UNI 1-0 FCS · 57% REN 1-2 MAR · 58% VEN 1-1 FIO · 57% GEN 1-0 FRO · 57% BOR 3-1 SCP · 67% 189 1-1 VFB · 57% SCF 2-1 BOR · 59% FCA 1-2 BAY · 60% FSV 1-1 EIN · 57% CHE 2-0 HUL · 67% LIV 2-1 FUL · 65% AST 2-1 NOT · 62% BOU 1-1 BRE · 57% CRY 1-0 IPS · 60% UNI 1-0 FCS · 57% REN 1-2 MAR · 58% VEN 1-1 FIO · 57% GEN 1-0 FRO · 57% BOR 3-1 SCP · 67% 189 1-1 VFB · 57% SCF 2-1 BOR · 59% FCA 1-2 BAY · 60% FSV 1-1 EIN · 57% CHE 2-0 HUL · 67% LIV 2-1 FUL · 65% AST 2-1 NOT · 62% BOU 1-1 BRE · 57% CRY 1-0 IPS · 60%
KHL Sep 7, 2026 · 16:30 Finished

SKA St. Petersburg
vs
Dynamo Moscow.

10 AI models read this game. The plurality on the winner leans toward SKA St. Petersburg (10 of 10 models). The mean predicted score (rounded from all models) is 3–2 at 57% mean confidence (Medium band) — see the strip and table below.

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— Consensus

Where the panel lands.

Vote share across models. Read this strip first, then the line-by-line table.

SKA St. Petersburg win 100%

10 / 10 models

Dynamo Moscow win 0%

0 / 10 models

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— Model breakdown

10 picks. Receipts attached.

Line-by-line comparison of each system’s call.

#
Model
Pick
Score
Conf.
Reasoning
01
GPT-5.6 Luna
SKA St. Petersburg win
3–2
56%
With no current form or recorded head-to-head data, SKA St. Petersburg’s home ice provides the clearest edge. Dynamo Moscow should keep the game tight, pointing to a competitive, moderate-scoring finish.
02
Claude Sonnet 5
SKA St. Petersburg win
3–2
55%
SKA holds home-ice advantage against a traditionally strong Dynamo side; expect a tight, competitive contest decided by a single goal.
03
Gemini 3.8 Flash
SKA St. Petersburg win
4–2
62%
SKA St. Petersburg hold a distinct offensive depth advantage at home. Dynamo Moscow remain competitive, but SKA's pace should see them pull away late.
04
Grok 4.6
SKA St. Petersburg win
3–2
58%
SKA is the stronger KHL club with a clear Ice Palace home edge versus Dynamo. No 2026 form or H2H in the feed, so a tight one-goal home win at typical league scoring.
05
DeepSeek V4 Pro
SKA St. Petersburg win
3–2
54%
SKA's home ice and scoring depth likely edge Dynamo Moscow in a tight KHL contest.
06
Qwen 3.8 Max
SKA St. Petersburg win
3–2
58%
SKA's home-ice advantage and deeper roster in KHL give them the edge over Dynamo Moscow, though limited context keeps confidence moderate.
07
Mistral Medium 3.5
SKA St. Petersburg win
3–2
60%
SKA's historical edge and home ice favor them; close game expected.
08
Kimi K3
SKA St. Petersburg win
3–2
58%
SKA’s home-ice edge and typically deeper roster give them the nod over Dynamo in a tight, competitive KHL matchup; no H2H data available, so confidence stays moderate.
09
GLM 5.3
SKA St. Petersburg win
3–2
58%
No H2H data available; SKA's home strength in St. Petersburg typically edges tight KHL games against Dynamo Moscow, but early-season form is uncertain, so moderate confidence.
10
MiMo V2.5 Pro
SKA St. Petersburg win
3–2
55%
Home venue advantage in early KHL season; without form data, expect a close game with SKA edging out.
— Scoreline frequency

How often each scoreline showed up.

9 of 10 models settled on 3–2. That convergence is a strong scoreline signal—many fixtures fan out wider across the panel.

  • 3–2
    9 models
  • 4–2
    1 model

Match overview

Looking for a today prediction on SKA St. Petersburg vs Dynamo Moscow in KHL? TuringStats aggregates multiple AI scorelines into one readable page so you can see who the models favor, the mean predicted score shown in the hero (3 - 2; the frequency chart below lists the most common exact scorelines), and implied splits before kickoff.

This prediction hub is written for readers comparing betting tips-style language with transparent model votes — not a single black-box call. The headline read is SKA St. Petersburg win, with vote shares roughly 100% / 0% home and away (rounded).

If you are asking who will win SKA St. Petersburg vs Dynamo Moscow, start with the consensus strip and model table, then cross-check form and injuries in Match context further down — that order keeps the strongest signals first.

— Aggregated insights

What’s moving the panel.

01
Consensus favors SKA St. Petersburg

100% of models lean home — the clearest cluster on this fixture before kickoff.

02
Medium confidence

Mean 57% across the panel with real dispersion — compare unanimous calls vs split tickets in the model table.

03
xG tilt 3.10 vs 2.00

Derived from predicted scorelines (model means), not live game data — useful for pace vs vote-share sanity checks.

04
Match context

Expected-goals tilt and home-field rhythm (see xG on this page) usually explain whether the game stays open or compresses late.

Confidence trend

Cumulative average confidence in table order.

First model Last model

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— Journal

Articles linked to these clubs or AI forecasting.

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