TY - GEN
T1 - Temporal frequency probing for 5D transient analysis of global light transport
AU - O'Toole, Matthew
AU - Heide, Felix
AU - Xiao, Lei
AU - Hullin, Matthias B.
AU - Heidrich, Wolfgang
AU - Kutulakos, Kiriakos N.
N1 - KAUST Repository Item: Exported on 2020-10-01
PY - 2014/7/27
Y1 - 2014/7/27
N2 - We analyze light propagation in an unknown scene using projectors and cameras that operate at transient timescales. In this new photography regime, the projector emits a spatio-temporal 3D signal and the camera receives a transformed version of it, determined by the set of all light transport paths through the scene and the time delays they induce. The underlying 3D-to-3D transformation encodes scene geometry and global transport in great detail, but individual transport components (e.g., direct reflections, inter-reflections, caustics, etc.) are coupled nontrivially in both space and time.
To overcome this complexity, we observe that transient light transport is always separable in the temporal frequency domain. This makes it possible to analyze transient transport one temporal frequency at a time by trivially adapting techniques from conventional projector-to-camera transport. We use this idea in a prototype that offers three never-seen-before abilities: (1) acquiring time-of-flight depth images that are robust to general indirect transport, such as interreflections and caustics; (2) distinguishing between direct views of objects and their mirror reflection; and (3) using a photonic mixer device to capture sharp, evolving wavefronts of "light-in-flight".
AB - We analyze light propagation in an unknown scene using projectors and cameras that operate at transient timescales. In this new photography regime, the projector emits a spatio-temporal 3D signal and the camera receives a transformed version of it, determined by the set of all light transport paths through the scene and the time delays they induce. The underlying 3D-to-3D transformation encodes scene geometry and global transport in great detail, but individual transport components (e.g., direct reflections, inter-reflections, caustics, etc.) are coupled nontrivially in both space and time.
To overcome this complexity, we observe that transient light transport is always separable in the temporal frequency domain. This makes it possible to analyze transient transport one temporal frequency at a time by trivially adapting techniques from conventional projector-to-camera transport. We use this idea in a prototype that offers three never-seen-before abilities: (1) acquiring time-of-flight depth images that are robust to general indirect transport, such as interreflections and caustics; (2) distinguishing between direct views of objects and their mirror reflection; and (3) using a photonic mixer device to capture sharp, evolving wavefronts of "light-in-flight".
UR - http://hdl.handle.net/10754/556517
UR - http://dl.acm.org/citation.cfm?doid=2601097.2601103
UR - http://www.scopus.com/inward/record.url?scp=84905721717&partnerID=8YFLogxK
U2 - 10.1145/2601097.2601103
DO - 10.1145/2601097.2601103
M3 - Conference contribution
SP - 1
EP - 11
BT - ACM Transactions on Graphics
PB - Association for Computing Machinery (ACM)
ER -