90

I'm doing some React right now and I was wondering if there is a "correct" way to do conditional styling. In the tutorial they use

style={{
  textDecoration: completed ? 'line-through' : 'none'
}}

I prefer not to use inline styling so I want to instead use a class to control conditional styling. How would one approach this in the React way of thinking? Or should I just use this inline styling way?

  • 1
    I think you might have redux and react confused. Redux has nothing to do with styling. – rossipedia Mar 3 '16 at 3:04
  • 3
    i think your preference is spot-on for documents, but over-zealous for applications where markup interchange compat is not important. some major web apps are actually getting rid of classes and using only inline style, which is more predictable and easier to reason about than which of 5 applied rules is making the text bold. when the attribs are dynamic, you don't save much bandwidth like you do with repetitive documents. the app's semantics (view-source markup) are not that important either... – dandavis Mar 3 '16 at 4:18
  • @rossipedia ah yes thank you, got mixed up, was looking at the redux tutorial when thinking about this, thank you! – davidhtien Mar 4 '16 at 1:10
  • If you aren't sure what the value of text-decoration will be because of the cascade and you only want to apply a line-through if complete is true, you'll have to build a style object. This way, you don't set it to none accidentally when it was another value. const style = { } if (complete) { style['textDecoration'] = 'line-through' } – Edward Jun 20 '19 at 7:59
76

If you prefer to use a class name, by all means use a class name.

className={completed ? 'text-strike' : null}

You may also find the classnames package helpful. With it, your code would look like this:

className={classNames({ 'text-strike': completed })}

There's no "correct" way to do conditional styling. Do whatever works best for you. For myself, I prefer to avoid inline styling and use classes in the manner just described.

POSTSCRIPT [06-AUG-2019]

Whilst it remains true that React is unopinionated about styling, these days I would recommend a CSS-in-JS solution; namely styled components or emotion. If you're new to React, stick to CSS classes or inline styles to begin with. But once you're comfortable with React I recommend adopting one of these libraries. I use them in every project.

| improve this answer | |
  • Hey there, if you decided to use className as your conditional styling method. Without the classNames lib. I advise you to use undefined instead of null. The className property takes as input type a String or undefined - type(String | undefined) -- ⚡️ – 0xx Aug 21 '19 at 16:19
  • 3
    @JadRizk even better approach is to not set className at all if you don't have a valid value to set it to. const attrs = completed?{className:'text-strike'}:{} then <li {...attrs}>text to maybe strike</li> (spread operator). That way you don't set className at all unless you have a good value to assign. This is an important approach for setting some inline styles where you can't know what the current value is (because it could be set by CSS in a file you may not control). – LinuxDisciple Sep 6 '19 at 0:44
  • @LinuxDisciple if all the fields evaluate to falsey then classnames just returns an empty string. This will not be affected by any CSS. – David L. Walsh Sep 6 '19 at 6:54
  • @DavidL.Walsh 21 hours ago I thought JadRizk's solution was a false choice between null and undefined that would still result in a no-value class attribute in the html (i.e. <p class></p> instead of <p></p>) so I provided a method that avoided setting className at all. As it happens I was wrong about JadRizk's solution. For the stated problem, I believe your solution with JadRizk's refinement is best. My syntax can set an arbitrary list of props and their values conditionally, but it's overkill for just setting a class name. – LinuxDisciple Sep 6 '19 at 22:51
102
 <div style={{ visibility: this.state.driverDetails.firstName != undefined? 'visible': 'hidden'}}></div>

Checkout the above code. That will do the trick.

| improve this answer | |
  • 3
    Was exactly looking for something like this. Conditional inline styling, thank you. – Souvik Ghosh Jan 9 '18 at 13:50
  • <div style={{ visibility: this.state.driverDetails.firstName !== undefined? 'visible': 'hidden'}}></div>. Small typo in ==. – vinayak shahdeo Jan 8 at 10:58
27

If you need to conditionally apply inline styles (apply all or nothing) then this notation also works:

style={ someCondition ? { textAlign:'center', paddingTop: '50%'} : {}}

In case 'someCondition' not fulfilled then you pass empty object.

| improve this answer | |
  • 2
    Doesn't this pattern create an unnecessary diff though? My understanding of DOM diffing is that the style prop here would always change since in Javascript {} != {} If I'm correct about the diffing, perhaps it's better to use "undefined" instead of "{}" – Dawson B Dec 21 '19 at 0:41
  • 1
    Good note. I am not sure about this. – Vlado Jan 3 at 8:55
8

First, I agree with you as a matter of style - I would also (and do also) conditionally apply classes rather than inline styles. But you can use the same technique:

<div className={{completed ? "completed" : ""}}></div>

For more complex sets of state, accumulate an array of classes and apply them:

var classes = [];

if (completed) classes.push("completed");
if (foo) classes.push("foo");
if (someComplicatedCondition) classes.push("bar");

return <div className={{classes.join(" ")}}></div>;
| improve this answer | |
5

instead of this:

style={{
  textDecoration: completed ? 'line-through' : 'none'
}}

you could try the following using short circuiting:

style={{
  textDecoration: completed && 'line-through'
}}

https://codeburst.io/javascript-short-circuit-conditionals-bbc13ac3e9eb

key bit of information from the link:

Short circuiting means that in JavaScript when we are evaluating an AND expression (&&), if the first operand is false, JavaScript will short-circuit and not even look at the second operand.

It's worth noting that this would return false if the first operand is false, so might have to consider how this would affect your style.

The other solutions might be more best practice, but thought it would be worth sharing.

| improve this answer | |
2

I came across this question while trying to answer the same question. McCrohan's approach with the classes array & join is solid.

Through my experience, I have been working with a lot of legacy ruby code that is being converted to React and as we build the component(s) up I find myself reaching out for both existing css classes and inline styles.

example snippet inside a component:

// if failed, progress bar is red, otherwise green 
<div
    className={`progress-bar ${failed ? failed' : ''}`}
    style={{ width: this.getPercentage() }} 
/>

Again, I find myself reaching out to legacy css code, "packaging" it with the component and moving on.

So, I really feel that it is a bit in the air as to what is "best" as that label will vary greatly depending on your project.

| improve this answer | |
  • You should not combine classNames with style attribute, that's bit of a mess – Sebastian Voráč Aug 16 '19 at 9:05
1

Another way, using inline style and the spread operator

style={{
  ...completed ? { textDecoration: completed } : {}
}}

That way be useful in some situations where you want to add a bunch of properties at the same time base on the condition.

| improve this answer | |
0

The best way to handle styling is by using classes with set of css properties.

example:

<Component className={this.getColor()} />

getColor() {
    let class = "badge m2";
    class += this.state.count===0 ? "warning" : danger;
    return class;
}
| improve this answer | |
0

You can use somthing like this.

render () {
    var btnClass = 'btn';
    if (this.state.isPressed) btnClass += ' btn-pressed';
    else if (this.state.isHovered) btnClass += ' btn-over';
    return <button className={btnClass}>{this.props.label}</button>;
  }

Or else, you can use classnames NPM package to make dynamic and conditional className props simpler to work with (especially more so than conditional string manipulation).

classNames('foo', 'bar'); // => 'foo bar'
classNames('foo', { bar: true }); // => 'foo bar'
classNames({ 'foo-bar': true }); // => 'foo-bar'
classNames({ 'foo-bar': false }); // => ''
classNames({ foo: true }, { bar: true }); // => 'foo bar'
classNames({ foo: true, bar: true }); // => 'foo bar'
| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.