Popular on Amzeal
- BumblebeeSmart Introduces Rounded Busy Board Set for Preschoolers - 108
- Phinge CEO to Discuss Todays Global Outages in Las Vegas, Week of CES & How Its Patented Netverse Verified App-less Platform & AI Would Prevent Them
- LingQ Launches Urdu on World Urdu Day
- Boston Industrial Solutions' Natron® DC Series Ink Has Had an Upgrade!
- 5,000 Australians Call for Clarity: NaturismRE's Petition Reaches Major Milestone
- Colony Ridge Proudly Supports the All Ears! 2025 Sporting Clays Tournament
- Jacob Emrani Nominated for LA Executive Award
- GrowStead Innovations Strengthens Leadership with Appointment of Three Advisory Board Members
- Kansas City Steak Company Shares the Return of Their Holiday Gift Box
- Massively parallel implementation of nonlinear functions using an optical processor
Similar on Amzeal
- Smile! Dental Center Named 2025 "Best Dentist" in North Pittsburgh, Celebrating High-Tech Care and Heartfelt Service
- Intelligent photodetectors recognize materials directly from light spectra
- Lineus Medical Receives Patent for SafeBreak® Vascular Generation 2
- CCHR's New Documentary Prescription for Violence Highlights Overlooked Safety Warnings
- The Human Resilience Project Unveils Breakthrough Findings from Māori Expedition
- Stratum Nutrition's OVOLUX™ Named 2025 "Collagen Ingredient of the Year" by Beauty Innovation Awards
- Ayah Labs boosts ashwagandha quality control amid rising concerns over inconsistent potency results!
- CCHR: Study Finds Involuntary Commitment Fails to Prevent Suicide, Raises Risk
- North Wind Selects Nor-Tech Again for Next-Generation HPC Cluster
- Ayah Labs Strengthens Its Amazon Compliance Framework to Help Sellers Meet New Marketplace Demands
Massively parallel implementation of nonlinear functions using an optical processor
Amzeal News/10615746
LOS ANGELES - Amzeal -- Researchers at the University of California, Los Angeles (UCLA) have developed an optical computing framework that performs large-scale nonlinear computations using linear materials. Reported in eLight, a journal of the Springer Open, the study demonstrates that diffractive optical processors—thin, passive material structures composed of phase-only layers—can compute numerous nonlinear functions simultaneously, executed rapidly at extreme parallelism and spatial density, bound by the diffraction limit of light.
Nonlinear operations underpin nearly all modern information-processing tasks, from machine learning and pattern recognition to general-purpose computing. Yet, implementing such operations optically has remained a challenge, as most nonlinear optical effects are weak, power-hungry, or slow. The UCLA team demonstrated universal nonlinear function approximation using linear optical materials by encoding input variables of nonlinear functions into the phase of an optical wavefront and then processing them through an optimized, static diffractive optical architecture made entirely of linear materials. Each diffraction-limited output pixel corresponds to a unique nonlinear function, enabling extreme parallelism within a compact, passive optical system.
More on Amzeal News
UCLA researchers established theoretical and empirical proofs that these diffractive processors act as universal nonlinear function approximators—capable of realizing any arbitrary set of bandlimited nonlinear functions, including multi-variate and complex-valued functions that are all-optically cascadable. They also reported the successful approximation of typical nonlinear activation functions commonly used in digital neural networks, including sigmoid, tanh, ReLU (rectified linear unit), and softplus functions.
The researchers further demonstrated, through numerical simulations, the parallel computation of one million distinct nonlinear functions, accurately executed at wavelength-scale spatial density at the output plane of an optimized, static diffractive optical processor. They also reported an experimental validation of their architecture using a compact optical setup comprising a spatial light modulator and an image sensor, which successfully learned and executed tens of distinct nonlinear functions simultaneously.
More on Amzeal News
The study's framework is scalable to much larger systems by leveraging high-end image sensors with hundreds of megapixels to potentially compute hundreds of millions of nonlinear functions – all in parallel. Such a capability could advance ultrafast analog computing, neuromorphic photonics, and high-throughput optical signal processing—achieved without nonlinear optical materials or electronic post-processing.
The authors of this work are Dr. Md Sadman Sakib Rahman, Yuhang Li, Xilin Yang, Dr. Shiqi Chen, and Professor Aydogan Ozcan, all at the UCLA Samueli School of Engineering. This research was supported by the US Department of Energy Office of Basic Energy Sciences, Materials Sciences and Engineering Division. Dr. Ozcan is also an Associate Director of the California NanoSystems Institute (CNSI).
Link: https://elight.springeropen.com/articles/10.1186/s43593-025-00113-w
Nonlinear operations underpin nearly all modern information-processing tasks, from machine learning and pattern recognition to general-purpose computing. Yet, implementing such operations optically has remained a challenge, as most nonlinear optical effects are weak, power-hungry, or slow. The UCLA team demonstrated universal nonlinear function approximation using linear optical materials by encoding input variables of nonlinear functions into the phase of an optical wavefront and then processing them through an optimized, static diffractive optical architecture made entirely of linear materials. Each diffraction-limited output pixel corresponds to a unique nonlinear function, enabling extreme parallelism within a compact, passive optical system.
More on Amzeal News
- From Cheer to Courtroom: The Hidden Legal Risks in Your Holiday Eggnog
- Future of Work Training Institute Launches the #1 Global AI & Career Transformation Community
- Controversial Vegan Turns Rapper Launches First Song, "Psychopathic Tendencies."
- Inside the Fight for Affordable Housing: Avery Headley Joins Terran Lamp for a Candid Bronx Leadership Conversation
- Canterbury Hotel Group Announces the Opening of the TownePlace Suites by Marriott Portland Airport
UCLA researchers established theoretical and empirical proofs that these diffractive processors act as universal nonlinear function approximators—capable of realizing any arbitrary set of bandlimited nonlinear functions, including multi-variate and complex-valued functions that are all-optically cascadable. They also reported the successful approximation of typical nonlinear activation functions commonly used in digital neural networks, including sigmoid, tanh, ReLU (rectified linear unit), and softplus functions.
The researchers further demonstrated, through numerical simulations, the parallel computation of one million distinct nonlinear functions, accurately executed at wavelength-scale spatial density at the output plane of an optimized, static diffractive optical processor. They also reported an experimental validation of their architecture using a compact optical setup comprising a spatial light modulator and an image sensor, which successfully learned and executed tens of distinct nonlinear functions simultaneously.
More on Amzeal News
- Heritage at South Brunswick's Resort-Style Amenities for Any Age and Every Lifestyle
- Prudential Alarm Strengthens BOMA Support; Celebrates Team Member Finalist
- T-TECH Partners with Japan USA Precision Tools for 2026 US Market Development of the New T-TECH 5-Axis QUICK MILL™
- Record Revenues, Debt-Free Momentum & Shareholder Dividend Ignite Investor Attention Ahead of 2026–2027 Growth Targets: IQSTEL (N A S D A Q: IQST)
- New YouTube Channel Pair Launches to Bring Entertainment Nostalgia Back to Life
The study's framework is scalable to much larger systems by leveraging high-end image sensors with hundreds of megapixels to potentially compute hundreds of millions of nonlinear functions – all in parallel. Such a capability could advance ultrafast analog computing, neuromorphic photonics, and high-throughput optical signal processing—achieved without nonlinear optical materials or electronic post-processing.
The authors of this work are Dr. Md Sadman Sakib Rahman, Yuhang Li, Xilin Yang, Dr. Shiqi Chen, and Professor Aydogan Ozcan, all at the UCLA Samueli School of Engineering. This research was supported by the US Department of Energy Office of Basic Energy Sciences, Materials Sciences and Engineering Division. Dr. Ozcan is also an Associate Director of the California NanoSystems Institute (CNSI).
Link: https://elight.springeropen.com/articles/10.1186/s43593-025-00113-w
Source: ucla ita
Filed Under: Science
0 Comments
Latest on Amzeal News
- Really Cool Music Announces That Its Debut Single "I Move In Silence" Has Been Streamed Around the World
- OKAVA Pharmaceuticals Announces First Cat Dosed in MEOW-1 Study of OKV-119, the World's First Clinical-Stage GLP-1 Weight-Loss Therapy for Pets
- Explosive Growth in U.S. Cryptocurrency Cloud Mining Sets The Stage for New Platform Launch with Daily Rewards in a Transparent Revenue-Share Model
- Qtex Cierra Ronda de $7 Millones para Estandarizar la Banca Transfronteriza en los Mercados Emergentes de Latinoamérica
- America's Most Festive Garages Wanted for Garage.com's 2025 Holiday Contest
- Nava Launches Miami's First On-Demand Water Ride Service
- Nova International Strengthens Global Network to Accelerate Cross-Border Growth for Clients
- Tampa Bay Lights Up: New Open Calendar Launches Just in Time for the Holidays
- FDA Accepts ANDA for KETAFREE™ as Analyst Sets $34 Price Target for NRx Pharmaceuticals: (N A S D A Q : NRXP) NRx is Poised for a massive Breakthrough
- New Northern California Distributor for Jeron Provider® Nurse Call and Area of Rescue Solutions
- BEC Technologies Expands MX-220 5G Industrial Router Series for Edge Connectivity
- "Latino Leaders Speak: Personal Stories of Struggle and Triumph, Volume II" Documents the Truth About Latino Excellence and Impact on American Society
- Broadway Smile Boutique Unveils Modern Website for Enhanced Patient Experience
- Fenix Consulting Group Expands Orange County Office to Meet Growing Client Demand
- Signature Smiles Dental Group Unveils New User-Friendly Website
- CCHR: New Data Shows Millions of U.S. Children Caught in Escalating Psychiatric Polypharmacy
- QwickContractReview.com Launches $19 Contract Review Service to Protect Consumers from Hidden Contract Risks
- Revenue Optics Appoints Meenakshi Walia as Creative Design & Multimedia Manager to Scale Brand Velocity
- Medify Health Recognized as Best Remote Patient Monitoring Service and Top Telehealth Provider by Medical Care Review
- 100% Bonus Depreciation Places New Spotlight on Off The Hook Yacht Sales Inc. (N Y S E: OTH) as a Major Player in the $57 Billion U.S. Marine Market
