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 am very new to JavaScript. The task I am working on is a simple game using boxbox as physic simulator. Anyway, I have 3 blocks that change colour when the player entity touches them. I would like to display a simple result message ("Only one? Try again!" sort of thing). However, I have no idea if the color value can be used as a condition. This is what I came up with:

function score() {
if (gold1.color == "gold" || gold2.color == "gold" || gold3.color == "gold") {world.createEntity(result, {
        shape: "square",
        x:9,
        y:4,
        width: 3,
        height: 2,
        image: "only1.png",
        imageStretchToFit: true, }
        }
else if (gold1.color == "gold" && gold2.color == "gold" || gold2.color == "gold" && gold3.color == "gold" || gold1.color == "gold" && gold3.color == "gold") {world.createEntity(result, {
        shape: "square",
        width: 3,
        height: 2,
        x:9,
        y:4,
        image: "only2.png",
        imageStretchToFit: true, }
        }
else (gold1.color == "gold" && gold2.color == "gold" && gold3.color == "gold") {world.createEntity(result, {
        shape: "square",
        width: 3,
        height: 2,
        x:9,
        y:4,
        image: "only3.png",
        imageStretchToFit: true, }
        }
}

I am not sure if this is a completely wrong approach or just a syntax error. Please help.

Thank you.

share|improve this question
    
What error are you getting? –  Renato Zannon Nov 12 '13 at 13:58
    
I am not getting any errors. The game is loaded into the canvas, and when I add this function, it doesn't load at all. –  user2983456 Nov 12 '13 at 13:59
    
What kind of objects are gold1, gold2 and gold3? –  Tibos Nov 12 '13 at 14:01
    
They are all instances of same variable: var block2 = { name: "block2", shape: "square", color: "orange", width: 1, height: 1, density: 20, onImpact: function (entity, force) { if (entity.name() === "player") { this.color("gold"); } } }; –  user2983456 Nov 12 '13 at 14:03
    
You're saying you don't get any errors in your console? –  user1477388 Nov 12 '13 at 14:03

2 Answers 2

You should use a debugger in your browser (if you're using chrome, just press f12). Put a breakpoint before the code you posted executes. What values do you see in gold1.color, gold2.color?

I find the code you posted to be confusing based on the description you gave us. Why are you doing all these checks?

I'll edit my answer once there is more info..

Also another thing, it looks like your first code block will execute if the other two would execute, so why do you even have the "else if" statements? If any of the colors are gold, the first code block will execute, and the other blocks of code wont execute ever because they all require one or more of the colors to be gold.

share|improve this answer
    
No, since && has a higher precedence than || it is already evaluated in that order, no parenthesis necessary. –  Bergi Nov 12 '13 at 14:05
    
@Bergi Ah you're right. I'll remove that then. –  egucciar Nov 12 '13 at 14:07

what about:

function score() {
    var nrGold = 0;

    if (gold1.color == "gold") {
        nrGold++;
    }
    if (gold2.color == "gold") {
        nrGold++;
    }
    if (gold3.color == "gold") {
        nrGold++;
    }

    if (nrGold!==0) {
        world.createEntity(result, {
            shape: "square",
            width: 3,
            height: 2,
            x:9,
            y:4,
            image: "only"+nrGold+".png",
            imageStretchToFit: true
        });
     }
}

note1: last property in json should not end with comma (see imageStretchToFit: true, in your code)

note2: you are missing closing bracket for world.createEntity function

share|improve this answer
    
This did not crash the game, it loaded just fine, but did not make the 'result' entity appear. Thank you for the notes, I will pay more attention now! –  user2983456 Nov 12 '13 at 14:12

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.