Historical NnBody, Revision 1

N-Body

N-Body Euphoria

-- The Computer Language Shootout Benchmarks 
--  http://shootout.alioth.debian.org/ 
--  
--  Converted to Euphoria by Jason Gade 
--  run: exu nbody.ex N 
 
without warning 
without type_check 
 
include std/get.e 
 
constant    PI = 3.141592653589793, 
            SOLAR_MASS = 4 * PI * PI, 
            DAYS_PER_YEAR = 365.24 
 
-- struct planet 
constant    NAME    = 1, 
            X       = 2, 
            Y       = 3, 
            Z       = 4, 
            VX      = 5, 
            VY      = 6, 
            VZ      = 7, 
            MASS    = 8 
-- end struct 
 
sequence bodies 
bodies =    { 
            { "Sun", 0, 0, 0, 0, 0, 0, SOLAR_MASS}, 
            { "Jupiter", 
              4.84143144246472090e+00, 
             -1.16032004402742839e+00, 
             -1.03622044471123109e-01, 
              1.66007664274403694e-03 * DAYS_PER_YEAR, 
              7.69901118419740425e-03 * DAYS_PER_YEAR, 
             -6.90460016972063023e-05 * DAYS_PER_YEAR, 
              9.54791938424326609e-04 * SOLAR_MASS }, 
            { "Saturn", 
              8.34336671824457987e+00, 
              4.12479856412430479e+00, 
             -4.03523417114321381e-01, 
             -2.76742510726862411e-03 * DAYS_PER_YEAR, 
              4.99852801234917238e-03 * DAYS_PER_YEAR, 
              2.30417297573763929e-05 * DAYS_PER_YEAR, 
              2.85885980666130812e-04 * SOLAR_MASS }, 
            { "Uranus", 
              1.28943695621391310e+01, 
             -1.51111514016986312e+01, 
             -2.23307578892655734e-01, 
              2.96460137564761618e-03 * DAYS_PER_YEAR, 
              2.37847173959480950e-03 * DAYS_PER_YEAR, 
             -2.96589568540237556e-05 * DAYS_PER_YEAR, 
              4.36624404335156298e-05 * SOLAR_MASS }, 
            { "Neptune", 
              1.53796971148509165e+01, 
             -2.59193146099879641e+01, 
              1.79258772950371181e-01, 
              2.68067772490389322e-03 * DAYS_PER_YEAR, 
              1.62824170038242295e-03 * DAYS_PER_YEAR, 
             -9.51592254519715870e-05 * DAYS_PER_YEAR, 
              5.15138902046611451e-05 * SOLAR_MASS } 
             } 
 
constant NBODIES = length(bodies) 
 
 
 
procedure advance(atom dt) 
    atom dx, dy, dz, distance, mag 
     
    for i = 1 to NBODIES do 
        for j = i + 1 to NBODIES do 
            dx = bodies[i][X] - bodies[j][X] 
            dy = bodies[i][Y] - bodies[j][Y] 
            dz = bodies[i][Z] - bodies[j][Z] 
            distance = sqrt(dx*dx + dy*dy + dz*dz) 
            mag = dt / (distance*distance*distance) 
             
            bodies[i][VX] -= dx * bodies[j][MASS] * mag 
            bodies[i][VY] -= dy * bodies[j][MASS] * mag 
            bodies[i][VZ] -= dz * bodies[j][MASS] * mag 
            bodies[j][VX] += dx * bodies[i][MASS] * mag 
            bodies[j][VY] += dy * bodies[i][MASS] * mag 
            bodies[j][VZ] += dz * bodies[i][MASS] * mag 
        end for 
    end for 
     
    for i = 1 to NBODIES do 
        bodies[i][X] += dt * bodies[i][VX] 
        bodies[i][Y] += dt * bodies[i][VY] 
        bodies[i][Z] += dt * bodies[i][VZ] 
    end for 
     
end procedure -- advance 
 
 
 
function energy() 
    atom e, dx, dy, dz, distance 
     
    e = 0.0 
     
    for i = 1 to NBODIES do 
        e += 0.5 * bodies[i][MASS] * (bodies[i][VX]*bodies[i][VX] + 
                                      bodies[i][VY]*bodies[i][VY] + 
                                      bodies[i][VZ]*bodies[i][VZ]) 
        for j = i + 1 to NBODIES do 
            dx = bodies[i][X] - bodies[j][X] 
            dy = bodies[i][Y] - bodies[j][Y] 
            dz = bodies[i][Z] - bodies[j][Z] 
            distance = sqrt(dx*dx + dy*dy + dz*dz) 
            e -= (bodies[i][MASS]*bodies[j][MASS])/distance 
        end for 
    end for 
     
    return e 
end function -- energy 
 
 
 
procedure offset_momentum() 
    atom px, py, pz 
     
    px = 0.0 
    py = 0.0 
    pz = 0.0 
     
    for i = 1 to NBODIES do 
        px += bodies[i][VX] * bodies[i][MASS] 
        py += bodies[i][VY] * bodies[i][MASS] 
        pz += bodies[i][VZ] * bodies[i][MASS] 
    end for 
     
    bodies[1][VX] = - px / SOLAR_MASS 
    bodies[1][VY] = - py / SOLAR_MASS 
    bodies[1][VZ] = - pz / SOLAR_MASS 
     
end procedure -- offset_momentum 
 
 
 
procedure main(sequence argv) 
    object n 
     
    if length(argv) > 2 then 
        n = value(argv[3]) 
        n = n[2] 
    else 
        n = 1000 
    end if 
     
    offset_momentum() 
    printf(1, "%.9f\n", energy()) 
     
    for i = 1 to n do 
        advance(0.01) 
    end for 
     
    printf(1, "%.9f\n", energy()) 
     
end procedure -- main 
 
main(command_line()) 

N-Body Python

# The Computer Language Benchmarks Game 
# http://shootout.alioth.debian.org/ 
# 
# originally by Kevin Carson 
# modified by Tupteq, Fredrik Johansson, and Daniel Nanz 
# modified by Maciej Fijalkowski 
# 2to3 
 
import sys 
 
def combinations(l): 
    result = [] 
    for x in range(len(l) - 1): 
        ls = l[x+1:] 
        for y in ls: 
            result.append((l[x],y)) 
    return result 
 
PI = 3.14159265358979323 
SOLAR_MASS = 4 * PI * PI 
DAYS_PER_YEAR = 365.24 
 
BODIES = { 
    'sun': ([0.0, 0.0, 0.0], [0.0, 0.0, 0.0], SOLAR_MASS), 
 
    'jupiter': ([4.84143144246472090e+00, 
                 -1.16032004402742839e+00, 
                 -1.03622044471123109e-01], 
                [1.66007664274403694e-03 * DAYS_PER_YEAR, 
                 7.69901118419740425e-03 * DAYS_PER_YEAR, 
                 -6.90460016972063023e-05 * DAYS_PER_YEAR], 
                9.54791938424326609e-04 * SOLAR_MASS), 
 
    'saturn': ([8.34336671824457987e+00, 
                4.12479856412430479e+00, 
                -4.03523417114321381e-01], 
               [-2.76742510726862411e-03 * DAYS_PER_YEAR, 
                4.99852801234917238e-03 * DAYS_PER_YEAR, 
                2.30417297573763929e-05 * DAYS_PER_YEAR], 
               2.85885980666130812e-04 * SOLAR_MASS), 
 
    'uranus': ([1.28943695621391310e+01, 
                -1.51111514016986312e+01, 
                -2.23307578892655734e-01], 
               [2.96460137564761618e-03 * DAYS_PER_YEAR, 
                2.37847173959480950e-03 * DAYS_PER_YEAR, 
                -2.96589568540237556e-05 * DAYS_PER_YEAR], 
               4.36624404335156298e-05 * SOLAR_MASS), 
 
    'neptune': ([1.53796971148509165e+01, 
                 -2.59193146099879641e+01, 
                 1.79258772950371181e-01], 
                [2.68067772490389322e-03 * DAYS_PER_YEAR, 
                 1.62824170038242295e-03 * DAYS_PER_YEAR, 
                 -9.51592254519715870e-05 * DAYS_PER_YEAR], 
                5.15138902046611451e-05 * SOLAR_MASS) } 
 
 
SYSTEM = list(BODIES.values()) 
PAIRS = combinations(SYSTEM) 
 
 
def advance(dt, n, bodies=SYSTEM, pairs=PAIRS): 
 
    for i in range(n): 
        for (([x1, y1, z1], v1, m1), 
             ([x2, y2, z2], v2, m2)) in pairs: 
            dx = x1 - x2 
            dy = y1 - y2 
            dz = z1 - z2 
            mag = dt * ((dx * dx + dy * dy + dz * dz) ** (-1.5)) 
            b1m = m1 * mag 
            b2m = m2 * mag 
            v1[0] -= dx * b2m 
            v1[1] -= dy * b2m 
            v1[2] -= dz * b2m 
            v2[0] += dx * b1m 
            v2[1] += dy * b1m 
            v2[2] += dz * b1m 
        for (r, [vx, vy, vz], m) in bodies: 
            r[0] += dt * vx 
            r[1] += dt * vy 
            r[2] += dt * vz 
 
 
def report_energy(bodies=SYSTEM, pairs=PAIRS, e=0.0): 
 
    for (((x1, y1, z1), v1, m1), 
         ((x2, y2, z2), v2, m2)) in pairs: 
        dx = x1 - x2 
        dy = y1 - y2 
        dz = z1 - z2 
        e -= (m1 * m2) / ((dx * dx + dy * dy + dz * dz) ** 0.5) 
    for (r, [vx, vy, vz], m) in bodies: 
        e += m * (vx * vx + vy * vy + vz * vz) / 2. 
    print("%.9f" % e) 
 
def offset_momentum(ref, bodies=SYSTEM, px=0.0, py=0.0, pz=0.0): 
 
    for (r, [vx, vy, vz], m) in bodies: 
        px -= vx * m 
        py -= vy * m 
        pz -= vz * m 
    (r, v, m) = ref 
    v[0] = px / m 
    v[1] = py / m 
    v[2] = pz / m 
 
def main(n, ref='sun'): 
    offset_momentum(BODIES[ref]) 
    report_energy() 
    advance(0.01, n) 
    report_energy() 
 
if __name__ == '__main__': 
    main(int(sys.argv[1])) 
 
 
	 

N-Body Perl

# The Computer Language Shootout 
# http://shootout.alioth.debian.org/ 
# 
# contributed by Christoph Bauer 
# converted into Perl by M?rton Papp 
# fixed and cleaned up by Danny Sauer 
# optimized by Jesse Millikan 
 
use constant PI            => 3.141592653589793; 
use constant SOLAR_MASS    => (4 * PI * PI); 
use constant DAYS_PER_YEAR => 365.24; 
 
#  Globals for arrays... Oh well. 
#  Almost every iteration is a range, so I keep the last index rather than a count. 
my (@xs, @ys, @zs, @vxs, @vys, @vzs, @mass, $last); 
 
sub advance($) 
{ 
  my ($dt) = @_; 
  my ($mm, $mm2, $j, $dx, $dy, $dz, $distance, $mag); 
 
#  This is faster in the outer loop... 
  for (0..$last) { 
#  But not in the inner loop. Strange. 
    for ($j = $_ + 1; $j < $last + 1; $j++) { 
      $dx = $xs[$_] - $xs[$j]; 
      $dy = $ys[$_] - $ys[$j]; 
      $dz = $zs[$_] - $zs[$j]; 
      $distance = sqrt($dx * $dx + $dy * $dy + $dz * $dz); 
      $mag = $dt / ($distance * $distance * $distance); 
      $mm = $mass[$_] * $mag; 
      $mm2 = $mass[$j] * $mag; 
      $vxs[$_] -= $dx * $mm2; 
      $vxs[$j] += $dx * $mm; 
      $vys[$_] -= $dy * $mm2; 
      $vys[$j] += $dy * $mm; 
      $vzs[$_] -= $dz * $mm2; 
      $vzs[$j] += $dz * $mm; 
    } 
 
# We're done with planet $_ at this point 
# This could be done in a seperate loop, but it's slower 
    $xs[$_] += $dt * $vxs[$_]; 
    $ys[$_] += $dt * $vys[$_]; 
    $zs[$_] += $dt * $vzs[$_]; 
  } 
} 
 
sub energy 
{ 
  my ($e, $i, $dx, $dy, $dz, $distance); 
 
  $e = 0.0; 
  for $i (0..$last) { 
    $e += 0.5 * $mass[$i] * 
          ($vxs[$i] * $vxs[$i] + $vys[$i] * $vys[$i] + $vzs[$i] * $vzs[$i]); 
    for ($i + 1..$last) { 
      $dx = $xs[$i] - $xs[$_]; 
      $dy = $ys[$i] - $ys[$_]; 
      $dz = $zs[$i] - $zs[$_]; 
      $distance = sqrt($dx * $dx + $dy * $dy + $dz * $dz); 
      $e -= ($mass[$i] * $mass[$_]) / $distance; 
    } 
  } 
  return $e; 
} 
 
sub offset_momentum 
{ 
  my ($px, $py, $pz) = (0.0, 0.0, 0.0); 
 
  for (0..$last) { 
    $px += $vxs[$_] * $mass[$_]; 
    $py += $vys[$_] * $mass[$_]; 
    $pz += $vzs[$_] * $mass[$_]; 
  } 
  $vxs[0] = - $px / SOLAR_MASS; 
  $vys[0] = - $py / SOLAR_MASS; 
  $vzs[0] = - $pz / SOLAR_MASS; 
} 
 
# @ns = ( sun, jupiter, saturn, uranus, neptune ) 
@xs = (0, 4.84143144246472090e+00, 8.34336671824457987e+00, 1.28943695621391310e+01, 1.53796971148509165e+01); 
@ys = (0, -1.16032004402742839e+00, 4.12479856412430479e+00, -1.51111514016986312e+01, -2.59193146099879641e+01); 
@zs = (0, -1.03622044471123109e-01, -4.03523417114321381e-01, -2.23307578892655734e-01, 1.79258772950371181e-01); 
@vxs = map {$_ * DAYS_PER_YEAR} 
  (0, 1.66007664274403694e-03, -2.76742510726862411e-03, 2.96460137564761618e-03, 2.68067772490389322e-03); 
@vys = map {$_ * DAYS_PER_YEAR} 
  (0, 7.69901118419740425e-03, 4.99852801234917238e-03, 2.37847173959480950e-03, 1.62824170038242295e-03); 
@vzs = map {$_ * DAYS_PER_YEAR} 
  (0, -6.90460016972063023e-05, 2.30417297573763929e-05, -2.96589568540237556e-05, -9.51592254519715870e-05); 
@mass = map {$_ * SOLAR_MASS} 
  (1, 9.54791938424326609e-04, 2.85885980666130812e-04, 4.36624404335156298e-05, 5.15138902046611451e-05); 
 
$last = @xs - 1; 
 
offset_momentum(); 
printf ("%.9f\n", energy()); 
 
my $n = $ARGV[0]; 
 
# This does not, in fact, consume N*4 bytes of memory 
for (1..$n){ 
  advance(0.01); 
} 
 
printf ("%.9f\n", energy()); 
 
 
	 

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