Barlow Respiratory Hospital Plmnlgy 2000 Stadium Way, Los Angeles, CA 90026 2132504200 (Phone)
Certifications:
Internal Medicine, 1989 Pulmonary Disease, 1997
Awards:
Healthgrades Honor Roll
Languages:
English Chinese Japanese
Hospitals:
The Oncology Institute of Hope & Innovation 3628 E Imperial Hwy, Lynwood, CA 90262
Glendale Memorial Hospital and Health Center 1420 South Central Avenue, Glendale, CA 91204
SHARP MEMORIAL HOSPITAL 7901 Frost St, San Diego, CA 92123
Downey Regional Medical Center 11500 Brookshire Avenue, Downey, CA 90241
Saint Francis Medical Center 3630 East Imperial Highway, Lynwood, CA 90262
Barlow Respiratory Hospital Plmnlgy 2000 Stadium Way, Los Angeles, CA 90026
Greater El Monte Community Hospital 1701 Santa Anita Avenue, South El Monte, CA 91733
Education:
Medical School Rosalind Franklin University Of Medicine Science/The Chicago Medical School Graduated: 1985 Medical School La Co Usc Med Center Graduated: 1986 Medical School La Co Usc Med Center Graduated: 1988 Medical School La Co Usc Med Center Graduated: 1990
Christopher Ho, MD 420 E 3Rd St Suite 805, Los Angeles, CA 90013 2136873214 (Phone), 2136870622 (Fax)
Certifications:
Dermatology, 1996
Awards:
Healthgrades Honor Roll
Languages:
English Chinese Spanish
Education:
Medical School Keck School Of Medicine Of The Univ Of Southern California Graduated: 1992 Medical School Harbor UCLA Med Center Graduated: 1993 Medical School University Of California Los Angeles Graduated: 1996
Dr. Christopher Ho, San Diego CA - MD (Doctor of Medicine)
Dr. Ho graduated from the University of Southern California Keck School of Medicine in 1992. He works in Torrance, CA and 1 other location and specializes in Dermatology. Dr. Ho is affiliated with St Vincent Medical Center.
Medical School Temple University School of Medicine Graduated: 2001
Conditions:
Hemophilia A or B Iron Deficiency Anemia Leukemia Malignant Neoplasm of Female Breast Multiple Myeloma
Languages:
English Spanish
Description:
Dr. Ho graduated from the Temple University School of Medicine in 2001. He works in Tarzana, CA and 1 other location and specializes in Hematology/Oncology. Dr. Ho is affiliated with Providence Tarzana Medical Center, Ronald Reagan UCLA Medical Center, Tarzana Treatment Centers, Valley Presbyterian Hospital and West Hills Hospital & Medical Center.
Emory ClinicEmory Breast Imaging Center 1701 Upper Gate Dr NE, Atlanta, GA 30322 4047784446 (phone), 4047781901 (fax)
Emory ClinicEmory Breast Imaging Center 1365 Clifton Rd NE, Atlanta, GA 30322 4047787465 (phone), 4047783095 (fax)
Emory ClinicEmory University Hospital Radiology 1364 Clifton Rd NE, Atlanta, GA 30322 4047782650 (phone), 4047782145 (fax)
Education:
Medical School University of Virginia School of Medicine Graduated: 2004
Languages:
Chinese English Spanish
Description:
Dr. Ho graduated from the University of Virginia School of Medicine in 2004. He works in Atlanta, GA and 2 other locations and specializes in Diagnostic Radiology and Radiation Oncology. Dr. Ho is affiliated with Emory Johns Creek Hospital, Emory University Hospital, Emory University Hospital Midtown and Grady Memorial Hospital.
Efficient and scalable three-dimensional point cloud segmentation. In an embodiment, a three-dimensional point cloud is segmented by adding points to a spatial hash. For each unseen point, a cluster is generated, the unseen point is added to the cluster and marked as seen, and, for each point that is added to the cluster, the point is set as a reference, a reference threshold metric is computed, all unseen neighbors are identified based on the reference threshold metric, and, for each identified unseen neighbor, the unseen neighbor is marked as seen, a neighbor threshold metric is computed, and the neighbor is added or not added to the cluster based on the neighbor threshold metric. When the cluster reaches a threshold size, it may be added to a cluster list. Objects may be identified based on the cluster list and used to control autonomous system(s).
Efficient And Scalable Three-Dimensional Point Cloud Segmentation
Efficient and scalable three-dimensional point cloud segmentation. In an embodiment, a three-dimensional point cloud is segmented by adding points to a spatial hash. For each unseen point, a cluster is generated, the unseen point is added to the cluster and marked as seen, and, for each point that is added to the cluster, the point is set as a reference, a reference threshold metric is computed, all unseen neighbors are identified based on the reference threshold metric, and, for each identified unseen neighbor, the unseen neighbor is marked as seen, a neighbor threshold metric is computed, and the neighbor is added or not added to the cluster based on the neighbor threshold metric. When the cluster reaches a threshold size, it may be added to a cluster list. Objects may be identified based on the cluster list and used to control autonomous system(s).
Efficient And Scalable Three-Dimensional Point Cloud Segmentation For Navigation In Autonomous Vehicles
- Palo Alto CA, US Christopher HO - San Francisco CA, US
International Classification:
G01S 17/93 G06T 7/136 G06T 7/187 G05D 1/02
Abstract:
Efficient and scalable three-dimensional point cloud segmentation. In an embodiment, a three-dimensional point cloud is segmented by adding points to a spatial hash. For each unseen point, a cluster is generated, the unseen point is added to the cluster and marked as seen, and, for each point that is added to the cluster, the point is set as a reference, a reference threshold metric is computed, all unseen neighbors are identified based on the reference threshold metric, and, for each identified unseen neighbor, the unseen neighbor is marked as seen, a neighbor threshold metric is computed, and the neighbor is added or not added to the cluster based on the neighbor threshold metric. When the cluster reaches a threshold size, it may be added to a cluster list. Objects may be identified based on the cluster list and used to control autonomous system(s).
Motion planning is described herein. Motion planning includes determining one or more trajectories and/or velocities. Trajectories and velocities are then provided to one or more controllers that cause a vehicle to travel to a location. By dynamically determining a motion path with various math equations, time may be saved by eliminating the need to choose between a plurality of motion plans.
- Tokyo, JP Jun Murakawa - Foster City CA, US Christopher Ho - Belmont CA, US
International Classification:
G06T 17/20 G06T 3/40
Abstract:
Systems, methods, and devices are disclosed for rendering computer graphics. In various embodiments, a displacement map is created for a plurality of surfaces and a tessellation process is initiated. It is determined that the tessellation density of a first set of surfaces and a second set of surfaces should be modified based on the displacement map. Based on the displacement map, a tessellation factor scale for each surface of the first set of surfaces is increased and a tessellation factor scale for each surface of the second set of surfaces is decreased, respectively.
- Tokyo, JP Osman Steven - Foster City CA, US Jun Murakawa - Foster City CA, US Christopher Ho - Foster City CA, US
International Classification:
G06T 1/20
US Classification:
345501
Abstract:
A system has a central processing unit (CPU) and a graphics processing unit (GPU) that includes one or more registers. The GPU can change a resource descriptor in one of the GPU's registers. It is emphasized that this abstract is provided to comply with the rules requiring an abstract that will allow a searcher or other reader to quickly ascertain the subject matter of the technical disclosure. It is submitted with the understanding that it will not be used to interpret or limit the scope or meaning of the claims.
- Tokyo, JP Christopher Ho - Foster City CA, US Mark E. Cerny - Foster City CA, US Steven Osman - Foster City CA, US Jun Murakawa - Foster City CA, US Dmitri Shtilman - Foster City CA, US Jason Scanlin - Foster City CA, US
International Classification:
G06T 1/20
US Classification:
345522
Abstract:
A method for processing graphics for a GPU program, translating instructions from a shading language into an intermediate language with a front end of a GPU compiler; translating the instructions from the intermediate language into a GPU object language with a back end of the GPU compiler; wherein the instructions in the shading language include instructions defining a layout of resources for the GPU program.
Joon Ho Lee (1988-1992), Tom Bowman (1990-1994), Christopher Ho (1980-1984), Wiley Thomas (1977-1981), David Calica (1973-1977), Martin Flyxe (1975-1979)