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How can I make the controls of the player to be like, that left and right just changes direction and up goes forward, sowell as down goes back in the current direction, instead of the controls that I currently have in my code here:

<style>
.canvas {
border: 0px;
background-color: #FFF;
width: 1000px;
height: 500px;
position: fixed;
left: 0;
top: 0;
}
</style>

<center>    
<canvas id="canvas" class="canvas" width="1000" height="500"></canvas>
</center>

<script language="javascript">
var canvas = document.getElementById("canvas")
var ctx = canvas.getContext("2d")


canvas.width = canvas.style.width = window.innerWidth
canvas.height = canvas.style.height = window.innerHeight
var w = canvas.width
var h = canvas.height

var player = {
x: w / 2,
y: h / 2,
speed: 5,
radius: 8,
vx: 0,
vy: 0,
}

var keys = []
var friction = 0.9

setInterval(draw, 1000/60)
function draw() {
canvas.width = canvas.style.width = window.innerWidth
canvas.height = canvas.style.height = window.innerHeight
w = canvas.width
h = canvas.height

ctx.clearRect(0, 0, w, h)

if (keys[40]) {
    if (player.vy < player.speed) {
        player.vy++;
    }
}
if (keys[38]) {
    if (player.vy > -player.speed) {
        player.vy--;
    }
}
if (keys[39]) {
    if (player.vx < player.speed) {
        player.vx++;
    }
}
if (keys[37]) {
    if (player.vx > -player.speed) {
        player.vx--;
    }
}

player.vx *= friction;
player.vy *= friction;
player.x += player.vx;
player.y += player.vy;

ctx.beginPath()
ctx.arc(player.x, player.y, player.radius, 0, Math.PI * 2, false)
ctx.fillStyle = "black"
ctx.fill()
ctx.closePath()
}

document.body.addEventListener("keydown", function(e) {
keys[e.keyCode] = true;
});
document.body.addEventListener("keyup", function(e) {
keys[e.keyCode] = false;
});
</script>
share|improve this question
    
you need to apply rotation when using your left and right keys, it will require some maths to workout the new trajectory when then using up and down arrows after a rotation –  Neil Jun 11 '13 at 16:17
    
Yeah, that's right, that's exactly what I'm looking for –  Murplyx Jun 11 '13 at 16:18
    
similar question here - stackoverflow.com/questions/16365552/… –  Neil Jun 11 '13 at 16:20
    
Yeah but the player's vx and vy should be relative to the angle, I don't get answer for that on that question, but thanks –  Murplyx Jun 11 '13 at 16:26
1  
stackoverflow.com/a/16599606/2252829 In this question I applied the vx and vy for the bullets but you can figure it out for the player since the math is almost the same. –  Gustavo Carvalho Jun 11 '13 at 17:09

1 Answer 1

up vote 1 down vote accepted

Would something like this work?

player.angle = 0; //Changes depending on the radians the ship is in - currently faces right, defined outside of this.

Then using this where you get your keys:

if (keys[40]) {
    player.vy += Math.sin(player.angle); //Reversed because y goes down as the screen goes up
    player.vx -= Math.cos(player.angle);
}
if (keys[38]) {
    player.vy -= Math.sin(player.angle); //Reversed because y goes up as the screen goes down
    player.vx += Math.cos(player.angle);
}
if (keys[39]) {
    player.angle -= Math.PI / 128;
    if(player.angle < 0) {
        player.angle += Math.PI * 2;
    }
}
if (keys[37]) {
    player.angle += Math.PI / 128;
    if(player.angle >= Math.PI * 2) {
        player.angle -= Math.PI * 2;
    }
}
share|improve this answer
    
Also, I'd like to add that while you develop this game, it's more efficient to store things locally, like Math.PI, and create lookup tables with cos/sin values in it instead of always calling Math.sin/Math.cos. –  Marc Marta Jun 12 '13 at 14:32
    
Well, I just found out something, I can't change the speed if the player with this code... –  Murplyx Jun 13 '13 at 12:09
    
Got any ideas about how I can do that? –  Murplyx Jun 13 '13 at 12:09
    
X to shoot arrow keys to move –  Murplyx Jun 13 '13 at 12:13
    
Would you even need a speed variable in this case if you have vx & vy? My assumption is that you are going for asteroids style controls, based on the game (and the question and my answer - obviously). Which is looking pretty nice, if I do say so myself. –  Marc Marta Jun 13 '13 at 13:05

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