Per90
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Italian Serie A · Italy
lineups not announcedBest edge
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no call published
Angles
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none found
Referee
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not appointed
No value call published on this fixture
No edges published on this fixture. An edge is published only when a bookmaker's price beats the model's fair price by that market's full bar — most fixtures never produce one. The value board explains every gate a candidate has to clear.
No lineup yet. Minutes come from each player’s start rate, which is the widest of the three states — and why rows are marked provisional.
Published at the price shown, scored against the closing line.
No edges published on this fixture. An edge is published only when a bookmaker's price beats the model's fair price by that market's full bar — most fixtures never produce one. The value board explains every gate a candidate has to clear.
Last six completed matches per side, newest first. Half-time score in brackets where the feed carries one.
Model projections. Nothing here has been compared to a bookmaker.
How this is calculated →What drives it — Who referees the match. A strict official lifts every player on the pitch, which is the part most books price off a season average. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 1.5 | Model detail |
|---|---|---|---|---|---|
| Koni De WinterDEF | AC Milan | 81provisional | 1.36 | 39% | |
Projected distribution 027% 133% 223% 311% 44% 5 | |||||
| Ruben Loftus-CheekMID | AC Milan | 58provisional | 1.27 | 36% | |
Projected distribution 032% | |||||
| Matteo CancellieriFWD | Lazio | 62provisional | 1.25 | 35% | |
Projected distribution 031% | |||||
| Omari HutchinsonFWD | — | 74provisional | 1.06 | 29% | |
Projected distribution 036% | |||||
| Strahinja PavlovićDEF | AC Milan | 83provisional | 1.06 | 29% | |
Projected distribution 036% | |||||
| Pervis EstupiñánDEF | AC Milan | 61provisional | 1.04 | 28% | |
Projected distribution 039% | |||||
| Mattia ZaccagniFWD | Lazio | 81provisional | 1.02 | 27% | |
Projected distribution 037% | |||||
| Adrien RabiotMID | AC Milan | 59provisional | 1.01 | 27% | |
Projected distribution 040% | |||||
| Nicolò RovellaMID | Lazio | 75provisional | 0.99 | 26% | |
Projected distribution 038% | |||||
| Yunus MusahMID | AC Milan | 58provisional | 0.98 | 26% | |
Projected distribution 040% | |||||
10 of 43 players shown, ranked by projection. Show all 43 →
What drives it — Possession share. A tackle count depends far more on how much of the match is played at your own end than on a player’s own form. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 1.5 | Model detail |
|---|---|---|---|---|---|
| Nicolò RovellaMID | Lazio | 75provisional | 1.13 | 31% |
What drives it — The player’s own shot rate, shrunk toward others in his position, then adjusted for how many shots the opponent concedes. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 1.5 | Model detail |
|---|---|---|---|---|---|
| Andrea PinamontiFWD | Lazio | 65provisional | 1.81 | 51% |
What drives it — Shot volume first, conversion second — literally: the projection is the shots model thinned by the player’s own on-target rate, so a high-volume low-accuracy shooter and a sniper price differently at the same shot count. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 0.5 | Model detail |
|---|---|---|---|---|---|
| Andrea PinamontiFWD | Lazio | 65provisional | 0.64 |
What drives it — How much a player runs at defenders. Dribble volume drives this far more than the referee does. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 1.5 | Model detail |
|---|---|---|---|---|---|
| Mattia ZaccagniFWD | Lazio | 81provisional | 2.32 | 66% |
What drives it — Opponent shot volume. A keeper’s own record carries so little that this market shrinks harder than any other on the board. See what has actually happened.
| Player | Team | Exp. mins | Projected | Over 2.5 | Model detail |
|---|---|---|---|---|---|
| Mike MaignanGK | AC Milan | 88provisional | 3.19 | 59% |
1 of 7 markets have no projection for this fixture.
Form against the lines the books are pricing, what the opposition concede, and the referee against his league.
No angles on this fixture. An angle needs priced lines in the feed and a run long enough to be worth stating — most fixtures produce some once the books put player props up.
§5.1: the dominant covariate for fouls, and the reason two identical players price differently on different days.
0 matches on record
Fouls per game
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Cards per game
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Cards, home side
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Lazio
Cards, away side
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AC Milan
Fouls — every foul committed by both teams in a match he refereed, averaged over his completed matches. The match being previewed is never in it.
Cards — any card, yellow or red, both teams. The same definition the card props settle against, so this figure and the Cards market count the same events. A dismissal that the feed records as a second yellow counts as two.
Both league averages are the mean across every competition Per90 covers, not this fixture's league alone — the fouls comparison has always been that, and the cards comparison is built the same way so the two percentages beside each other mean the same thing.
What the numbers on this page are, and what they are not.
Not tips and not prices. Each row is the model's expected count for one player in this match — how many fouls, tackles or shots it thinks he records — plus the full spread of outcomes around it. Nothing in the projections has been compared to a bookmaker; that comparison is what the Value tab is.
Step 1
His own record
Every completed match in the dataset, as a rate per 90 minutes. The n column is how many matches that rests on.
Step 2
Pulled toward his position
A thin record gets pulled hard toward other players in his position, in his league — a goalkeeper toward goalkeepers, not toward the outfielders around him. How hard is fitted per market, not chosen: tackles pull about four times harder than shots on target.
Step 3
This fixture's conditions
How much of the stat the opponent concedes, what the referee’s matches look like, and home or away. This is where a projection stops being a season average.
Step 4
Scaled to expected minutes
A rate becomes a count only once you say how long he plays. 60 minutes carries two-thirds the exposure of 90, and the distribution is built at that exposure.
How to read each column
Counts are modelled as negative binomial rather than Poisson, because fouls and tackles are overdispersed and a Poisson would systematically underprice the tails — which is exactly where over bets live. Every market on this page cleared its calibration gate before it was allowed to produce a projection: when the model says 60%, it lands within a point or so of 60% out of sample.
Fouls v20260821-1755 · Tackles v20260821-1755 · Shots v20260821-1755 · Shots on target v20260821-1755 · Fouls won v20260821-1755 · Saves v20260816-1229
The full write-up — every gate, every fitted parameter and what the model refuses to price — is on the methodology page.
1 of 7 markets have no projection for this fixture. A market with no projection is a market the job could not fill, not one the page chose to hide.
Projected distribution 035% 134% 219% 38% 43% 51% 6+0% |
| Strahinja PavlovićDEF | AC Milan | 83provisional | 0.89 | 23% | |
Projected distribution 043% 134% 215% 35% 41% 5+0% | |||||
| Mario GilaDEF | AC Milan | 83provisional | 0.88 | 22% | |
Projected distribution 043% 134% 215% 35% 41% 5+0% | |||||
| Koni De WinterDEF | AC Milan | 81provisional | 0.82 | 20% | |
Projected distribution 047% 133% 214% 35% 41% 5+0% | |||||
| Nuno TavaresDEF | Lazio | 60provisional | 0.81 | 20% | |
Projected distribution 049% 131% 213% 35% 41% 50% 6+0% | |||||
| Mattia ZaccagniFWD | Lazio | 81provisional | 0.77 | 18% | |
Projected distribution 048% 134% 213% 34% 41% 5+0% | |||||
| Danilho DoekhiDEF | Lazio | 89provisional | 0.74 | 17% | |
Projected distribution 049% 134% 213% 34% 41% 5+0% | |||||
| Davide BartesaghiDEF | AC Milan | 64provisional | 0.71 | 17% | |
Projected distribution 052% 131% 212% 34% 41% 5+0% | |||||
| Matteo CancellieriFWD | Lazio | 62provisional | 0.71 | 17% | |
Projected distribution 051% 132% 212% 33% 41% 5+0% | |||||
| Reda BelahyaneMID | Lazio | 57provisional | 0.69 | 16% | |
Projected distribution 054% 130% 211% 34% 41% 5+0% | |||||
10 of 43 players shown, ranked by projection. Show all 43 →
Projected distribution 022% 127% 222% 314% 48% 54% 6+2% |
| Albert GudmundssonFWD | — | 67provisional | 1.49 | 43% | |
Projected distribution 026% 132% 223% 312% 45% 52% 6+1% | |||||
| Mattia ZaccagniFWD | Lazio | 81provisional | 1.47 | 43% | |
Projected distribution 024% 133% 224% 312% 45% 52% 6+1% | |||||
| Matteo CancellieriFWD | Lazio | 62provisional | 1.40 | 40% | |
Projected distribution 028% 132% 222% 311% 45% 52% 6+1% | |||||
| Gustav IsaksenFWD | Lazio | 45provisional | 1.34 | 37% | |
Projected distribution 031% 132% 220% 310% 44% 52% 6+1% | |||||
| Rafael LeãoFWD | AC Milan | 44provisional | 1.22 | 33% | |
Projected distribution 034% 133% 219% 39% 44% 51% 6+1% | |||||
| Samuel ChukwuezeFWD | AC Milan | 56provisional | 1.11 | 30% | |
Projected distribution 038% 132% 218% 38% 43% 51% 6+0% | |||||
| Danilho DoekhiDEF | Lazio | 89provisional | 1.08 | 29% | |
Projected distribution 035% 136% 219% 37% 42% 51% 6+0% | |||||
| Santiago GimenezFWD | AC Milan | 42provisional | 1.08 | 29% | |
Projected distribution 039% 133% 217% 37% 43% 51% 6+0% | |||||
| Davide FrattesiMID | Lazio | 41provisional | 1.06 | 28% | |
Projected distribution 041% 131% 215% 37% 43% 51% 6+1% | |||||
10 of 43 players shown, ranked by projection. Show all 43 →
Projected distribution 055% 131% 211% 33% 41% 5+0% |
| Matteo CancellieriFWD | Lazio | 62provisional | 0.56 | 42% | |
Projected distribution 058% 130% 29% 32% 4+0% | |||||
| Albert GudmundssonFWD | — | 67provisional | 0.55 | 41% | |
Projected distribution 059% 130% 29% 32% 4+0% | |||||
| Mattia ZaccagniFWD | Lazio | 81provisional | 0.55 | 42% | |
Projected distribution 058% 131% 29% 32% 4+0% | |||||
| Gustav IsaksenFWD | Lazio | 45provisional | 0.54 | 40% | |
Projected distribution 060% 129% 29% 32% 4+0% | |||||
| Rafael LeãoFWD | AC Milan | 44provisional | 0.50 | 38% | |
Projected distribution 062% 128% 28% 32% 4+0% | |||||
| Boulaye DiaFWD | Lazio | 63provisional | 0.41 | 33% | |
Projected distribution 067% 126% 26% 31% 4+0% | |||||
| PedroFWD | Lazio | 32provisional | 0.41 | 32% | |
Projected distribution 068% 125% 26% 31% 4+0% | |||||
| Santiago GimenezFWD | AC Milan | 42provisional | 0.40 | 32% | |
Projected distribution 068% 125% 26% 31% 4+0% | |||||
| Christian PulisicFWD | AC Milan | 35provisional | 0.38 | 30% | |
Projected distribution 070% 124% 25% 31% 4+0% | |||||
10 of 41 players shown, ranked by projection. Show all 41 →
Projected distribution 011% 123% 225% 319% 412% 56% 6+4% |
| Matteo CancellieriFWD | Lazio | 62provisional | 1.70 | 49% | |
Projected distribution 022% 129% 224% 314% 47% 53% 6+1% | |||||
| Gustav IsaksenFWD | Lazio | 45provisional | 1.27 | 35% | |
Projected distribution 032% 133% 220% 39% 44% 51% 6+1% | |||||
| Adrien RabiotMID | AC Milan | 59provisional | 1.14 | 31% | |
Projected distribution 038% 131% 218% 38% 43% 51% 6+1% | |||||
| Nicolò RovellaMID | Lazio | 75provisional | 1.12 | 31% | |
Projected distribution 034% 135% 220% 38% 43% 51% 6+0% | |||||
| Omari HutchinsonFWD | — | 74provisional | 1.12 | 31% | |
Projected distribution 035% 134% 219% 38% 43% 51% 6+0% | |||||
| Alexis SaelemaekersMID | AC Milan | 53provisional | 1.00 | 26% | |
Projected distribution 041% 132% 216% 37% 42% 51% 6+0% | |||||
| Yunus MusahMID | AC Milan | 58provisional | 0.97 | 26% | |
Projected distribution 042% 133% 216% 36% 42% 51% 6+0% | |||||
| Ruben Loftus-CheekMID | AC Milan | 58provisional | 0.94 | 25% | |
Projected distribution 043% 133% 216% 36% 42% 50% 6+0% | |||||
| Albert GudmundssonFWD | — | 67provisional | 0.92 | 24% | |
Projected distribution 042% 134% 216% 36% 42% 5+0% | |||||
10 of 43 players shown, ranked by projection. Show all 43 →
Projected distribution 06% 115% 220% 320% 416% 511% 6+13% |
| Christos MandasGK | Lazio | 86provisional | 2.25 | 39% | |
Fewer than 30 matches. §6.3 will not publish an edge on this player, and his own rate is heavily outweighed by his position group here. Projected distribution 013% 124% 225% 318% 411% 55% 6+4% | |||||