TRAVERSING FRENCH POLYNESIA TUAMOTUS

TRAVERSING FRENCH POLYNESIA WITHOUT A LONG STAY VISA
MARQUESASTUAMOTUSSOCIETY ISLANDS

 

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TUAMOTUSย  ANCHORAGES

Interpolating tides between two tidal stations involves estimating tidal heights or times at a location between them based on the data from both stations. Hereโ€™s a structured approach:

1. Linear Interpolation (Basic Method)

  • If the location of interest is roughly equidistant from both tidal stations and the tide follows a simple trend, a linear interpolation can be applied:

H=H1+(H2โˆ’H1)Dร—dH = H_1 + \frac{(H_2 – H_1)}{D} \times d

where:

  • HH = interpolated tide height,
  • H1,H2H_1, H_2 = tide heights at the two stations,
  • DD = total distance between the stations,
  • dd = distance from Station 1 to the interpolation point.

2. Time Lag Interpolation

  • Tidal waves travel over time, so high/low tide times may shift.
  • If the phase lag is known, adjust the time accordingly:

T=T1+(T2โˆ’T1)Dร—dT = T_1 + \frac{(T_2 – T_1)}{D} \times d

where T1T_1 and T2T_2 are the times of high or low tide at the two stations.

3. Harmonic Analysis (More Accurate)

  • Tides are influenced by multiple harmonics (e.g., semi-diurnal, diurnal).
  • If harmonic constituents (like M2, S2) are known for the two stations, you can interpolate each harmonic and sum them.
  • NOAA and other agencies provide harmonic constants that can be used in tidal prediction models.

4. Nonlinear and GIS-Based Interpolation

  • If coastline shape or bathymetry affects tides, use GIS-based methods like:
    • Inverse Distance Weighting (IDW): Weights closer station data more heavily.
    • Kriging: A geostatistical method for more accurate interpolation.
    • Hydrodynamic Models: Computational models (e.g., ADCIRC) simulate tide propagation.