Cody Murphy at Planetary Qualifier Radcliff

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Planetary Premier April 25, 2026 Record 2-4-0 Field 44
Rating after 1,381
-119
Rating before 1,500 RD 250
Rating after 1,381 RD 181
Effective multiplier 1.0× weighted avg
Performance 1,255 vs field -328
Field strength Mean 1,583 · Median 1,522 · 44 rated 54th Percentile Planetaries, 2026 Q2

// rating math · glicko-2 phase replay

How this rating change was computed

Glicko-2 doesn’t reward record — it rewards surprise. Winning a match the system expected you to win is worth almost nothing. Losing one is expensive. Losing to someone rated below you costs the most. The Planetary tier multiplier (1.0×) amplifies every gain and every loss.

Making cut at this Planetary event adds a flat +15 top-cut bonus on top of phase math. Making cut never costs you net rating — the made-cut floor pins the tournament delta to ≥ 0.

Top Cut Bracket Full bracket on the event page
Phase Record Raw Δ Multiplier Bonus Applied Running
Swiss · 6 matches 2-4 -118.5 1.0× +0.0 -118.5 1381
Total 2-4-0 -118.5 1381
Biggest upset Beat ChristianTobey 1919 at 19% odds / surprise +0.81
Costliest loss Lost to JMHIMEL 1274 at 68% odds / surprise -0.68 / +184 swing

Matches (6)

Round HRI Opponent Result Odds Game W-L Multiplier Δ Type
R1 1306 Ray Mack Loss 66% 0-2 1.0× -121.3 Swiss
Glicko-2 predicted 66% odds in your favor. Unexpected losses carry the most rating signal — the system learns more from one upset than from many predictable wins.
R2 1457 BeardedBabyy Loss 54% 1-2 1.0× -96.8 Swiss
Glicko-2 predicted 54% odds in your favor. Unexpected losses carry the most rating signal — the system learns more from one upset than from many predictable wins.
R3 1500~ Jocampo17 Loss 50% 1-2 1.0× -85.1 Swiss
Glicko-2 predicted 50% odds in your favor. Unexpected losses carry the most rating signal — the system learns more from one upset than from many predictable wins. Their rating wasn't well-established (RD 250, true skill could span ±500).
R4 1500~ Evaughn Win 50% 2-0 1.0× +85.1 Swiss
Glicko-2 predicted only 50% odds for you. Upset wins move the rating model strongly because the system learns a lot from results it didn't expect. Their rating wasn't well-established (RD 250, true skill could span ±500).
R5 1919 ChristianTobey Win 19% 2-0 1.0× +155.2 Swiss
Glicko-2 predicted only 19% odds for you. Upset wins move the rating model strongly because the system learns a lot from results it didn't expect.
R6 1274 JMHIMEL Loss 68% 0-2 1.0× -125.5 Swiss
Glicko-2 predicted 68% odds in your favor. Unexpected losses carry the most rating signal — the system learns more from one upset than from many predictable wins.
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