WZ
W. Zhu
astro-ph.EPastro-ph.SRastro-ph.GAastro-ph.IMastro-ph.HEastro-ph.COcs.LGstat.MLAccelerationcond-mat.mtrl-sci
On Valency
published · living versionsW_2h4mw2n2·v1 · currentpublished
Korea Microlensing Telescope Network Microlensing Events from 2015: Event-Finding Algorithm, Vetting, and Photometry
with D. -J. Kim, H. -W. Kim, K. -H. Hwang, M. D. Albrow +13
1 version
Preprints & journals
139 papers in the corpus · 2014–2026TESS planets in known radial velocity cold Jupiter systems: Hot super Earth occurrence is enhanced by cold Jupiters2602.11017v2 · Quanyi Liu, Wei Zhu, Tianjun Gan et al.2026 · 1 citationarXiv
Are Hot Jupiters Tidally Disrupted During Stellar Main Sequence?2608.12790v1 · Qingru Hu, Wei Zhu, Yang Huang et al.2026 · 0 citationsarXiv
Detecting Planetary Oblateness in the Era of JWST: A Case Study of Kepler-167e2406.11644v2 · Quanyi Liu, Wei Zhu, Yifan Zhou et al.2024 · 11 citationsarXiv
The Intrinsic Multiplicity Distribution of Exoplanets Revealed from the Radial Velocity Method. II. Constraints on Giant Planet Multiplicity from Different Surveys2603.01534v2 · Jiayin Li, Wei Zhu2026 · 3 citationsarXiv
Two Low Mass-Ratio Microlensing Planets and Two Types of Central-Resonant Degeneracy2603.09045v1 · Yuchen Tang, Weicheng Zang, Yoon-Hyun Ryu et al.2026 · 0 citationsarXiv
Early Stellar Flybys are Unlikely: Improved Constraints from Sednoids and Large-$q$ TNOs2505.16317v2 · Qingru Hu, Yukun Huang, Brett Gladman et al.2025 · 1 citationarXiv
Exciting Stellar Eccentricity in Gaia BH3 via a Hidden Black Hole Binary2509.20806v2 · Qingru Hu, Bin Liu, Wei Zhu2025 · 0 citationsarXiv
Unexpected Near-Resonant and Metastable States of Young Multi-Planet Systems2510.20185v1 · Zhecheng Hu, Fei Dai, Wei Zhu et al.2025 · 0 citationsarXiv
A Comprehensive Analysis of Three Microlensing Planet Candidates with the Planet/Binary Degeneracy2509.18345v1 · Jiyuan Zhang, Weicheng Zang, Yoon-Hyun Ryu et al.2025 · 2 citationsarXiv
Robust Generative Learning with Lipschitz-Regularized $\alpha$-Divergences Allows Minimal Assumptions on Target Distributions2405.13962v3 · Ziyu Chen, Hyemin Gu, Markos A. Katsoulakis et al.2024 · 1 citationarXiv
CorrMoE: Mixture of Experts with De-stylization Learning for Cross-Scene and Cross-Domain Correspondence Pruning2507.11834v1 · Peiwen Xia, Tangfei Liao, Wei Zhu et al.2025 · 0 citationsarXiv
Conformal Operator Flows of the Deconfined Quantum Criticality from $\mathrm{SO}(5)$ to $\mathrm{O}(4)$2507.01322v1 · Shuai Yang, Liang-dong Hu, Chao Han et al.2025 · 0 citationsarXiv
Prospects from TESS and Gaia to constrain the flatness of planetary systems2309.08665v1 · Juan I. Espinoza-Retamal, Wei Zhu, Cristobal Petrovich2023 · 17 citationsAJ 166 231 (2023)
MOA-2022-BLG-091Lb and KMT-2024-BLG-1209Lb: Microlensing planets detected through weak caustic-crossing signals2505.22951v1 · Cheongho Han, Chung-Uk Lee, Andrzej Udalski et al.2025 · 2 citationsarXiv
Systematic Reanalysis of KMTNet microlensing events, Paper I: Updates of the Photometry Pipeline and a New Planet Candidate2311.04876v1 · Hongjing Yang, Jennifer C. Yee, Kyu-Ha Hwang et al.2023 · 47 citationsarXiv
Systematic KMTNet Planetary Anomaly Search. XII. Complete Sample of 2017 Subprime Field Planets2504.20155v1 · Yuqian Gui, Weicheng Zang, Ruocheng Zhai et al.2025 · 7 citations2024, The Astronomical Journal, Volume 168, Issue 2, id.49, 16 pp
Microlensing events indicate that super-Earth exoplanets are common in Jupiter-like orbits2504.20158v1 · Weicheng Zang, Youn Kil Jung, Jennifer C. Yee et al.2025 · 38 citations2025, Science, Vol 388, Issue 6745, pp. 400-404
MOA-2020-BLG-135Lb: A New Neptune-class Planet for the Extended MOA-II Exoplanet Microlens Statistical Analysis2204.03672v2 · Stela Ishitani Silva (1, Cl'ement Ranc (4, David P. Bennett (1 et al.2022 · 6 citationsAJ 164 118 (2022)
Dependence of Planet populations on Stellar Mass and Metallicity: A Pebble Accretion-based Planet Population Synthesis2504.00296v1 · Mengrui Pan, Beibei Liu, Linjie Jiang et al.2025 · 0 citationsarXiv
Learning Novel Transformer Architecture for Time-series Forecasting2502.13721v1 · Juyuan Zhang, Wei Zhu, Jiechao Gao2025 · 0 citationsarXiv
A differentiable binary microlensing model using adaptive contour integration method2501.07268v2 · Haibin Ren, Wei Zhu2025 · 4 citationsarXiv
Short-Period Small Planets with High Mutual Inclinations are more Common around Metal-Rich Stars2502.00442v2 · Xinyan Hua, Sharon Xuesong Wang, Dongsheng An et al.2025 · 2 citationsarXiv
Uncovering underappreciated physical effects hidden in the cosmic-ray electron spectra at very high-energy2501.03842v1 · Wei Zhu, Yu-Chen Tang, Feng-zheng Zhu et al.2025 · 0 citationsarXiv
An Eccentric Binary with a Misaligned Circumbinary Disk2409.18296v2 · Zhecheng Hu, Wei Zhu, Fei Dai et al.2024 · 7 citationsarXiv
Sample Complexity of Probability Divergences under Group Symmetry2302.01915v3 · Ziyu Chen, Markos A. Katsoulakis, Luc Rey-Bellet et al.2023 · 0 citationsarXiv
An extremely low-density exoplanet spins slow2410.07977v2 · Quanyi Liu, Wei Zhu, Kento Masuda et al.2024 · 7 citationsarXiv
Dynamics of Binary Planets within Star Clusters2407.04261v3 · Yukun Huang, Wei Zhu, Eiichiro Kokubo2024 · 8 citationsApJL 975 L38 (2024)
OGLE-2015-BLG-0845L: A low-mass M dwarf from the microlensing parallax and xallarap effects2404.13031v2 · Zhecheng Hu, Wei Zhu, Andrew Gould et al.2024 · 1 citationarXiv
Analysis of the full Spitzer microlensing sample I: Dark remnant candidates and Gaia predictions2407.13740v1 · Krzysztof A. Rybicki, Yossi Shvartzvald, Jennifer C. Yee et al.2024 · 4 citationsarXiv
The Kinematic and Chemical Properties of the Close-in Planet Host Star 8 UMi2401.05120v2 · Huiling Chen, Yang Huang, Wei Zhu et al.2024 · 1 citationarXiv
The Metallicity Dimension of the Super Earth-Cold Jupiter Correlation2306.16691v2 · Wei Zhu (Tsinghua)2023 · 1 citationarXiv
OGLE-2017-BLG-0448Lb: A Low Mass-Ratio Wide-Orbit Microlensing Planet?2312.08635v1 · Ruocheng Zhai, Rados\law Poleski, Weicheng Zang et al.2023 · 6 citationsarXiv
KMT-2023-BLG-1431Lb: A New $q < 10^{-4}$ Microlensing Planet from a Subtle Signature2311.13097v1 · Aislyn Bell, Jiyuan Zhang, Youn Kil Jung et al.2023 · 6 citationsarXiv
Planets Across Space and Time (PAST). V. The evolution of hot Jupiters revealed by the age distribution of their host stars2311.00305v1 · Di-Chang Chen, Ji-Wei Xie, Ji-Lin Zhou et al.2023 · 35 citationsarXiv
KMT-2021-BLG-1547Lb: Giant microlensing planet detected through a signal deformed by source binarity2309.01280v1 · Cheongho Han, Weicheng Zang, Youn Kil Jung et al.2023 · 0 citationsarXiv
One dimensional ferroelectric nanothreads with axial and radial polarization.37381975 · Huang, Jiawei, Ke, Changming, Zhu, Wei et al.2023 · 1 citationNanoscale horizons. 2023;8(9):1205-1216
Systematic KMTNet Planetary Anomaly Search. X. Complete Sample of 2017 Prime-Field Planets2307.13359v2 · Yoon-Hyun Ryu, Andrzej Udalski, Jennifer C. Yee et al.2023 · 14 citationsarXiv
Occurrence rate of hot Jupiters around early-type M dwarfs based on TESS data2210.08313v1 · Tianjun Gan, Sharon X. Wang, Songhu Wang et al.2022 · 89 citationsarXiv
A Transiting Super-Earth in the Radius Valley and An Outer Planet Candidate Around HD 3078422306.14655v1 · Xinyan Hua, Sharon Xuesong Wang, Johanna K. Teske et al.2023 · 4 citationsarXiv
KMT-2022-BLG-0475Lb and KMT-2022-BLG-1480Lb: Microlensing ice giants detected via non-caustic-crossing channel2307.00753v1 · Cheongho Han, Chung-Uk Lee, Ian A. Bond et al.2023 · 0 citationsarXiv
MOA-2022-BLG-249Lb: Nearby microlensing super-Earth planet detected from high-cadence surveys2304.02815v1 · Cheongho Han, Andrew Gould, Youn Kil Jung et al.2023 · 4 citationsarXiv
KMT-2021-BLG-2010Lb, KMT-2022-BLG-0371Lb, and KMT-2022-BLG-1013Lb: Three microlensing planets detected via partially covered signals2304.03871v1 · Cheongho Han, Chung-Uk Lee, Weicheng Zang et al.2023 · 9 citationsarXiv
Integrating Different Informations for Portfolio Selection2305.17881v1 · Yi Huang, Wei Zhu, Duan Li et al.2023 · 1 citationarXiv
MOA-2020-BLG-208Lb: Cool Sub-Saturn Planet Within Predicted Desert2210.02436v2 · Greg Olmschenk, David P. Bennett, Ian A. Bond et al.2022 · 3 citationsThe Astronomical Journal, 2023, Volume 165, Page 175
KMT-2022-BLG-0440Lb: A New $q < 10^{-4}$ Microlensing Planet with the Central-Resonant Caustic Degeneracy Broken2301.06779v2 · Jiyuan Zhang, Weicheng Zang, Youn Kil Jung et al.2023 · 11 citationsarXiv
Systematic KMTNet Planetary Anomaly Search. VIII. Complete Sample of 2019 Subprime Field Planets2302.13544v1 · Youn Kil Jung, Weicheng Zang, Hanyue Wang et al.2023 · 27 citationsarXiv
Machine learning independent conservation laws through neural deflation2303.15958v1 · Wei Zhu, Hong-Kun Zhang, P.G. Kevrekidis2023 · 0 citationsarXiv
Systematic KMTNet Planetary Anomaly Search, Paper VII: Complete Sample of $q < 10^{-4}$ Planets from the First Four-Year Survey2210.12344v2 · Weicheng Zang, Youn Kil Jung, Hongjing Yang et al.2022 · 31 citationsarXiv
OGLE-2017-BLG-1038: A Possible Brown-dwarf Binary Revealed by Spitzer Microlensing Parallax2302.07497v1 · Amber Malpas, Michael D. Albrow, Jennifer C. Yee et al.2023 · 2 citationsAJ 164 (2022) 102
One Dimensional Ferroelectric Nanothreads with Axial and Radial Polarization2212.02711v1 · Jiawei Huang, Changming Ke, Wei Zhu et al.2022 · 1 citationarXiv
Career total: 223 works. 139 are in this corpus.Showing the 50 most recent.
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