報(bào)告題目:非中心化聯(lián)邦學(xué)習(xí)的統(tǒng)計(jì)推斷
報(bào)告人:陳松蹊 中國科學(xué)院院士 北京大學(xué)
主持人:鄭志明 中國科學(xué)院院士 北京航空航天大學(xué)
報(bào)告時(shí)間:2024年9月8日(星期日)11:00
報(bào)告地點(diǎn):湘潭大學(xué)研究生院報(bào)告廳
報(bào)告摘要:
This paper considers decentralized Federated Learning (FL) under heterogeneous distributions among distributed clients or data blocks for the M-estimation. The mean squared error and consensus error across the estimators from different clients via the decentralized stochastic gradient descent
algorithm are derived. The asymptotic normality of the Polyak-Ruppert (PR) averaged estimator in the decentralized distributed setting is attained, which shows that its statistical efficiency comes at a cost as it is more restrictive on the number of clients than that in the distributed M-estimation. To overcome the restriction, a one-step estimator is proposed which permits a much larger number of clients while still achieving the same efficiency as the original PR-averaged estimator in the non-distributed setting. The confidence regions based on both the PR-averaged estimator and the proposed one-step estimator are constructed to facilitate statistical inference for decentralized Federated Learning.
報(bào)告人簡介:
陳松蹊,中國科學(xué)院院士,全國政協(xié)委員,北京大學(xué)講席教授,北京大學(xué)數(shù)學(xué)科學(xué)學(xué)院和光華管理學(xué)院教授,中國概率統(tǒng)計(jì)學(xué)會(huì)理事長。主要研究方向?yàn)槌呔S大數(shù)據(jù)統(tǒng)計(jì)分析、環(huán)境統(tǒng)計(jì)、非參數(shù)統(tǒng)計(jì)方法等,在超高維假設(shè)檢驗(yàn)方法和非參數(shù)經(jīng)驗(yàn)似然方法方面取得豐碩成果;注重?cái)?shù)理統(tǒng)計(jì)的應(yīng)用,以國家大氣污染防治的重大需求為出發(fā)點(diǎn),從事統(tǒng)計(jì)學(xué)與大氣環(huán)境交叉學(xué)科研究,提出了去除大氣監(jiān)測(cè)數(shù)據(jù)中的氣象因素干擾的方法,為精準(zhǔn)度量污染排放和評(píng)估大氣治理效果提供了科學(xué)方法。曾獲教育部自然科學(xué)一等獎(jiǎng),被選為美國科學(xué)促進(jìn)會(huì)會(huì)士、美國統(tǒng)計(jì)學(xué)會(huì)會(huì)士、數(shù)理統(tǒng)計(jì)學(xué)會(huì)會(huì)士。
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