问题
I am trying to divide the circle into n equal parts using straight lines. Idea is to get the coordinates of the end points on the circumference of the circle and then to draw the line.
to find coodrinates I am using following code:
static void getPoints(int x0,int y0,int r)
{
double angle = 0;
double angleToRadian = 0;
for(int i = 0 ; i < noOfDividingPoints ;i++)
{
angle = i * (360/noOfDividingPoints);
angleToRadian = ( angle * 3.141 ) / 180;
APP_LOG(APP_LOG_LEVEL_DEBUG, "LOG: Angle: %lf, AngleToRadian: %lf", angle, angleToRadian );
x[i] = (int) (x0 + r * cos_lookup(angleToRadian));
y[i] = (int) (y0 + r * sin_lookup(angleToRadian));
APP_LOG(APP_LOG_LEVEL_DEBUG, "LOG: i: %d, x[i]: %d, y[i]: %d", i, (int)x[i], (int)y[i] );
}
}
Using this getPoints method I am filling the array x[] and y[] and then iterate over these arrays to draw lines between x[i] and y[i]
However, the values calculated from the above code comes out to be weird, below are the logs printing the contents of x[] and y[]
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:57] WatchFace.c:45> LOG: i: 0, x[i]: 4587522, y[i]: 84
[14:18:57] WatchFace.c:36> LOG: Angle: 90
[14:18:57] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 1, x[i]: 4587522, y[i]: 84
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 2, x[i]: 4587452, y[i]: 504
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 3, x[i]: 4587452, y[i]: 924
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 4, x[i]: 4587452, y[i]: 1344
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 5, x[i]: 4587452, y[i]: 1344
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 6, x[i]: 4587452, y[i]: 1834
[14:18:58] WatchFace.c:36> LOG: Angle: 90
[14:18:58] WatchFace.c:41> LOG: Angle: f, AngleToRadian: f
[14:18:58] WatchFace.c:45> LOG: i: 7, x[i]: 4587452, y[i]: 2254
Please point out what I am missing here.
Thanks.
回答1:
The lookup-functions for sine and cosine in Pebble don't take the angle in radians or degrees; they use an integer angle normalized to TRIG_MAX_ANGLE, which corresponds to a full circle or 360°.
The same applies to the returned value, which is a signed int that must be normalized with TRIG_MAX_RATIO to get a valid cosine or sine.
So you should be able to do something like this.
for (int i = 0; i < n ; i++) {
int32_t angle = i * TRIG_MAX_ANGLE / n;
x[i] = x0 + (r * cos_lookup(angle)) / TRIG_MAX_RATIO;
y[i] = y0 + (r * sin_lookup(angle)) / TRIG_MAX_RATIO;
}
Note that all calculations are done with integers. Take care to multiply first and then divide, so that you don't truncate results. For example,
cos_lookup(angle) / TRIG_MAX_RATIO
will always yield zero, except when the angle corresponds to 0° or 180°.
You also might want to have a look at the clock hand example on the page linked above.
回答2:
You do a division of int by int and store the result to a double. You have to convert to double first, before you do the division.
angle = i * (360.0/noOfDividingPoints);
// ^^ now it is a floting point division
来源:https://stackoverflow.com/questions/34613388/coordinates-of-points-dividing-circle-into-n-equal-halves-in-pebble