Supernova Cosmology for the 21st Century: How I Learnt to Stop Worrying about Likelihoods and Train a Neural Network
暫譯: 21世紀超新星宇宙學:我如何學會不再擔心可能性並訓練神經網絡
Karchev, Konstantin, Trotta, Roberto
- 出版商: Springer
- 出版日期: 2026-05-05
- 售價: $6,970
- 貴賓價: 9.5 折 $6,621
- 語言: 英文
- 頁數: 244
- 裝訂: Hardcover - also called cloth, retail trade, or trade
- ISBN: 303215071X
- ISBN-13: 9783032150714
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相關分類:
Machine Learning
海外代購書籍(需單獨結帳)
商品描述
This thesis breaks new ground in supernova type Ia cosmology, developing novel and powerful machine-learning methods scalable to the next generation of astronomical surveys. It demonstrates the feasibility of a fully simulation-based approach to inference, which overcomes the limitations of current methods while increasing the efficiency (and speed) of cosmological inference by orders of magnitude from upcoming large samples of objects. Combining advances in machine learning, numerical modelling, and physical insight, this work provides a much-needed bridge between cosmology and data science. On top of its exceptional methodological impact, the thesis itself is an outstanding product: it is written to the highest scientific and editorial standard, with exceptional quality of figures and graphs, and demonstrating superb command of statistics, machine learning, astrophysics, and cosmology. It is a precious resource for anybody interested in learning, in a concise and accessible yet rigorous manner, the state-of-the-art in supernova type Ia cosmology and modern inference methodologies in general.
商品描述(中文翻譯)
這篇論文在超新星 Ia 型宇宙學方面開創了新局,開發了可擴展到下一代天文調查的新穎且強大的機器學習方法。它展示了一種完全基於模擬的推斷方法的可行性,克服了當前方法的限制,同時將宇宙學推斷的效率(和速度)提高了數個數量級,適用於即將到來的大型物體樣本。結合機器學習、數值建模和物理洞察的進展,這項工作為宇宙學和數據科學之間提供了急需的橋樑。除了其卓越的方法論影響外,論文本身也是一個傑出的成果:它以最高的科學和編輯標準撰寫,圖形和圖表的質量卓越,並展示了對統計學、機器學習、天體物理學和宇宙學的出色掌握。對於任何希望以簡潔且易於理解但又嚴謹的方式學習超新星 Ia 型宇宙學及現代推斷方法學最新進展的人來說,這都是一個珍貴的資源。
作者簡介
Konstantin Karchev obtained a Bachelor's degree in Bath, UK and a Master's in gravitation and astroparticle physics at the University of Amsterdam before pursuing a doctoral degree at SISSA, Trieste under the supervision of prof. Roberto Trotta on the development of cutting-edge machine-learning methods for supernova cosmology. He has also authored several open-source scientific packages and contributed to research in strong gravitational lensing and the study of exoplanets, addressing the challenges of big and detailed astronomical data sets. Finally, Konstantin has been involved in several outreach and teaching activities, and shows a strong affinity for scientific visualisation and graphical design.
作者簡介(中文翻譯)
康斯坦丁·卡爾切夫(Konstantin Karchev)在英國巴斯獲得學士學位,並在阿姆斯特丹大學獲得重力與天體粒子物理學碩士學位,隨後在意大利的SISSA(國際高等科學研究所)攻讀博士學位,指導教授為羅伯托·特羅塔(Roberto Trotta),研究主題為超新星宇宙學的尖端機器學習方法的開發。他還撰寫了幾個開源科學套件,並對強重力透鏡和系外行星的研究做出了貢獻,解決了大型和詳細天文數據集的挑戰。最後,康斯坦丁參與了多項推廣和教學活動,並對科學視覺化和圖形設計表現出強烈的興趣。