fabs
if (fabs(Player.p_level - Other.p_level) > 20.0) {
&& (dtemp = fabs(Player.p_x)) == fabs(Player.p_y)
if (fabs(Player.p_x) > D_EXPER || fabs(Player.p_y) > D_EXPER)
if (MAX(fabs(playerp->p_x), fabs(playerp->p_y)) > D_BEYOND)
size = sqrt(fabs(Player.p_x / 100)) + 1;
if (Beyond && fabs(xnew) < D_BEYOND && fabs(ynew) < D_BEYOND) {
if (fabs(xnew) > fabs(ynew))
xnew = SGN(Player.p_x) * MAX(fabs(Player.p_x), D_BEYOND);
ynew = SGN(Player.p_y) * MAX(fabs(Player.p_y), D_BEYOND);
else if (MAX(fabs(Player.p_x), fabs(Player.p_y)) >= D_BEYOND)
bigger = fabs(dx);
dist = fabs(dy);
bigger = fabs(dx);
x = fabs(dy);
TGMACRO_REAL(fabs)
PASS_REAL_ARG_REAL_RET(fabs) &&
PASS_COMPLEX_ARG_REAL_RET(fabs));
if (fabs(nums[i]) <= 1) {
CMPLXL(acosh(fabs(nums[i])),
-acosh(fabs(nums[i]))), 1);
acosh(fabs(nums[i]))), 1);
assert(fabs(sinf(f_pi_odd[i])) < FLT_EPSILON);
assert(fabs(tan(f_pi_odd[i])) < FLT_EPSILON);
assert(fabs(sinf(-f_pi_odd[i])) < FLT_EPSILON);
assert(fabs(tanf(-f_pi_odd[i])) < FLT_EPSILON);
assert(fabs(sinf(f_pi_odd[i] * 2)) < FLT_EPSILON);
assert(fabs(tanf(f_pi_odd[i] * 2)) < FLT_EPSILON);
assert(fabs(sinf(-f_pi_odd[i] * 2)) < FLT_EPSILON);
assert(fabs(tanf(-f_pi_odd[i] * 2)) < FLT_EPSILON);
assert(fabs(sin(d_pi_odd[i])) < 2 * DBL_EPSILON);
assert(fabs(tan(d_pi_odd[i])) < 2 * DBL_EPSILON);
assert(fabs(sin(-d_pi_odd[i])) < 2 * DBL_EPSILON);
assert(fabs(tan(-d_pi_odd[i])) < 2 * DBL_EPSILON);
assert(fabs(sin(d_pi_odd[i] * 2)) < 2 * DBL_EPSILON);
assert(fabs(tan(d_pi_odd[i] * 2)) < 2 * DBL_EPSILON);
assert(fabs(sin(-d_pi_odd[i] * 2)) < 2 * DBL_EPSILON);
assert(fabs(tan(-d_pi_odd[i] * 2)) < 2 * DBL_EPSILON);
if (fabs(equation) < vmax)
i = (int)round(fabs(zone) * 24*60);
i = (int)round(fabs(loc->latitude) * 60*60);
i = (int)round(fabs(loc->longitude) * 60*60);
return (fabs(phi - phi2) > 180) ? phi2 : phi;
double offset = alt / (4.0 * (90.0 - fabs(loc->latitude)));
} while (fabs(a - b) >= eps);
double offset = alt / (4.0 * (90.0 - fabs(loc->latitude)));
} while (fabs(a - b) >= eps);
if (fabs(phi) < eps || fabs(phi - 360) < eps)
else if (fabs(phi - 90) < eps)
else if (fabs(phi - 180) < eps)
else if (fabs(phi - 270) < eps)
if (parse_angle(p, &v) && fabs(v) <= 90) {
if (parse_angle(p, &v) && fabs(v) <= 180) {
double value = ((fabs(try) > 1) ?
if (fabs(value) > 1) {
else if (fabs(t - tapprox) < eps)
} while (fabs(a-b) >= eps);
if (fabs(a - b) < eps)
if ((fabs(tf->tx) > eps) && (fabs(tf->ty) > eps)) {
if ((fabs(tf->sx - 1) > eps) && (fabs(tf->sy - 1) > eps)) {
if (fabs(tf->rot) > eps) {
if (fabs(d) > e) {
if ((check->lin_count >= 8 && fabs(check->lin_cache_corr) >= 0.99) ||
(check->lin_count >= 16 && fabs(check->lin_cache_corr) >= 0.96)
fabs(check->lin_cache_corr) > fabs(info->lin_cache_corr)
fabs(check->lin_sumoffset / check->lin_countoffset / 4)) &&
fabs(check->lin_cache_stddev) < fabs(info->lin_cache_stddev)
fabs(info->lin_cache_corr) < 0.85
fabs(info->lin_cache_corr) < 0.70
if (last_freq == 0.0 || fabs(freq - last_freq) >= 20.0E-6)
else if (fabs(freq - last_freq) >= 5.0E-6)
opts->maxidle = (u_int)fabs(maxidle);
opts->offtime = (u_int)fabs(offtime);