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Active wavefront shaping for controlling and improving multimode fi ber sensor 被引量:4
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作者 tianting zhong Zhipeng Yu +3 位作者 Huanhao Li Zihao Li Haohong Li Puxiang Lai 《Journal of Innovative Optical Health Sciences》 SCIE EI CAS 2019年第4期127-135,共9页
Wavefront shaping(WFS)techniques have been used as a powerful tool to control light propagation in complex media,including multimode fibers.In this paper,we propose a new application of WFS for multimode fber-based se... Wavefront shaping(WFS)techniques have been used as a powerful tool to control light propagation in complex media,including multimode fibers.In this paper,we propose a new application of WFS for multimode fber-based sensors.The use of a single multimode fiber alone,without any special fabrication,as a sensor based on the light intensity variations is not an easy task.The twist effect on multimode fiber is used as an example herein.Experimental results show that light intensity through the multimode fiber shows no direct relationship with the twist angle,but the correlation coefficient(CC)of speckle patterns does.Moreover,if WFS is applied to transform the spatially seemingly random light pattern at the exit of the multimode fiber into an optical focus.The focal pattern correlation and intensity both can serve to gauge the twist angle,with doubled measurement range and allowance of using a fast point detector to provide the feedback.With further development,WFS may find potentials to facilitate the development of multimode fber-based sensors in a variety of scenarios. 展开更多
关键词 Multimode fiber wavefront shaping scattering media fiber sensor optical focusing
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Long distance all-optical logic operations through a single multimode fiber empowered by wavefront shaping 被引量:1
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作者 ZHIPENG YU tianting zhong +7 位作者 HUANHAO LI HAORAN LI CHI MAN WOO SHENGFU CHENG SHUMING JIAO HONGLIN LIU CHAO LU PUXIANG LAI 《Photonics Research》 SCIE EI CAS CSCD 2024年第3期587-597,共11页
Multimode fibers(MMFs)are a promising solution for high-throughput signal transmission in the time domain.However,crosstalk among different optical modes within the MMF scrambles input information and creates seemingl... Multimode fibers(MMFs)are a promising solution for high-throughput signal transmission in the time domain.However,crosstalk among different optical modes within the MMF scrambles input information and creates seemingly random speckle patterns at the output.To characterize this process,a transmission matrix(TM)can be used to relate input and output fields.Recent innovations use TMs to manipulate the output field by shaping the input wavefront for exciting advances in deep-brain imaging,neuron stimulation,quantum networks,and analog operators.However,these approaches consider input/output segments as independent,limiting their use for separate signal processing,such as logic operations.Our proposed method,which makes input/output segments as interdependent,adjusts the phase of corresponding output fields using phase bias maps superimposed on input segments.Coherent superposition enables signal logic operations through a 15-m-long MMF.In experiments,a single optical logic gate containing three basic logic functions and cascading multiple logic gates to handle binary operands is demonstrated.Bitwise operations are performed for multi-bit logic operations,and multiple optical logic gates are reconstructed simultaneously in a single logic gate with polarization multiplexing.The proposed method may open new avenues for long-range logic signal processing and transmission via MMFs. 展开更多
关键词 OPTICAL POLARIZATION FIBER
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Learning-based super-resolution interpolation for sub-Nyquist sampled laser speckles 被引量:2
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作者 HUANHAO LI ZHIPENG YU +8 位作者 QI ZHAO YUNQI LUO SHENGFU CHENG tianting zhong CHI MAN WOO HONGLIN LIU LIHONG V.WANG YUANJIN ZHENG PUXIANG LAI 《Photonics Research》 SCIE EI CAS CSCD 2023年第4期631-642,共12页
Information retrieval from visually random optical speckle patterns is desired in many scenarios yet considered challenging.It requires accurate understanding or mapping of the multiple scattering process,or reliable ... Information retrieval from visually random optical speckle patterns is desired in many scenarios yet considered challenging.It requires accurate understanding or mapping of the multiple scattering process,or reliable capability to reverse or compensate for the scattering-induced phase distortions.In whatever situation,effective resolving and digitization of speckle patterns are necessary.Nevertheless,on some occasions,to increase the acquisition speed and/or signal-to-noise ratio(SNR),speckles captured by cameras are inevitably sampled in the sub-Nyquist domain via pixel binning(one camera pixel contains multiple speckle grains)due to finite size or limited bandwidth of photosensors.Such a down-sampling process is irreversible;it undermines the fine structures of speckle grains and hence the encoded information,preventing successful information extraction.To retrace the lost information,super-resolution interpolation for such sub-Nyquist sampled speckles is needed.In this work,a deep neural network,namely SpkSRNet,is proposed to effectively up sample speckles that are sampled below 1/10 of the Nyquist criterion to well-resolved ones that not only resemble the comprehensive morphology of original speckles(decompose multiple speckle grains from one camera pixel)but also recover the lost complex information(human face in this study)with high fidelity under normal-and low-light conditions,which is impossible with classic interpolation methods.These successful speckle super-resolution interpolation demonstrations are essentially enabled by the strong implicit correlation among speckle grains,which is non-quantifiable but could be discovered by the well-trained network.With further engineering,the proposed learning platform may benefit many scenarios that are physically inaccessible,enabling fast acquisition of speckles with sufficient SNR and opening up new avenues for seeing big and seeing clearly simultaneously in complex scenarios. 展开更多
关键词 SPECKLE INTERPOLATION hence
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Towards ideal focusing of diffused light via optical wavefront shaping 被引量:2
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作者 Huanhao Li Zhipeng Yu +2 位作者 tianting zhong Shengfu Cheng Puxiang Lai 《Advanced Photonics》 SCIE EI CAS CSCD 2023年第2期3-5,共3页
Multiple scattering can significantly scramble the amplitude and phase profile of an optical field.It obscures subtle observations but only speckle patterns can be seen,unlike the ballistic regime where the informatio... Multiple scattering can significantly scramble the amplitude and phase profile of an optical field.It obscures subtle observations but only speckle patterns can be seen,unlike the ballistic regime where the information or the optical field can be identified with limited distortions.Efficient optical manipulation including information transmission and precise focusing is therefore obstructed as light travels deep into turbidmedia such as fog,turbid fluids,and biological tissues. 展开更多
关键词 field PRECISE SPECKLE
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Adaptive optical focusing through perturbed scattering media with a dynamic mutation algorithm 被引量:9
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作者 HUANHAO LI CHI MAN WOO +6 位作者 tianting zhong ZHIPENG YU YUNQI LUO YUANJIN ZHENG XIN YANG HUI HUI PUXIANG LAI 《Photonics Research》 SCIE EI CAS CSCD 2021年第2期202-212,共11页
Optical imaging through or inside scattering media, such as multimode fiber and biological tissues, has a significant impact in biomedicine yet is considered challenging due to the strong scattering nature of light. I... Optical imaging through or inside scattering media, such as multimode fiber and biological tissues, has a significant impact in biomedicine yet is considered challenging due to the strong scattering nature of light. In the past decade, promising progress has been made in the field, largely benefiting from the invention of iterative optical wavefront shaping, with which deep-tissue high-resolution optical focusing and hence imaging becomes possible. Most of the reported iterative algorithms can overcome small perturbations on the noise level but fail to effectively adapt beyond the noise level, e.g., sudden strong perturbations. Reoptimizations are usually needed for significant decorrelation to the medium since these algorithms heavily rely on the optimization performance in the previous iterations. Such ineffectiveness is probably due to the absence of a metric that can gauge the deviation of the instant wavefront from the optimum compensation based on the concurrently measured optical focusing.In this study, a square rule of binary-amplitude modulation, directly relating the measured focusing performance with the error in the optimized wavefront, is theoretically proved and experimentally validated. With this simple rule, it is feasible to quantify how many pixels on the spatial light modulator incorrectly modulate the wavefront for the instant status of the medium or the whole system. As an example of application, we propose a novel algorithm, the dynamic mutation algorithm, which has high adaptability against perturbations by probing how far the optimization has gone toward the theoretically optimal performance. The diminished focus of scattered light can be effectively recovered when perturbations to the medium cause a significant drop in the focusing performance, which no existing algorithms can achieve due to their inherent strong dependence on previous optimizations. With further improvement, the square rule and the new algorithm may boost or inspire many applications, such as high-resolution optical imaging and stimulation, in instable or dynamic scattering environments. 展开更多
关键词 SCATTERING MODULATOR ALGORITHM
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Edge enhancement through scattering media enabled by optical wavefront shaping 被引量:6
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作者 ZIHAO LI ZHIPENG Yu +4 位作者 HUI HUI HUANHAO LI tianting zhong HONGLIN LU PUXIANG LA 《Photonics Research》 SCIE EI CSCD 2020年第6期954-962,共9页
Edge enhancement is a fundamental and important topic in imaging and image processing,as perception of edge is one of the keys to identify and comprehend the contents of an image.Edge enhancement can be performed in m... Edge enhancement is a fundamental and important topic in imaging and image processing,as perception of edge is one of the keys to identify and comprehend the contents of an image.Edge enhancement can be performed in many ways,through hardware or computation.Existing methods,however,have been limited in free space or clear media for optical applications;in scattering media such as biological tissue,light is multiple scattered,and information is scrambled to a form of seemingly random speckles.Although desired,it is challenging to accom-plish edge enhancement in the presence of multiple scattering.In this work,we introduce an implementation of optical wavefront shaping to achieve efficient edge enhancement through scattering media by a two-step operation.The first step is to acquire a hologram after the scattering medium,where information of the edge region is accurately encoded,while that of the nonedge region is intentionally encoded with inadequate accuracy.The second step is to decode the edge information by time reversing the scattered light.The capability is demonstrated experimentally,and,further,the performance,as measured by the edge enhancement index(EI)and enhancement-to-noise ratio(ENR),can be controlled easily through tuning the beam ratio.EI and ENR can be reinforced by^8.5 and^263 folds,respectively.To the best of our knowledge,this is the first demonstration that edge information of a spatial pattern can be extracted through strong turbidity,which can potentially enrich the comprehension of actual images obtained from a complex environment. 展开更多
关键词 SCATTERING tuning MEDIA
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Wavefront shaping: A versatile tool to conquer multiple scattering in multidisciplinary fields 被引量:4
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作者 Zhipeng Yu Huanhao Li +15 位作者 tianting zhong Jung-Hoon Park Shengfu Cheng Chi Man Woo Qi Zhao Jing Yao Yingying Zhou Xiazi Huang Weiran Pang Hansol Yoon Yuecheng Shen Honglin Liu Yuanjin Zheng YongKeun Park Lihong V.Wang Puxiang Lai 《The Innovation》 2022年第5期80-94,共15页
Optical techniques offer a wide variety of applications as light-matter interactions provide extremely sensitive mechanisms to probe or treat target media.Most of these implementations rely on the usage of ballistic o... Optical techniques offer a wide variety of applications as light-matter interactions provide extremely sensitive mechanisms to probe or treat target media.Most of these implementations rely on the usage of ballistic or quasi-ballistic photons to achieve high spatial resolution.However,the inherent scattering nature of light in biological tissues or tissue-like scattering media constitutes a critical obstacle that has restricted the penetration depth of non-scattered photons and hence limited the implementation of most optical techniques for wider applications.In addition,the components of an optical system are usually designed and manufactured for a fixed function or performance.Recent advances in wavefront shaping have demonstrated that scattering-or component-induced phase distortions can be compensated by optimizing the wavefront of the input light pattern through iteration or by conjugating the transmission matrix of the scattering medium. 展开更多
关键词 VERSATILE hence ITERATION
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Enhancing spatiotemporal focusing of light deep inside scattering media with Time-Gated Reflection Matrix 被引量:2
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作者 Zhipeng Yu Huanhao Li +1 位作者 tianting zhong Puxiang Lai 《Light(Science & Applications)》 SCIE EI CAS CSCD 2022年第7期1320-1321,共2页
Time-gated reflection matrix(RM)has been successfully used for optical imaging deep inside Scattering media.Recently,this method was extended to enhance the spatiotemporal focusing of light ultra-deep inside scatterin... Time-gated reflection matrix(RM)has been successfully used for optical imaging deep inside Scattering media.Recently,this method was extended to enhance the spatiotemporal focusing of light ultra-deep inside scattering media.This is achieved by calibrating the decomposition of the RM with the Tikhonov regularization parameter to convert mutiply scattered photons that share the same time of flight with the singly scattered photons into singly scattered photons.Such a capability suggests a reshaping to the interaction mechanism between light and scattering media,which may beneft or inspire wide optical applications that desire enhanced spatiotemporal focusing of light at depths inside scattering media. 展开更多
关键词 SCATTERED media LIGHT
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Accelerating deep learning with high energy efficiency:From microchip to physical systems 被引量:1
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作者 Huanhao Li Zhipeng Yu +2 位作者 Qi Zhao tianting zhong Puxiang Lai 《The Innovation》 2022年第4期9-10,共2页
In the era of digits and intemet,massive data have been continuously gener-ated from a variety of sources,including video,photo,audio,text,intemet of things,etc.It is intuitive that more accurate pattems can be obtain... In the era of digits and intemet,massive data have been continuously gener-ated from a variety of sources,including video,photo,audio,text,intemet of things,etc.It is intuitive that more accurate pattems can be obtained by feeding more data for effective analysis;despite the data redundancy,a clearer picture can be delineated for better decision-making.However,traditional methods,even in machine learning,do not benefit from the expanding amount of data,whose perfomance nearty saturates when the data collection is large enough(Figure 1A).Such a dilemma emerges due to their limited capability and insuff cient supply of computation power in the past. 展开更多
关键词 FIGURE intuitive ENOUGH
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