return den==0;
}
-/**
- * returns b*c.
- */
AVRational av_mul_q(AVRational b, AVRational c){
av_reduce(&b.num, &b.den, b.num * (int64_t)c.num, b.den * (int64_t)c.den, INT_MAX);
return b;
}
-/**
- * returns b/c.
- */
AVRational av_div_q(AVRational b, AVRational c){
return av_mul_q(b, (AVRational){c.den, c.num});
}
-/**
- * returns b+c.
- */
AVRational av_add_q(AVRational b, AVRational c){
av_reduce(&b.num, &b.den, b.num * (int64_t)c.den + c.num * (int64_t)b.den, b.den * (int64_t)c.den, INT_MAX);
return b;
}
-/**
- * returns b-c.
- */
AVRational av_sub_q(AVRational b, AVRational c){
return av_add_q(b, (AVRational){-c.num, c.den});
}
-/**
- * Converts a double precission floating point number to a AVRational.
- * @param max the maximum allowed numerator and denominator
- */
AVRational av_d2q(double d, int max){
AVRational a;
#define LOG2 0.69314718055994530941723212145817656807550013436025
}
/**
- * Rational to double conversion
+ * Rational to double conversion.
* @param a rational to convert
* @return (double) a
*/
*/
int av_reduce(int *dst_nom, int *dst_den, int64_t nom, int64_t den, int64_t max);
+/**
+ * Multiplies two rationals.
+ * @param b first rational.
+ * @param c second rational.
+ * @return b*c.
+ */
AVRational av_mul_q(AVRational b, AVRational c);
+
+/**
+ * Divides two rationals.
+ * @param b first rational.
+ * @param c second rational.
+ * @return b/c.
+ */
AVRational av_div_q(AVRational b, AVRational c);
+
+/**
+ * Adds two rationals.
+ * @param b first rational.
+ * @param c second rational.
+ * @return b+c.
+ */
AVRational av_add_q(AVRational b, AVRational c);
+
+/**
+ * Substracts two rationals.
+ * @param b first rational.
+ * @param c second rational.
+ * returns b-c.
+ */
AVRational av_sub_q(AVRational b, AVRational c);
+
+/**
+ * Converts a double precision floating point number to a rational.
+ * @param d double to convert
+ * @param max the maximum allowed numerator and denominator
+ * @return (AVRational) d.
+ */
AVRational av_d2q(double d, int max);
#endif // RATIONAL_H