9ee2163cc7
- 新增月掩恒星和行星:支持搜索、掩甚点、全球掩带及固定地点轨迹计算 - 支持恒星星表坐标转换、有限盘面行星接触事件和月掩 SVG 输出 - 新增日月食及月掩全球投影图、时间标记和 GeoJSON 地理数据接口 - 扩展日食中心线、南北界及偏食足迹采样,支持极区投影 - 修正站心时角、月出月落、月球视半径、折射和恒星自行计算 - 优化内外行星事件搜索、边界选择、极端输入处理和计算稳定性
217 lines
6.2 KiB
Go
217 lines
6.2 KiB
Go
package basic
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import "math"
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const (
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eventNewtonMaxIterations = 24
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eventDirectionalSearchIterations = 128
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eventRiseSetScanStep = 1.0 / 1440
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)
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func isFiniteFloat(value float64) bool {
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return !math.IsNaN(value) && !math.IsInf(value, 0)
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}
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// eventNewtonRefine 执行有界牛顿迭代;修正函数返回 f(x)/f'(x),调用者保留现有导数计算 / eventNewtonRefine performs a bounded Newton iteration. The correction
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// 对格式错误输入和不收敛迭代快速失败 / function returns f(x)/f'(x), so callers retain their existing derivative
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// 计算 / calculation while malformed input and non-convergent iterations fail fast.
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func eventNewtonRefine(seed, tolerance float64, correction func(float64) float64) (float64, bool) {
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if !isFiniteFloat(seed) || !isFiniteFloat(tolerance) || tolerance <= 0 {
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return math.NaN(), false
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}
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current := seed
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for i := 0; i < eventNewtonMaxIterations; i++ {
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step := correction(current)
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if !isFiniteFloat(step) {
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return math.NaN(), false
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}
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next := current - step
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if !isFiniteFloat(next) {
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return math.NaN(), false
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}
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if math.Abs(next-current) <= tolerance {
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return next, true
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}
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current = next
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}
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return math.NaN(), false
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}
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func eventRiseSetCandidateValid(candidate, civilDayStart, slope float64, isRise bool) bool {
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if !isFiniteFloat(candidate) || !isFiniteFloat(civilDayStart) || !isFiniteFloat(slope) ||
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candidate < civilDayStart || candidate >= civilDayStart+1 {
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return false
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}
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if isRise {
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return slope > 0
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}
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return slope < 0
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}
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func eventDirectionalRiseSetSearch(civilDayStart float64, isRise bool, fallbackErr error,
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residual func(float64) float64) (float64, error) {
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if !isFiniteFloat(civilDayStart) {
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return 0, ErrInvalidObservationInput
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}
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previousJD := civilDayStart
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previousValue := residual(previousJD)
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if !isFiniteFloat(previousValue) {
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return 0, ErrInvalidObservationInput
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}
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minimum, maximum := previousValue, previousValue
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steps := int(math.Round(1 / eventRiseSetScanStep))
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for i := 1; i <= steps; i++ {
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currentJD := civilDayStart + float64(i)*eventRiseSetScanStep
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currentValue := residual(currentJD)
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if !isFiniteFloat(currentValue) {
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return 0, ErrInvalidObservationInput
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}
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minimum = math.Min(minimum, currentValue)
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maximum = math.Max(maximum, currentValue)
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if eventCrossesDirection(previousValue, currentValue, isRise) {
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eventJD := eventDirectionalBracketRefine(previousJD, currentJD, previousValue, currentValue, residual)
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if eventJD < civilDayStart+1 {
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return eventJD, nil
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}
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}
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previousJD = currentJD
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previousValue = currentValue
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}
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switch {
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case fallbackErr != nil:
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return 0, fallbackErr
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case maximum < 0:
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return 0, ErrNeverRise
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case minimum > 0:
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return 0, ErrNeverSet
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default:
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return 0, ErrNotOnThisDate
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}
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}
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func eventCrossesDirection(leftValue, rightValue float64, isRise bool) bool {
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if isRise {
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return leftValue <= 0 && rightValue >= 0 && leftValue != rightValue
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}
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return leftValue >= 0 && rightValue <= 0 && leftValue != rightValue
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}
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func eventDirectionalBracketRefine(leftJD, rightJD, leftValue, rightValue float64, residual func(float64) float64) float64 {
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if leftValue == 0 {
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return leftJD
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}
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if rightValue == 0 {
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return rightJD
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}
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for i := 0; i < 48; i++ {
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middleJD := (leftJD + rightJD) / 2
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middleValue := residual(middleJD)
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if middleValue == 0 {
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return middleJD
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}
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if (leftValue < 0) == (middleValue < 0) {
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leftJD = middleJD
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leftValue = middleValue
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} else {
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rightJD = middleJD
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}
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}
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return (leftJD + rightJD) / 2
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}
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func eventFixedScanRefine(seed, halfWindow, step float64, fn func(float64) float64) float64 {
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start := seed - halfWindow
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bestJD := start
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bestAbs := math.Abs(fn(start))
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samples := int(math.Round((2 * halfWindow) / step))
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for i := 1; i < samples; i++ {
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candidateJD := start + float64(i)*step
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candidateAbs := math.Abs(fn(candidateJD))
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if candidateAbs < bestAbs {
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bestAbs = candidateAbs
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bestJD = candidateJD
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}
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}
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return bestJD
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}
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func eventZeroBracket(leftJD, leftVal, centerJD, centerVal, rightJD, rightVal float64) (float64, float64, float64, float64, bool) {
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if leftVal == 0 {
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return leftJD, leftJD, leftVal, leftVal, true
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}
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if centerVal == 0 {
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return centerJD, centerJD, centerVal, centerVal, true
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}
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if rightVal == 0 {
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return rightJD, rightJD, rightVal, rightVal, true
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}
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if leftVal*centerVal < 0 {
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return leftJD, centerJD, leftVal, centerVal, true
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}
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if centerVal*rightVal < 0 {
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return centerJD, rightJD, centerVal, rightVal, true
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}
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if leftVal*rightVal < 0 {
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return leftJD, rightJD, leftVal, rightVal, true
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}
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return 0, 0, 0, 0, false
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}
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// eventZeroRefine 细化 seed 附近的零点;无可用括号区间时退回固定步长扫描。
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func eventZeroRefine(seed, halfWindow, step float64, fn func(float64) float64) float64 {
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leftJD := seed - halfWindow
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centerJD := seed
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rightJD := seed + halfWindow
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leftVal := fn(leftJD)
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centerVal := fn(centerJD)
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rightVal := fn(rightJD)
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bestJD := centerJD
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bestAbs := math.Abs(centerVal)
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if candidateAbs := math.Abs(leftVal); candidateAbs < bestAbs {
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bestAbs = candidateAbs
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bestJD = leftJD
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}
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if candidateAbs := math.Abs(rightVal); candidateAbs < bestAbs {
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bestAbs = candidateAbs
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bestJD = rightJD
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}
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bracketLeftJD, bracketRightJD, bracketLeftVal, bracketRightVal, ok := eventZeroBracket(leftJD, leftVal, centerJD, centerVal, rightJD, rightVal)
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if !ok {
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return eventFixedScanRefine(seed, halfWindow, step, fn)
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}
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if bracketLeftJD == bracketRightJD {
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return bracketLeftJD
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}
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for i := 0; i < 8; i++ {
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candidateJD := (bracketLeftJD + bracketRightJD) / 2
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if bracketRightVal != bracketLeftVal {
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secantJD := bracketRightJD - bracketRightVal*(bracketRightJD-bracketLeftJD)/(bracketRightVal-bracketLeftVal)
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if secantJD > bracketLeftJD && secantJD < bracketRightJD {
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candidateJD = secantJD
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}
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}
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candidateVal := fn(candidateJD)
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candidateAbs := math.Abs(candidateVal)
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if candidateAbs < bestAbs {
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bestAbs = candidateAbs
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bestJD = candidateJD
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}
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if candidateVal == 0 || math.Abs(bracketRightJD-bracketLeftJD) <= step {
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break
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}
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if bracketLeftVal*candidateVal < 0 {
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bracketRightJD = candidateJD
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bracketRightVal = candidateVal
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continue
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}
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bracketLeftJD = candidateJD
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bracketLeftVal = candidateVal
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}
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return bestJD
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}
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