1

I am fetching some images using $http.get(). I am calling them currently using $q.all() however if one call/promise fails they all do. Is there another way I could do this?

$q.all([$http.get('..'),$http.get('..')]).then(function(res) {
  // this will never happen if one get fails.
}
8
  • You could wrap each get with a promise so that when the get is done (fail or success), it will resolve its individual promise. Jun 11 '16 at 23:39
  • Never heard of $q.map(). Show some relevant code. No reason individual requests need to all fail ... only the final when() but even that can be circumvented with individual catch
    – charlietfl
    Jun 12 '16 at 0:04
  • @BryanEuton - $http.get already returns a promise. Jun 12 '16 at 0:13
  • @charlietfl Typo. I meant $q.all() Jun 12 '16 at 0:14
  • Figured that was it. Can still make it work by returning from catch of individual request promises
    – charlietfl
    Jun 12 '16 at 0:21
3

Simple proof of concept using catch()

var req1 =  $http.get('..').catch(function(err){ return err; });
var req2 =  $http.get('..').catch(function(err){ return err; });

$q.all([req1,req2]).then(function(results) {
     var counts = {pass:0, fail:0}
     results.forEach(function(item){
       var type = item.status === 200 ? 'pass':'fail';
       counts[type]++;
     });
     alert('Results status =' + JSON.stringify(counts))
});

Because you return something from catch it resolves the initial promise and passes that return down the promise chain (to results array in this case) .

The success callback of $q.all().then will fire as a result

DEMO

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