[1] Chen H C, Shi J H, Liu X L et al. Single-pixel non-imaging object recognition by means of Fourier spectrum acquisition[J]. Optics Communications, 413, 269-275(2018).
[2] Wang Z R, He P, Zhao W J et al. Research on DQN-Hadamard single-pixel imaging with software and hardware cooperation[J]. Chinese Journal of Quantum Electronics, 39, 962-972(2022).
[3] Hu Q, Wei X D, Pang Y J et al. Advances on terahertz single-pixel imaging[J]. Frontiers in Physics, 10, 982640(2022).
[4] Sun M J, Meng L T, Edgar M P et al. A Russian Dolls ordering of the Hadamard basis for compressive single-pixel imaging[J]. Scientific Reports, 7, 3464(2017).
[5] Zhang Z B, Wang X Y, Zheng G A et al. Hadamard single-pixel imaging versus Fourier single-pixel imaging[J]. Optics Express, 25, 19619-19639(2017).
[6] Guo Y, He Y K, Li X Y et al. Recent advances in single-pixel complex optical field imaging[J]. Chinese Journal of Quantum Electronics, 39, 817-834(2022).
[7] She R B, Liu W Q, Lu Y F et al. Fourier single-pixel imaging in the terahertz regime[J]. Applied Physics Letters, 115, 021101(2019).
[8] She R B, Liu W Q, Wei G L et al. Terahertz single-pixel imaging improved by using silicon wafer with SiO2 passivation[J]. Applied Sciences, 10, 2427(2020).
[9] Bian L H, Suo J L, Situ G H et al. Multispectral imaging using a single bucket detector[J]. Scientific Reports, 6, 24752(2016).
[10] Li Z W, Suo J L, Hu X M et al. Efficient single-pixel multispectral imaging via non-mechanical spatio-spectral modulation[J]. Scientific Reports, 7, 41435(2017).
[11] Jin S L, Hui W W, Wang Y L et al. Hyperspectral imaging using the single-pixel Fourier transform technique[J]. Scientific Reports, 7, 45209(2017).
[12] Pian Q, Yao R Y, Sinsuebphon N et al. Compressive hyperspectral time-resolved wide-field fluorescence lifetime imaging[J]. Nature Photonics, 11, 411-414(2017).
[13] Durán V, Clemente P, Fernández-Alonso M et al. Single-pixel polarimetric imaging[J]. Optics Letters, 37, 824-826(2012).
[14] Soldevila F, Irles E, Durán V et al. Single-pixel polarimetric imaging spectrometer by compressive sensing[J]. Applied Physics B, 113, 551-558(2013).
[15] Fade J L, Perrotin E, Bobin J. Polarizer-free two-pixel polarimetric camera by compressive sensing[J]. Applied Optics(2018).
[16] Sun B, Edgar M P, Bowman R et al. 3D computational imaging with single-pixel detectors[J]. Science, 340, 844-847(2013).
[17] Sun M J, Edgar M P, Gibson G M et al. Single-pixel three-dimensional imaging with time-based depth resolution[J]. Nature Communications, 7, 12010(2016).
[18] Li L, Xiao W, Jian W J. Three-dimensional imaging reconstruction algorithm of gated-viewing laser imaging with compressive sensing[J]. Applied Optics, 53, 7992(2014).
[19] Durán V, Soldevila F, Irles E et al. Compressive imaging in scattering media[J]. Optics Express, 23, 14424-14433(2015).
[20] Zhang Z B, Ma X, Zhong J G. Single-pixel imaging by means of Fourier spectrum acquisition[J]. Nature Communications, 6, 6225(2015).
[21] He R Q, Weng Z H, Zhang Y Y et al. Adaptive Fourier single pixel imaging based on the radial correlation in the Fourier domain[J]. Optics Express, 29, 36021-36037(2021).
[22] Zhang Z B, Wang X Y, Zheng G A et al. Hadamard single-pixel imaging versus Fourier single-pixel imaging[J]. Optics Express, 25, 19619-19639(2017).
[23] Meng W W, Shi D F, Huang J et al. Sparse Fourier single-pixel imaging[J]. Optics Express, 27, 31490-31503(2019).
[24] Kai J, Zhai A P, Zhao W J et al. Fourier single-pixel imaging based on adaptive down-sampling in frequency domain[J]. Laser & Optoelectronics Progress, 60, 0211002(2023).
[25] Jiang H Z, Zhu S G, Zhao H J et al. Adaptive regional single-pixel imaging based on the Fourier slice theorem[J]. Optics Express, 25, 15118-15130(2017).
[26] Jia J Y. Study on Fourier Single Pixel Imaging Quality Analysis[D](2022).
[27] Meng W W. Research on Key Technologies of Fourier Single Pixel Imaging in Time and Space Domain[D](2021).
[28] Qiu Z H, Guo X Y, Lu T A et al. Efficient Fourier single-pixel imaging with Gaussian random sampling[J]. Photonics, 8, 319(2021).
[29] Yu W K. Super sub-nyquist single-pixel imaging by means of cake-cutting Hadamard basis sort[J]. Sensors, 19, 4122(2019).
[30] Yang J F, Zhang Y, Yin W T. A fast alternating direction method for TVL1-L2 signal reconstruction from partial Fourier data[J]. IEEE Journal of Selected Topics in Signal Processing, 4, 288-297(2010).