package basic import ( "math" . "b612.me/astro/tools" ) // Pos const ( JUPITER_S_PERIOD = 1 / ((1 / 365.256363004) - (1 / 4332.59)) jupiterEventSearchN = 16 jupiterPhaseCoarseTolerance = 30.0 / 86400.0 ) func jupiterSunLongitudeDelta(jde, degree float64, filter bool) float64 { sub := Limit360(Limit360(JupiterApparentLo(jde)-HSunApparentLo(jde)) - degree) if filter { if sub > 180 { sub -= 360 } if sub < -180 { sub += 360 } } return sub } func jupiterSunLongitudeDeltaN(jde, degree float64, filter bool, n int) float64 { sub := Limit360(Limit360(JupiterApparentLoN(jde, n)-HSunApparentLoN(jde, n)) - degree) if filter { if sub > 180 { sub -= 360 } if sub < -180 { sub += 360 } } return sub } func jupiterRADerivative(jde, delta float64) float64 { sub := JupiterApparentRa(jde+delta) - JupiterApparentRa(jde-delta) if sub > 180 { sub -= 360 } if sub < -180 { sub += 360 } return sub / (2 * delta) } func jupiterRADerivativeN(jde, delta float64, n int) float64 { sub := JupiterApparentRaN(jde+delta, n) - JupiterApparentRaN(jde-delta, n) if sub > 180 { sub -= 360 } if sub < -180 { sub += 360 } return sub / (2 * delta) } func jupiterConjunctionFull(jde, degree float64, next uint8) float64 { //0=last 1=next if !isFiniteFloat(jde) || !isFiniteFloat(degree) { return math.NaN() } daysPerDegree := JUPITER_S_PERIOD / 360 currentDelta := jupiterSunLongitudeDelta(jde, degree, false) if next == 0 { jde -= (360 - currentDelta) * daysPerDegree } else { jde += daysPerDegree * currentDelta } estimateJDE := jde converged := false for i := 0; i < eventNewtonMaxIterations; i++ { prevJDE := estimateJDE longitudeDelta := jupiterSunLongitudeDelta(prevJDE, degree, true) longitudeSlope := (jupiterSunLongitudeDelta(prevJDE+0.000005, degree, true) - jupiterSunLongitudeDelta(prevJDE-0.000005, degree, true)) / 0.00001 nextJD := prevJDE - longitudeDelta/longitudeSlope estimateJDE = nextJD if math.Abs(nextJD-prevJDE) <= 0.00001 { converged = true break } } if !converged { return math.NaN() } return TT2UTC(estimateJDE) } func jupiterConjunction(jde, degree float64, next uint8) float64 { //0=last 1=next if !isFiniteFloat(jde) || !isFiniteFloat(degree) { return math.NaN() } daysPerDegree := JUPITER_S_PERIOD / 360 currentDelta := jupiterSunLongitudeDelta(jde, degree, false) if next == 0 { jde -= (360 - currentDelta) * daysPerDegree } else { jde += daysPerDegree * currentDelta } estimateJDE := jde converged := false for i := 0; i < eventNewtonMaxIterations; i++ { prevJDE := estimateJDE longitudeDelta := jupiterSunLongitudeDeltaN(prevJDE, degree, true, jupiterEventSearchN) longitudeSlope := (jupiterSunLongitudeDeltaN(prevJDE+0.000005, degree, true, jupiterEventSearchN) - jupiterSunLongitudeDeltaN(prevJDE-0.000005, degree, true, jupiterEventSearchN)) / 0.00001 nextJD := prevJDE - longitudeDelta/longitudeSlope estimateJDE = nextJD if math.Abs(nextJD-prevJDE) <= jupiterPhaseCoarseTolerance { converged = true break } } if !converged { return math.NaN() } converged = false for i := 0; i < eventNewtonMaxIterations; i++ { prevJDE := estimateJDE longitudeDelta := jupiterSunLongitudeDelta(prevJDE, degree, true) longitudeSlope := (jupiterSunLongitudeDelta(prevJDE+0.000005, degree, true) - jupiterSunLongitudeDelta(prevJDE-0.000005, degree, true)) / 0.00001 nextJD := prevJDE - longitudeDelta/longitudeSlope estimateJDE = nextJD if math.Abs(nextJD-prevJDE) <= 0.00001 { converged = true break } } if !converged { return math.NaN() } return TT2UTC(estimateJDE) } func LastJupiterConjunction(jde float64) float64 { return inclusiveLastPhaseEvent(jde, 0, jupiterConjunction) } func NextJupiterConjunction(jde float64) float64 { return inclusiveNextPhaseEvent(jde, 0, jupiterConjunction) } func LastJupiterOpposition(jde float64) float64 { return inclusiveLastPhaseEvent(jde, 180, jupiterConjunction) } func NextJupiterOpposition(jde float64) float64 { return inclusiveNextPhaseEvent(jde, 180, jupiterConjunction) } func NextJupiterEasternQuadrature(jde float64) float64 { return inclusiveNextPhaseEvent(jde, 90, jupiterConjunction) } func LastJupiterEasternQuadrature(jde float64) float64 { return inclusiveLastPhaseEvent(jde, 90, jupiterConjunction) } func NextJupiterWesternQuadrature(jde float64) float64 { return inclusiveNextPhaseEvent(jde, 270, jupiterConjunction) } func LastJupiterWesternQuadrature(jde float64) float64 { return inclusiveLastPhaseEvent(jde, 270, jupiterConjunction) } func jupiterRetrogradeAroundOpposition(oppositionJD float64, searchBeforeOpposition bool) float64 { if !isFiniteFloat(oppositionJD) { return math.NaN() } oppositionTT := UTC2TT(oppositionJD) startTT := oppositionTT endTT := oppositionTT if searchBeforeOpposition { easternQuadratureUT := jupiterConjunction(oppositionTT, 90, 0) startTT = UTC2TT(easternQuadratureUT) } else { westernQuadratureUT := jupiterConjunction(oppositionTT, 270, 1) endTT = UTC2TT(westernQuadratureUT) } bestJDE := zeroEventInWindow(startTT, endTT, 2.0, 2.0, 30.0/86400.0, func(jd float64) float64 { return jupiterRADerivativeN(jd, stationDerivativeStepDay, jupiterEventSearchN) }, func(jd float64) float64 { return jupiterRADerivative(jd, stationDerivativeStepDay) }) return TT2UTC(bestJDE) } func NextJupiterRetrogradeToPrograde(jde float64) float64 { if !isFiniteFloat(jde) { return math.NaN() } lastOppositionJD := jupiterConjunctionFull(jde, 180, 0) date := jupiterRetrogradeAroundOpposition(lastOppositionJD, false) if isFiniteFloat(date) && stationUTQueryAfterOrEqual(date, jde) { return date } nextOppositionJD := jupiterConjunctionFull(jde, 180, 1) if !isFiniteFloat(nextOppositionJD) { return math.NaN() } date = jupiterRetrogradeAroundOpposition(nextOppositionJD, false) if !isFiniteFloat(date) || !stationUTQueryAfterOrEqual(date, jde) { return math.NaN() } return date } func LastJupiterRetrogradeToPrograde(jde float64) float64 { if !isFiniteFloat(jde) { return math.NaN() } lastOppositionJD := jupiterConjunctionFull(jde, 180, 0) date := jupiterRetrogradeAroundOpposition(lastOppositionJD, false) if isFiniteFloat(date) && stationUTQueryBeforeOrEqual(date, jde) { return date } if !isFiniteFloat(lastOppositionJD) { return math.NaN() } previousOppositionJD := jupiterConjunctionFull(eventUTLastQueryTT(lastOppositionJD), 180, 0) if !isFiniteFloat(previousOppositionJD) { return math.NaN() } date = jupiterRetrogradeAroundOpposition(previousOppositionJD, false) if !isFiniteFloat(date) || !stationUTQueryBeforeOrEqual(date, jde) { return math.NaN() } return date } func NextJupiterProgradeToRetrograde(jde float64) float64 { if !isFiniteFloat(jde) { return math.NaN() } nextOppositionJD := jupiterConjunctionFull(jde, 180, 1) date := jupiterRetrogradeAroundOpposition(nextOppositionJD, true) if isFiniteFloat(date) && stationUTQueryAfterOrEqual(date, jde) { return date } if !isFiniteFloat(nextOppositionJD) { return math.NaN() } followingOppositionJD := jupiterConjunctionFull(eventUTNextQueryTT(nextOppositionJD), 180, 1) if !isFiniteFloat(followingOppositionJD) { return math.NaN() } date = jupiterRetrogradeAroundOpposition(followingOppositionJD, true) if !isFiniteFloat(date) || !stationUTQueryAfterOrEqual(date, jde) { return math.NaN() } return date } func LastJupiterProgradeToRetrograde(jde float64) float64 { if !isFiniteFloat(jde) { return math.NaN() } nextOppositionJD := jupiterConjunctionFull(jde, 180, 1) date := jupiterRetrogradeAroundOpposition(nextOppositionJD, true) if isFiniteFloat(date) && stationUTQueryBeforeOrEqual(date, jde) { return date } if !isFiniteFloat(nextOppositionJD) { return math.NaN() } lastOppositionJD := jupiterConjunctionFull(jde, 180, 0) if !isFiniteFloat(lastOppositionJD) { return math.NaN() } date = jupiterRetrogradeAroundOpposition(lastOppositionJD, true) if !isFiniteFloat(date) || !stationUTQueryBeforeOrEqual(date, jde) { return math.NaN() } return date }