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  World Championship Div III 2015 @ Turkey

# Team GP W OTW OTL L GF GA Diff Pts Pts/G W% ØGF ØGA
1. North Korea 6 5 1 0 0 50 9 +41 17 2.83 100% 8.17 1.50
2. Turkey 6 5 0 1 0 59 11 +48 16 2.67 83% 9.83 1.67
3. Luxembourg 6 4 0 0 2 39 19 +20 12 2.00 67% 6.50 3.17
4. Hong Kong 6 3 0 0 3 30 30 0 9 1.50 50% 5.00 5.00
5. Georgia 6 1 1 0 4 20 56 -36 5 0.83 33% 3.17 9.33
6. United Arab Emirates 6 1 0 1 4 14 44 -30 4 0.67 17% 2.33 7.17
7. Bosnia & Herzegovina 6 0 0 0 6 3 46 -43 0 0.00 0% 0.50 7.67


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Sunday 12. April 2015
   
World Championship Div III2015 Odds 1x2
Turkey    3 - 4 ot North Korea
Luxembourg    5 - 2    Hong Kong
United Arab Emirates    4 - 5 pen Georgia
   
Friday 10. April 2015
   
Hong Kong    0 - 9    North Korea
Luxembourg    5 - 7    Turkey
Bosnia & Herzegovina    2 - 5    United Arab Emirates
   
Thursday 9. April 2015
   
North Korea    5 - 2    Luxembourg
Turkey    10 - 1    Hong Kong
Georgia    4 - 1    Bosnia & Herzegovina
   
Tuesday 7. April 2015
   
United Arab Emirates    0 - 15    Turkey
Georgia    3 - 11    Hong Kong
Bosnia & Herzegovina    0 - 5    Luxembourg
   
Monday 6. April 2015
   
Turkey    13 - 1    Georgia
North Korea    7 - 0    United Arab Emirates
Hong Kong    8 - 0    Bosnia & Herzegovina
   
Saturday 4. April 2015
   
Turkey    11 - 0    Bosnia & Herzegovina
United Arab Emirates    2 - 7    Luxembourg
Georgia    4 - 12    North Korea
   
Friday 3. April 2015
   
Hong Kong    8 - 3    United Arab Emirates
Luxembourg    15 - 3    Georgia
North Korea    13 - 0    Bosnia & Herzegovina

More Results


April 2015

Bosnia & Herzegovi
Georgia
Hong Kong
Luxembourg
North Korea
Turkey
United Arab Emirat


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2023
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2019
2018
2017
2016
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2009


Official Site

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# Team GP W OTW OTL L GF GA Diff Pts Pts/G W% ØGF ØGA
1. North Korea 6 5 1 0 0 50 9 +41 17 2.83 100% 8.17 1.50
2. Turkey 6 5 0 1 0 59 11 +48 16 2.67 83% 9.83 1.67
3. Luxembourg 6 4 0 0 2 39 19 +20 12 2.00 67% 6.50 3.17
4. Hong Kong 6 3 0 0 3 30 30 0 9 1.50 50% 5.00 5.00
5. Georgia 6 1 1 0 4 20 56 -36 5 0.83 33% 3.17 9.33
6. United Arab Emirates 6 1 0 1 4 14 44 -30 4 0.67 17% 2.33 7.17
7. Bosnia & Herzegovina 6 0 0 0 6 3 46 -43 0 0.00 0% 0.50 7.67

-
Season Games 1 x 2  ¦  1 2  ¦  Over 5.5 Under 5.5 Over 4.5 Under 4.5 Home Advantage
2024Group Stage30 46.7% 6.7% 46.7%  ¦  46.7% 53.3%  ¦  93.3% 6.7% 96.7% 3.3% -6.7%
2023Group Stage25 40.0% 8.0% 52.0%  ¦  48.0% 52.0%  ¦  88.0% 12.0% 92.0% 8.0% -4.0%
2022Group Stage16 50.0% 12.5% 37.5%  ¦  56.3% 43.8%  ¦  100.0% 0.0% 100.0% 0.0% 12.5%
2019Group Stage30 46.7% 6.7% 46.7%  ¦  46.7% 53.3%  ¦  93.3% 6.7% 96.7% 3.3% -6.7%
2018Group Stage21 52.4% 4.8% 42.9%  ¦  52.4% 47.6%  ¦  90.5% 9.5% 90.5% 9.5% 4.8%
2017Group Stage9 44.4% 0.0% 55.6%  ¦  44.4% 55.6%  ¦  77.8% 22.2% 77.8% 22.2% -11.1%
2017Place Match6 83.3% 0.0% 16.7%  ¦  83.3% 16.7%  ¦  83.3% 16.7% 83.3% 16.7% 66.7%
2016Regular Season15 60.0% 0.0% 40.0%  ¦  60.0% 40.0%  ¦  86.7% 13.3% 100.0% 0.0% 20.0%
2015Regular Season21 52.4% 9.5% 38.1%  ¦  52.4% 47.6%  ¦  90.5% 9.5% 100.0% 0.0% 4.8%
2014Regular Season15 60.0% 6.7% 33.3%  ¦  66.7% 33.3%  ¦  86.7% 13.3% 93.3% 6.7% 33.3%
2013Regular Season15 60.0% 0.0% 40.0%  ¦  60.0% 40.0%  ¦  73.3% 26.7% 93.3% 6.7% 20.0%
2012Regular Season9 55.6% 0.0% 44.4%  ¦  55.6% 44.4%  ¦  77.8% 22.2% 100.0% 0.0% 11.1%
2011Regular Season10 50.0% 10.0% 40.0%  ¦  50.0% 50.0%  ¦  100.0% 0.0% 100.0% 0.0% 0.0%
2010Group Stage14 50.0% 0.0% 50.0%  ¦  50.0% 50.0%  ¦  78.6% 21.4% 85.7% 14.3% 0.0%
2009Regular Season10 40.0% 10.0% 50.0%  ¦  50.0% 50.0%  ¦  100.0% 0.0% 100.0% 0.0% 0.0%

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Mouseover percentages (%) to see value odds

AnnaBet Power Ratings

Updated 2025-03-24 11:50:47
#Team Rating
1. United Arab Emirates 1095
2. Hong Kong 1025
3. Bosnia & Herzegovina 969
4. North Korea 942
5. Georgia 925
6. Turkey 774
7. Luxembourg 734


Our ratings are currently calculated from games played after 1.1.2000

In football our ratings are similar to World Football Elo Ratings but we have tuned up the formula. For example when goal difference is low or game is tied and we have shots on goal statistics available for the game, we’ll then analyze the shots ratio to have some effect on the ratings. For example if a game was tied 1-1 but home team outshoot away team by 10-2 you might say the home team was the better team despite the result.

In ice hockey the ratings are similar but we have taken account the higher number of goals scored and “home” team (first mentioned team) line change advantage. For example if ice hockey game Sweden – Finland was played at Finland but Sweden had the line change advantage it is then taken account when calculating ratings.

Some examples how ratings are adjusted after each game

In the beginning each team has starting rating of 1000 points. After each game played the sum of points change is 0: if home team gets +20 points then away team gets -20 pts deducted. Amount is always based on the weight/importance of the tournament: in friendlies teams get much less points than in World Cup finals.

Two equal teams meet: winner gets some decent points and loser looses the same amount. Example +20 / -20.
Heavy favorite (much higher rating) wins by few goals: gets only few points because it was very expected result. Your points rises very slowly by beating much poorer teams than you. Example +3 / -3.
Heavy favorite ties a game: favorite loses small amount of points because it was expected that the team should win, the opponent get some points. Example -3 / +3 points.
Heavy favorite loses a game: loses lots of rating points, winner gets lots of points. Example -40 / +40.

Sample Winning Expectancies

Difference
in Ratings
Higher
Rated
Lower
Rated
0 0.500 0.500
10 0.514 0.486
20 0.529 0.471
30 0.543 0.457
40 0.557 0.443
50 0.571 0.429
60 0.585 0.415
70 0.599 0.401
80 0.613 0.387
90 0.627 0.373
100 0.640 0.360
110 0.653 0.347
120 0.666 0.334
130 0.679 0.321
140 0.691 0.309
150 0.703 0.297
160 0.715 0.285
170 0.727 0.273
180 0.738 0.262
190 0.749 0.251
200 0.760 0.240

Table by Eloratings.net

Why are Power Ratings better than winning percentage or league table?

Let’s say we have 2 teams whose performance we are analyzing: Finland and Sweden. Both teams have played 8 games and Finland has 6 wins and 2 losses, Sweden 5 wins and 3 losses. You might say Finland is the better team based on that info? What if Finland has won 4 games against poor teams, 2 against mediocre and lost 2 against better teams. Sweden on the other hand had win 3 games against better teams, 2 against mediocre and then 3 narrow losses against mediocre teams. Putting it that way, you might not believe Finland should be a favorite here after all. Would our Power Ratings tell you the exactly same thing:

Finland starting rating 1000:

1. game 4-0 win against poor team +10 pts (1010)
2. game 3-1 win against poor team +6 pts (1016)
3. game 0-2 loss against better team -10 pts (1006)
4. game 4-3 win against mediocre team +15 pts (1021)
5. game 5-3 win against mediocre team +18 pts (1039)
6. game 3-5 loss against better team -10 pts (1029)
7. game 2-0 win against poor team +6 pts (1035)
8. game 5-2 win against poor team +8 pts (1043)
Current rating 1043

Sweden starting rating 1000:

1. game 3-2 win against better team +25 pts (1025)
2. game 2-3 loss against mediocre team -12 pts (1013)
3. game 4-2 win against better team +30 pts (1043)
4. game 3-0 win against mediocre team +20 pts (1063)
5. game 3-5 loss against mediocre team -15 pts (1048)
6. game 3-4 loss against mediocre team -12 pts (1036)
7. game 4-1 win against better team +35 pts (1071)
8. game 3-1 win against mediocre team +16 pts (1087)
Current rating 1087

These are just rough examples for you to get the idea.

Finland vs Sweden Power Ratings: 1043 – 1087, ratings difference 44 and by looking at the table above you can see that this game should be about Finland 46% winning chance and Sweden 54%. Note that home advantage is usually about 100 points so 46%-54% would be only at neutral venue.

It is not always about how many games you have won but rather which teams and by how many goals that tells more about your true Power. But still remember these are only computer calculated estimations and does not take account real world situations like injuries, weather etc. Also note Power Ratings being much less accurate when teams have a big difference between number of games played and/or quality/diversity of tournaments where they have played.

For example in ice hockey USA and Canada plays only few friendly matches before major tournaments and European teams plays a lots of smaller tournaments - and also playing many games against couple of selected opponents only. Smaller tournaments and friendly matches makes of course smaller changes to Power Ratings than major tournaments but when you play a lot of smaller games it can add up.


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