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基于Node2Vec-LGBM模型的CBA球員位置預(yù)測

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中圖分類號:TP181 文獻(xiàn)標(biāo)識碼:A 文章編號:2096-4706(2025)08-0065-06

Abstract:With the accumulation of sports data and therapid development of Artificial Intellgence technology, it is particularly important touse Big Data and Machine Learming methods tooptimize player position prediction. However, traditionalmethodsoftenignorethecomplexstructuralrelationshipsbetweenplayers,whicharecrucialforpositionprediction. Therefore,this paper proposes a player position prediction model based onNode2Vecand Light Gradient Boosting Machine (LGBM).Through data mining andanalysis,thebasicdataofCBAplayers inthre seasons are crawled,andtheLGBMmodelis usedtopredictthepositionofplayers.Combied withhyper-parameteroptimizationandNode2Vec graphembeddngalgorithm, the accuracyof the modelitself is further improved.Theexperimentalresults show thatthe modelcan notonlyeffectively optimizetheteam'sieupandtacticalarrngements,butalsoprovide strongsupportfor thetamtoenhanceitscompetitiveess and overall performance.

Keywords: Machine Learning; Light Gradient Boosting Machine; Node2Vec; prediction model

0 引言

隨著比賽數(shù)據(jù)的逐漸增多和分析技術(shù)的進(jìn)步,對球員位置的分析已成為運(yùn)動研究的重要方向。(剩余8578字)

目錄
monitor