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Metric details

Every pilot's reading on every behaviour, family by family.

Analysis computed

best: clear pattern (0.53)

#PilotNonSink%
1Richard Martin65
2Steven Crosby66
3Josh Woods63
4Rohan Taylor55
5Paul Bissett-Amess66
6Mick Lamb70
7Rory Duncan87
8Dick Heffer67
9Andre Johnson65
10Rob de Groot62
11Hossain Tefaili39
12James Atkinson76
13Bradley Elliott48
14Justin Gilmour39
15Brett Gilmour33
16John Greenwood51
17Ward Gunn100
18James Morgan16
19Howard Taylor11
20Nariyuki Watabe4

The day’s wind, hour by hour and leg by leg

Measured in kilometres per hour · no expected direction

What the air did, read from the field itself. We estimate the wind from the circling of every pilot. The first method is the drift of the circle centre, and the second method, used when the first is not available, is the modulation of the ground speed. We then combine the estimates two ways. The table by hour of day shows how the wind increased and changed direction through the day. The table by speed-section leg shows the wind on each part of the course. This metric describes the day, so it has no value for each pilot.

Wind by hour

PeriodSpeed (km/h)Dir (°)n
Whole task8.0343322
7.735248
9.3337196
6.535877
9.42891

Each circle gives one wind estimate. GlideComp uses centre drift where it can, and ground-speed modulation where it cannot. The direction is the vector mean of the estimates, in degrees the wind blows FROM (0° = north). The speed is the median of their magnitudes, because the length of a vector mean falls toward zero when the directions scatter.

Hours are shown in the competition’s time zone.

Wind by leg

LegFlownPilotsCirclingSpeed (km/h)Dir (°)nFrom pilots
ELLIOT (SSS)→KANGCK913.831862
KANGCK→ELLITP37.3353773
ELLITP→KHANCO (GOAL)110.2511

Each circle gives one wind estimate. GlideComp uses centre drift where it can, and ground-speed modulation where it cannot. The direction is the vector mean of the estimates, in degrees the wind blows FROM (0° = north). The speed is the median of their magnitudes, because the length of a vector mean falls toward zero when the directions scatter.

“Flown” is when the field was ON the leg — the first pilot entering to the last leaving — over the “Pilots” who started and flew the whole leg.

“Circling” is the narrower window the wind was actually measured in: first to last circle estimate any pilot logged while on the leg, from “From pilots” pilots. Glides produce no estimate, so a leg the field mostly glided shows a sliver of its flown window (or “—” where no one circled at all) — and a late leg the leaders glided can be measured EARLIER than the leg before it without either being wrong.

How strong the day’s climbs were, hour by hour

Measured in metres per second · no expected direction

When the day started, reached its peak, and ended. We group the thermal climbs of all pilots by the hour in which each climb started, labelled in the time zone of the competition. The median and the 90th-percentile average climb rate for each hour show how the lift developed. The first row is the whole task, measured over every climb of the day in one set, and not as an average of the hourly rows. This metric describes the day, so it has no value for each pilot.

Climb by hour

PeriodMedian (m/s)p90 (m/s)n
Whole task0.71.299
1.21.36
0.71.174
0.81.519

The average climb rate of every thermal use across the field, grouped by the start of the climb. The hours are in the time zone of the competition. The whole-task row is measured over all of those climbs together, not averaged from the hours.

Share of the flight spent in air that wasn’t sinking

Measured in percent · no expected direction

How much of the flight was in air worth being in. The value is the share of the airborne time of a pilot, on the shared grid, with a 30 s-smoothed vario at or above −0.5 m/s. The time they flew, the line they steered and the way the flight ended all feed this value. It is therefore a reading of the day as much as of the pilot. There is no expected direction, and the sign of the correlation is the finding. The timing table compares the window of the day’s best climbs against the time when the field launched.

Day timing

Time
Best conditions
Earliest takeoff
Median takeoff
Latest takeoff

Best conditions is the one-hour window with the strongest median climb (0.8 m/s), among hours with enough climbs to be representative (≥20% of the busiest hour).

best: could be chance (0.50)

best: too few pilots (0.75)

#PilotGlideSpdGlideL/DWide%Dolphin%
1Richard Martin47.6 (7 glides, 58 min gliding)1.10 (2 legs compared)11 (3 legs completed)32 (447 of 1380 m gained outside thermals)
2Steven Crosby45.4 (4 glides, 38 min gliding)1.05 (2 legs compared)-16 (2 legs completed)11 (149 of 1324 m gained outside thermals)
3Josh Woods59.9 (4 glides, 26 min gliding)0.86 (1 leg compared)10 (2 legs completed)6 (98 of 1735 m gained outside thermals)
4Rohan Taylor1.04 (1 leg compared)-31 (1 leg completed)
5Paul Bissett-Amess47.8 (5 glides, 12 min gliding)0.92 (1 leg compared)-56 (1 leg completed)35 (82 of 233 m gained outside thermals)
6Mick Lamb45.1 (2 glides, 10 min gliding)1.00 (1 leg compared)-52 (1 leg completed)14 (82 of 576 m gained outside thermals)
7Rory Duncan-58 (1 leg completed)
8Dick Heffer46.0 (2 glides, 18 min gliding)-51 (1 leg completed)10 (67 of 694 m gained outside thermals)
9Andre Johnson39.7 (3 glides, 12 min gliding)0.82 (1 leg compared)-45 (1 leg completed)19 (50 of 263 m gained outside thermals)
10Rob de Groot46.0 (2 glides, 7 min gliding)
11Hossain Tefaili
12James Atkinson
13Bradley Elliott
14Justin Gilmour
15Brett Gilmour
16John Greenwood
17Ward Gunn
18James Morgan
19Howard Taylor
20Nariyuki Watabe

Glide speed between climbs

Measured in kilometres per hour · higher is better

How fast the pilot moves down the course when they are on a glide. The value is the duration-weighted mean ground speed over every glide after the start, which is the glide distance divided by the glide time. A higher value means more ground covered in each minute between climbs.

Field glide speed: median 46.0 km/h · p90 51.4 km/h (8 pilots)

best: could be chance (0.38)

best: too few pilots (0.15)

best: could be chance (0.52)