem.cacheDirectory + 'fileName.jpg';
  // 1 - download the file to a local cache directory
  const { uri: localUrl } = await FileSystem.downloadAsync(remoteURL, downloadPath);
  // 2 - share it from your local storage :)
  Sharing.shareAsync(localUrl, {
    mimeType: 'image/jpeg',            // Android
    dialogTitle: 'share-dialog title', // Android and Web
    UTI: 'image/jpeg'                  // iOS
  });
2
  • Sharing.shareAsync opens the general system sharing dialog, not directly the Instagram app as asked in this question.
    – Petr Bela
    Jul 27, 2020 at 14:21
  • @PetrBela The point is in the first part - the idea of downloading the file first. However, I will not edit this answer. It has been a long time since I wrote it, and don't have the time to write and test the code that I would need to write. Thank You for the notion. I hope my answer will help somebody.
    – Aleksandar
    Jul 29, 2020 at 21:13
2

Here is how you post

import { CameraRoll } from 'react-native'

callThisFunction = async () => {
      await CameraRoll.saveToCameraRoll("https://images.unsplash.com/photo-1504807417934-b7fdec306bfd?ixlib=rb-1.2.1&ixid=eyJhcHBfaWQiOjEyMDd9&w=1000&q=80", 'photo');
      let instagramURL = `instagram://library?AssetPath=null`;
      Linking.openURL(instagramURL);
  }
3
  • Welcome to Stack Overflow! Please read what this site is about and "How to ask" before asking a question. Feb 28, 2019 at 3:02
  • Welcome to Stack Overflow! Please read what this site is about and "How to ask" before asking a question. Feb 28, 2019 at 3:03
  • This worked for me - key insight here is instagram just opening the last saved photo etc... Unsure if it works on android. - I'm also a bit concerned that this isn't in their phone hooks docs etc...
    – Danny
    Mar 27, 2019 at 21:50
0

Worked For Me :)

onClick = () => {
  ImagePicker.launchImageLibrary(options, response =>{
    console.log(response);
    let instagramURL = `instagram://library?LocalIdentifier=`+response.origURL;
    Linking.openURL(instagramURL);
  })

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