8

I am building angular 4 app with ag-grid and I am having an issue with trying to figure out how to put a link in the cell. Can anybody help me with that issue? Thanks

  • did you ever find the solution for this? Would you be willing to post? Looks like the only answer below is for javascript, looks like you need typescript solution.. – joey May 31 '18 at 16:22
15

Please check this demo

cellRenderer: function(params) {
  return '<a href="https://www.google.com" target="_blank">'+ params.value+'</a>'
}

In this demo, the cell value for the column 'city' is a hyperlink.

  • You mean for the cell Country is a hyperlink. – onetwo12 Nov 20 '17 at 12:40
  • angular 4 uses typescript, the solution you provide above is for javascript. – joey May 31 '18 at 16:22
  • I really don’t understand why people downvote for no reason ! My answer is from my experience with ag- grid, don’t know why it needed to be downvoted! – C.O.G May 31 '18 at 20:13
  • @C.O.G, your not paying attention to the question, read my comment. The solution you provide is for javascript. but if you pay attention to the question, they are using angular 5, which means they need the solution for angular, not javascript. Therefore, your answer is off point. – joey Jun 1 '18 at 3:58
  • This is a good answer, perfectly valid for Angular. If you inject Router into your component, it has functions on it that will allow you to construct the URL for a route link just like you would a routerLink attribute in a template, or sometimes the route link is easy enough just to build without any help as in shr's answer below. Something like building a reusable RouterLinkRendererComponent as also suggested below works too, but not necessary. – reads0520 Nov 7 '18 at 22:06
10

I struggled with this the other day and it was bit more complex than I first thought. I ended up with creating a renderer component to which I send in the link and that needed a bit on NgZone magic to work all the way. You can use it in your column definition like this:

cellRendererFramework: RouterLinkRendererComponent,
cellRendererParams: {
    inRouterLink: '/yourlinkhere',
}

Component where inRouterLink is the link that you send in and params.value is the cell value. That means that you can route to your angular route that could look something like 'yourlink/:id'. You could also simplify this a bit if you don't want a more generic solution by not sending in the link and just hard coding the link in the template and not using the cellRendererParams.

import { Component, NgZone } from '@angular/core';
import { Router } from '@angular/router';
import { AgRendererComponent } from 'ag-grid-angular';

@Component({
    template: '<a [routerLink]="[params.inRouterLink,params.value]"  (click)="navigate(params.inRouterLink)">{{params.value}}</a>'
})
export class RouterLinkRendererComponent implements AgRendererComponent {
    params: any;

    constructor(
        private ngZone: NgZone,
        private router: Router) { }

    agInit(params: any): void {
        this.params = params;
    }

    refresh(params: any): boolean {
        return false;
    }

    // This was needed to make the link work correctly
    navigate(link) {
        this.ngZone.run(() => {
            this.router.navigate([link, this.params.value]);
        });
    }
}

UPDATE: I have written a blog post about this: https://medium.com/ag-grid/enhance-your-angular-grid-reports-with-formatted-values-and-links-34fa57ca2952

  • 1
    Thank you for this answer. I was having an issue when navigating that the target component was loading a blank template without making any calls to ngOnInit. I had not realized that ag-grid executes CellRenderFrameworks outside the angular environment. NgZone to the rescue. – Slowbie Jul 24 '18 at 22:54
  • 1
    Important! Don't forget to add the component RouterLinkRendererComponent to a module as entryComponent. entryComponents: [ RouterLinkRendererComponent ]. Otherwise, you will recieve lots of ag-grid render errors. – hastrb yesterday
3

This is a bit dated, but it may help someone. The solution with typescript on Angular 5 is similar to what C.O.G has suggested. In the component's typescript file, the column definition can contain a custom cell rendering function.

 columnDefs  = [
    {headerName: 'Client', field: 'clientName' },
    {headerName: 'Invoice Number', field: 'invoiceNumber',
        cellRenderer: (invNum) => 
              `<a href="/invoice/${invNum.value}" >${invNum.value}</a>` },
];

The lambda function is called while rendering the cell. The 'value' of the parameter that gets passed is what you can use to generate custom rendering.

  • Using href seems to work fine, but the problem with this is that it reloads entire angular app.. (Atleast it does for me?) routerLink doesn't seem to work. – Marius Nov 19 '18 at 14:13
  • @Marius, did you setup the route paths for the links used in href ? If routes are setup properly, it shouldn't reload the entire angular app. – shr Dec 4 '18 at 12:16
  • href and routerLink are completely different stories... I would create a simple component to wrap with a routerLink angular in the template and then add this component to columnDefs as a column. It is almost identical what Michael suggested above. – hastrb yesterday

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