This table lists the benchmark results for the high-res multi-view scenario. The following metrics are evaluated:

(*) For exact definitions, detailing how potentially incomplete ground truth is taken into account, see our paper.

The datasets are grouped into different categories, and result averages are computed for a category and method if results of the method are available for all datasets within the category. Note that the category "all" includes both the high-res multi-view and the low-res many-view scenarios.

Methods with suffix _ROB may participate in the Robust Vision Challenge.

Click a dataset result cell to show a visualization of the reconstruction. For training datasets, ground truth and accuracy / completeness visualizations are also available. The visualizations may not work with mobile browsers.




Method Infoallhigh-res
multi-view
indooroutdoorcourty.delive.electrofacadekickermeadowofficepipesplaygr.reliefrelief.terraceterrai.
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SMA-MVS87.48 390.13 484.39 591.76 290.70 590.63 475.36 990.51 379.89 1085.65 1588.82 477.90 1490.00 189.77 190.82 795.49 1
CNVR-MVS86.36 1088.19 1384.23 791.33 589.84 1090.34 775.56 687.36 1478.97 1381.19 2486.76 1278.74 789.30 388.58 290.45 2294.33 6
SteuartSystems-ACMMP85.99 1288.31 1283.27 1790.73 889.84 1090.27 974.31 1184.56 2675.88 2587.32 1085.04 1977.31 2089.01 488.46 391.14 393.96 8
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ACMMP_Plus86.52 989.01 783.62 1390.28 1590.09 990.32 874.05 1688.32 1079.74 1187.04 1185.59 1876.97 2589.35 288.44 490.35 2594.27 7
HPM-MVS++copyleft87.09 588.92 984.95 392.61 187.91 3590.23 1076.06 388.85 881.20 487.33 987.93 879.47 688.59 688.23 590.15 2993.60 16
DeepC-MVS78.47 284.81 2286.03 2583.37 1589.29 2790.38 788.61 2276.50 286.25 1977.22 2075.12 3580.28 3977.59 1888.39 788.17 691.02 593.66 14
Andreas Kuhn, Christian Sormann, Mattia Rossi, Oliver Erdler, Friedrich Fraundorfer: DeepC-MVS: Deep Confidence Prediction for Multi-View Stereo Reconstruction. 3DV 2020
DeepPCF-MVS79.04 185.30 1788.93 881.06 2788.77 3090.48 685.46 4173.08 2390.97 273.77 3284.81 1885.95 1577.43 1988.22 887.73 787.85 6794.34 5
NCCC85.34 1686.59 2183.88 1291.48 488.88 2189.79 1275.54 786.67 1777.94 1976.55 3184.99 2078.07 1288.04 987.68 890.46 2193.31 17
ESAPD88.46 191.07 185.41 191.73 392.08 191.91 276.73 190.14 480.33 892.75 190.44 180.73 388.97 587.63 991.01 695.48 2
DeepC-MVS_fast78.24 384.27 2585.50 2782.85 1990.46 1489.24 1787.83 2874.24 1384.88 2276.23 2375.26 3481.05 3777.62 1788.02 1087.62 1090.69 1292.41 24
Andreas Kuhn, Christian Sormann, Mattia Rossi, Oliver Erdler, Friedrich Fraundorfer: DeepC-MVS: Deep Confidence Prediction for Multi-View Stereo Reconstruction. 3DV 2020
zzz-MVS85.71 1386.88 1984.34 690.54 1387.11 3989.77 1374.17 1488.54 983.08 278.60 2886.10 1478.11 1187.80 1487.46 1190.35 2592.56 22
ACMMPR85.52 1487.53 1683.17 1890.13 1689.27 1689.30 1673.97 1786.89 1677.14 2186.09 1383.18 2777.74 1687.42 1787.20 1290.77 992.63 21
HFP-MVS86.15 1187.95 1484.06 1090.80 789.20 1989.62 1574.26 1287.52 1180.63 686.82 1284.19 2478.22 1087.58 1587.19 1390.81 893.13 20
MP-MVScopyleft85.50 1587.40 1783.28 1690.65 1089.51 1589.16 1974.11 1583.70 2978.06 1885.54 1684.89 2277.31 2087.40 1887.14 1490.41 2393.65 15
APDe-MVS88.00 290.50 285.08 290.95 691.58 492.03 175.53 891.15 180.10 992.27 388.34 780.80 288.00 1186.99 1591.09 495.16 3
X-MVS83.23 2885.20 2980.92 2989.71 2388.68 2488.21 2773.60 2082.57 3371.81 4177.07 2981.92 3171.72 5086.98 2586.86 1690.47 1892.36 25
3Dnovator+75.73 482.40 3082.76 3581.97 2488.02 3289.67 1386.60 3271.48 3181.28 3878.18 1764.78 7077.96 4577.13 2387.32 1986.83 1790.41 2391.48 32
SD-MVS86.96 689.45 584.05 1190.13 1689.23 1889.77 1374.59 1089.17 680.70 589.93 789.67 278.47 887.57 1686.79 1890.67 1393.76 12
PHI-MVS82.36 3185.89 2678.24 4486.40 4289.52 1485.52 3969.52 4382.38 3565.67 6181.35 2382.36 2873.07 4087.31 2086.76 1989.24 4391.56 31
PGM-MVS84.42 2486.29 2482.23 2290.04 1888.82 2389.23 1871.74 3082.82 3274.61 2884.41 1982.09 2977.03 2487.13 2186.73 2090.73 1192.06 28
CSCG85.28 1887.68 1582.49 2189.95 2091.99 288.82 2071.20 3286.41 1879.63 1279.26 2588.36 673.94 3586.64 2886.67 2191.40 294.41 4
TSAR-MVS + ACMM85.10 2088.81 1180.77 3089.55 2488.53 2988.59 2372.55 2587.39 1271.90 3890.95 587.55 974.57 3087.08 2386.54 2287.47 7293.67 13
CP-MVS84.74 2386.43 2382.77 2089.48 2588.13 3488.64 2173.93 1884.92 2176.77 2281.94 2283.50 2577.29 2286.92 2786.49 2390.49 1793.14 19
APD-MVScopyleft86.84 888.91 1084.41 490.66 990.10 890.78 375.64 587.38 1378.72 1490.68 686.82 1180.15 487.13 2186.45 2490.51 1693.83 10
Yuesong Wang, Zhaojie Zeng and etc.: Adaptive Patch Deformation for Textureless-Resilient Multi-View Stereo. CVPR2023
MVS_030481.73 3483.86 3179.26 3786.22 4489.18 2086.41 3367.15 5775.28 5070.75 4874.59 3783.49 2674.42 3287.05 2486.34 2590.58 1591.08 36
HSP-MVS87.45 490.22 384.22 890.00 1991.80 390.59 575.80 489.93 578.35 1692.54 289.18 380.89 187.99 1286.29 2689.70 3693.85 9
TSAR-MVS + MP.86.88 789.23 684.14 989.78 2288.67 2790.59 573.46 2288.99 780.52 791.26 488.65 579.91 586.96 2686.22 2790.59 1493.83 10
CDPH-MVS82.64 2985.03 3079.86 3489.41 2688.31 3188.32 2571.84 2980.11 4067.47 5682.09 2181.44 3571.85 4885.89 3586.15 2890.24 2791.25 34
MCST-MVS85.13 1986.62 2083.39 1490.55 1289.82 1289.29 1773.89 1984.38 2776.03 2479.01 2785.90 1678.47 887.81 1386.11 2992.11 193.29 18
DELS-MVS79.15 4881.07 4376.91 5083.54 5687.31 3784.45 4664.92 7169.98 6169.34 5071.62 4776.26 4869.84 5886.57 2985.90 3089.39 4189.88 44
Christian Sormann, Emanuele Santellani, Mattia Rossi, Andreas Kuhn, Friedrich Fraundorfer: DELS-MVS: Deep Epipolar Line Search for Multi-View Stereo. Winter Conference on Applications of Computer Vision (WACV), 2023
ACMMPcopyleft83.42 2785.27 2881.26 2688.47 3188.49 3088.31 2672.09 2783.42 3072.77 3682.65 2078.22 4375.18 2986.24 3385.76 3190.74 1092.13 27
Qingshan Xu, Weihang Kong, Wenbing Tao, Marc Pollefeys: Multi-Scale Geometric Consistency Guided and Planar Prior Assisted Multi-View Stereo. IEEE Transactions on Pattern Analysis and Machine Intelligence
TSAR-MVS + GP.83.69 2686.58 2280.32 3185.14 4986.96 4084.91 4570.25 3684.71 2573.91 3185.16 1785.63 1777.92 1385.44 3685.71 3289.77 3392.45 23
CANet81.62 3583.41 3279.53 3687.06 3788.59 2885.47 4067.96 5376.59 4874.05 2974.69 3681.98 3072.98 4186.14 3485.47 3389.68 3790.42 42
train_agg84.86 2187.21 1882.11 2390.59 1185.47 5089.81 1173.55 2183.95 2873.30 3389.84 887.23 1075.61 2886.47 3085.46 3489.78 3292.06 28
3Dnovator73.76 579.75 4180.52 4678.84 4084.94 5487.35 3684.43 4765.54 6778.29 4473.97 3063.00 7675.62 5274.07 3485.00 4085.34 3590.11 3089.04 48
OPM-MVS79.68 4379.28 5280.15 3387.99 3386.77 4288.52 2472.72 2464.55 8267.65 5567.87 6174.33 5674.31 3386.37 3285.25 3689.73 3589.81 45
MVS_111021_HR80.13 3881.46 4078.58 4285.77 4685.17 5483.45 5169.28 4474.08 5670.31 4974.31 3975.26 5373.13 3986.46 3185.15 3789.53 3989.81 45
MAR-MVS79.21 4680.32 4877.92 4687.46 3488.15 3383.95 4867.48 5674.28 5468.25 5264.70 7177.04 4672.17 4585.42 3785.00 3888.22 5687.62 57
Zhenyu Xu, Yiguang Liu, Xuelei Shi, Ying Wang, Yunan Zheng: MARMVS: Matching Ambiguity Reduced Multiple View Stereo for Efficient Large Scale Scene Reconstruction. CVPR 2020
MSLP-MVS++82.09 3282.66 3681.42 2587.03 3887.22 3885.82 3770.04 3780.30 3978.66 1568.67 5781.04 3877.81 1585.19 3984.88 3989.19 4591.31 33
CLD-MVS79.35 4581.23 4177.16 4985.01 5286.92 4185.87 3660.89 12180.07 4275.35 2772.96 4273.21 5968.43 6685.41 3884.63 4087.41 7385.44 74
Zhaoxin Li, Wangmeng Zuo, Zhaoqi Wang, Lei Zhang: Confidence-based Large-scale Dense Multi-view Stereo. IEEE Transaction on Image Processing, 2020
canonicalmvs79.16 4782.37 3875.41 5582.33 6286.38 4680.80 5763.18 8182.90 3167.34 5772.79 4376.07 4969.62 5983.46 5384.41 4189.20 4490.60 40
LGP-MVS_train79.83 3981.22 4278.22 4586.28 4385.36 5386.76 3169.59 4177.34 4565.14 6375.68 3370.79 6671.37 5384.60 4184.01 4290.18 2890.74 38
ACMM72.26 878.86 5078.13 5479.71 3586.89 3983.40 6486.02 3570.50 3475.28 5071.49 4563.01 7569.26 7473.57 3784.11 4583.98 4389.76 3487.84 55
Qingshan Xu and Wenbing Tao: Multi-Scale Geometric Consistency Guided Multi-View Stereo. CVPR 2019
HQP-MVS81.19 3683.27 3378.76 4187.40 3585.45 5186.95 3070.47 3581.31 3766.91 5979.24 2676.63 4771.67 5184.43 4383.78 4489.19 4592.05 30
EPNet79.08 4980.62 4477.28 4888.90 2983.17 6783.65 4972.41 2674.41 5367.15 5876.78 3074.37 5564.43 10183.70 4983.69 4587.15 7888.19 52
Wanjuan Su, Wenbing Tao: Efficient Edge-Preserving Multi-View Stereo Network for Depth Estimation. AAAI 2023
IS_MVSNet73.33 6777.34 6268.65 11181.29 6483.47 6374.45 12063.58 7965.75 7448.49 14667.11 6570.61 6754.63 16584.51 4283.58 4689.48 4086.34 64
ACMP73.23 779.79 4080.53 4578.94 3985.61 4785.68 4885.61 3869.59 4177.33 4671.00 4774.45 3869.16 7571.88 4683.15 5483.37 4789.92 3190.57 41
Qingshan Xu and Wenbing Tao: Planar Prior Assisted PatchMatch Multi-View Stereo. AAAI 2020
QAPM78.47 5180.22 4976.43 5285.03 5186.75 4380.62 5866.00 6473.77 5765.35 6265.54 6878.02 4472.69 4283.71 4883.36 4888.87 5190.41 43
AdaColmapbinary79.74 4278.62 5381.05 2889.23 2886.06 4784.95 4471.96 2879.39 4375.51 2663.16 7468.84 8076.51 2683.55 5082.85 4988.13 5986.46 63
Vis-MVSNetpermissive72.77 7277.20 6367.59 12274.19 14884.01 5976.61 10761.69 11360.62 10750.61 13770.25 5171.31 6555.57 16083.85 4782.28 5086.90 9288.08 53
Jingyang Zhang, Yao Yao, Shiwei Li, Zixin Luo, Tian Fang: Visibility-aware Multiview Stereo Network. BMVC 2020
UA-Net74.47 6477.80 5670.59 8385.33 4885.40 5273.54 13965.98 6560.65 10656.00 10772.11 4479.15 4054.63 16583.13 5582.25 5188.04 6181.92 122
IB-MVS66.94 1271.21 7971.66 8470.68 8079.18 7782.83 6972.61 14661.77 11259.66 11363.44 7053.26 15459.65 10459.16 13076.78 14682.11 5287.90 6487.33 59
Christian Sormann, Mattia Rossi, Andreas Kuhn and Friedrich Fraundorfer: IB-MVS: An Iterative Algorithm for Deep Multi-View Stereo based on Binary Decisions. BMVC 2021
CPTT-MVS81.77 3383.10 3480.21 3285.93 4586.45 4587.72 2970.98 3382.54 3471.53 4474.23 4081.49 3476.31 2782.85 5781.87 5388.79 5292.26 26
PVSNet_Blended_VisFu76.57 5677.90 5575.02 5780.56 7086.58 4479.24 6666.18 6164.81 7968.18 5365.61 6671.45 6367.05 6884.16 4481.80 5488.90 4990.92 37
Effi-MVS+75.28 6276.20 6774.20 6381.15 6583.24 6581.11 5563.13 8366.37 6860.27 7764.30 7268.88 7970.93 5681.56 6481.69 5588.61 5387.35 58
OMC-MVS80.26 3782.59 3777.54 4783.04 5785.54 4983.25 5265.05 7087.32 1572.42 3772.04 4578.97 4173.30 3883.86 4681.60 5688.15 5888.83 50
OpenMVScopyleft70.44 1076.15 5976.82 6675.37 5685.01 5284.79 5678.99 7162.07 10871.27 6067.88 5457.91 10072.36 6170.15 5782.23 6081.41 5788.12 6087.78 56
MVS_111021_LR78.13 5379.85 5176.13 5381.12 6681.50 7480.28 5965.25 6876.09 4971.32 4676.49 3272.87 6072.21 4482.79 5881.29 5886.59 11387.91 54
TranMVSNet+NR-MVSNet69.25 11270.81 8867.43 12377.23 10379.46 10073.48 14169.66 3960.43 10839.56 18658.82 9053.48 15355.74 15879.59 9781.21 5988.89 5082.70 112
UniMVSNet_NR-MVSNet70.59 8372.19 8168.72 10977.72 9780.72 8473.81 13569.65 4061.99 9543.23 17460.54 8057.50 11058.57 13179.56 9981.07 6089.34 4283.97 91
CANet_DTU73.29 6876.96 6569.00 10777.04 10482.06 7279.49 6556.30 17467.85 6653.29 12171.12 4870.37 7061.81 11781.59 6380.96 6186.09 12384.73 86
FC-MVSNet-train72.60 7375.07 7169.71 10281.10 6778.79 11173.74 13765.23 6966.10 7153.34 12070.36 5063.40 9456.92 14581.44 6580.96 6187.93 6384.46 88
TSAR-MVS + COLMAP78.34 5281.64 3974.48 6280.13 7385.01 5581.73 5365.93 6684.75 2461.68 7285.79 1466.27 8671.39 5282.91 5680.78 6386.01 12985.98 65
EPP-MVSNet74.00 6677.41 6170.02 9880.53 7183.91 6074.99 11762.68 9865.06 7749.77 14368.68 5672.09 6263.06 10782.49 5980.73 6489.12 4788.91 49
GBi-Net70.78 8073.37 7667.76 11672.95 15978.00 11975.15 11262.72 9364.13 8351.44 12958.37 9469.02 7657.59 13781.33 6880.72 6586.70 10782.02 116
test170.78 8073.37 7667.76 11672.95 15978.00 11975.15 11262.72 9364.13 8351.44 12958.37 9469.02 7657.59 13781.33 6880.72 6586.70 10782.02 116
FMVSNet168.84 11670.47 9166.94 13771.35 17677.68 12774.71 11962.35 10756.93 13949.94 14250.01 18164.59 9057.07 14381.33 6880.72 6586.25 11682.00 119
ACMH65.37 1470.71 8270.00 9371.54 7082.51 6182.47 7177.78 9768.13 5056.19 15546.06 16354.30 13551.20 18168.68 6480.66 7780.72 6586.07 12484.45 89
Qingshan Xu and Wenbing Tao: Multi-Scale Geometric Consistency Guided Multi-View Stereo. CVPR 2019
NR-MVSNet68.79 11770.56 8966.71 14377.48 10079.54 9873.52 14069.20 4561.20 10339.76 18558.52 9150.11 18751.37 17680.26 8980.71 6988.97 4883.59 98
UGNet72.78 7177.67 5767.07 13571.65 17183.24 6575.20 11163.62 7864.93 7856.72 10171.82 4673.30 5749.02 18181.02 7480.70 7086.22 11788.67 51
Wanjuan Su, Qingshan Xu, Wenbing Tao: Uncertainty-guided Multi-view Stereo Network for Depth Estimation. IEEE Transactions on Circuits and Systems for Video Technology, 2022
EG-PatchMatch MVS67.24 14466.94 15067.60 12178.73 8081.35 7573.28 14359.49 14546.89 20551.42 13243.65 19753.49 15255.50 16181.38 6780.66 7187.15 7881.17 127
PCF-MVS73.28 679.42 4480.41 4778.26 4384.88 5588.17 3286.08 3469.85 3875.23 5268.43 5168.03 6078.38 4271.76 4981.26 7180.65 7288.56 5591.18 35
Andreas Kuhn, Shan Lin, Oliver Erdler: Plane Completion and Filtering for Multi-View Stereo Reconstruction. GCPR 2019
UniMVSNet (Re)69.53 10671.90 8266.76 14176.42 10780.93 8072.59 14768.03 5261.75 9941.68 18258.34 9757.23 11853.27 17279.53 10080.62 7388.57 5484.90 84
Fast-Effi-MVS+73.11 7073.66 7372.48 6877.72 9780.88 8378.55 8658.83 15965.19 7660.36 7659.98 8462.42 9771.22 5481.66 6180.61 7488.20 5784.88 85
DU-MVS69.63 10170.91 8768.13 11575.99 11479.54 9873.81 13569.20 4561.20 10343.23 17458.52 9153.50 15158.57 13179.22 10380.45 7587.97 6283.97 91
FMVSNet270.39 8572.67 8067.72 11972.95 15978.00 11975.15 11262.69 9763.29 8851.25 13355.64 11268.49 8257.59 13780.91 7680.35 7686.70 10782.02 116
anonymousdsp65.28 15367.98 13862.13 16958.73 21473.98 17267.10 17650.69 19748.41 20047.66 15354.27 13652.75 16661.45 11976.71 14780.20 7787.13 8289.53 47
CDS-MVSNet67.65 13669.83 10065.09 14975.39 12176.55 14574.42 12363.75 7753.55 17849.37 14559.41 8762.45 9644.44 19379.71 9579.82 7883.17 16877.36 160
Khang Truong Giang, Soohwan Song, Sungho Jo: Curvature-guided dynamic scale networks for Multi-view Stereo. ICLR 2022
MVSTER72.06 7474.24 7269.51 10370.39 17975.97 15476.91 10457.36 16964.64 8161.39 7468.86 5463.76 9263.46 10481.44 6579.70 7987.56 7185.31 76
PVSNet_BlendedMVS76.21 5777.52 5974.69 6079.46 7583.79 6177.50 10064.34 7569.88 6271.88 3968.54 5870.42 6867.05 6883.48 5179.63 8087.89 6586.87 61
PVSNet_Blended76.21 5777.52 5974.69 6079.46 7583.79 6177.50 10064.34 7569.88 6271.88 3968.54 5870.42 6867.05 6883.48 5179.63 8087.89 6586.87 61
DI_MVS_plusplus_trai75.13 6376.12 6873.96 6478.18 8381.55 7380.97 5662.54 10268.59 6565.13 6461.43 7774.81 5469.32 6181.01 7579.59 8287.64 7085.89 66
FMVSNet370.49 8472.90 7867.67 12072.88 16277.98 12274.96 11862.72 9364.13 8351.44 12958.37 9469.02 7657.43 14079.43 10179.57 8386.59 11381.81 123
TAPA-MVS71.42 977.69 5480.05 5074.94 5880.68 6984.52 5781.36 5463.14 8284.77 2364.82 6568.72 5575.91 5171.86 4781.62 6279.55 8487.80 6885.24 77
Andrea Romanoni, Matteo Matteucci: TAPA-MVS: Textureless-Aware PAtchMatch Multi-View Stereo. ICCV 2019
ACMH+66.54 1371.36 7870.09 9272.85 6782.59 6081.13 7878.56 8568.04 5161.55 10052.52 12751.50 17554.14 14468.56 6578.85 10779.50 8586.82 9983.94 93
MVS_Test75.37 6177.13 6473.31 6679.07 7881.32 7679.98 6060.12 14069.72 6464.11 6770.53 4973.22 5868.90 6280.14 9179.48 8687.67 6985.50 72
Vis-MVSNet (Re-imp)67.83 13173.52 7461.19 17578.37 8276.72 14466.80 17862.96 8465.50 7534.17 20167.19 6469.68 7239.20 20479.39 10279.44 8785.68 14176.73 167
PLCcopyleft68.99 1175.68 6075.31 7076.12 5482.94 5881.26 7779.94 6166.10 6277.15 4766.86 6059.13 8968.53 8173.73 3680.38 8379.04 8887.13 8281.68 124
Jie Liao, Yanping Fu, Qingan Yan, Chunxia xiao: Pyramid Multi-View Stereo with Local Consistency. Pacific Graphics 2019
gg-mvs-nofinetune62.55 17665.05 17359.62 18578.72 8177.61 12870.83 15753.63 18039.71 21722.04 22236.36 21064.32 9147.53 18381.16 7279.03 8985.00 15177.17 161
LS3D74.08 6573.39 7574.88 5985.05 5082.62 7079.71 6368.66 4772.82 5858.80 8257.61 10161.31 9971.07 5580.32 8778.87 9086.00 13180.18 138
CNLPA77.20 5577.54 5876.80 5182.63 5984.31 5879.77 6264.64 7285.17 2073.18 3456.37 10869.81 7174.53 3181.12 7378.69 9186.04 12887.29 60
MSDG71.52 7769.87 9773.44 6582.21 6379.35 10179.52 6464.59 7366.15 7061.87 7153.21 15656.09 13165.85 9778.94 10678.50 9286.60 11276.85 166
tfpn11168.38 12069.23 11467.39 12577.83 8978.93 10574.28 12562.81 8656.64 14346.70 15656.24 10953.47 15456.59 14680.41 7878.43 9386.11 12080.53 133
conf0.0167.72 13367.99 13767.39 12577.82 9478.94 10374.28 12562.81 8656.64 14346.70 15653.33 15248.59 19456.59 14680.34 8578.43 9386.16 11979.67 144
conf200view1168.11 12468.72 12567.39 12577.83 8978.93 10574.28 12562.81 8656.64 14346.70 15652.65 16653.47 15456.59 14680.41 7878.43 9386.11 12080.53 133
tfpn200view968.11 12468.72 12567.40 12477.83 8978.93 10574.28 12562.81 8656.64 14346.82 15452.65 16653.47 15456.59 14680.41 7878.43 9386.11 12080.52 135
thres40067.95 12868.62 12967.17 13277.90 8478.59 11474.27 13062.72 9356.34 15445.77 16553.00 15953.35 15956.46 15180.21 9078.43 9385.91 13580.43 136
conf0.00267.52 14167.64 14167.39 12577.80 9678.94 10374.28 12562.81 8656.64 14346.70 15653.65 14846.28 20256.59 14680.33 8678.37 9886.17 11879.23 148
HyFIR lowres test69.47 10968.94 11770.09 9776.77 10682.93 6876.63 10660.17 13559.00 11754.03 11540.54 20665.23 8967.89 6776.54 15078.30 9985.03 15080.07 139
tfpn66.58 14767.18 14765.88 14677.82 9478.45 11672.07 15062.52 10355.35 16343.21 17652.54 17046.12 20353.68 16880.02 9278.23 10085.99 13279.55 146
view80067.35 14368.22 13566.35 14477.83 8978.62 11372.97 14562.58 10155.71 15944.13 17252.69 16552.24 17354.58 16780.27 8878.19 10186.01 12979.79 142
Baseline_NR-MVSNet67.53 14068.77 12366.09 14575.99 11474.75 16872.43 14868.41 4861.33 10238.33 19051.31 17654.13 14656.03 15479.22 10378.19 10185.37 14582.45 114
CHOSEN 1792x268869.20 11369.26 11369.13 10576.86 10578.93 10577.27 10260.12 14061.86 9754.42 11242.54 20061.61 9866.91 7478.55 11078.14 10379.23 18583.23 103
conf0.05thres100066.26 14966.77 15265.66 14777.45 10178.10 11771.85 15362.44 10651.47 18943.00 17747.92 18851.66 17953.40 17079.71 9577.97 10485.82 13680.56 131
thres20067.98 12768.55 13067.30 13077.89 8678.86 10974.18 13262.75 9156.35 15346.48 16152.98 16053.54 15056.46 15180.41 7877.97 10486.05 12679.78 143
pm-mvs165.62 15167.42 14463.53 16273.66 15576.39 14969.66 15960.87 12249.73 19743.97 17351.24 17757.00 12048.16 18279.89 9377.84 10684.85 15679.82 141
thres600view767.68 13468.43 13166.80 13977.90 8478.86 10973.84 13462.75 9156.07 15644.70 17152.85 16352.81 16455.58 15980.41 7877.77 10786.05 12680.28 137
view60067.63 13868.36 13266.77 14077.84 8878.66 11273.74 13762.62 10056.04 15744.98 16852.86 16252.83 16355.48 16280.36 8477.75 10885.95 13480.02 140
WR-MVS63.03 17267.40 14557.92 19175.14 12377.60 12960.56 20266.10 6254.11 17523.88 21353.94 14653.58 14934.50 20973.93 16577.71 10987.35 7480.94 128
TransMVSNet (Re)64.74 16165.66 16663.66 16177.40 10275.33 15969.86 15862.67 9947.63 20341.21 18350.01 18152.33 16945.31 19279.57 9877.69 11085.49 14377.07 164
thres100view90067.60 13968.02 13667.12 13477.83 8977.75 12673.90 13362.52 10356.64 14346.82 15452.65 16653.47 15455.92 15578.77 10877.62 11185.72 14079.23 148
GA-MVS68.14 12369.17 11566.93 13873.77 15478.50 11574.45 12058.28 16455.11 16648.44 14760.08 8253.99 14761.50 11878.43 11177.57 11285.13 14880.54 132
gm-plane-assit57.00 20057.62 20656.28 19776.10 11362.43 21347.62 22246.57 21033.84 22523.24 21637.52 20740.19 21459.61 12979.81 9477.55 11384.55 16072.03 191
v770.33 8969.87 9770.88 7174.79 13381.04 7979.22 6760.57 12557.70 13056.65 10354.23 14055.29 13666.95 7178.28 11377.47 11487.12 8585.05 81
v1070.22 9169.76 10170.74 7774.79 13380.30 9579.22 6759.81 14357.71 12956.58 10454.22 14255.31 13466.95 7178.28 11377.47 11487.12 8585.07 80
v114469.93 10069.36 11270.61 8274.89 12680.93 8079.11 6960.64 12355.97 15855.31 11053.85 14754.14 14466.54 7878.10 11577.44 11687.14 8185.09 79
v7n67.05 14666.94 15067.17 13272.35 16478.97 10273.26 14458.88 15251.16 19050.90 13448.21 18650.11 18760.96 12077.70 12177.38 11786.68 11085.05 81
IterMVS-LS71.69 7672.82 7970.37 9277.54 9976.34 15075.13 11560.46 12861.53 10157.57 9064.89 6967.33 8366.04 9377.09 14277.37 11885.48 14485.18 78
Fangjinhua Wang, Silvano Galliani, Christoph Vogel, Marc Pollefeys: IterMVS: Iterative Probability Estimation for Efficient Multi-View Stereo.
v119269.50 10868.83 12070.29 9374.49 14680.92 8278.55 8660.54 12655.04 16754.21 11352.79 16452.33 16966.92 7377.88 11877.35 11987.04 8885.51 71
PEN-MVS62.96 17365.77 16559.70 18473.98 15275.45 15763.39 19567.61 5552.49 18225.49 21253.39 15049.12 19240.85 20271.94 17877.26 12086.86 9780.72 130
v2v48270.05 9569.46 10670.74 7774.62 14580.32 9479.00 7060.62 12457.41 13156.89 9655.43 11555.14 13766.39 8077.25 13877.14 12186.90 9283.57 101
MS-PatchMatch70.17 9270.49 9069.79 10080.98 6877.97 12477.51 9958.95 15162.33 9355.22 11153.14 15765.90 8762.03 11279.08 10577.11 12284.08 16277.91 156
V4268.76 11869.63 10267.74 11864.93 20078.01 11878.30 9256.48 17358.65 12256.30 10554.26 13857.03 11964.85 10077.47 13177.01 12385.60 14284.96 83
v1169.37 11068.65 12870.20 9474.87 12976.97 14178.29 9358.55 16356.38 15256.04 10654.02 14454.98 13866.47 7978.30 11276.91 12486.97 9083.02 104
tfpnnormal64.27 16563.64 18365.02 15075.84 11775.61 15671.24 15662.52 10347.79 20242.97 17842.65 19944.49 20752.66 17478.77 10876.86 12584.88 15479.29 147
v124068.64 11967.89 14069.51 10373.89 15380.26 9676.73 10559.97 14253.43 17953.08 12251.82 17450.84 18366.62 7776.79 14576.77 12686.78 10585.34 75
v1670.07 9469.46 10670.79 7574.74 13977.08 13478.79 7958.86 15359.75 11259.15 8054.87 12757.33 11366.38 8177.61 12476.77 12686.81 10482.79 108
v1569.61 10268.88 11870.46 8774.81 13277.03 13878.75 8258.83 15957.06 13357.18 9254.55 13356.37 12266.13 9177.70 12176.76 12887.03 8982.69 113
V1469.59 10368.86 11970.45 8974.83 13177.04 13678.70 8358.83 15956.95 13757.08 9454.41 13456.34 12366.15 8877.77 12076.76 12887.08 8782.74 111
V969.58 10468.83 12070.46 8774.85 13077.04 13678.65 8458.85 15556.83 14057.12 9354.26 13856.31 12466.14 9077.83 11976.76 12887.13 8282.79 108
v1870.10 9369.52 10470.77 7674.66 14477.06 13578.84 7458.84 15860.01 11159.23 7955.06 12057.47 11166.34 8377.50 13076.75 13186.71 10682.77 110
v1770.03 9669.43 11170.72 7974.75 13877.09 13378.78 8158.85 15559.53 11558.72 8354.87 12757.39 11266.38 8177.60 12576.75 13186.83 9882.80 106
v1neww70.34 8769.93 9570.82 7374.68 14180.61 8678.80 7760.17 13558.74 12058.10 8755.00 12257.28 11666.33 8477.53 12676.74 13386.82 9983.61 96
v7new70.34 8769.93 9570.82 7374.68 14180.61 8678.80 7760.17 13558.74 12058.10 8755.00 12257.28 11666.33 8477.53 12676.74 13386.82 9983.61 96
v1369.52 10768.76 12470.41 9074.88 12777.02 14078.52 9058.86 15356.61 14956.91 9554.00 14556.17 13066.11 9277.93 11676.74 13387.21 7682.83 105
v1269.54 10568.79 12270.41 9074.88 12777.03 13878.54 8958.85 15556.71 14156.87 9754.13 14356.23 12966.15 8877.89 11776.74 13387.17 7782.80 106
v670.35 8669.94 9470.83 7274.68 14180.62 8578.81 7660.16 13858.81 11858.17 8655.01 12157.31 11566.32 8677.53 12676.73 13786.82 9983.62 95
v14419269.34 11168.68 12770.12 9674.06 15080.54 8878.08 9660.54 12654.99 16954.13 11452.92 16152.80 16566.73 7677.13 14076.72 13887.15 7885.63 67
v114169.96 9969.44 10970.58 8574.78 13580.50 9078.85 7260.30 13056.95 13756.74 10054.68 13156.26 12865.93 9477.38 13276.72 13886.88 9583.57 101
divwei89l23v2f11269.97 9769.44 10970.58 8574.78 13580.50 9078.85 7260.30 13056.97 13656.75 9954.67 13256.27 12765.92 9577.37 13376.72 13886.88 9583.58 100
v870.23 9069.86 9970.67 8174.69 14079.82 9778.79 7959.18 14958.80 11958.20 8555.00 12257.33 11366.31 8777.51 12976.71 14186.82 9983.88 94
v169.97 9769.45 10870.59 8374.78 13580.51 8978.84 7460.30 13056.98 13456.81 9854.69 13056.29 12665.91 9677.37 13376.71 14186.89 9483.59 98
v192192069.03 11468.32 13369.86 9974.03 15180.37 9377.55 9860.25 13454.62 17053.59 11952.36 17151.50 18066.75 7577.17 13976.69 14386.96 9185.56 68
DTE-MVSNet61.85 18564.96 17558.22 19074.32 14774.39 17061.01 20167.85 5451.76 18821.91 22353.28 15348.17 19537.74 20572.22 17576.44 14486.52 11578.49 153
LTVRE_ROB59.44 1661.82 18862.64 18960.87 17872.83 16377.19 13164.37 19158.97 15033.56 22628.00 20952.59 16942.21 21063.93 10374.52 16176.28 14577.15 19282.13 115
Andreas Kuhn, Heiko Hirschmüller, Daniel Scharstein, Helmut Mayer: A TV Prior for High-Quality Scalable Multi-View Stereo Reconstruction. International Journal of Computer Vision 2016
pmmvs662.41 17962.88 18661.87 17271.38 17575.18 16667.76 17059.45 14741.64 21342.52 18137.33 20852.91 16246.87 18777.67 12376.26 14683.23 16779.18 150
Fast-Effi-MVS+-dtu68.34 12169.47 10567.01 13675.15 12277.97 12477.12 10355.40 17757.87 12446.68 16056.17 11160.39 10062.36 11076.32 15176.25 14785.35 14681.34 125
v5265.23 15466.24 15664.06 15761.94 20476.42 14772.06 15154.30 17949.94 19450.04 14047.41 19152.42 16760.23 12775.71 15476.22 14885.78 13785.56 68
V465.23 15466.23 15764.06 15761.94 20476.42 14772.05 15254.31 17849.91 19650.06 13947.42 19052.40 16860.24 12675.71 15476.22 14885.78 13785.56 68
tfpn_n40064.23 16666.05 15962.12 17076.20 11075.24 16067.43 17261.15 11754.04 17636.38 19555.35 11651.89 17546.94 18577.31 13576.15 15084.59 15872.36 189
tfpnconf64.23 16666.05 15962.12 17076.20 11075.24 16067.43 17261.15 11754.04 17636.38 19555.35 11651.89 17546.94 18577.31 13576.15 15084.59 15872.36 189
tfpnview1164.33 16466.17 15862.18 16876.25 10975.23 16267.45 17161.16 11655.50 16136.38 19555.35 11651.89 17546.96 18477.28 13776.10 15284.86 15571.85 192
TDRefinement66.09 15065.03 17467.31 12969.73 18376.75 14375.33 10864.55 7460.28 10949.72 14445.63 19542.83 20960.46 12575.75 15375.95 15384.08 16278.04 155
CP-MVSNet62.68 17565.49 16859.40 18771.84 16775.34 15862.87 19767.04 5852.64 18127.19 21053.38 15148.15 19641.40 20071.26 18175.68 15486.07 12482.00 119
tfpn_ndepth65.09 15767.12 14862.73 16675.75 11976.23 15168.00 16860.36 12958.16 12340.27 18454.89 12654.22 14346.80 18876.69 14875.66 15585.19 14773.98 184
thresconf0.0264.77 16065.90 16263.44 16376.37 10875.17 16769.51 16161.28 11556.98 13439.01 18856.24 10948.68 19349.78 17977.13 14075.61 15684.71 15771.53 193
PS-CasMVS62.38 18165.06 17259.25 18871.73 16875.21 16562.77 19866.99 5951.94 18726.96 21152.00 17347.52 19941.06 20171.16 18475.60 15785.97 13381.97 121
Effi-MVS+-dtu71.82 7571.86 8371.78 6978.77 7980.47 9278.55 8661.67 11460.68 10555.49 10858.48 9365.48 8868.85 6376.92 14375.55 15887.35 7485.46 73
COLMAP_ROBcopyleft62.73 1567.66 13566.76 15368.70 11080.49 7277.98 12275.29 11062.95 8563.62 8649.96 14147.32 19350.72 18458.57 13176.87 14475.50 15984.94 15375.33 176
Johannes L. Schönberger, Enliang Zheng, Marc Pollefeys, Jan-Michael Frahm: Pixelwise View Selection for Unstructured Multi-View Stereo. ECCV 2016
tfpn100063.81 17066.31 15560.90 17775.76 11875.74 15565.14 18760.14 13956.47 15035.99 19855.11 11952.30 17143.42 19676.21 15275.34 16084.97 15273.01 188
diffmvs73.13 6975.65 6970.19 9574.07 14977.17 13278.24 9457.45 16772.44 5964.02 6869.05 5375.92 5064.86 9975.18 15975.27 16182.47 17084.53 87
v74865.12 15665.24 16964.98 15169.77 18276.45 14669.47 16257.06 17149.93 19550.70 13547.87 18949.50 19157.14 14273.64 16875.18 16285.75 13984.14 90
pmmvs467.89 12967.39 14668.48 11271.60 17373.57 17374.45 12060.98 12064.65 8057.97 8954.95 12551.73 17861.88 11473.78 16675.11 16383.99 16477.91 156
WR-MVS_H61.83 18765.87 16457.12 19471.72 16976.87 14261.45 20066.19 6051.97 18622.92 22053.13 15852.30 17133.80 21071.03 18575.00 16486.65 11180.78 129
EPNet_dtu68.08 12671.00 8664.67 15479.64 7468.62 18975.05 11663.30 8066.36 6945.27 16767.40 6366.84 8543.64 19575.37 15774.98 16581.15 17577.44 159
Wanjuan Su, Wenbing Tao: Efficient Edge-Preserving Multi-View Stereo Network for Depth Estimation. AAAI 2023
USDC67.36 14267.90 13966.74 14271.72 16975.23 16271.58 15460.28 13367.45 6750.54 13860.93 7845.20 20662.08 11176.56 14974.50 16684.25 16175.38 175
PatchMatch-RL67.78 13266.65 15469.10 10673.01 15872.69 17568.49 16661.85 11162.93 9160.20 7856.83 10750.42 18569.52 6075.62 15674.46 16781.51 17373.62 186
v14867.85 13067.53 14268.23 11373.25 15777.57 13074.26 13157.36 16955.70 16057.45 9153.53 14955.42 13361.96 11375.23 15873.92 16885.08 14981.32 126
pmmvs-eth3d63.52 17162.44 19264.77 15366.82 19470.12 18369.41 16359.48 14654.34 17452.71 12346.24 19444.35 20856.93 14472.37 17173.77 16983.30 16675.91 169
PMMVS65.06 15869.17 11560.26 18155.25 22363.43 20666.71 17943.01 22162.41 9250.64 13669.44 5267.04 8463.29 10674.36 16373.54 17082.68 16973.99 183
pmmvs562.37 18264.04 18060.42 17965.03 19871.67 17967.17 17552.70 18750.30 19144.80 16954.23 14051.19 18249.37 18072.88 17073.48 17183.45 16574.55 179
CR-MVSNet64.83 15965.54 16764.01 15970.64 17869.41 18465.97 18352.74 18557.81 12652.65 12454.27 13656.31 12460.92 12172.20 17673.09 17281.12 17675.69 172
PatchT61.97 18464.04 18059.55 18660.49 20867.40 19256.54 20948.65 20456.69 14252.65 12451.10 17852.14 17460.92 12172.20 17673.09 17278.03 18875.69 172
IterMVS66.36 14868.30 13464.10 15669.48 18674.61 16973.41 14250.79 19657.30 13248.28 14860.64 7959.92 10360.85 12474.14 16472.66 17481.80 17278.82 152
Fangjinhua Wang, Silvano Galliani, Christoph Vogel, Marc Pollefeys: IterMVS: Iterative Probability Estimation for Efficient Multi-View Stereo.
TinyColmap62.84 17461.03 19864.96 15269.61 18471.69 17868.48 16759.76 14455.41 16247.69 15247.33 19234.20 21962.76 10974.52 16172.59 17581.44 17471.47 194
TAMVS59.58 19562.81 18855.81 19866.03 19665.64 20063.86 19348.74 20349.95 19337.07 19454.77 12958.54 10744.44 19372.29 17371.79 17674.70 20266.66 204
MIMVSNet58.52 19861.34 19755.22 20060.76 20767.01 19466.81 17749.02 20256.43 15138.90 18940.59 20554.54 14240.57 20373.16 16971.65 17775.30 20166.00 205
SixPastTwentyTwo61.84 18662.45 19161.12 17669.20 18772.20 17662.03 19957.40 16846.54 20638.03 19257.14 10641.72 21158.12 13569.67 19671.58 17881.94 17178.30 154
CVMVSNet62.55 17665.89 16358.64 18966.95 19269.15 18666.49 18256.29 17552.46 18332.70 20259.27 8858.21 10950.09 17871.77 17971.39 17979.31 18478.99 151
FC-MVSNet-test56.90 20165.20 17147.21 21366.98 19163.20 20849.11 22058.60 16259.38 11611.50 23365.60 6756.68 12124.66 22471.17 18371.36 18072.38 20969.02 200
FMVSNet557.24 19960.02 20153.99 20456.45 21862.74 21065.27 18647.03 20955.14 16539.55 18740.88 20353.42 15841.83 19772.35 17271.10 18173.79 20564.50 208
DWT-MVSNet_training67.24 14465.96 16168.74 10876.15 11274.36 17174.37 12456.66 17261.82 9860.51 7558.23 9949.76 18965.07 9870.04 19570.39 18279.70 18277.11 163
CMPMVSbinary47.78 1762.49 17862.52 19062.46 16770.01 18170.66 18262.97 19651.84 19151.98 18556.71 10242.87 19853.62 14857.80 13672.23 17470.37 18375.45 20075.91 169
M. Jancosek, T. Pajdla: Multi-View Reconstruction Preserving Weakly-Supported Surfaces. CVPR 2011
test0.0.03 158.80 19661.58 19655.56 19975.02 12468.45 19059.58 20661.96 10952.74 18029.57 20549.75 18454.56 14131.46 21271.19 18269.77 18475.75 19664.57 207
test-mter60.84 19164.62 17756.42 19655.99 22164.18 20165.39 18534.23 22954.39 17346.21 16257.40 10459.49 10555.86 15671.02 18669.65 18580.87 17876.20 168
Anonymous2023121151.46 21150.59 21352.46 20867.30 19066.70 19655.00 21159.22 14829.96 22817.62 22819.11 23028.74 22835.72 20766.42 20569.52 18679.92 18173.71 185
test-LLR64.42 16264.36 17864.49 15575.02 12463.93 20366.61 18061.96 10954.41 17147.77 15057.46 10260.25 10155.20 16370.80 18869.33 18780.40 17974.38 180
TESTMET0.1,161.10 19064.36 17857.29 19357.53 21663.93 20366.61 18036.22 22754.41 17147.77 15057.46 10260.25 10155.20 16370.80 18869.33 18780.40 17974.38 180
test20.0353.93 20756.28 20751.19 20972.19 16665.83 19853.20 21461.08 11942.74 21122.08 22137.07 20945.76 20524.29 22570.44 19269.04 18974.31 20463.05 211
MIMVSNet149.27 21253.25 21044.62 21744.61 22861.52 21453.61 21352.18 18841.62 21418.68 22528.14 22441.58 21225.50 21968.46 20269.04 18973.15 20762.37 213
Anonymous2023120656.36 20257.80 20554.67 20270.08 18066.39 19760.46 20357.54 16649.50 19929.30 20633.86 21646.64 20035.18 20870.44 19268.88 19175.47 19968.88 201
CostFormer68.92 11569.58 10368.15 11475.98 11676.17 15378.22 9551.86 19065.80 7361.56 7363.57 7362.83 9561.85 11570.40 19468.67 19279.42 18379.62 145
testgi54.39 20657.86 20450.35 21071.59 17467.24 19354.95 21253.25 18243.36 21023.78 21444.64 19647.87 19724.96 22170.45 19168.66 19373.60 20662.78 212
CHOSEN 280x42058.70 19761.88 19554.98 20155.45 22250.55 22664.92 18840.36 22355.21 16438.13 19148.31 18563.76 9263.03 10873.73 16768.58 19468.00 21973.04 187
RPMNet61.71 18962.88 18660.34 18069.51 18569.41 18463.48 19449.23 20057.81 12645.64 16650.51 17950.12 18653.13 17368.17 20368.49 19581.07 17775.62 174
RPSCF67.64 13771.25 8563.43 16461.86 20670.73 18167.26 17450.86 19574.20 5558.91 8167.49 6269.33 7364.10 10271.41 18068.45 19677.61 18977.17 161
tpmp4_e2368.32 12267.08 14969.76 10177.86 8775.22 16478.37 9156.17 17666.06 7264.27 6657.15 10554.89 13963.40 10570.97 18768.29 19778.46 18777.00 165
ambc53.42 20964.99 19963.36 20749.96 21847.07 20437.12 19328.97 22016.36 23541.82 19875.10 16067.34 19871.55 21275.72 171
MDTV_nov1_ep1364.37 16365.24 16963.37 16568.94 18870.81 18072.40 14950.29 19960.10 11053.91 11760.07 8359.15 10657.21 14169.43 19867.30 19977.47 19069.78 198
GG-mvs-BLEND46.86 21867.51 14322.75 2310.05 23876.21 15264.69 1890.04 23661.90 960.09 24155.57 11371.32 640.08 23670.54 19067.19 20071.58 21169.86 197
dps64.00 16962.99 18565.18 14873.29 15672.07 17768.98 16553.07 18357.74 12858.41 8455.55 11447.74 19860.89 12369.53 19767.14 20176.44 19571.19 195
PM-MVS60.48 19260.94 19959.94 18258.85 21366.83 19564.27 19251.39 19355.03 16848.03 14950.00 18340.79 21358.26 13469.20 19967.13 20278.84 18677.60 158
MDTV_nov1_ep13_2view60.16 19360.51 20059.75 18365.39 19769.05 18768.00 16848.29 20651.99 18445.95 16448.01 18749.64 19053.39 17168.83 20066.52 20377.47 19069.55 199
PatchmatchNetpermissive64.21 16864.65 17663.69 16071.29 17768.66 18869.63 16051.70 19263.04 8953.77 11859.83 8658.34 10860.23 12768.54 20166.06 20475.56 19868.08 202
Fangjinhua Wang, Silvano Galliani, Christoph Vogel, Pablo Speciale, Marc Pollefeys: PatchmatchNet: Learned Multi-View Patchmatch Stereo.
MDA-MVSNet-bldmvs53.37 20953.01 21153.79 20643.67 23167.95 19159.69 20557.92 16543.69 20932.41 20341.47 20127.89 22952.38 17556.97 22565.99 20576.68 19367.13 203
EU-MVSNet54.63 20458.69 20249.90 21156.99 21762.70 21156.41 21050.64 19845.95 20823.14 21750.42 18046.51 20136.63 20665.51 20764.85 20675.57 19774.91 177
tpm62.41 17963.15 18461.55 17472.24 16563.79 20571.31 15546.12 21257.82 12555.33 10959.90 8554.74 14053.63 16967.24 20464.29 20770.65 21474.25 182
LP53.62 20853.43 20853.83 20558.51 21562.59 21257.31 20846.04 21347.86 20142.69 18036.08 21236.86 21746.53 18964.38 20964.25 20871.92 21062.00 214
tpm cat165.41 15263.81 18267.28 13175.61 12072.88 17475.32 10952.85 18462.97 9063.66 6953.24 15553.29 16161.83 11665.54 20664.14 20974.43 20374.60 178
pmmvs347.65 21349.08 21745.99 21544.61 22854.79 22150.04 21731.95 23233.91 22429.90 20430.37 21833.53 22046.31 19063.50 21063.67 21073.14 20863.77 210
testus45.61 22049.06 21841.59 22156.13 22055.28 21943.51 22439.64 22537.74 21918.23 22635.52 21531.28 22224.69 22362.46 21462.90 21167.33 22058.26 220
tpmrst62.00 18362.35 19361.58 17371.62 17264.14 20269.07 16448.22 20862.21 9453.93 11658.26 9855.30 13555.81 15763.22 21162.62 21270.85 21370.70 196
test235647.20 21648.62 21945.54 21656.38 21954.89 22050.62 21645.08 21638.65 21823.40 21536.23 21131.10 22329.31 21562.76 21362.49 21368.48 21854.23 224
EPMVS60.00 19461.97 19457.71 19268.46 18963.17 20964.54 19048.23 20763.30 8744.72 17060.19 8156.05 13250.85 17765.27 20862.02 21469.44 21663.81 209
testmv42.58 22244.36 22140.49 22254.63 22452.76 22241.21 22844.37 21828.83 22912.87 23027.16 22525.03 23023.01 22660.83 21761.13 21566.88 22154.81 222
test123567842.57 22344.36 22140.49 22254.63 22452.75 22341.21 22844.37 21828.82 23012.87 23027.15 22625.01 23123.01 22660.83 21761.13 21566.88 22154.81 222
Gipumacopyleft36.38 22535.80 22837.07 22445.76 22733.90 23329.81 23248.47 20539.91 21618.02 2278.00 2368.14 23825.14 22059.29 22261.02 21755.19 23140.31 229
S. Galliani, K. Lasinger, K. Schindler: Massively Parallel Multiview Stereopsis by Surface Normal Diffusion. ICCV 2015
no-one36.35 22637.59 22734.91 22546.13 22649.89 22727.99 23343.56 22020.91 2347.03 23614.64 23215.50 23618.92 23142.95 22960.20 21865.84 22359.03 219
ADS-MVSNet55.94 20358.01 20353.54 20762.48 20358.48 21559.12 20746.20 21159.65 11442.88 17952.34 17253.31 16046.31 19062.00 21560.02 21964.23 22560.24 217
MVS-HIRNet54.41 20552.10 21257.11 19558.99 21256.10 21849.68 21949.10 20146.18 20752.15 12833.18 21746.11 20456.10 15363.19 21259.70 22076.64 19460.25 216
111143.08 22144.02 22341.98 22059.22 21049.27 22841.48 22645.63 21435.01 22223.06 21828.60 22230.15 22527.22 21660.42 21957.97 22155.27 23046.74 227
test1235635.10 22738.50 22631.13 22844.14 23043.70 23132.27 23134.42 22826.51 2329.47 23425.22 22820.34 23210.86 23353.47 22656.15 22255.59 22944.11 228
FPMVS51.87 21050.00 21554.07 20366.83 19357.25 21660.25 20450.91 19450.25 19234.36 20036.04 21332.02 22141.49 19958.98 22356.07 22370.56 21559.36 218
N_pmnet47.35 21550.13 21444.11 21859.98 20951.64 22451.86 21544.80 21749.58 19820.76 22440.65 20440.05 21529.64 21459.84 22155.15 22457.63 22754.00 225
new-patchmatchnet46.97 21749.47 21644.05 21962.82 20256.55 21745.35 22352.01 18942.47 21217.04 22935.73 21435.21 21821.84 23061.27 21654.83 22565.26 22460.26 215
PMVScopyleft39.38 1846.06 21943.30 22449.28 21262.93 20138.75 23241.88 22553.50 18133.33 22735.46 19928.90 22131.01 22433.04 21158.61 22454.63 22668.86 21757.88 221
Y. Furukawa, J. Ponce: Accurate, dense, and robust multiview stereopsis. PAMI (2010)
testpf47.41 21448.47 22046.18 21466.30 19550.67 22548.15 22142.60 22237.10 22128.75 20740.97 20239.01 21630.82 21352.95 22853.74 22760.46 22664.87 206
new_pmnet38.40 22442.64 22533.44 22637.54 23445.00 23036.60 23032.72 23140.27 21512.72 23229.89 21928.90 22724.78 22253.17 22752.90 22856.31 22848.34 226
MVEpermissive19.12 1920.47 23223.27 23117.20 23312.66 23725.41 23510.52 23834.14 23014.79 2376.53 2398.79 2354.68 23916.64 23229.49 23241.63 22922.73 23638.11 230
Simon Fuhrmann, Fabian Langguth, Michael Goesele: MVE - A Multi-View Reconstruction Environment. EUROGRAPHICS Workshops on Graphics and Cultural Heritage (2014)
PMMVS225.60 22929.75 22920.76 23228.00 23530.93 23423.10 23429.18 23323.14 2331.46 24018.23 23116.54 2345.08 23440.22 23041.40 23037.76 23237.79 231
tmp_tt14.50 23414.68 2367.17 23910.46 2392.21 23537.73 22028.71 20825.26 22716.98 2334.37 23531.49 23129.77 23126.56 235
E-PMN21.77 23018.24 23225.89 22940.22 23219.58 23612.46 23739.87 22418.68 2366.71 2379.57 2334.31 24122.36 22919.89 23427.28 23233.73 23328.34 233
EMVS20.98 23117.15 23325.44 23039.51 23319.37 23712.66 23639.59 22619.10 2356.62 2389.27 2344.40 24022.43 22817.99 23524.40 23331.81 23425.53 234
.test124530.81 22829.14 23032.77 22759.22 21049.27 22841.48 22645.63 21435.01 22223.06 21828.60 22230.15 22527.22 21660.42 2190.10 2340.01 2380.43 236
testmvs0.09 2330.15 2340.02 2350.01 2390.02 2400.05 2410.01 2370.11 2380.01 2420.26 2380.01 2420.06 2380.10 2360.10 2340.01 2380.43 236
test1230.09 2330.14 2350.02 2350.00 2400.02 2400.02 2420.01 2370.09 2390.00 2430.30 2370.00 2430.08 2360.03 2370.09 2360.01 2380.45 235
sosnet-low-res0.00 2350.00 2360.00 2370.00 2400.00 2420.00 2430.00 2390.00 2400.00 2430.00 2390.00 2430.00 2390.00 2380.00 2370.00 2410.00 238
sosnet0.00 2350.00 2360.00 2370.00 2400.00 2420.00 2430.00 2390.00 2400.00 2430.00 2390.00 2430.00 2390.00 2380.00 2370.00 2410.00 238
MTAPA83.48 186.45 13
MTMP82.66 384.91 21
Patchmatch-RL test2.85 240
XVS86.63 4088.68 2485.00 4271.81 4181.92 3190.47 18
X-MVStestdata86.63 4088.68 2485.00 4271.81 4181.92 3190.47 18
abl_679.05 3887.27 3688.85 2283.62 5068.25 4981.68 3672.94 3573.79 4184.45 2372.55 4389.66 3890.64 39
mPP-MVS89.90 2181.29 36
NP-MVS80.10 41
Patchmtry65.80 19965.97 18352.74 18552.65 124
DeepMVS_CXcopyleft18.74 23818.55 2358.02 23426.96 2317.33 23523.81 22913.05 23725.99 21825.17 23322.45 23736.25 232