Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like to have an if/else if/else statement based on an object literal. The object literal will be user generated and so I will not know how long it will be, though I will know the key/value pairs naming scheme.

For example, I have some code that gets the viewport width and a function to update img src attribute below

vpwidth =  window.innerWidth;

function modifyImgSrc (srcModifier) {
    src = src.replace(".jpg", srcModifier + ".jpg");
    src = src.replace(".png", srcModifier + ".png");
    src = src.replace(".gif", srcModifier + ".gif");
};

Then I have my object literal

var brkpnts = [
   {width: 320, srcmodifier: '-s'},
   {width: 768, srcmodifier: '-m'},
   {width: 1024, srcmodifier: '-l'},
];

And I want to generate an if statement based of the object literal

if ( vpwidth <= brkpnts[0].width ) {
    modifyImgSrc(brkpnts[0].srcmodifier);
}
else if ( vpwidth <= brkpnts[1].width ) {
    modifyImgSrc(brkpnts[1].srcmodifier);
}
else {
    modifyImgSrc(breakpoints[2].srcmodifier);
}

Though since the object literal can be modified by the user, how can I generate an if/else if/else statement to match what the user adds to the object literal. For example, the may have more than 3 key/value pairs.

var breakpoints = [
    {width: 320, srcmodifier: '-xs'},
    {width: 534, srcmodifier: '-s'},
    {width: 768, srcmodifier: '-m'},
    {width: 1024, srcmodifier: '-l'},
    {width: 1440, srcmodifier: '-xl'}
];

In that case, I would want an if statement that looked like this.

if ( vpwidth <= brkpnts[0].width ) {
    modifyImgSrc(brkpnts[0].srcmodifier);
}
else if ( vpwidth <= brkpnts[1].width ) {
    modifyImgSrc(brkpnts[1].srcmodifier);
}
else if ( vpwidth <= brkpnts[2].width ) {
    modifyImgSrc(brkpnts[1].srcmodifier);
}
else if ( vpwidth <= brkpnts[3].width ) {
    modifyImgSrc(brkpnts[1].srcmodifier);
}
else {
    modifyImgSrc(breakpoints[4].srcmodifier);
}

Is this possible? If so, how, and is this the best way to achieve this?

share|improve this question
3  
You need a loop. –  SLaks Apr 25 '12 at 15:55
1  
why not use proper CSS and Media Queries - given the images are referenced in the CSS the appropriate image will be fetched for the screen size. This solution will require you to change from using <img/> to some block level element and background-image. –  alexfreiria Apr 25 '12 at 15:58
    
Thanks for the advice Xander. Using media-queries and background images is a valid solution, though I'm working on a solution for content images where it would be best to leave them as img elements rather than background images. I believe this easier for sites like Facebook/Pinterest to grab images from img elements rather than background images from divs. –  hybrid Apr 25 '12 at 16:37

2 Answers 2

up vote 1 down vote accepted

Loop through the array:

var modified = false;
for(var i = 0, len = brkpnts.length; i < len; i++) {
    if(vpwidth <= brkpnts[i].width) {
        modifyImgSrc(brkpnts[i].srcmodifier);
        modified = true;
        break;
    }
}

// Use the biggest one if vpwidth larger than all
if(!modified) {
    modifyImgSrc(brkpnts[brkpnts.length - 1].srcmodifier);
}

Edit: Though, Xander is correct in his comment, you should probably use media queries instead.

share|improve this answer
vpwidth =  window.innerWidth;  

function modifyImgSrc (srcModifier) {     
  src = src.replace(".jpg", srcModifier + ".jpg");     
  src = src.replace(".png", srcModifier + ".png");     
  src = src.replace(".gif", srcModifier + ".gif"); 
}; 

var breakpoints = [     
  {width: 320, srcmodifier: '-xs'},      
  {width: 534, srcmodifier: '-s'},     
  {width: 768, srcmodifier: '-m'},     
  {width: 1024, srcmodifier: '-l'},      
  {width: 1440, srcmodifier: '-xl'} 
];

for(var i=0; i<breakpoints.length;i++)
{
  if(breakpoints[i].width == vpwidth)
  {
     modifyImgSrc(breakpoints[i].srcmodifier);
     break;
  }
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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