fen
stringlengths
24
78
line
stringlengths
4
59
depth
int64
1
245
knodes
int64
0
532M
cp
int64
-20,000
20k
mate
int64
-122
96
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
f7g7 e6e2 h8d8 e2d2 b7b5 c4e6 g7f6 e6b3 a6a5 a2a3
39
200,973
58
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
f7g7 e6e2 b7b5 c4b3 h8d8 e2d2 a6a5 a2a3 g7f6 d1e1
32
71,927
62
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8d8 d1e1 a6a5 a2a3 b7b5 c4a2 c6d7 e6e7 f7g6 e1f2
32
71,927
151
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
f7g7 e6e2 g7g6 d1c2 h8d8 e2d2 g6f6 a2a3 b7b5 c4a2
31
59,730
64
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8d8 d1e1 a6a5 a2a3 b7b5 c4b3 a5a4 b3a2 c6d7 e6h6
31
59,730
134
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8f8 d1e2 f8d8 e2f2 b7b5 c4b3 a6a5 a2a3 c6d7 e6h6
31
59,730
152
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
f7g7 e6e2 b7b5 c4b3 h8d8 e2d2 a6a5 a2a3 g7f6 b3a2
28
148,627
81
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8d8 d1e1 c6d7 e6e7 f7f6 e1f2 a6a5 a2a3 b7b5 c4a2
28
148,627
155
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8f8 d1e1 b7b5 c4b3 a6a5 a2a3 f8d8 e1f2 c6d7 e6e7
28
148,627
175
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8b8 d1e1 b7b5 c4b3 b8d8 d6d7 c6d7 e6a6 f7e7 a6h6
28
148,627
222
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
f7g7 e6e2 h8d8 e2d2 b7b5 c4b3 a6a5 a2a3 g7f6 d1e1
26
255,389
83
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8d8 d1e1 b7b5 c4b3 f7g7 e1f2 a6a5 a2a3 c6d7 e6e7
26
255,389
160
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8f8 d1e1 a6a5 a2a3 f8d8 e1f2 b7b5 c4b3 c6d7 e6h6
26
255,389
195
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8a8 d1e1 b7b5 c4b3 a8d8 d6d7 c6d7 e6a6 f7e7 a6h6
26
255,389
229
null
7r/1p3k2/p1bPR3/5p2/2B2P1p/8/PP4P1/3K4 b - -
h8b8 d1e1 b7b5 c4b3 b8f8 d6d7 c6d7 e6a6 f7e7 a6h6
26
255,389
232
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7a7 f2e3 a7a3 e3e4 a3a2 h2h4 g5h4 g3h4 a2h2 c6c1
58
491,568
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7b7 f2e3 b7b3 e3e4 b3b2 h2h4 g5h4 g3h4 b2h2 c6c1
58
491,568
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7e4 h2h4 g5h4 g3h4 e4d4 f2g3 d4g4 g3h3 g4a4 c6c8
57
1,176,702
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
g6f5 c6c5 f5e4 h2h4 e4d4 c5f5 e7e5 f5f6 g5g4 f6d6
57
1,176,702
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7a7 f2e3 a7a1 c6c2 g6f5 e3d3 a1d1 d3e3 d1e1 e3d3
57
1,176,702
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7b7 f2e3 b7b1 c6c2 g6f5 c2f2 f5e6 e3d3 b1a1 d3c4
57
1,176,702
0
null
8/4r3/2R2pk1/6pp/3P4/6P1/5K1P/8 b - -
e7d7 f2e3 d7e7 e3d3 e7e1 c6c2 e1d1 c2d2 d1d2 d3d2
57
1,176,702
0
null
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4d6 g8h7 e5f5 g7g5 f4h5 h7h6 h5g3 h6g7 f5e6 g7f8
87
4,300,494
null
18
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4g5 g8f8 f4g6 f8e8 e5d6 e8d8 g6e7 g7g6 e7c6 d8c8
59
265,367
null
20
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
f4g6 g8f7 e5f5 f7e8 f5e6 e8d8 e6d6 d8c8 d6c6 c8d8
59
265,367
null
24
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e5e6 g7g5 f4h5 g8f8 e4d6 g5g4 h5g3 f8g8 e6f5 g8g7
50
92,299
null
16
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4d6 g8h7 e5e6 g7g5 f4h5 h7h6 h5g3 h6g7 e6e7 g7g6
50
92,299
null
18
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4g5 g8f8 f4g6 f8e8 e5d6 e8d8 g6e7 g7g6 e7c6 d8c8
50
92,299
null
20
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e5e6 g8f8 e4d6 f8g8 e6f5 g7g5 f4h5 g5g4 h5g3 g8g7
41
53,922
null
16
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4d6 g8h7 e5f5 g7g5 f4h5 h7h6 h5g3 h6g7 f5e6 g7f8
41
53,922
null
18
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
e4g5 g8f8 e5d6 f8e8 f4d5 e8d8 d5e7 g7g6 e7c6 d8c8
41
53,922
null
20
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
f4g6 g8f7 e5f5 f7e8 f5e6 e8d8 e6d6 d8c8 d6c6 c8d8
41
53,922
null
24
6k1/6p1/8/4K3/4NN2/8/8/8 w - -
f4d5 g8f7 e4g5 f7g6 e5f4 g6h6 f4f5 h6h5 d5f4 h5h4
41
53,922
null
38
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
c1e3 f8d8 a1c1 d6d5 c4d5 e6d5 e4d5 e7a3 b2a3 f6d5
25
77,779
24
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
f1e1 c8d7 c1d2 a5c7 d2e3 c6e5 a1c1 c7b8 e2f1 f8c8
25
77,779
23
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
h2h3 f8d8 c1e3 d6d5 e4d5 e6d5 c3d5 f6d5 c4d5 d8d5
25
77,779
10
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
f1e1 h7h6 c1d2 a5c7 a1c1 c6e5 f2f4 e5g6 d2e3 b7b6
22
38,871
35
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
c1e3 f8d8 d1b3 f6d7 b3c2 e7f6 a1d1 f6c3 c2c3 a5c3
22
38,871
28
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
h2h3 f8d8 c1e3 h7h6 a1c1 d6d5 e4d5 e6d5 c3d5 e7a3
22
38,871
23
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
d1e1 f8d8 c1e3 d6d5 c4d5 e6d5 e4d5 e7a3 b2a3 f6d5
22
38,871
15
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
f1e1 c8d7 c1d2 a5c7 a1c1 a8c8 a3c2 c7b8 b2b3 e7d8
21
25,424
28
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
c1e3 f8d8 d1b3 f6d7 b3c2 a8b8 a3b1 e7g5 f2f4 g5f6
21
25,424
28
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
a3c2 f8d8 a2a3 a5c7 c1f4 b7b6 c2e3 c8b7 f4g3 c6e5
21
25,424
28
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
d1d3 c8d7 c1e3 c6b4 d3d2 f8d8 e2f3 d7e8 f1d1 a8c8
21
25,424
19
null
r1b2rk1/1p2bppp/p1nppn2/q7/2P1P3/N1N5/PP2BPPP/R1BQ1RK1 w - -
d1d2 c8d7 f1d1 c6b4 b2b3 h7h6 e2f3 f8d8 c1b2 d7e8
21
25,424
17
null
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7e8
99
154
null
1
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7e8
41
265,478
null
1
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
g1f1 g7g6 f1e2 g8f8 e7a7 f8g7 e2f3 g6g5 f3e4 g7g6
41
265,478
null
43
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7e8
40
310,731
null
1
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
g1f1 g8f8 e7c7 g7g6 f1e2 f8g7 e2f3 g7f6 f3e4 f6e6
40
310,731
null
44
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7c7 h7h6 g1f1 g7g6 f1e2 g8g7 e2e3 g7f6 e3e4 f6e6
40
310,731
null
48
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7e8
25
86,239
null
1
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
g1f1 g7g5 e7c7 g8g7 f1e2 g7g6 e2e3 f7f5 c7c6 g6f7
25
86,239
844
null
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
e7c7 g7g5 g1f1 h7h6 f1e2 f7f5 e2e3 g8f8 h2h3 f8e8
25
86,239
838
null
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
h2h3 g7g5 g1f1 g8g7 f1e2 g7f6 e7e8 f6f5 e2f3 h7h5
25
86,239
801
null
6k1/4Rppp/8/8/8/8/5PPP/6K1 w - -
f2f3 g7g6 e7e8 g8g7 g1f2 g7f6 f2e3 f6f5 e8a8 f5e5
25
86,239
796
null
6k1/6p1/6N1/4K3/4N3/8/8/8 b - -
g8h7 e5f5 h7h6 e4g3 h6h7 f5g5 h7g8 g3e4 g8f7 g5f5
62
64,636
null
27
6k1/6p1/6N1/4K3/4N3/8/8/8 b - -
g8h7 e5f5 h7h6 e4g3 h6h7 f5g5 h7g8 g3e4 g8f7 g5f5
41
748
null
27
6k1/6p1/6N1/4K3/4N3/8/8/8 b - -
g8f7 e5f5 f7e8 f5e6 e8d8 e6d6 d8c8 e4c5 c8d8 c5e6
41
748
null
23
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
d2d4 g8f6 c2c4 e7e6 g1f3 d7d5 b1c3 f8e7 c1f4 e8g8
64
172,990,722
19
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
e2e4 e7e5 g1f3 b8c6 f1b5 g8f6 e1g1 f6e4 f1e1 e4d6
64
172,990,722
18
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
c2c4 g8f6 g1f3 e7e6 d2d4 d7d5 b1c3 f8e7 c1f4 e8g8
64
172,990,722
18
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
c2c4 e7e5 g2g3 c7c6 g1f3 e5e4 f3d4 d7d5 c4d5 d8d5
61
99,296,225
19
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g1f3 d7d5 d2d4 e7e6 g2g3 c7c5 f1g2 c5d4 f3d4 g8f6
61
99,296,225
17
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
e2e4 e7e5 g1f3 b8c6 f1b5 g8f6 e1h1 f6e4 f1e1 e4d6
61
99,296,225
14
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
d2d4 g8f6 g1f3 e7e6 c2c4 d7d5 b1c3 f8b4 c1g5 h7h6
61
99,296,225
14
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g2g3 c7c5 f1g2 b8c6 c2c4 g7g6 b1c3 f8g7 a1b1 e7e6
61
99,296,225
12
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g1f3 g8f6 d2d4 d7d5 c2c4 c7c6 b1c3 e7e6 c1g5 f8e7
32
868,552
36
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
d2d4 g8f6 c2c4 e7e6 g2g3 f8b4 c1d2 b4e7 f1g2 d7d5
32
868,552
29
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
c2c4 e7e5 g2g3 g8f6 f1g2 d7d5 c4d5 f6d5 b1c3 d5b6
32
868,552
24
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g2g3 d7d5 g1f3 g8f6 f1g2 c7c5 e1h1 e7e6 c2c4 d5d4
32
868,552
21
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
e2e4 e7e5 g1f3 b8c6 f1c4 f8c5 e1h1 g8f6 d2d3 d7d6
32
868,552
18
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
e2e3 d7d5 d2d4 g8f6 g1f3 e7e6 b2b3 c7c5 c1b2 b8c6
32
868,552
12
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
c2c3 d7d5 d2d4 g8f6 g1f3 c7c5 c1f4 d8b6 d1c2 b8c6
32
868,552
3
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
b1c3 d7d5 d2d4 g8f6 c1f4 g7g6 e2e3 f8g7 c3b5 b8a6
32
868,552
0
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
b2b3 e7e5 c1b2 b8c6 e2e3 g8f6 g1f3 e5e4 f3d4 f8c5
32
868,552
-2
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
a2a3 c7c5 c2c3 e7e6 d2d4 d7d5 c1f4 f8d6 f4g3 g8f6
32
868,552
-4
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
h2h3 e7e5 e2e4 g8f6 b1c3 d7d5 e4d5 f6d5 f1c4 c8e6
32
868,552
-6
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
d2d3 d7d5 g1f3 g8f6 g2g3 c7c5 c2c4 d5c4 d1a4 c8d7
32
868,552
-10
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
a2a4 g8f6 d2d4 e7e6 e2e3 c7c5 g1f3 b8c6 f1d3 b7b6
32
868,552
-19
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
b2b4 e7e5 c1b2 f8b4 b2e5 g8f6 c2c3 b4e7 e2e3 e8h8
32
868,552
-20
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
f2f4 g8f6 g1f3 d7d5 e2e3 c7c5 f1b5 c8d7 d1e2 g7g6
32
868,552
-25
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
h2h4 d7d5 d2d4 g8f6 c2c4 c7c5 e2e3 c5d4 e3d4 c8g4
32
868,552
-31
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g1h3 d7d5 d2d4 g8f6 h3g5 c7c5 e2e3 b8c6 g5f3 d8c7
32
868,552
-46
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
b1a3 e7e5 a3c4 e5e4 d2d3 d7d5 c4e3 d5d4 e3c4 g8f6
32
868,552
-52
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
f2f3 e7e5 e2e3 d7d5 d2d4 b8c6 b1c3 g8f6 f1b5 f8d6
32
868,552
-55
null
rnbqkbnr/pppppppp/8/8/8/8/PPPPPPPP/RNBQKBNR w KQkq -
g2g4 d7d5 g4g5 e7e5 f1g2 b8c6 d2d4 e5d4 g1f3 f8b4
32
868,552
-97
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
b4b3 a2a3 f6e6 a3b3 e6d5 b3c3 d5c6 c3d4 e4e3 d4e3
54
28,336
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6e6 c6b4 e6d7 b4c2 d7d8 a2a3 d8c7 a3b4 c7c6 b4c4
46
101,108
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
e4e3 c6b4 e3e2 b4c2 f6e5 a2a3 e5e4 a3b4 e4d5 b4c3
46
101,108
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6f5 c6b4 f5g4 b4c2 g4f3 a2a3 f3f4 a3b4 f4g5 b4c4
46
101,108
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6f5 c6b4 e4e3 b4c2 f5e4 a2a3 e4d3 c2e3 d3e3 a3b4
38
8,770
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
b4b3 a2b3 e4e3 c6d4 f6e5 d4c2 e5e4 b3a3 e4d3 c2e3
38
8,770
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
e4e3 c6b4 f6e5 a2a3 e5d4 b4c2 d4d3 c2e3 d3e3 a3b4
38
8,770
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6g5 c6b4 g5f4 b4c2 f4f3 a2a3 f3e2 c2b4 e2e1 b4d5
38
8,770
0
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
b4b3 a2b3 f6g5 c6d4 g5g4 b3a3 e4e3 a3b3 g4f4 d4c2
22
1,488
-7
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
e4e3 c6b4 e3e2 b4c2 f6e7 a2a3 e7f8 a3b4 f8g8 b4c3
22
1,488
-6
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6g7 c6b4 g7g6 a2a3 g6f6 b4c2 f6e5 a3b4 e5d5 b4c3
22
1,488
-6
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6f5 c6b4 f5e5 b4c2 e5d5 a2a3 d5c5 a3b3 c5b5 c2e3
22
1,488
-6
null
8/8/2N2k2/8/1p2p3/p7/K7/8 b - -
f6g5 c6b4 g5h5 a2a3 h5g6 b4d5 g6h6 a3b4 h6h5 b4b3
22
1,488
-3
null

Dataset Card for the Lichess Evaluations dataset

Dataset Description

114,408,152 chess positions evaluated with Stockfish at various depths and node count. Produced by, and for, the Lichess analysis board, running various flavours of Stockfish within user browsers. This version of the dataset is a de-normalized version of the original dataset and contains 315,084,241 rows.

This dataset is updated monthly, and was last updated on November 4th, 2024.

Dataset Creation

from datasets import load_dataset

dset = load_dataset("json", data_files="lichess_db_eval.jsonl", split="train")

def batch_explode_rows(batch):
    exploded = {"fen": [], "line": [], "depth": [], "knodes": [], "cp": [], "mate": []}
    for fen, evals in zip(batch["fen"], batch["evals"]):
        for eval_ in evals:
            for pv in eval_["pvs"]:
                exploded["fen"].append(fen)
                exploded["line"].append(pv["line"])
                exploded["depth"].append(eval_["depth"])
                exploded["knodes"].append(eval_["knodes"])
                exploded["cp"].append(pv["cp"])
                exploded["mate"].append(pv["mate"])
    return exploded

dset = dset.map(batch_explode_rows, batched=True, batch_size=64, num_proc=12, remove_columns=dset.column_names)

dset.push_to_hub("Lichess/chess-evaluations")

Dataset Usage

Using the datasets library:

from datasets import load_dataset
dset = load_dataset("Lichess/chess-evaluations", split="train")

Dataset Details

Dataset Sample

One row of the dataset looks like this:

{
  "fen": "2bq1rk1/pr3ppn/1p2p3/7P/2pP1B1P/2P5/PPQ2PB1/R3R1K1 w - -",
  "line": "g2e4 f7f5 e4b7 c8b7 f2f3 b7f3 e1e6 d8h4 c2h2 h4g4",
  "depth": 36,
  "knodes": 206765,
  "cp": 311,
  "mate": None
}

Dataset Fields

Every row of the dataset contains the following fields:

  • fen: string, the position FEN only contains pieces, active color, castling rights, and en passant square.
  • line: string, the principal variation, in UCI format.
  • depth: string, the depth reached by the engine.
  • knodes: int, the number of kilo-nodes searched by the engine.
  • cp: int, the position's centipawn evaluation. This is None if mate is certain.
  • mate: int, the position's mate evaluation. This is None if mate is not certain.
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