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[Grayscale] Boundary Detection Benchmark: Algorithm "Texture Gradient"

This algorithm uses local texture gradients to detect boundaries. A logistic is used to model the posterior probability of a boundary. The texture gradient is computed as the chi-squared difference in the distribution of textons in two half discs centered at a pixel and divided in half at the putative boundary orientation. Textons are computed by clustering filterbank responses using k-means, so that they model the joint distribution of filter responses. The filters are standard even- and odd-symmetric quadrature pair elongated linear filters. See our NIPS and PAMI papers in the Grouping area of the Berkeley Vision Group web pages for additional details.

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#1 (119082) F=0.63
#2 (170057) F=0.62
#3 (58060) F=0.49
#4 (163085) F=0.48
#5 (42049) F=0.86
#6 (167062) F=0.64
#7 (157055) F=0.65
#8 (295087) F=0.73
#9 (24077) F=0.66
#10 (78004) F=0.70
#11 (220075) F=0.58
#12 (45096) F=0.68
#13 (38092) F=0.67
#14 (43074) F=0.53
#15 (16077) F=0.55
#16 (86000) F=0.62
#17 (101085) F=0.67
#18 (219090) F=0.71
#19 (89072) F=0.62
#20 (300091) F=0.60
#21 (126007) F=0.66
#22 (156065) F=0.55
#23 (76053) F=0.51
#24 (296007) F=0.58
#25 (175032) F=0.49
#26 (253027) F=0.70
#27 (304034) F=0.37
#28 (86016) F=0.47
#29 (103070) F=0.63
#30 (8023) F=0.37
#31 (260058) F=0.57
#32 (41033) F=0.52
#33 (291000) F=0.52
#34 (109053) F=0.58
#35 (130026) F=0.46
#36 (241004) F=0.72
#37 (108082) F=0.47
#38 (285079) F=0.66
#39 (147091) F=0.65
#40 (69040) F=0.46
#41 (14037) F=0.58
#42 (54082) F=0.57
#43 (189080) F=0.70
#44 (229036) F=0.60
#45 (62096) F=0.73
#46 (271035) F=0.62
#47 (167083) F=0.62
#48 (12084) F=0.43
#49 (69015) F=0.69
#50 (148089) F=0.62
#51 (160068) F=0.83
#52 (145086) F=0.62
#53 (216081) F=0.69
#54 (97033) F=0.62
#55 (182053) F=0.64
#56 (208001) F=0.65
#57 (19021) F=0.58
#58 (227092) F=0.71
#59 (134035) F=0.68
#60 (223061) F=0.71
#61 (253055) F=0.63
#62 (148026) F=0.53
#63 (210088) F=0.66
#64 (86068) F=0.48
#65 (3096) F=0.88
#66 (41069) F=0.60
#67 (21077) F=0.64
#68 (196073) F=0.69
#69 (108070) F=0.44
#70 (123074) F=0.55
#71 (376043) F=0.51
#72 (306005) F=0.65
#73 (38082) F=0.52
#74 (33039) F=0.52
#75 (108005) F=0.54
#76 (106024) F=0.66
#77 (302008) F=0.70
#78 (102061) F=0.51
#79 (197017) F=0.70
#80 (299086) F=0.68
#81 (37073) F=0.65
#82 (241048) F=0.63
#83 (65033) F=0.63
#84 (55073) F=0.49
#85 (66053) F=0.65
#86 (143090) F=0.57
#87 (85048) F=0.65
#88 (42012) F=0.53
#89 (351093) F=0.63
#90 (361010) F=0.70
#91 (175043) F=0.47
#92 (87046) F=0.59
#93 (105025) F=0.61
#94 (236037) F=0.47
#95 (101087) F=0.69
#96 (304074) F=0.59
#97 (296059) F=0.80
#98 (159008) F=0.54
#99 (385039) F=0.70
#100 (69020) F=0.56

Page generated on 20-Feb-2013 11:08:21.